US20140297116A1 - Self-driving vehicle with integrated active suspension - Google Patents

Self-driving vehicle with integrated active suspension Download PDF

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Publication number
US20140297116A1
US20140297116A1 US14/242,691 US201414242691A US2014297116A1 US 20140297116 A1 US20140297116 A1 US 20140297116A1 US 201414242691 A US201414242691 A US 201414242691A US 2014297116 A1 US2014297116 A1 US 2014297116A1
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Prior art keywords
vehicle
road
active suspension
driving
sensor
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Abandoned
Application number
US14/242,691
Inventor
Zackary Martin Anderson
Marco Giovanardi
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Bridgestone Americas Inc
ClearMotion Inc
Acadia Woods Partners LLC
Franklin Strategic Series Franklin Small Cap Growth Fund
Franklin Strategic Series Franklin Growth Opportunities Fund
Wil Fund I LP
Franklin Templeton Investment Funds Franklin US Opportunities Fund
FHW LP
Microsoft Global Finance ULC
Newview Capital Fund I LP
TEW LP
Private Shares Fund
Brilliance Journey Ltd
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Levant Power Corp
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Priority to US14/242,691 priority Critical patent/US20140297116A1/en
Assigned to LEVANT POWER CORPORATION reassignment LEVANT POWER CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: ANDERSON, ZACKARY MARTIN, GIOVANARDI, MARCO
Publication of US20140297116A1 publication Critical patent/US20140297116A1/en
Priority to US15/832,517 priority patent/US10828953B2/en
Assigned to NEWVIEW CAPITAL FUND I, L.P., FRANKLIN STRATEGIC SERIES - FRANKLIN SMALL CAP GROWTH FUND, ACADIA WOODS PARTNERS, LLC, FRANKLIN STRATEGIC SERIES - FRANKLIN GROWTH OPPORTUNITIES FUND, WIL FUND I, L.P., FRANKLIN TEMPLETON INVESTMENT FUNDS - FRANKLIN U.S. OPPORTUNITIES FUND reassignment NEWVIEW CAPITAL FUND I, L.P. PATENT SECURITY AGREEMENT Assignors: ClearMotion, Inc.
Assigned to ACADIA WOODS PARTNERS, LLC reassignment ACADIA WOODS PARTNERS, LLC AMENDED & RESTATED PATENT SECURITY AGREEMENT Assignors: CLEARMOTION ACQUISITION I LLC, ClearMotion, Inc.
Assigned to MICROSOFT GLOBAL FINANCE, FRANKLIN STRATEGIC SERIES - FRANKLIN GROWTH OPPORTUNITIES FUND, BRIDGESTONE AMERICAS, INC., WIL FUND I, L.P., BRILLIANCE JOURNEY LIMITED, NEWVIEW CAPITAL FUND I, LP, FRANKLIN STRATEGIC SERIES - FRANKLIN SMALL CAP GROWTH FUND, FHW LIMITED PARTNERSHIP, THE PRIVATE SHARES FUND, ACADIA WOODS PARTNERS, LLC, TEW LIMITED PARTNERSHIP, FRANKLIN TEMPLETON INVESTMENT FUNDS - FRANKLIN U.S. OPPORTUNITIES FUND reassignment MICROSOFT GLOBAL FINANCE CORRECTIVE ASSIGNMENT TO CORRECT THE ADDING ASSIGNEE PREVIOUSLY RECORDED AT REEL: 059361 FRAME: 0433. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT. Assignors: CLEARMOTION ACQUISITION I LLC, ClearMotion, Inc.
Assigned to ClearMotion, Inc., CLEARMOTION ACQUISITION I LLC reassignment ClearMotion, Inc. TERMINATION OF AMENDED & RESTATED PATENT SECURITY AGREEMENT Assignors: ACADIA WOODS PARTNERS, LLC
Assigned to ClearMotion, Inc., CLEARMOTION ACQUISITION I LLC reassignment ClearMotion, Inc. TERMINATION OF AMENDED & RESTATED PATENT SECURITY AGREEMENT Assignors: BRIDGESTONE AMERICAS, INC., BRILLIANCE JOURNEY LIMITED, FHW LIMITED PARTNERSHIP, FRANKLIN STRATEGIC SERIES - FRANKLIN GROWTH OPPORTUNITIES FUND, FRANKLIN STRATEGIC SERIES - FRANKLIN SMALL CAP GROWTH FUND, FRANKLIN TEMPLETON INVESTMENT FUNDS - FRANKLIN U.S. OPPORTUNITIES FUND, MICROSOFT GLOBAL FINANCE, NEWVIEW CAPITAL FUND I, LP, TEW LIMITED PARTNERSHIP, THE PRIVATE SHARES FUND, WIL FUND I, L.P.
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G11/00Resilient suspensions characterised by arrangement, location or kind of springs
    • B60G11/26Resilient suspensions characterised by arrangement, location or kind of springs having fluid springs only, e.g. hydropneumatic springs
    • B60G11/265Resilient suspensions characterised by arrangement, location or kind of springs having fluid springs only, e.g. hydropneumatic springs hydraulic springs
    • BPERFORMING OPERATIONS; TRANSPORTING
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    • B60G13/00Resilient suspensions characterised by arrangement, location or type of vibration dampers
    • B60G13/14Resilient suspensions characterised by arrangement, location or type of vibration dampers having dampers accumulating utilisable energy, e.g. compressing air
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/015Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/015Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements
    • B60G17/0152Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements characterised by the action on a particular type of suspension unit
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/015Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements
    • B60G17/018Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements characterised by the use of a specific signal treatment or control method
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/015Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements
    • B60G17/019Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements characterised by the type of sensor or the arrangement thereof
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/015Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements
    • B60G17/0195Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load the regulating means comprising electric or electronic elements characterised by the regulation being combined with other vehicle control systems
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/06Characteristics of dampers, e.g. mechanical dampers
    • B60G17/08Characteristics of fluid dampers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/06Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using both gas and liquid
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/32Details
    • F16F9/50Special means providing automatic damping adjustment, i.e. self-adjustment of damping by particular sliding movements of a valve element, other than flexions or displacement of valve discs; Special means providing self-adjustment of spring characteristics
    • F16F9/512Means responsive to load action, i.e. static load on the damper or dynamic fluid pressure changes in the damper, e.g. due to changes in velocity
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K11/00Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
    • H02K11/30Structural association with control circuits or drive circuits
    • H02K11/33Drive circuits, e.g. power electronics
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K29/00Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices
    • H02K29/06Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices
    • H02K29/08Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices using magnetic effect devices, e.g. Hall-plates, magneto-resistors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K5/00Casings; Enclosures; Supports
    • H02K5/04Casings or enclosures characterised by the shape, form or construction thereof
    • H02K5/12Casings or enclosures characterised by the shape, form or construction thereof specially adapted for operating in liquid or gas
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/14Structural association with mechanical loads, e.g. with hand-held machine tools or fans
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/18Structural association of electric generators with mechanical driving motors, e.g. with turbines
    • H02K7/1807Rotary generators
    • H02K7/1823Rotary generators structurally associated with turbines or similar engines
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G2400/00Indexing codes relating to detected, measured or calculated conditions or factors
    • B60G2400/90Other conditions or factors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/10Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using liquid only; using a fluid of which the nature is immaterial
    • F16F9/14Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect
    • F16F9/16Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts
    • F16F9/18Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts with a closed cylinder and a piston separating two or more working spaces therein
    • F16F9/19Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts with a closed cylinder and a piston separating two or more working spaces therein with a single cylinder and of single-tube type
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K11/00Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
    • H02K11/20Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection for measuring, monitoring, testing, protecting or switching
    • H02K11/21Devices for sensing speed or position, or actuated thereby
    • H02K11/215Magnetic effect devices, e.g. Hall-effect or magneto-resistive elements
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K11/00Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
    • H02K11/20Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection for measuring, monitoring, testing, protecting or switching
    • H02K11/21Devices for sensing speed or position, or actuated thereby
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
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    • H02K29/00Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices
    • H02K29/06Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices
    • H02K29/10Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices using light effect devices
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P6/00Arrangements for controlling synchronous motors or other dynamo-electric motors using electronic commutation dependent on the rotor position; Electronic commutators therefor
    • H02P6/14Electronic commutators
    • H02P6/16Circuit arrangements for detecting position

Definitions

  • Disclosed embodiments are related to active suspension systems for autonomous vehicles.
  • Self-driving or autonomous vehicles enable passengers to spend time on tasks outside of driving. Many of these tasks require ride comfort and isolation from the road that is superior to that of conventional automobiles.
  • Self-driving vehicles typically have a variety of sensors that assist with navigation, including look-ahead sensors such as vision and range-finding technologies.
  • Fully active suspension systems may provide superior ride, handling and comfort. This is accomplished by dynamically creating forces to control wheel motion. These are typically self-contained systems that comprise of sensors and actuators controlled by a central controller.
  • Self-driving vehicles have a significant need for improved ride comfort, and have a number of sensors not typically available on conventional vehicles.
  • the inventors have appreciated that active suspension technologies may be improved by integrating actuator control with vehicle sensors and networks. Further, self-driving vehicles may be improved by being responsive to road-related comfort characteristics.
  • aspects relate broadly to control methodologies of active suspension systems and self-driving vehicles. More specifically, aspects relate to building topographical maps, route planning based on road roughness, regulating energy storage based on planned routes, and mitigating forward and lateral acceleration feel through adaptive pitch and tilt correction.
  • an active suspension system comprises a number of active suspension actuators, typically one per wheel for the vehicle.
  • Each active suspension actuator may operate in at least three force/velocity operational quadrants such that it may both resist an external motion input and actively push/pull.
  • At least one forward-looking sensor is disposed on the vehicle such that it is capable of detecting a road condition the vehicle may encounter in the future.
  • the vehicle comprises a location sensor such as a GPS receiver.
  • the vehicle may further comprise at least one relative sensor that is capable of detecting relative movement between the vehicle and the ground, or the vehicle and a future road condition.
  • Relative sensors may include sensors such as an IMU, accelerometer, speed sensor, etc.
  • a sensor fusion system such as a Kalman Filter may combine the location data and relative data to obtain an accurate estimate of absolute position. For example, a sensor fusion system may bias the location sensor over the long term, but bias the relative sensor over the short term. Similarly, the sensor fusion system may eliminate extraneous points (for example, ignore a GPS coordinate reading if it has moved significantly farther than the vehicle could have moved given the current speed sensor reading).
  • a memory system may comprise a topographical map. Any suitable memory system will suffice, but in some embodiments it may comprise of a processor-based vehicular electronic control unit (ECU) containing rewriteable memory. The topographical map may comprise three-dimensional terrain information.
  • ECU vehicular electronic control unit
  • This may be implemented relative to the vehicle such that the map comprises relative X,Y coordinates from the center of the vehicle and a Z terrain/feature height for the road at each point.
  • the topographical map indices may change at each iteration of the control loop.
  • the system may also be implemented as an absolute map, wherein the X,Y coordinates relate to absolute positions such as GPS coordinates, and similarly the Z value indicates a terrain/feature height.
  • An active suspension controller which may be centralized, distributed among several processor or FPGA-based controllers with one at each actuator, co-located with another vehicle ECU, or any other suitable controller topology, may receive information from the sensor fusion system and the memory system containing the topological map.
  • the active suspension controller both controls the active suspension actuators in response to the topographical map and updates the topographical map based on a parameter sensed by either the active suspension actuators or the forward-looking sensor.
  • Controlling the active suspension actuators may comprise changing a force, position, or other parameter of the actuators in order to mitigate a detected event in the topographical map.
  • Updating the topographical map may comprise recording sensed future events from the forward-looking sensor, recording data from wheel impacts of the front or rear active suspension actuator sensors, or any other suitable data source wherein road data may be extracted and related to a position.
  • a self-driving or navigation-guided vehicle performs route planning at least partially based on road roughness.
  • a controller on the vehicle receives a driving plan that comprises an anticipated route for the vehicle, such as a GPS-guided route laid onto data from a roadway map database.
  • road condition data is collected at a variety of points along the route.
  • the controller determines a road roughness impact on the vehicle for at least a portion of the gathered points of road condition data. This may be a calculation based on the road condition data, or it may comprise the road condition data itself, depending on what data is stored.
  • the self-driving or navigation-guided vehicle then adjusts the driving plan to reduce road roughness impact on the vehicle. For example, it may avoid a road that is particularly rough.
  • an intelligent energy storage system regulates state of charge in a predictive fashion.
  • a plurality of electrical loads are connected to an electrical bus.
  • Such electrical loads may include active suspension actuators, electric propulsion motors, electric power steering, an electric air compressor, electronically actuated stability control, and the like.
  • the electrical bus may comprise an energy storage apparatus such as a rechargeable battery bank, super capacitors, and/or other suitable means of storing electrical energy.
  • the energy storage apparatus may be characterized by a state of charge, which is a measure of the energy contained in the apparatus.
  • the energy storage apparatus may be disposed to provide energy to at least a portion of the connected electrical loads on the bus.
  • a power converter may be configured to provide power to the energy storage, thus changing its state of charge.
  • the loads may be electronically connected such that they also regulate the state of charge.
  • An electronic controller for a self-driving vehicle calculates a driving plan, which is an anticipated route for the vehicle.
  • a computer-based model or algorithm may predict or calculate energy usage by at least a portion of the plurality of loads at a variety of points along the route.
  • energy usage may be positive or negative (consumption or regeneration).
  • the algorithm or model may then dynamically and predictively set a state of charge of the energy storage apparatus as a function of calculated energy usage for points along the route. In one example, if the algorithm calculates that a large amount of energy will be needed ahead, the power converter may put additional energy into the energy storage apparatus in order to accommodate the future consumption load.
  • an active suspension system for a self-driving vehicle mitigates fore/aft and lateral acceleration feel through adaptive pitch and tilt corrections.
  • the active suspension system comprises a plurality of active suspension actuators, with an actuator disposed at each wheel of the vehicle. Each actuator is capable of creating an active force between the vehicle chassis and the wheel.
  • a self-driving controller which may be a single controller or several controllers distributed in the vehicle, commands steering, acceleration, and deceleration of the vehicle during driving.
  • An active suspension controller is in communication with the self-driving controller such that the active suspension controller receives feed-forward command and control information. This feed-forward information may include steering, acceleration, and deceleration signals from the self-driving controller.
  • this sensor data may be feedback data, such as measured fore/aft and lateral acceleration.
  • An algorithm mitigates passenger disturbance caused by such fore/aft and lateral acceleration by creating a compensation attitude, or a pitch/tilt condition of the vehicle.
  • the compensation attitude may be set using the active suspension actuators in response to the feed-forward steering, acceleration, and deceleration signals.
  • the compensation attitude is set using feedback data such as measured fore/aft and lateral acceleration.
  • the algorithm commands a pitch-up attitude during deceleration (such as braking), a pitch-down attitude during acceleration, and a roll-in attitude during steering.
  • a pitch-up attitude comprises lifting the front of the vehicle such that its ride height is higher than the rear
  • a pitch-down attitude comprises lowering the front of the vehicle such that its ride height is lower than the rear
  • a roll-in attitude comprises lowering the side of the vehicle on the inside radius of the turn such that its ride height is lower than the outside radius side of the vehicle.
  • ride height command authority may be limited in comparison to large acceleration events causing large roll or pitch moments, and the control system may not fully achieve such compensation attitude behavior.
  • FIG. 15-1 is a diagram of a topographical road mapping system.
  • FIG. 15-2 is a block diagram of a route planning system that is responsive to road conditions.
  • FIG. 15-3 is an autonomous vehicle with a predictive energy storage subsystem and an integrated active suspension.
  • FIG. 15-4 is an adaptive pitch/roll system that creates a compensation attitude in response to feed-forward drive commands.
  • FIG. 15-5 is a block diagram of a self-driving vehicle with integrated adaptive chassis systems.
  • FIG. 15-6 is a drawing of an on-demand energy flow active suspension embodiment.
  • FIG. 15-7 is an embodiment using a topographical road mapping system that uses front wheels as a predictive sensor for rear wheels to control an active suspension system.
  • topographical maps of the road surface include positional information as well as road surface information such as road height. These maps may be highly granular in detail, showing individual road imperfections, bumps, potholes, and the like. These maps may be generated by a variety of means, including vision camera sensors, LIDAR, radar, and other planar or three-dimensional scanning sensors, and the like. The maps may also be generated by sensor information post-encounter, such as the front suspension actuators determining information about the road as they traverse terrain. These topographical maps may also be communicated from vehicle to vehicle over a network, or may be downloaded from servers in communication with the vehicle such as over a cellular network.
  • the topographical maps may be used for a variety of control purposes, such as: adapting driving behavior (changing speed such as slowing down on a rough road; changing vehicle course such as choosing a less bumpy road to reach the destination, etc.); adapting active suspension system behavior (controlling actuator force/position in a predictive manner in response to road perturbations ahead, changing actuator force/position in the rear dampers to anticipate sensed events from the front dampers, etc.). Aspects also relate to plotting a trajectory of the vehicle and its elements (e.g. individual wheels) across the topographical map.
  • aspects relate to the use of energy storage onboard a self-driving vehicle, wherein the energy storage is used to power electrical loads such as active suspension actuators, the drive motor of an electric car, EPS, ESP, ABS braking, etc.
  • electrical loads such as active suspension actuators, the drive motor of an electric car, EPS, ESP, ABS braking, etc.
  • these aspects relate to predictively charging the energy storage based on an estimate of future energy needs of the vehicle.
  • this also relates to controlling electrical loads based on an estimate of future energy needs of the vehicle.
  • another input to such algorithms is energy availability, which may be a vehicle imposed current limit, or an overall energy storage capacity of an electric vehicle for a given trip.
  • Other aspects relate to controlling an active suspension to enhance comfort during acceleration and cornering of a self-driving vehicle.
  • the vehicle may lean into a turn or acceleration, and lean back from a deceleration event.
  • FIG. 15-1 shows an embodiment of a topographical mapping system for a vehicle.
  • a topographical map 15 - 100 comprises high-resolution terrain data for the vehicle.
  • high resolution would encompass being able to detect road perturbations large enough to create a human-distinguishable impact on the vehicle if driven over.
  • the resolution may be lower.
  • the map may be represented as a relative map about the vehicle (for example, XY Cartesian distances from the vehicle or a polar coordinate system), as multiple relative maps about parts of the vehicle (for example, relative maps about each wheel), an absolute map comprising absolute positions (for example, GPS coordinates), or any other means of associated terrain height Z information or similar.
  • the topological map may contain a generalized roughness metric or a correction metric for an active suspension. It may also be implemented as a pipelined control system, wherein such information is clocked through a control loop based on position changes of the vehicle. Any suitable means of representing topographical information may be used.
  • the topographical map 15 - 100 is indexed by the current position. This map may start as populated, unpopulated, or partially populated. In order to use a high resolution topographical map, the vehicle needs an accurate method of localizing with respect to the map.
  • Location sensors 15 - 102 are used to determine a location. Such sensors may include coordinates from a GPS receiver, WiFi access point recognition, honing beacon, DGPS triangulation methods, and/or other suitable sensors.
  • the vehicle has at least one relative position sensor 15 - 104 such as an IMU, accelerometers, steering angle, vehicle speed, and/or other suitable sensors onboard.
  • a sensor fusion system 15 - 106 processes the absolute position data using the relative position data to determine an accurate estimate of current location.
  • One such method of sensor fusion is a Kalman Filter to recursively process the stream of noisy data from the location and relative position sensors to yield an accurate estimate of absolute position.
  • a filter may contain data representing a physical model of the vehicle and its movement, and compare a prediction of vehicle location to actual measurement.
  • Output from the sensor fusion system is a position metric that serves as either an index to the topographical map 15 - 100 , or serves to transform the topographical map at each time update. For example, if the topographical map is a relative matrix of Z values ahead of the vehicle, the filtered position information may shift the current map XY position.
  • the topographical map 15 - 100 may be purely relative to the vehicle, and only relative position sensors 15 - 104 are used in the sensor fusion system.
  • the topographical map represents a local measure of terrain about the vehicle, and a method for accurately interpreting and using results from look-ahead sensors 15 - 108 by the active suspension system 15 - 110 .
  • an active suspension system 15 - 110 is equipped on the vehicle.
  • the fully active suspension is capable of operating in at least three operational quadrants of a force/velocity plot, which means it is capable of both damping movement and actively pushing or pulling the wheel.
  • the active suspension system receives data from the topological map and determines an incidence time and correction.
  • a path may be calculated that represents a path through a plurality of points in the topographical map 15 - 100 . This path may be a function of current steering angle and speed, or be based on a planned route.
  • the planned route may be a combination of GPS/maps route planning and any obstacle avoidance procedures being employed by the self-driving vehicle to plan vehicle travel.
  • the path may comprise of a single trajectory in a lower resolution map, of two paths, each representing a path of travel of the left and right sides of the vehicle respectively, or four paths, with each representing a path of travel of a wheel of the vehicle (in the case of a two axle vehicle).
  • the active suspension then calculates an incidence time to each point corresponding with each wheel of the vehicle for which an active suspension actuator is disposed.
  • the active suspension then calculates a correction, which comprises a force or position setting of the actuator at each wheel so as to mitigate impact of the event on the trajectory.
  • the left front wheel might lift twenty-five millimeters just before impact of the event.
  • a system model is used to calculate actuator response time so that it can prepare the actuator a suitable period of time prior to the wheel encountering the event.
  • the active suspension system may employ several algorithms related to wheel damping, body control during turns, saturation handling, and other metrics that may require the active suspension to deviate from this simplified model, however, in many embodiments that use the topographical map, the terrain data is utilized as an input to the active suspension control system.
  • the active suspension system 15 - 110 may also share information with the topographical mapping system.
  • data may comprise accelerometer data representing wheel or body movement, actuator position information, or any other metric that represents road input.
  • the front actuators of the vehicle encounter a bump, which moves the actuators a certain distance at a given force.
  • the system estimates topographical information from this and inserts it into the topographical map so that the rear actuators can use the data to respond to and so that future drive events can benefit from the knowledge.
  • the vehicle effectively employs a learning algorithm wherein it learns the road terrain as new roads are traversed, and then the next time it is driven the system can respond more effectively.
  • This may be coupled with algorithms that adapt an already populated map as the same terrain is driven over multiple times so that a best estimate map is created.
  • This learning function may be particularly important with topographical information because road surface condition changes frequently with wear/tear, road repairs, snow storms, etc.
  • the topographical map may also be used to modify route planning 15 - 112 and drive system 15 - 114 commands. For example, if a large obstruction in the road is detected (such as a pothole), the vehicle route planning 15 - 112 may navigate around the obstruction in order to reduce impact to the vehicle. On a road that exhibits a particularly rough road (which can be determined with various means from the topographical map such as looking at the frequency content and amplitude of perturbations), the route planning system may avoid the road and reroute to another suitable road with a smoother topographical footprint. In another example, the drive system 15 - 114 may simply reduce speed over a detected rough road.
  • look-ahead sensors 15 - 108 are similarly helpful. These are particularly useful due to their ability to sense road conditions prior to encountering them with the wheels of the vehicle.
  • look-ahead systems such as mono or stereo vision camera systems, radar, sonar, LIDAR, and other planar or three dimensional scanning systems.
  • multiple look-ahead sensors are used in conjunction through a secondary fusion system in order to obtain a more accurate estimate of road conditions. These sensors may build a topographical map that expands beyond road surface conditions: they may detect curbs, edges of roads, street signs, other vehicles, pedestrians, buildings, etc.
  • the system building the topological map may be the same system that is performing real-time autonomous driving and navigation.
  • This subsystem may identify obstacles that are mobile objects and would be differentiated from in the topological map.
  • the vision sensor may detect a pedestrian in a crosswalk or another vehicle.
  • a couple methods include object recognition systems that can detect human faces, outlines of vehicles, and such, or an algorithm that can detect if an object is moving with respect to an absolute coordinate system (i.e. the ground). In this way, non-permanent obstacles can be removed from or not inserted into the topographical map data.
  • topographical map information may be shared.
  • the vehicle has a cellular connection to the internet and dynamically uploads and downloads topographical map information from one or more servers.
  • there is vehicle-to-vehicle communication wherein a vehicle ahead may communicate topographical or road surface information to the vehicle which can seed the topographical map 15 - 100 with a priori estimates.
  • This topographical information can be stored with road map databases, and may even be directly coupled with road map systems such that road maps index terrain information. This can be at the overall road granularity level, or may be a matrix of data representing terrain information across the road at a higher resolution.
  • the amount of topographical information stored can vary. A topographical map containing an entire route or even an entire region can be stored on the vehicle, or only a small window buffered onto local memory.
  • FIG. 15-2 shows an embodiment of a route planning system that is responsive to road conditions. Based on a driver input destination, the vehicle retrieves data from a maps database 15 - 202 and computes a driving plan 15 - 200 .
  • the driving plan may comprise of a specific route and may further include target vehicle speeds.
  • FIG. 15-2 shows the generalized system which can be used in a priori route planning or in real-time a posteriori driving.
  • the a priori driving plan 15 - 200 is calculated based on a route planning algorithm such as an A* algorithm or any other suitable route planning method. This is then compared to road condition data 15 - 204 that has been stored from previous driving data, from other vehicles, or from a database.
  • the road condition data is processed or has already been processed and stored to include a road roughness impact 15 - 206 metric.
  • this metric may comprise a measure of vertical acceleration on the chassis of the vehicle.
  • vertical acceleration on the vehicle chassis or in the passenger compartment may be band-pass filtered to cut out frequencies significantly below body frequency and frequencies significantly above wheel frequency.
  • a band-pass filter may have a lower cutoff around 0.5 Hz and an upper cutoff around 20 Hz in order to eliminate extraneous noise that does not impact road roughness impact.
  • the driving plan 15 - 200 is altered to either bias against rough roads by employing a weight factor directly in the route-planning algorithm, or by avoiding roads that have a road roughness above a certain threshold. In another embodiment, it may result in setting target speeds for each section of road.
  • the road condition data 15 - 204 and road roughness impact calculator 15 - 206 may represent a single unit 15 - 208 that simply represents the road roughness.
  • the a priori system determines a driving plan at least partially in response to anticipated road roughness impact to the vehicle over the roads in the route.
  • the system operates in real time while executing (i.e. driving) the driving plan 15 - 200 .
  • a driving plan 15 - 200 is calculated based on a route planning algorithm and using stored maps 15 - 202 .
  • road condition data 15 - 204 is acquired such as vertical accelerometer data, road surface information from a forward-looking vision system, data from a stored topographical map, GPS-indexed data, data from other vehicles, and a measure of at least one state variable from an electronic suspension system (such as accelerometer, velocity, and position data from each actuator or semi-active damper).
  • an electronic suspension system such as accelerometer, velocity, and position data from each actuator or semi-active damper.
  • This may be a simple root mean squared (RMS) value of acceleration, a comfort heuristic that is a frequency-weighted function of chassis acceleration, or some other means of processing the road condition data to yield a result coupled with road impact to the vehicle and passengers.
  • RMS root mean squared
  • Road roughness impact data 15 - 206 (either current data of the terrain being traversed, a running average of past data, or future data ahead) is used to correct the driving plan 15 - 200 . Adjusting the driving plan may cause the vehicle to choose an alternative route course in order to avoid the road being traversed. Alternatively, it may cause the driving plan to change the vehicle speed over the rough terrain.
  • FIG. 15-3 shows an autonomous vehicle with a predictive energy storage subsystem and an integrated active suspension.
  • An electrical bus 15 - 300 delivers power to a plurality of connected electrical loads.
  • the electrical loads comprise of four active suspension actuators 15 - 308 connected to the bus 15 - 300 .
  • this may comprise of electric power steering systems, electronic stability control actuators, electronic air compressors, ABS braking actuators, rear wheel steering actuators, and other power consumers.
  • An energy storage apparatus 15 - 312 such as a battery (lead acid, AGM, lithium-ion, lithium-phosphate, etc.), a bank of capacitors (e.g. super capacitors), a flywheel, or any other suitable energy storage device is attached to the electrical bus 15 - 300 .
  • the energy storage device can be characterized by a state of charge. For example in a capacitor, a voltage level would indicate this. For some rechargeable batteries, this could be measured using a coulomb counting battery management system, although with many battery technologies a state of charge can be determined by a voltage reading.
  • the energy storage system is disposed to provide energy to at least a portion of the electrical loads on the bus.
  • a power converter 15 - 310 in this embodiment a bi-directional DC-DC converter that transfers power between the vehicle's electrical system and the electrical bus 15 - 300 , is configured to provide power to the energy storage apparatus and the connected electrical loads. By controlling the electrical loads and the power converter, a state of charge of the energy storage apparatus can be set.
  • the power converter 15 - 310 can set a state of charge of the energy storage apparatus 15 - 312 without knowing the state of charge.
  • the power converter can provide more energy than the loads are consuming in order to increase a state of charge, and likewise the power converter can provide less energy than the loads are consuming in order to decrease the state of charge.
  • a forward-looking stereo vision camera or LIDAR, radar, side sensor, rear sensor, etc.
  • This camera system may connect with the autonomous control system 15 - 302 , which may comprise of one or a plurality of devices such as processor-based controllers.
  • the sensor may also connect directly to the suspension controller, although in this embodiment the autonomous controller uses the stereo vision system for vehicle navigation tasks as well.
  • the autonomous controller 15 - 302 calculates a driving plan for an anticipated route of the vehicle by mapping a route to a user-defined destination. This driving plan may change dynamically, for example it may be responsive to changing traffic conditions.
  • the driving plan may be highly granular such as taking a specific line or lane along a road. Based on sensed data such as through the vision camera 15 - 304 , this driving plan may dynamically change such as to avoid an emergency-braking vehicle in the vehicle's lane ahead.
  • the power converter 15 - 310 may regulate the state of charge of the energy storage 15 - 312 during the route.
  • the GPS unit 15 - 316 detects the vehicle's position is approaching a known rough road that is on the driving plan and the vehicle is in an economy mode, where a significant amount of energy might be regenerated by a regenerative suspension system.
  • This processing may occur in a controller outside the GPS unit that may have access to the topographical map with road roughness criteria.
  • the power converter can be controlled to deliver energy from the electrical bus 15 - 300 to the vehicle's electrical system in order to reduce the state of charge of the energy storage so that it can accommodate at least some of the regenerated energy. Once the road is being traversed, regenerated energy may be provided to both the energy storage apparatus as well as to the vehicle's electrical system through the power converter.
  • the GPS unit 15 - 316 detects that the vehicle's position is approaching a winding road that is on the driving plan of the vehicle.
  • An algorithm calculates needed energy for the active suspension actuators to provide active roll control and for the electric power steering to provide steering input, and charges the energy storage apparatus such that while the winding road is being traversed, peak power demand from both devices is delivered by both the energy storage apparatus and the power converter from the vehicle's electrical system 15 - 318 such that the power converter does not exceed a vehicle electrical system maximum current threshold.
  • the vehicle 15 - 314 is an electric or hybrid car with a high voltage battery pack as an energy storage device.
  • the vehicle may be an autonomous electric vehicle with a rear mounted drive motor and a 400-volt battery pack.
  • the energy storage may comprise the battery pack, and the electrical bus may comprise the high voltage bus the battery is connected to.
  • the vehicle calculates a driving route and estimates energy usage from connected loads (for example, the main drive motor and an active suspension system). Such an estimate may comprise a measure of road roughness and cornering to determine an active suspension system consumption, and a measure of acceleration, stop lights, vehicle speeds, terrain incline and distance to determine a main drive motor consumption and regeneration.
  • the vehicle may want to further control the loads such as the active suspension and main drive motor to ensure that the autonomous vehicle may reach its destination with the amount of energy on board the vehicle.
  • the active suspension system may run off an intermediate voltage bus on the vehicle such as a 48V bus that communicates with the high voltage system through a DC-DC converter.
  • the vehicle determines a driving plan for the vehicle and target speeds. It estimates energy usage that each device on the electrical bus 15 - 300 will use for each location of travel, which may be a function of target speed and other parameters. During execution of the driving plan, the energy storage state of charge may be predictively set in advance of the energy usage event.
  • the energy storage apparatus operates most durably when maintained between a lower threshold voltage and an upper threshold voltage. This may be accomplished by executing regulation of the power converter and regulation of at least a portion of the plurality of connected loads. For example, a controller may reduce energy consumption in a load so that the energy storage does not drop below a lower threshold. In other embodiments this may be accomplished by applying switches such as MOSFET or IGBT transistor based switches to the energy storage apparatus.
  • FIG. 15-4 demonstrates an active suspension control system for a vehicle that mitigates fore/aft and lateral acceleration and deceleration feel by pitching and tilting the vehicle.
  • the vehicle comprises active suspension actuators at each wheel of the vehicle.
  • a self-driving controller creates command signals that accelerate/decelerate the vehicle and create steering events that yield a lateral acceleration.
  • the vehicle 15 - 400 pitches forward (pitch down attitude wherein the front of the vehicle is below the vehicle centerline) by creating an extension force from the rear actuators 15 - 402 and a compression force from the front actuators 15 - 404 .
  • Force is provided in order to set a compensation attitude 15 - 406 in pitch that is greater than zero degrees and related to the acceleration of the vehicle. Acceleration of the vehicle creates a longitudinal force 15 - 408 on the passengers that is equal to their mass multiplied by the vehicle's acceleration.
  • the longitudinal force from the vehicle acceleration is multiplied by the cosine of the compensation angle 15 - 406 , and a component of gravitational force 15 - 410 acts to counteract the acceleration force by operating in the opposite direction.
  • This longitudinal force component from gravity on the passengers is equal to their mass multiplied by the acceleration of gravity (9.8 m/s/s) multiplied by the sine of the compensation attitude.
  • the tangent of the compensation attitude must equal the vehicle acceleration divided by gravity. Therefore, a compensation attitude to create equal forces would be the arctangent of the quotient of the vehicle acceleration and (divided by) the acceleration of gravity.
  • the zero net longitudinal force compensation attitude during a 0.3 g vehicle acceleration is approximately 17 degrees pitch forward.
  • the compensation angle 15 - 406 may be less than the arctangent of the quotient of vehicle acceleration and the acceleration of gravity.
  • the vehicle 15 - 412 pitches backward (pitch up attitude wherein the front of the vehicle is above the vehicle centerline). In this instance, force from the actuators operates in a similar but opposite fashion. Compensation attitudes can be found using similar methodologies as during acceleration, but by referencing a compensation attitude angle from the rear of the vehicle instead of the front.
  • this compensation attitude in roll may be greater than zero, but less than or equal to the arctangent of the quotient of lateral acceleration and gravity.
  • the roll in attitude comprises of the side of the vehicle on the inside radius of the turn being below the roll centerline as shown in FIG. 15-4 .
  • the actuators may become force limited (in saturation), and this performance may not be met.
  • a self-driving vehicle may mitigate discomfort associated with autonomous acceleration, deceleration, and steering.
  • a feed-forward strategy may be employed by connecting the autonomous controller or driving system with the active suspension such that a compensation attitude is commanded based on an acceleration/steering signal from the controller.
  • a compensation attitude can be calculated as a function of the signal.
  • entry into the compensation attitude is gradual and occurs over an extended period of time that is a function of the feed-forward signal from the self driving controller. Exit from the compensation attitude may also be gradual and occur over time.
  • active suspension actuators have a maximum force limit which may be a physical limit or a software parameter (including a dynamic software parameter that is updatable in real time), and a target compensation attitude is not fully reached during high acceleration, deceleration, and roll events. This is called a force-limited mode. Since compensation attitude performance may be jarring to some passengers, in some embodiments it may be desirable to turn the feature on and off, or into different modes of operation (for example, that set different levels of compensation attitudes) based on a vehicle operator selected operational mode.
  • the main control system 15 - 500 comprises controllers for the autonomous driving subsystem, the smart chassis subsystem, and the comfort subsystem. These controllers may be on a single controller or a plurality of controllers distributed about the vehicle.
  • the autonomous driving subsystem is responsible for navigation, route planning, obstacle avoidance, and other driving related tasks.
  • the smart chassis subsystem is an integrated control system that combines control tasks for a number of chassis and propulsion technologies.
  • the comfort subsystem may provide control to a number of comfort systems such as controlling the active suspension system, interior cabin amenities, and may provide settings to the propulsion system to adjust throttle and steering response.
  • the self-driving vehicle may have a number of sensor technologies on-board 15 - 502 which may be beneficially coupled with other vehicle systems such as an active suspension.
  • These sensors include look ahead sensors (vision, radar, sonar, LIDAR, front wheel movement), mapping (GPS, localized mapping, street maps, topographical maps), vehicle state (speed, transmission state, fuel level, engine status), chassis sensors (ESP status, ABS status, steering/throttle position), and suspension sensors (unsprung and sprung mass acceleration, suspension position, velocity, energy consumed/regenerated).
  • the chassis and propulsion systems 15 - 504 such as throttle, steering, active suspension, braking, energy management for the vehicle, and other chassis related technologies may be operatively controlled by the main control system blocks.
  • a user interface 15 - 508 may be used to accept vehicle operator inputs such as destination inputs to compute a route or driving plan such as on an LCD touchscreen.
  • suspension status may be viewed and algorithm settings may be programmed via the user interface.
  • the self-driving vehicle may be connected via a network connection 15 - 506 such as to the internet.
  • This network may connect the vehicle with data from other vehicles, with street mapping data, stored topographical data, local weather information, traffic information, and vehicle operator devices such as smartphones, tablets, etc. Vehicle operator devices may be used to further control the vehicle, such as allowing a destination input via a smartphone.
  • Many of the above systems may be combined together and operatively communicate with one another in order to improve overall system performance.
  • many of the technologies discussed in this specification may be operatively combined with features and modules shown in FIG. 15-5 .
  • FIG. 15-6 demonstrates one embodiment of an active suspension actuator that operates in at least three operational quadrants of a force-velocity plot (with respect to the actuator).
  • a hydraulic actuator 15 - 600 comprising a piston rod and piston head disposed in a housing, along with a gas filled accumulator (which may be inside the hydraulic actuator housing or in fluid communication externally), is connected via fluid communication channels 15 - 602 to a hydraulic motor/pump 15 - 606 (which may be a pump, a motor, or both).
  • the fluid communication may pass through one or more valves 15 - 604 that are configured either in series with the fluid, in parallel with the pump, some combination of the two, or this may be a straight connection without any valving.
  • this valving may include a fluid-velocity responsive diverter valve that opens a bypass path around the hydraulic motor at a predetermined fluid velocity, while still allowing some fluid to enter the hydraulic motor during the diverted bypass stage.
  • the hydraulic motor/pump is operatively coupled to an electric motor 15 - 608 such that rotation of the electric motor in a first direction causes fluid to pump into a compression volume of the hydraulic actuator, and rotation of the electric motor in a second direction causes fluid to pump into an extension volume of the hydraulic actuator.
  • the electric motor is electrically connected via at least one wire 15 - 610 to a controller 15 - 612 that controls the motor.
  • Motor control may comprise of torque control, velocity control, or some other parameter.
  • the controller is responsive to algorithms operating the active suspension and/or to sensors or commands 15 - 614 .
  • commands for actuator force or position may come from a vehicle system.
  • An example of a suitable sensor is an accelerometer.
  • the system is controlled in an on-demand energy manner such that energy is consumed or regenerated in the motor to rapidly create a force on the actuator.
  • FIG. 15-7 is one embodiment of a topographical map that is specific to using data from the front wheels to provide improved response with the rear wheels of an active suspension. This may be beneficially combined with several technologies discussed in conjunction with sections discussing topographical maps, and shows one potential implementation of such a map. This may also be combined with several other elements in this specification, and is not limited to vehicles that are self-driving (i.e. it applies to human-operated vehicles).
  • a vehicle state estimator 15 - 700 determines a vehicle's kinematic state based on a number of sensors such as accelerometers, steering angle, vehicle velocity (wheel speed sensors, GPS, etc.). This functional unit calculates how the vehicle is moving across the terrain, and outputs a change in (x, y, z) coordinates for each time step. These coordinate deltas serve as a relative matrix transformation vector that is used to transform a topographical map, and may further comprise a rotation vector if the vehicle is turning.
  • the topographical map in this embodiment is a road outlook table 15 - 702 that comprises a two dimensional matrix indexed by x values and y values, and containing z positions (heights) of the road for each relative coordinate.
  • the road outlook table 15 - 702 comprises a topographical map relative to the car and encompassing the road underneath the vehicle from front axle to rear axle, left side to right side of the vehicle.
  • this road outlook table could be larger. For example, it could extend far in front of the vehicle and be seeded with data using look-ahead sensors, or it could extend past the sides of the vehicle.
  • the road outlook table is fed into a system and vehicle dynamics model 15 - 704 that calculates a model-based open loop correction signal based on the upcoming z position of the road to each wheel, and creates an actuator control to mitigate the event.
  • sensors such as the front accelerometers or position sensors (or any sensor that indicates road information) are fed into a road height estimator 15 - 706 , which estimates a z position of the road.
  • the wheel and body response to a certain bump may be measured using sensors and then an estimate determined of road height that caused the bump.
  • this data is inserted at x equals zero, however it would be whatever corresponding position for the topographical map at hand.
  • a secondary method may operate to fill blank data slots with estimated road height. A number of methods can be used to accomplish this, but linear or quadratic interpolation between measured data points is one suitable method.
  • the vehicle can use information from the front wheels in an accurate manner that accounts for vehicle movement including steering and other effects.
  • it can be robustly integrated with multiple predictive sensors including look-ahead sensors, GPS data, and front wheel sensors. All of these may dynamically update the topographical map, and where there is redundant data a best estimate between the multiple values is used.

Abstract

A self-driving vehicle with an integrated fully-active suspension system. The fully-active suspension utilizes data from one or more sensors used for autonomous driving (e.g. vision, LIDAR, GPS) in order to anticipate road conditions in advance. The system builds a topographical map of the road surface. Suspension and road data is delivered back to the vehicle in order to change autonomous driving behavior including route planning. Energy storage is regulated based on a planned route. Forward and lateral acceleration feel is mitigated through active pitch and tilt compensation. The fully-active suspension pushes and pulls the suspension in three or more operational quadrants in order to deliver superior ride comfort, handling, and/safety of the vehicle.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application claims priority to PCT application serial number PCT/US2014/029654, entitled “ACTIVE VEHICLE SUSPENSION IMPROVEMENTS”, filed Mar. 14, 2014, which claims the priority under 35 U.S.C. §119(e) of U.S. provisional application Ser. No. 61/913,644, entitled “WIDE BAND HYDRAULIC RIPPLE NOISE BUFFER”, filed Dec. 9, 2013, U.S. provisional application Ser. No. 61/865,970, entitled “MULTI-PATH FLUID DIVERTER VALVE”, filed Aug. 14, 2013, U.S. provisional application Ser. No. 61/815,251, entitled “METHOD AND ACTIVE SUSPENSION”, filed Apr. 23, 2013, and U.S. provisional application Ser. No. 61/789,600, entitled “IMPROVEMENTS IN ACTIVE SUSPENSION” filed Mar. 15, 2013, the disclosures of which are incorporated by reference in their entirety.
  • BACKGROUND
  • 1. Field
  • Disclosed embodiments are related to active suspension systems for autonomous vehicles.
  • 2. Discussion of Related Art
  • Self-driving or autonomous vehicles enable passengers to spend time on tasks outside of driving. Many of these tasks require ride comfort and isolation from the road that is superior to that of conventional automobiles. Self-driving vehicles typically have a variety of sensors that assist with navigation, including look-ahead sensors such as vision and range-finding technologies.
  • Fully active suspension systems may provide superior ride, handling and comfort. This is accomplished by dynamically creating forces to control wheel motion. These are typically self-contained systems that comprise of sensors and actuators controlled by a central controller.
  • SUMMARY
  • Self-driving vehicles have a significant need for improved ride comfort, and have a number of sensors not typically available on conventional vehicles. The inventors have appreciated that active suspension technologies may be improved by integrating actuator control with vehicle sensors and networks. Further, self-driving vehicles may be improved by being responsive to road-related comfort characteristics.
  • Aspects relate broadly to control methodologies of active suspension systems and self-driving vehicles. More specifically, aspects relate to building topographical maps, route planning based on road roughness, regulating energy storage based on planned routes, and mitigating forward and lateral acceleration feel through adaptive pitch and tilt correction.
  • According to one aspect, an active suspension system comprises a number of active suspension actuators, typically one per wheel for the vehicle. Each active suspension actuator may operate in at least three force/velocity operational quadrants such that it may both resist an external motion input and actively push/pull. At least one forward-looking sensor is disposed on the vehicle such that it is capable of detecting a road condition the vehicle may encounter in the future. The vehicle comprises a location sensor such as a GPS receiver. The vehicle may further comprise at least one relative sensor that is capable of detecting relative movement between the vehicle and the ground, or the vehicle and a future road condition. Relative sensors may include sensors such as an IMU, accelerometer, speed sensor, etc. A sensor fusion system such as a Kalman Filter may combine the location data and relative data to obtain an accurate estimate of absolute position. For example, a sensor fusion system may bias the location sensor over the long term, but bias the relative sensor over the short term. Similarly, the sensor fusion system may eliminate extraneous points (for example, ignore a GPS coordinate reading if it has moved significantly farther than the vehicle could have moved given the current speed sensor reading). A memory system may comprise a topographical map. Any suitable memory system will suffice, but in some embodiments it may comprise of a processor-based vehicular electronic control unit (ECU) containing rewriteable memory. The topographical map may comprise three-dimensional terrain information. This may be implemented relative to the vehicle such that the map comprises relative X,Y coordinates from the center of the vehicle and a Z terrain/feature height for the road at each point. In such an embodiment, the topographical map indices may change at each iteration of the control loop. The system may also be implemented as an absolute map, wherein the X,Y coordinates relate to absolute positions such as GPS coordinates, and similarly the Z value indicates a terrain/feature height. An active suspension controller, which may be centralized, distributed among several processor or FPGA-based controllers with one at each actuator, co-located with another vehicle ECU, or any other suitable controller topology, may receive information from the sensor fusion system and the memory system containing the topological map. According to one aspect, the active suspension controller both controls the active suspension actuators in response to the topographical map and updates the topographical map based on a parameter sensed by either the active suspension actuators or the forward-looking sensor. Controlling the active suspension actuators may comprise changing a force, position, or other parameter of the actuators in order to mitigate a detected event in the topographical map. Updating the topographical map may comprise recording sensed future events from the forward-looking sensor, recording data from wheel impacts of the front or rear active suspension actuator sensors, or any other suitable data source wherein road data may be extracted and related to a position.
  • According to another aspect, a self-driving or navigation-guided vehicle performs route planning at least partially based on road roughness. A controller on the vehicle receives a driving plan that comprises an anticipated route for the vehicle, such as a GPS-guided route laid onto data from a roadway map database. Along a route of travel, road condition data is collected at a variety of points along the route. The controller determines a road roughness impact on the vehicle for at least a portion of the gathered points of road condition data. This may be a calculation based on the road condition data, or it may comprise the road condition data itself, depending on what data is stored. The self-driving or navigation-guided vehicle then adjusts the driving plan to reduce road roughness impact on the vehicle. For example, it may avoid a road that is particularly rough.
  • According to another aspect, an intelligent energy storage system regulates state of charge in a predictive fashion. According to this aspect, a plurality of electrical loads are connected to an electrical bus. Such electrical loads may include active suspension actuators, electric propulsion motors, electric power steering, an electric air compressor, electronically actuated stability control, and the like. The electrical bus may comprise an energy storage apparatus such as a rechargeable battery bank, super capacitors, and/or other suitable means of storing electrical energy. The energy storage apparatus may be characterized by a state of charge, which is a measure of the energy contained in the apparatus. The energy storage apparatus may be disposed to provide energy to at least a portion of the connected electrical loads on the bus. A power converter may be configured to provide power to the energy storage, thus changing its state of charge. Additionally, the loads may be electronically connected such that they also regulate the state of charge. An electronic controller for a self-driving vehicle calculates a driving plan, which is an anticipated route for the vehicle. A computer-based model or algorithm may predict or calculate energy usage by at least a portion of the plurality of loads at a variety of points along the route. According to one aspect, energy usage may be positive or negative (consumption or regeneration). While driving, the algorithm or model may then dynamically and predictively set a state of charge of the energy storage apparatus as a function of calculated energy usage for points along the route. In one example, if the algorithm calculates that a large amount of energy will be needed ahead, the power converter may put additional energy into the energy storage apparatus in order to accommodate the future consumption load.
  • According to another aspect, an active suspension system for a self-driving vehicle mitigates fore/aft and lateral acceleration feel through adaptive pitch and tilt corrections. The active suspension system comprises a plurality of active suspension actuators, with an actuator disposed at each wheel of the vehicle. Each actuator is capable of creating an active force between the vehicle chassis and the wheel. A self-driving controller, which may be a single controller or several controllers distributed in the vehicle, commands steering, acceleration, and deceleration of the vehicle during driving. An active suspension controller is in communication with the self-driving controller such that the active suspension controller receives feed-forward command and control information. This feed-forward information may include steering, acceleration, and deceleration signals from the self-driving controller. According to one aspect, this sensor data may be feedback data, such as measured fore/aft and lateral acceleration. An algorithm mitigates passenger disturbance caused by such fore/aft and lateral acceleration by creating a compensation attitude, or a pitch/tilt condition of the vehicle. The compensation attitude may be set using the active suspension actuators in response to the feed-forward steering, acceleration, and deceleration signals. According to one aspect, the compensation attitude is set using feedback data such as measured fore/aft and lateral acceleration. The algorithm commands a pitch-up attitude during deceleration (such as braking), a pitch-down attitude during acceleration, and a roll-in attitude during steering. According to one aspect, a pitch-up attitude comprises lifting the front of the vehicle such that its ride height is higher than the rear, a pitch-down attitude comprises lowering the front of the vehicle such that its ride height is lower than the rear, and a roll-in attitude comprises lowering the side of the vehicle on the inside radius of the turn such that its ride height is lower than the outside radius side of the vehicle. According to one aspect, in a force-limited saturation regime of the actuator, ride height command authority may be limited in comparison to large acceleration events causing large roll or pitch moments, and the control system may not fully achieve such compensation attitude behavior.
  • It should be appreciated that the foregoing concepts, and additional concepts discussed below, may be arranged in any suitable combination, as the present disclosure is not limited in this respect. In particular, while several embodiments are disclosed for self-driving vehicles, certain concepts may be used with human-operated vehicles as well. Further, other advantages and novel features of the present disclosure will become apparent from the following detailed description of various non-limiting embodiments when considered in conjunction with the accompanying figures.
  • In cases where the present specification and a document incorporated by reference include conflicting and/or inconsistent disclosure, the present specification shall control. If two or more documents incorporated by reference include conflicting and/or inconsistent disclosure with respect to each other, then the document having the later effective date shall control.
  • BRIEF DESCRIPTION OF DRAWINGS
  • The accompanying drawings are not intended to be drawn to scale. In the drawings, each identical or nearly identical component that is illustrated in various figures may be represented by a like numeral. For purposes of clarity, not every component may be labeled in every drawing. In the drawings:
  • FIG. 15-1 is a diagram of a topographical road mapping system.
  • FIG. 15-2 is a block diagram of a route planning system that is responsive to road conditions.
  • FIG. 15-3 is an autonomous vehicle with a predictive energy storage subsystem and an integrated active suspension.
  • FIG. 15-4 is an adaptive pitch/roll system that creates a compensation attitude in response to feed-forward drive commands.
  • FIG. 15-5 is a block diagram of a self-driving vehicle with integrated adaptive chassis systems.
  • FIG. 15-6 is a drawing of an on-demand energy flow active suspension embodiment.
  • FIG. 15-7 is an embodiment using a topographical road mapping system that uses front wheels as a predictive sensor for rear wheels to control an active suspension system.
  • DETAILED DESCRIPTION
  • While self-driving vehicles and active suspension systems exist in the prior art, such systems have traditionally been separated stand-alone technologies. Significant ride benefits can be delivered to passengers by combining the sensing and command functions of self-driving vehicles with the command authority to change vehicle dynamics that a fully-active suspension provides.
  • Some aspects relate to vehicle systems that utilize topographical maps of the road surface. Such maps include positional information as well as road surface information such as road height. These maps may be highly granular in detail, showing individual road imperfections, bumps, potholes, and the like. These maps may be generated by a variety of means, including vision camera sensors, LIDAR, radar, and other planar or three-dimensional scanning sensors, and the like. The maps may also be generated by sensor information post-encounter, such as the front suspension actuators determining information about the road as they traverse terrain. These topographical maps may also be communicated from vehicle to vehicle over a network, or may be downloaded from servers in communication with the vehicle such as over a cellular network. The topographical maps may be used for a variety of control purposes, such as: adapting driving behavior (changing speed such as slowing down on a rough road; changing vehicle course such as choosing a less bumpy road to reach the destination, etc.); adapting active suspension system behavior (controlling actuator force/position in a predictive manner in response to road perturbations ahead, changing actuator force/position in the rear dampers to anticipate sensed events from the front dampers, etc.). Aspects also relate to plotting a trajectory of the vehicle and its elements (e.g. individual wheels) across the topographical map.
  • Other aspects relate to adapting driving behavior and route planning as a function of road roughness and the impact a road might have on the vehicle, and of collecting such data for future planning use.
  • Other aspects relate to the use of energy storage onboard a self-driving vehicle, wherein the energy storage is used to power electrical loads such as active suspension actuators, the drive motor of an electric car, EPS, ESP, ABS braking, etc. These aspects relate to predictively charging the energy storage based on an estimate of future energy needs of the vehicle. In some embodiments, this also relates to controlling electrical loads based on an estimate of future energy needs of the vehicle. According to one aspect, another input to such algorithms is energy availability, which may be a vehicle imposed current limit, or an overall energy storage capacity of an electric vehicle for a given trip.
  • Other aspects relate to controlling an active suspension to enhance comfort during acceleration and cornering of a self-driving vehicle. By controlling a compensation attitude of the vehicle using active suspension actuators, the vehicle may lean into a turn or acceleration, and lean back from a deceleration event.
  • FIG. 15-1 shows an embodiment of a topographical mapping system for a vehicle. A topographical map 15-100 comprises high-resolution terrain data for the vehicle. In some embodiments high resolution would encompass being able to detect road perturbations large enough to create a human-distinguishable impact on the vehicle if driven over. In other embodiments the resolution may be lower. The map may be represented as a relative map about the vehicle (for example, XY Cartesian distances from the vehicle or a polar coordinate system), as multiple relative maps about parts of the vehicle (for example, relative maps about each wheel), an absolute map comprising absolute positions (for example, GPS coordinates), or any other means of associated terrain height Z information or similar. In addition to or instead of terrain height data, the topological map may contain a generalized roughness metric or a correction metric for an active suspension. It may also be implemented as a pipelined control system, wherein such information is clocked through a control loop based on position changes of the vehicle. Any suitable means of representing topographical information may be used.
  • In this embodiment, the topographical map 15-100 is indexed by the current position. This map may start as populated, unpopulated, or partially populated. In order to use a high resolution topographical map, the vehicle needs an accurate method of localizing with respect to the map. Location sensors 15-102 are used to determine a location. Such sensors may include coordinates from a GPS receiver, WiFi access point recognition, honing beacon, DGPS triangulation methods, and/or other suitable sensors. In addition, the vehicle has at least one relative position sensor 15-104 such as an IMU, accelerometers, steering angle, vehicle speed, and/or other suitable sensors onboard. A sensor fusion system 15-106 processes the absolute position data using the relative position data to determine an accurate estimate of current location. One such method of sensor fusion is a Kalman Filter to recursively process the stream of noisy data from the location and relative position sensors to yield an accurate estimate of absolute position. Such a filter may contain data representing a physical model of the vehicle and its movement, and compare a prediction of vehicle location to actual measurement. Output from the sensor fusion system is a position metric that serves as either an index to the topographical map 15-100, or serves to transform the topographical map at each time update. For example, if the topographical map is a relative matrix of Z values ahead of the vehicle, the filtered position information may shift the current map XY position.
  • In another embodiment, the topographical map 15-100 may be purely relative to the vehicle, and only relative position sensors 15-104 are used in the sensor fusion system. In such an embodiment, the topographical map represents a local measure of terrain about the vehicle, and a method for accurately interpreting and using results from look-ahead sensors 15-108 by the active suspension system 15-110.
  • In the embodiment of FIG. 1, an active suspension system 15-110 is equipped on the vehicle. The fully active suspension is capable of operating in at least three operational quadrants of a force/velocity plot, which means it is capable of both damping movement and actively pushing or pulling the wheel. In one embodiment, the active suspension system receives data from the topological map and determines an incidence time and correction. In a simple implementation, a path may be calculated that represents a path through a plurality of points in the topographical map 15-100. This path may be a function of current steering angle and speed, or be based on a planned route. The planned route may be a combination of GPS/maps route planning and any obstacle avoidance procedures being employed by the self-driving vehicle to plan vehicle travel. The path may comprise of a single trajectory in a lower resolution map, of two paths, each representing a path of travel of the left and right sides of the vehicle respectively, or four paths, with each representing a path of travel of a wheel of the vehicle (in the case of a two axle vehicle). The active suspension then calculates an incidence time to each point corresponding with each wheel of the vehicle for which an active suspension actuator is disposed. The active suspension then calculates a correction, which comprises a force or position setting of the actuator at each wheel so as to mitigate impact of the event on the trajectory. In a simple embodiment example, if there were a twenty-five millimeter bump 300 milliseconds away from the left front wheel (the incent time could be calculated using current or planned vehicle speed), then the left front wheel might lift twenty-five millimeters just before impact of the event. A system model is used to calculate actuator response time so that it can prepare the actuator a suitable period of time prior to the wheel encountering the event. The active suspension system may employ several algorithms related to wheel damping, body control during turns, saturation handling, and other metrics that may require the active suspension to deviate from this simplified model, however, in many embodiments that use the topographical map, the terrain data is utilized as an input to the active suspension control system.
  • In addition to reacting in response to the topographical map 15-100, the active suspension system 15-110 may also share information with the topographical mapping system. Such data may comprise accelerometer data representing wheel or body movement, actuator position information, or any other metric that represents road input. In an illustrative embodiment, the front actuators of the vehicle encounter a bump, which moves the actuators a certain distance at a given force. The system then estimates topographical information from this and inserts it into the topographical map so that the rear actuators can use the data to respond to and so that future drive events can benefit from the knowledge. In an embodiment with this later implementation, the vehicle effectively employs a learning algorithm wherein it learns the road terrain as new roads are traversed, and then the next time it is driven the system can respond more effectively. This may be coupled with algorithms that adapt an already populated map as the same terrain is driven over multiple times so that a best estimate map is created. This learning function may be particularly important with topographical information because road surface condition changes frequently with wear/tear, road repairs, snow storms, etc.
  • The topographical map may also be used to modify route planning 15-112 and drive system 15-114 commands. For example, if a large obstruction in the road is detected (such as a pothole), the vehicle route planning 15-112 may navigate around the obstruction in order to reduce impact to the vehicle. On a road that exhibits a particularly rough road (which can be determined with various means from the topographical map such as looking at the frequency content and amplitude of perturbations), the route planning system may avoid the road and reroute to another suitable road with a smoother topographical footprint. In another example, the drive system 15-114 may simply reduce speed over a detected rough road.
  • In addition to the active suspension system in some embodiments communicating information to build/update the topographical map, the use of one or more look-ahead sensors 15-108 is similarly helpful. These are particularly useful due to their ability to sense road conditions prior to encountering them with the wheels of the vehicle. Several suitable look-ahead systems exist such as mono or stereo vision camera systems, radar, sonar, LIDAR, and other planar or three dimensional scanning systems. In some embodiments multiple look-ahead sensors are used in conjunction through a secondary fusion system in order to obtain a more accurate estimate of road conditions. These sensors may build a topographical map that expands beyond road surface conditions: they may detect curbs, edges of roads, street signs, other vehicles, pedestrians, buildings, etc. In some embodiments the system building the topological map may be the same system that is performing real-time autonomous driving and navigation. This subsystem may identify obstacles that are mobile objects and would be differentiated from in the topological map. For example, the vision sensor may detect a pedestrian in a crosswalk or another vehicle. Several methods are known in the art for differentiating such objects. A couple methods include object recognition systems that can detect human faces, outlines of vehicles, and such, or an algorithm that can detect if an object is moving with respect to an absolute coordinate system (i.e. the ground). In this way, non-permanent obstacles can be removed from or not inserted into the topographical map data.
  • In embodiments where the vehicle has a communications interface with external data sources, topographical map information may be shared. In one embodiment the vehicle has a cellular connection to the internet and dynamically uploads and downloads topographical map information from one or more servers. In another embodiment there is vehicle-to-vehicle communication wherein a vehicle ahead may communicate topographical or road surface information to the vehicle which can seed the topographical map 15-100 with a priori estimates. This topographical information can be stored with road map databases, and may even be directly coupled with road map systems such that road maps index terrain information. This can be at the overall road granularity level, or may be a matrix of data representing terrain information across the road at a higher resolution. The amount of topographical information stored can vary. A topographical map containing an entire route or even an entire region can be stored on the vehicle, or only a small window buffered onto local memory.
  • While the above embodiments have been described in the context of a self-driving vehicle, several inventions may equivalently or similarly relate to human-driven vehicles as well, including, without limitation, navigation-guided vehicles.
  • FIG. 15-2 shows an embodiment of a route planning system that is responsive to road conditions. Based on a driver input destination, the vehicle retrieves data from a maps database 15-202 and computes a driving plan 15-200. The driving plan may comprise of a specific route and may further include target vehicle speeds. FIG. 15-2 shows the generalized system which can be used in a priori route planning or in real-time a posteriori driving.
  • For the embodiment with an advanced route planning correction, the a priori driving plan 15-200 is calculated based on a route planning algorithm such as an A* algorithm or any other suitable route planning method. This is then compared to road condition data 15-204 that has been stored from previous driving data, from other vehicles, or from a database. The road condition data is processed or has already been processed and stored to include a road roughness impact 15-206 metric. In some embodiments this metric may comprise a measure of vertical acceleration on the chassis of the vehicle. In one embodiment, vertical acceleration on the vehicle chassis or in the passenger compartment may be band-pass filtered to cut out frequencies significantly below body frequency and frequencies significantly above wheel frequency. For example, a band-pass filter may have a lower cutoff around 0.5 Hz and an upper cutoff around 20 Hz in order to eliminate extraneous noise that does not impact road roughness impact. Based on the measure of road roughness, the driving plan 15-200 is altered to either bias against rough roads by employing a weight factor directly in the route-planning algorithm, or by avoiding roads that have a road roughness above a certain threshold. In another embodiment, it may result in setting target speeds for each section of road. Several implementation methods exist using weight factors, thresholds, biases, and other algorithms. The road condition data 15-204 and road roughness impact calculator 15-206 may represent a single unit 15-208 that simply represents the road roughness. In general, the a priori system determines a driving plan at least partially in response to anticipated road roughness impact to the vehicle over the roads in the route.
  • For the a posteriori embodiment, the system operates in real time while executing (i.e. driving) the driving plan 15-200. A driving plan 15-200 is calculated based on a route planning algorithm and using stored maps 15-202. As the vehicle traverses terrain, road condition data 15-204 is acquired such as vertical accelerometer data, road surface information from a forward-looking vision system, data from a stored topographical map, GPS-indexed data, data from other vehicles, and a measure of at least one state variable from an electronic suspension system (such as accelerometer, velocity, and position data from each actuator or semi-active damper). With this road condition data, a road roughness impact calculation 15-206 is performed. This may be a simple root mean squared (RMS) value of acceleration, a comfort heuristic that is a frequency-weighted function of chassis acceleration, or some other means of processing the road condition data to yield a result coupled with road impact to the vehicle and passengers.
  • Road roughness impact data 15-206 (either current data of the terrain being traversed, a running average of past data, or future data ahead) is used to correct the driving plan 15-200. Adjusting the driving plan may cause the vehicle to choose an alternative route course in order to avoid the road being traversed. Alternatively, it may cause the driving plan to change the vehicle speed over the rough terrain.
  • FIG. 15-3 shows an autonomous vehicle with a predictive energy storage subsystem and an integrated active suspension. An electrical bus 15-300 delivers power to a plurality of connected electrical loads. In the embodiment of FIG. 15-3, the electrical loads comprise of four active suspension actuators 15-308 connected to the bus 15-300. In other embodiments this may comprise of electric power steering systems, electronic stability control actuators, electronic air compressors, ABS braking actuators, rear wheel steering actuators, and other power consumers. An energy storage apparatus 15-312 such as a battery (lead acid, AGM, lithium-ion, lithium-phosphate, etc.), a bank of capacitors (e.g. super capacitors), a flywheel, or any other suitable energy storage device is attached to the electrical bus 15-300. The energy storage device can be characterized by a state of charge. For example in a capacitor, a voltage level would indicate this. For some rechargeable batteries, this could be measured using a coulomb counting battery management system, although with many battery technologies a state of charge can be determined by a voltage reading. In this embodiment, the energy storage system is disposed to provide energy to at least a portion of the electrical loads on the bus. A power converter 15-310, in this embodiment a bi-directional DC-DC converter that transfers power between the vehicle's electrical system and the electrical bus 15-300, is configured to provide power to the energy storage apparatus and the connected electrical loads. By controlling the electrical loads and the power converter, a state of charge of the energy storage apparatus can be set. In some embodiments the power converter 15-310 can set a state of charge of the energy storage apparatus 15-312 without knowing the state of charge. For example, the power converter can provide more energy than the loads are consuming in order to increase a state of charge, and likewise the power converter can provide less energy than the loads are consuming in order to decrease the state of charge.
  • Disposed on the vehicle of FIG. 15-3 is a forward-looking stereo vision camera (or LIDAR, radar, side sensor, rear sensor, etc.) 15-304 that is able to detect road obstacles and obstructions. This camera system may connect with the autonomous control system 15-302, which may comprise of one or a plurality of devices such as processor-based controllers. The sensor may also connect directly to the suspension controller, although in this embodiment the autonomous controller uses the stereo vision system for vehicle navigation tasks as well. The autonomous controller 15-302 calculates a driving plan for an anticipated route of the vehicle by mapping a route to a user-defined destination. This driving plan may change dynamically, for example it may be responsive to changing traffic conditions. The driving plan may be highly granular such as taking a specific line or lane along a road. Based on sensed data such as through the vision camera 15-304, this driving plan may dynamically change such as to avoid an emergency-braking vehicle in the vehicle's lane ahead.
  • The power converter 15-310 may regulate the state of charge of the energy storage 15-312 during the route. Several such exemplary circumstances where the energy storage might be used are given:
  • In one circumstance, the GPS unit 15-316 detects the vehicle's position is approaching a known rough road that is on the driving plan and the vehicle is in an economy mode, where a significant amount of energy might be regenerated by a regenerative suspension system. This processing may occur in a controller outside the GPS unit that may have access to the topographical map with road roughness criteria. The power converter can be controlled to deliver energy from the electrical bus 15-300 to the vehicle's electrical system in order to reduce the state of charge of the energy storage so that it can accommodate at least some of the regenerated energy. Once the road is being traversed, regenerated energy may be provided to both the energy storage apparatus as well as to the vehicle's electrical system through the power converter.
  • In another circumstance, the GPS unit 15-316 detects that the vehicle's position is approaching a winding road that is on the driving plan of the vehicle. An algorithm calculates needed energy for the active suspension actuators to provide active roll control and for the electric power steering to provide steering input, and charges the energy storage apparatus such that while the winding road is being traversed, peak power demand from both devices is delivered by both the energy storage apparatus and the power converter from the vehicle's electrical system 15-318 such that the power converter does not exceed a vehicle electrical system maximum current threshold.
  • In another circumstance, the vehicle 15-314 is an electric or hybrid car with a high voltage battery pack as an energy storage device. For example, the vehicle may be an autonomous electric vehicle with a rear mounted drive motor and a 400-volt battery pack. In this embodiment, the energy storage may comprise the battery pack, and the electrical bus may comprise the high voltage bus the battery is connected to. The vehicle calculates a driving route and estimates energy usage from connected loads (for example, the main drive motor and an active suspension system). Such an estimate may comprise a measure of road roughness and cornering to determine an active suspension system consumption, and a measure of acceleration, stop lights, vehicle speeds, terrain incline and distance to determine a main drive motor consumption and regeneration. In the event of an electric vehicle, for example, the vehicle may want to further control the loads such as the active suspension and main drive motor to ensure that the autonomous vehicle may reach its destination with the amount of energy on board the vehicle. In other electric vehicle embodiments, the active suspension system may run off an intermediate voltage bus on the vehicle such as a 48V bus that communicates with the high voltage system through a DC-DC converter.
  • In another circumstance, the vehicle determines a driving plan for the vehicle and target speeds. It estimates energy usage that each device on the electrical bus 15-300 will use for each location of travel, which may be a function of target speed and other parameters. During execution of the driving plan, the energy storage state of charge may be predictively set in advance of the energy usage event.
  • The above examples are illustrative, but many such conditions may exist where the energy storage is regulated in order to anticipate upcoming conditions.
  • In the event of an active suspension, two major energy consumption factors are the condition of the road and the amount of body roll and heave motion. These factors among others can be used to estimate the energy consumption from an active suspension system.
  • In some embodiments, the energy storage apparatus operates most durably when maintained between a lower threshold voltage and an upper threshold voltage. This may be accomplished by executing regulation of the power converter and regulation of at least a portion of the plurality of connected loads. For example, a controller may reduce energy consumption in a load so that the energy storage does not drop below a lower threshold. In other embodiments this may be accomplished by applying switches such as MOSFET or IGBT transistor based switches to the energy storage apparatus.
  • FIG. 15-4 demonstrates an active suspension control system for a vehicle that mitigates fore/aft and lateral acceleration and deceleration feel by pitching and tilting the vehicle. The vehicle comprises active suspension actuators at each wheel of the vehicle. A self-driving controller creates command signals that accelerate/decelerate the vehicle and create steering events that yield a lateral acceleration.
  • During forward acceleration, the vehicle 15-400 pitches forward (pitch down attitude wherein the front of the vehicle is below the vehicle centerline) by creating an extension force from the rear actuators 15-402 and a compression force from the front actuators 15-404. Force is provided in order to set a compensation attitude 15-406 in pitch that is greater than zero degrees and related to the acceleration of the vehicle. Acceleration of the vehicle creates a longitudinal force 15-408 on the passengers that is equal to their mass multiplied by the vehicle's acceleration. By tilting the vehicle with a compensation attitude 15-406, the longitudinal force from the vehicle acceleration is multiplied by the cosine of the compensation angle 15-406, and a component of gravitational force 15-410 acts to counteract the acceleration force by operating in the opposite direction. This longitudinal force component from gravity on the passengers is equal to their mass multiplied by the acceleration of gravity (9.8 m/s/s) multiplied by the sine of the compensation attitude. To equalize forces so there is no longitudinal net force, the tangent of the compensation attitude must equal the vehicle acceleration divided by gravity. Therefore, a compensation attitude to create equal forces would be the arctangent of the quotient of the vehicle acceleration and (divided by) the acceleration of gravity.
  • In an illustrative example, the zero net longitudinal force compensation attitude during a 0.3 g vehicle acceleration is approximately 17 degrees pitch forward. In real world-application, it is desirable for energy savings and for practical suspension design considerations to create a compensation attitude that is oftentimes less than this net force balance. Therefore, the compensation angle 15-406 may be less than the arctangent of the quotient of vehicle acceleration and the acceleration of gravity.
  • During deceleration, the vehicle 15-412 pitches backward (pitch up attitude wherein the front of the vehicle is above the vehicle centerline). In this instance, force from the actuators operates in a similar but opposite fashion. Compensation attitudes can be found using similar methodologies as during acceleration, but by referencing a compensation attitude angle from the rear of the vehicle instead of the front.
  • During a left turn of the vehicle 15-414, the actuators 15-418 on the inside of the turn radius create a compression force, while the actuators 15-416 on the outside of the turn create an extension force, such that the vehicle leans into the turn. Similarly, this compensation attitude in roll may be greater than zero, but less than or equal to the arctangent of the quotient of lateral acceleration and gravity.
  • During a right turn of the vehicle 15-420, force from the actuators operates in a similar but opposite fashion. Compensation attitudes can be found using similar methodologies as during a left turn, but by referencing a compensation attitude angle from the right side of the vehicle instead of the left for roll angle.
  • During both turn events the roll in attitude comprises of the side of the vehicle on the inside radius of the turn being below the roll centerline as shown in FIG. 15-4. In more aggressive turns, the actuators may become force limited (in saturation), and this performance may not be met.
  • By employing these compensation attitudes in advance of the vehicle response by employing a feed-forward control strategy, a self-driving vehicle may mitigate discomfort associated with autonomous acceleration, deceleration, and steering. Such a feed-forward strategy may be employed by connecting the autonomous controller or driving system with the active suspension such that a compensation attitude is commanded based on an acceleration/steering signal from the controller. A compensation attitude can be calculated as a function of the signal. In some embodiments entry into the compensation attitude is gradual and occurs over an extended period of time that is a function of the feed-forward signal from the self driving controller. Exit from the compensation attitude may also be gradual and occur over time. In some embodiments that active suspension actuators have a maximum force limit which may be a physical limit or a software parameter (including a dynamic software parameter that is updatable in real time), and a target compensation attitude is not fully reached during high acceleration, deceleration, and roll events. This is called a force-limited mode. Since compensation attitude performance may be jarring to some passengers, in some embodiments it may be desirable to turn the feature on and off, or into different modes of operation (for example, that set different levels of compensation attitudes) based on a vehicle operator selected operational mode.
  • In FIG. 15-5 a self-driving vehicle with an integrated active suspension system is shown. The main control system 15-500 comprises controllers for the autonomous driving subsystem, the smart chassis subsystem, and the comfort subsystem. These controllers may be on a single controller or a plurality of controllers distributed about the vehicle. The autonomous driving subsystem is responsible for navigation, route planning, obstacle avoidance, and other driving related tasks. The smart chassis subsystem is an integrated control system that combines control tasks for a number of chassis and propulsion technologies. The comfort subsystem may provide control to a number of comfort systems such as controlling the active suspension system, interior cabin amenities, and may provide settings to the propulsion system to adjust throttle and steering response. The self-driving vehicle may have a number of sensor technologies on-board 15-502 which may be beneficially coupled with other vehicle systems such as an active suspension. These sensors include look ahead sensors (vision, radar, sonar, LIDAR, front wheel movement), mapping (GPS, localized mapping, street maps, topographical maps), vehicle state (speed, transmission state, fuel level, engine status), chassis sensors (ESP status, ABS status, steering/throttle position), and suspension sensors (unsprung and sprung mass acceleration, suspension position, velocity, energy consumed/regenerated). The chassis and propulsion systems 15-504 such as throttle, steering, active suspension, braking, energy management for the vehicle, and other chassis related technologies may be operatively controlled by the main control system blocks. A user interface 15-508 may be used to accept vehicle operator inputs such as destination inputs to compute a route or driving plan such as on an LCD touchscreen. In addition, suspension status may be viewed and algorithm settings may be programmed via the user interface. Finally, the self-driving vehicle may be connected via a network connection 15-506 such as to the internet. This network may connect the vehicle with data from other vehicles, with street mapping data, stored topographical data, local weather information, traffic information, and vehicle operator devices such as smartphones, tablets, etc. Vehicle operator devices may be used to further control the vehicle, such as allowing a destination input via a smartphone. Many of the above systems may be combined together and operatively communicate with one another in order to improve overall system performance. In addition, many of the technologies discussed in this specification may be operatively combined with features and modules shown in FIG. 15-5.
  • FIG. 15-6 demonstrates one embodiment of an active suspension actuator that operates in at least three operational quadrants of a force-velocity plot (with respect to the actuator). A hydraulic actuator 15-600 comprising a piston rod and piston head disposed in a housing, along with a gas filled accumulator (which may be inside the hydraulic actuator housing or in fluid communication externally), is connected via fluid communication channels 15-602 to a hydraulic motor/pump 15-606 (which may be a pump, a motor, or both). The fluid communication may pass through one or more valves 15-604 that are configured either in series with the fluid, in parallel with the pump, some combination of the two, or this may be a straight connection without any valving. In one embodiment this valving may include a fluid-velocity responsive diverter valve that opens a bypass path around the hydraulic motor at a predetermined fluid velocity, while still allowing some fluid to enter the hydraulic motor during the diverted bypass stage.
  • The hydraulic motor/pump is operatively coupled to an electric motor 15-608 such that rotation of the electric motor in a first direction causes fluid to pump into a compression volume of the hydraulic actuator, and rotation of the electric motor in a second direction causes fluid to pump into an extension volume of the hydraulic actuator. The electric motor is electrically connected via at least one wire 15-610 to a controller 15-612 that controls the motor. Motor control may comprise of torque control, velocity control, or some other parameter. The controller is responsive to algorithms operating the active suspension and/or to sensors or commands 15-614. For example, commands for actuator force or position may come from a vehicle system. An example of a suitable sensor is an accelerometer. The system is controlled in an on-demand energy manner such that energy is consumed or regenerated in the motor to rapidly create a force on the actuator.
  • FIG. 15-7 is one embodiment of a topographical map that is specific to using data from the front wheels to provide improved response with the rear wheels of an active suspension. This may be beneficially combined with several technologies discussed in conjunction with sections discussing topographical maps, and shows one potential implementation of such a map. This may also be combined with several other elements in this specification, and is not limited to vehicles that are self-driving (i.e. it applies to human-operated vehicles).
  • In FIG. 15-7, a vehicle state estimator 15-700 determines a vehicle's kinematic state based on a number of sensors such as accelerometers, steering angle, vehicle velocity (wheel speed sensors, GPS, etc.). This functional unit calculates how the vehicle is moving across the terrain, and outputs a change in (x, y, z) coordinates for each time step. These coordinate deltas serve as a relative matrix transformation vector that is used to transform a topographical map, and may further comprise a rotation vector if the vehicle is turning. The topographical map in this embodiment is a road outlook table 15-702 that comprises a two dimensional matrix indexed by x values and y values, and containing z positions (heights) of the road for each relative coordinate. At the zero value of x is the terrain direction below the front axle, while the maximum value of x is the rear axle. The center of y is shown as the center of the car, with positive and negative values stretching to the track width of the vehicle. Therefore, the road outlook table 15-702 comprises a topographical map relative to the car and encompassing the road underneath the vehicle from front axle to rear axle, left side to right side of the vehicle. In other embodiments this road outlook table could be larger. For example, it could extend far in front of the vehicle and be seeded with data using look-ahead sensors, or it could extend past the sides of the vehicle. The road outlook table is fed into a system and vehicle dynamics model 15-704 that calculates a model-based open loop correction signal based on the upcoming z position of the road to each wheel, and creates an actuator control to mitigate the event. Meanwhile, sensors such as the front accelerometers or position sensors (or any sensor that indicates road information) are fed into a road height estimator 15-706, which estimates a z position of the road. For example, the wheel and body response to a certain bump may be measured using sensors and then an estimate determined of road height that caused the bump. In this embodiment where the sensors comprise the front wheels, this data is inserted at x equals zero, however it would be whatever corresponding position for the topographical map at hand. Since sensor data is not all encompassing across the x, y plane, a secondary method may operate to fill blank data slots with estimated road height. A number of methods can be used to accomplish this, but linear or quadratic interpolation between measured data points is one suitable method.
  • Using the methodology of FIG. 15-7, the vehicle can use information from the front wheels in an accurate manner that accounts for vehicle movement including steering and other effects. In addition, it can be robustly integrated with multiple predictive sensors including look-ahead sensors, GPS data, and front wheel sensors. All of these may dynamically update the topographical map, and where there is redundant data a best estimate between the multiple values is used.
  • While the present teachings have been described in conjunction with various embodiments and examples, it is not intended that the present teachings be limited to such embodiments or examples. On the contrary, the present teachings encompass various alternatives, modifications, and equivalents, as will be appreciated by those of skill in the art. Accordingly, the foregoing description and drawings are by way of example only.

Claims (52)

1. An active suspension system, comprising:
a plurality of active suspension actuators capable of operation in at least three operational quadrants;
at least one forward-looking sensor capable of detecting a future road condition;
a location sensor for the vehicle;
a least one relative sensor indicating at least one of relative position and relative movement between the vehicle and the ground;
a sensor fusion system that determines an absolute position of the vehicle by using the information from the location sensor and the at least one relative sensor;
a memory system comprising a topographical map comprising of three-dimensional terrain information; and
an active suspension controller that receives information from the sensor fusion system and memory system and controls the active suspension system as a function of the topographical map.
2. The system of claim 1, wherein the active suspension controller updates the topographical map based on a parameter sensed by at least one of an active suspension actuator and a forward-looking sensor.
3. The system of claim 1, wherein the at least one forward-looking sensor comprises at least one of a vision, LIDAR, radar, sonar, and IR sensor.
4. The system of claim 1, wherein the at least one forward-looking sensor comprises a sensor disposed on the front actuators of an active suspension system.
5. The system of claim 1, wherein the location sensor for the vehicle is a GPS receiver.
6. The system of claim 1, wherein the relative sensor is at least one of an IMU, an accelerometer, a speed sensor, a suspension velocity sensor, and a steering angle sensor.
7. The system of claim 1, wherein the sensor fusion system comprises a Kalman Filter.
8. The system of claim 1, wherein the sensor fusion system is further enhanced with at least one of DGPS and WiFi localization.
9. The system of claim 1, wherein the topographical map is relative to the vehicle, comprising a coordinate system about the moving vehicle and is dynamically updated.
10. The system of claim 1, wherein the topographical map is absolute, comprising a coordinate system related to latitude/longitude coordinates and containing road surface height information.
11. The system of claim 1, wherein only a portion of the topographical map is buffered on the vehicle memory system.
12. The system of claim 1, wherein the topographical map is downloaded to the vehicle via a network connection.
13. The system of claim 1, wherein the topographical map is stored on a server on the Internet and downloaded over a cellular network.
14. The system of claim 1, wherein topographical map information is transmitted from another vehicle.
15. The system of claim 1, wherein the topographical map is retrieved from a past driving event.
16. The system of claim 1, wherein the sensed parameter that updates the topographical map comprises data representing road surface information from the at least one forward-looking sensor.
17. The system of claim 1, wherein the sensed parameter that updates the topographical map comprises data representing road surface information from the plurality of active suspension actuators.
18. The system of claim 1, wherein the sensed parameter that updates the topographical map comprises data representing vertical disturbance of the vehicle.
19. The system of claim 1, wherein the vehicle is one of a human-driven vehicle and a self-driving vehicle.
20. The system of claim 1, wherein controlling the active suspension system as a function of the topographical map comprises:
determining a wheel trajectory across the topographical map; and
setting an actuator force/position in advance of each wheel encountering a road surface event so as to mitigate impact to the vehicle.
21. A method of controlling a self-driving vehicle, comprising:
receiving a driving plan that comprises an anticipated route for the vehicle;
gathering road condition data for a variety of points along the route;
determining a road roughness impact on the vehicle for at least a portion of the gathered points of road condition data; and
adjusting the driving plan to reduce the road roughness impact on the vehicle.
22. The method of claim 21, wherein determining a road roughness impact on the vehicle comprises a measure of vertical acceleration on the chassis of the vehicle.
23. The method of claim 22, wherein road roughness impact comprises a bandpass filtered RMS value of acceleration.
24. The method of claim 22, wherein road roughness impact comprises a comfort heuristic that is a frequency-weighted function of chassis acceleration.
25. The method of claim 21, wherein road condition data is gathered by at least one of measured vertical acceleration, forward-looking vision system, a topographical map, GPS-indexed data, data from other vehicles, and a measure of at least one state variable from an electronic suspension system.
26. The method of claim 21, wherein road condition data is stored for future use.
27. The method of claim 21, wherein adjusting the driving plan causes the vehicle to choose the anticipated route course in order to avoid roads based on their associated road condition data.
28. The method of claim 21, wherein adjusting the driving plan comprises choosing vehicle target speeds for each section of travel based on the roads' associated road condition data.
29. The method of claim 21, wherein adjusting the driving plan occurs in real-time in response to road condition data that is gathered in real-time.
30. The method of claim 21, wherein road condition data is gathered from a vehicle suspension system that controls vehicle suspension operation and further comprises at least one sensor.
31. The method of claim 30, wherein the vehicle suspension is a distributed system that comprises a separate, networked controller for each wheel in the vehicle.
32. The method of claim 21, wherein adjusting the driving plan causes the vehicle to change course temporarily in real-time in response to road condition data that is gathered in real-time from a vehicle suspension system that controls vehicle suspension operation.
33. The method of claim 21, wherein adjusting the driving plan causes the vehicle to change speed in real-time in response to road condition data that is gathered in real-time.
34. An intelligent energy storage system for a self-driving vehicle, comprising:
an electrical bus capable of delivering power to a plurality of connected loads;
an energy storage apparatus coupled to the electrical bus, wherein the energy storage is characterized by a state of charge, and wherein the energy storage can deliver energy to the plurality of connected loads;
a power converter configured to provide power to the energy storage apparatus to set a state of charge;
an electronic controller for a self-driving vehicle that calculates a driving plan comprising an anticipated route for the vehicle; and
an algorithm that calculates energy usage for a variety of points along the route;
wherein the state of charge of the energy storage apparatus is dynamically and predictively set during execution of the driving plan as a function of calculated energy usage for points along the route.
35. The system of claim 34, wherein the energy storage apparatus is one of a battery and a capacitor.
36. The system of claim 34, wherein a state of charge is calculated using at least one of measured voltage and coulomb counting.
37. The system of claim 34, wherein at least one of the plurality of connected loads can regenerate energy into the energy storage apparatus, and calculating energy usage further comprises both consumption and regeneration.
38. The system of claim 34, wherein the self-driving vehicle propulsion system is at least one of hybrid and electric, and at least one connected load is a drive motor for the vehicle.
39. The system of claim 34, wherein an algorithm that calculates energy usage comprises a system to estimate energy usage in the main propulsion system based on road conditions along the anticipated route of the vehicle.
40. The system of claim 39, wherein road conditions comprises a combination of anticipated vehicle speed, acceleration, road incline, traffic lights on route, and previous driving information.
41. The system of claim 34, wherein at least one of the plurality of connected loads comprises an active suspension system.
42. The system of claim 34, wherein an algorithm that calculates energy usage comprises a system to estimate energy usage in the active suspension system based on road conditions along the anticipated route of the vehicle.
43. The system of claim 42, wherein road conditions comprises a combination of road surface condition and anticipated steering control.
44. The system of claim 34, wherein the algorithm that calculates energy usage comprises a combination of a plurality of sub-algorithms, each associated with one of the plurality of loads.
45. The system of claim 34, wherein at least one of the plurality of loads is further controlled to ensure the state of charge of the energy storage apparatus does not fall below a threshold.
46. The system of claim 45, wherein controlling the load comprises reducing energy consumption in the load.
47. An active suspension system for a self-driving vehicle, comprising:
a plurality of active suspension actuators, wherein an actuator is disposed at each wheel of the vehicle, and an actuator command creates a force between the vehicle chassis and the wheel;
a self-driving controller that commands steering, acceleration, and deceleration of the vehicle;
an active suspension controller in communication with the self-driving controller such that the active suspension controller receives feed-forward steering, acceleration, and deceleration signals from the self-driving controller; and
an algorithm to mitigate acceleration-related passenger disturbance, wherein a compensation attitude is set using the active suspension actuators in response to the feed-forward steering, acceleration, and deceleration signals;
the algorithm comprising commanding a pitch-up attitude during deceleration, a pitch-down attitude during acceleration, and a roll-in attitude during steering such that the side of the vehicle on the inside radius of the turn is lower than the outer side.
48. The system of claim 47, wherein setting of the compensation attitude is further a function of a driver-selected operational mode.
49. The system of claim 47, wherein a pitch up attitude comprises the front of the vehicle above the vehicle centerline, a pitch-down attitude comprises the front of the vehicle below the vehicle centerline, and a roll-in attitude comprises the side of the vehicle on the inside radius of the turn below the roll centerline.
50. The system of claim 47, wherein in a force-limited mode, the active suspension actuators limit force output such that during high acceleration, deceleration, and roll events the compensation attitude is not fully reached.
51. The system of claim 50, wherein entry into the compensation attitude occurs over a period of time that is a function of the feed-forward signal from the self-driving controller.
52. The system of claim 47, wherein the compensation attitude is proportional to the feed-forward signal from the self-driving controller
US14/242,691 2013-03-15 2014-04-01 Self-driving vehicle with integrated active suspension Abandoned US20140297116A1 (en)

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US14/242,691 US20140297116A1 (en) 2013-03-15 2014-04-01 Self-driving vehicle with integrated active suspension
US15/832,517 US10828953B2 (en) 2013-03-15 2017-12-05 Self-driving vehicle with integrated active suspension

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US201361789600P 2013-03-15 2013-03-15
US201361815251P 2013-04-23 2013-04-23
US201361865970P 2013-08-14 2013-08-14
US201361913644P 2013-12-09 2013-12-09
PCT/US2014/029654 WO2014145018A2 (en) 2013-03-15 2014-03-14 Active vehicle suspension improvements
US14/242,691 US20140297116A1 (en) 2013-03-15 2014-04-01 Self-driving vehicle with integrated active suspension

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US14/242,612 Active 2035-11-17 US10160276B2 (en) 2013-03-15 2014-04-01 Contactless sensing of a fluid-immersed electric motor
US14/242,658 Active US9707814B2 (en) 2013-03-15 2014-04-01 Active stabilization system for truck cabins
US14/242,636 Abandoned US20140294601A1 (en) 2013-03-15 2014-04-01 Active adaptive hydraulic ripple cancellation algorithm and system
US14/242,705 Active 2034-04-26 US9694639B2 (en) 2013-03-15 2014-04-01 Distributed active suspension control system
US15/832,517 Active 2034-11-10 US10828953B2 (en) 2013-03-15 2017-12-05 Self-driving vehicle with integrated active suspension

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US14/242,658 Active US9707814B2 (en) 2013-03-15 2014-04-01 Active stabilization system for truck cabins
US14/242,636 Abandoned US20140294601A1 (en) 2013-03-15 2014-04-01 Active adaptive hydraulic ripple cancellation algorithm and system
US14/242,705 Active 2034-04-26 US9694639B2 (en) 2013-03-15 2014-04-01 Distributed active suspension control system
US15/832,517 Active 2034-11-10 US10828953B2 (en) 2013-03-15 2017-12-05 Self-driving vehicle with integrated active suspension

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Cited By (115)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140214283A1 (en) * 2011-10-04 2014-07-31 Parker-Hannifin Corporation Method and System for Controlling Electric Actuators
US9035477B2 (en) 2010-06-16 2015-05-19 Levant Power Corporation Integrated energy generating damper
US9174508B2 (en) 2013-03-15 2015-11-03 Levant Power Corporation Active vehicle suspension
US20150339921A1 (en) * 2012-11-13 2015-11-26 Audi Ag Method for making available route information by means of at least one motor vehicle
US20160031285A1 (en) * 2013-03-15 2016-02-04 Levant Power Corporation Multi-path fluid diverter valve
US9260011B2 (en) 2008-04-17 2016-02-16 Levant Power Corporation Hydraulic energy transfer
US20160159360A1 (en) * 2014-12-09 2016-06-09 Ford Global Technologies, Llc Autonomous vehicle cornering maneuver
US9481367B1 (en) 2015-10-14 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and animals
US9481366B1 (en) 2015-08-19 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and animals
US9483948B1 (en) 2015-08-07 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and pedestrians
US20160325595A1 (en) * 2015-05-08 2016-11-10 Man Truck & Bus Ag Method For Controlling The Damping Force Of Adjustable Dampers In Motor Vehicles, Particularly In Commercial Vehicles
US9513632B1 (en) 2015-09-16 2016-12-06 International Business Machines Corporation Driving mode alerts from self-driving vehicles
US9566986B1 (en) 2015-09-25 2017-02-14 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US20170052261A1 (en) * 2015-08-20 2017-02-23 Trimble Navigation Limited Cordless inertial vehicle navigation with elevation data input
US20170061669A1 (en) * 2015-09-01 2017-03-02 Mitsubishi Jidosha Kogyo Kabushiki Kaisha Vehicular information processing apparatus
US9695900B2 (en) 2009-10-06 2017-07-04 Tenneco Automotive Operating Company Inc. Damper with digital valve
US9694639B2 (en) 2013-03-15 2017-07-04 ClearMotion, Inc. Distributed active suspension control system
US9702349B2 (en) 2013-03-15 2017-07-11 ClearMotion, Inc. Active vehicle suspension system
US9702424B2 (en) 2014-10-06 2017-07-11 ClearMotion, Inc. Hydraulic damper, hydraulic bump-stop and diverter valve
US20170210297A1 (en) * 2016-01-14 2017-07-27 Faraday&Future Inc. Modular mirror assembly
US9718471B2 (en) 2015-08-18 2017-08-01 International Business Machines Corporation Automated spatial separation of self-driving vehicles from manually operated vehicles
US9721397B2 (en) 2015-08-11 2017-08-01 International Business Machines Corporation Automatic toll booth interaction with self-driving vehicles
US9723473B2 (en) * 2015-10-14 2017-08-01 Toyota Jidosha Kabushiki Kaisha Millimeter wave communication system
US9733643B2 (en) 2013-12-20 2017-08-15 Agjunction Llc Hydraulic interrupter safety system and method
US9731726B2 (en) 2015-09-02 2017-08-15 International Business Machines Corporation Redirecting self-driving vehicles to a product provider based on physiological states of occupants of the self-driving vehicles
US9740205B2 (en) 2015-12-08 2017-08-22 Uber Technologies, Inc. Autonomous vehicle communication configuration system
US9751532B2 (en) 2015-10-27 2017-09-05 International Business Machines Corporation Controlling spacing of self-driving vehicles based on social network relationships
US20170259753A1 (en) * 2016-03-14 2017-09-14 Uber Technologies, Inc. Sidepod stereo camera system for an autonomous vehicle
US20170267049A1 (en) * 2014-08-19 2017-09-21 Kyb Corporation Suspension Control Apparatus, Suspension Control Method, and Program
US9785145B2 (en) 2015-08-07 2017-10-10 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US20170294120A1 (en) * 2014-11-17 2017-10-12 Hitachi Automotive Systems Ltd. Automatic driving system
US9791861B2 (en) 2015-11-12 2017-10-17 International Business Machines Corporation Autonomously servicing self-driving vehicles
US9802456B2 (en) 2013-02-28 2017-10-31 Tenneco Automotive Operating Company Inc. Damper with integrated electronics
US9836973B2 (en) 2016-01-27 2017-12-05 International Business Machines Corporation Selectively controlling a self-driving vehicle's access to a roadway
US9834224B2 (en) 2015-10-15 2017-12-05 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9849883B2 (en) 2016-05-04 2017-12-26 Ford Global Technologies, Llc Off-road autonomous driving
US9855814B2 (en) 2013-04-23 2018-01-02 ClearMotion, Inc. Active suspension with structural actuator
US9869560B2 (en) 2015-07-31 2018-01-16 International Business Machines Corporation Self-driving vehicle's response to a proximate emergency vehicle
US9879746B2 (en) 2013-03-15 2018-01-30 Tenneco Automotive Operating Company Inc. Rod guide system and method with multiple solenoid valve cartridges and multiple pressure regulated valve assemblies
US9879748B2 (en) 2013-03-15 2018-01-30 Tenneco Automotive Operating Company Inc. Two position valve with face seal and pressure relief port
US20180029651A1 (en) * 2016-07-26 2018-02-01 Man Truck & Bus Ag Method and device for performing open-loop control of a driver's cab mount
US9884533B2 (en) 2013-02-28 2018-02-06 Tenneco Automotive Operating Company Inc. Autonomous control damper
US9896100B2 (en) 2015-08-24 2018-02-20 International Business Machines Corporation Automated spatial separation of self-driving vehicles from other vehicles based on occupant preferences
US9902311B2 (en) * 2016-02-22 2018-02-27 Uber Technologies, Inc. Lighting device for a vehicle
DE102016116856A1 (en) 2016-09-08 2018-03-08 Knorr-Bremse Systeme für Nutzfahrzeuge GmbH System and method for adjusting a height of at least a part of a commercial vehicle
US9925842B2 (en) 2013-02-28 2018-03-27 Tenneco Automotive Operating Company Inc. Valve switching controls for adjustable damper
WO2018057658A1 (en) * 2016-09-20 2018-03-29 Apple Inc. Motion minimization systems and methods
WO2018063426A1 (en) * 2016-09-27 2018-04-05 Baidu Usa Llc A vehicle position point forwarding method for autonomous vehicles
US9937765B2 (en) * 2015-04-28 2018-04-10 Ram Sivaraman Method of adapting an automobile suspension in real-time
US9944291B2 (en) 2015-10-27 2018-04-17 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9969326B2 (en) 2016-02-22 2018-05-15 Uber Technologies, Inc. Intention signaling for an autonomous vehicle
US20180163647A1 (en) * 2015-12-08 2018-06-14 Ford Global Technologies, Llc Fuel vapor flow based on road conditions
US20180188743A1 (en) * 2016-12-30 2018-07-05 DeepMap Inc. Route generation using high definition maps for autonomous vehicles
US10021614B2 (en) 2015-12-08 2018-07-10 Uber Technologies, Inc. Optimizing communication for autonomous vehicles
US10036642B2 (en) 2015-12-08 2018-07-31 Uber Technologies, Inc. Automated vehicle communications system
US20180215373A1 (en) * 2017-01-27 2018-08-02 Ford Global Technologies, Llc Semi-stationary surface
US10050760B2 (en) 2015-12-08 2018-08-14 Uber Technologies, Inc. Backend communications system for a fleet of autonomous vehicles
US10061326B2 (en) 2015-12-09 2018-08-28 International Business Machines Corporation Mishap amelioration based on second-order sensing by a self-driving vehicle
US10093322B2 (en) 2016-09-15 2018-10-09 International Business Machines Corporation Automatically providing explanations for actions taken by a self-driving vehicle
US10131446B1 (en) * 2015-07-16 2018-11-20 Near Earth Autonomy, Inc. Addressing multiple time around (MTA) ambiguities, particularly for lidar systems, and particularly for autonomous aircraft
US20180334162A1 (en) * 2017-05-22 2018-11-22 Ford Global Technologies, Llc Torque converter control for a variable displacement engine
US10152060B2 (en) 2017-03-08 2018-12-11 International Business Machines Corporation Protecting contents of a smart vault being transported by a self-driving vehicle
US10176525B2 (en) 2015-11-09 2019-01-08 International Business Machines Corporation Dynamically adjusting insurance policy parameters for a self-driving vehicle
US20190023095A1 (en) * 2015-12-18 2019-01-24 Jaguar Land Rover Limited Control unit for an active suspension system
US20190033876A1 (en) * 2016-01-29 2019-01-31 Nissan Motor Co., Ltd. Vehicle Travel Control Method and Vehicle Travel Control Device
US10202126B2 (en) 2017-03-07 2019-02-12 Uber Technologies, Inc. Teleassistance data encoding for self-driving vehicles
US10235817B2 (en) 2015-09-01 2019-03-19 Ford Global Technologies, Llc Motion compensation for on-board vehicle sensors
US10239529B2 (en) 2016-03-01 2019-03-26 Ford Global Technologies, Llc Autonomous vehicle operation based on interactive model predictive control
US10243604B2 (en) 2015-12-08 2019-03-26 Uber Technologies, Inc. Autonomous vehicle mesh networking configuration
US10259452B2 (en) 2017-01-04 2019-04-16 International Business Machines Corporation Self-driving vehicle collision management system
US10293818B2 (en) 2017-03-07 2019-05-21 Uber Technologies, Inc. Teleassistance data prioritization for self-driving vehicles
US10316492B2 (en) * 2014-07-31 2019-06-11 Cnh Industrial America Llc Active force/vibration feedback control method and apparatus for a movable machine
US10363893B2 (en) 2017-01-05 2019-07-30 International Business Machines Corporation Self-driving vehicle contextual lock control system
US10377371B2 (en) 2014-04-02 2019-08-13 ClearMotion, Inc. Active safety suspension system
US10412368B2 (en) 2013-03-15 2019-09-10 Uber Technologies, Inc. Methods, systems, and apparatus for multi-sensory stereo vision for robotics
WO2019204495A1 (en) * 2018-04-18 2019-10-24 Rivian Ip Holdings, Llc Methods, systems, and media for determining characteristics of roads
US10479160B2 (en) 2017-06-06 2019-11-19 Tenneco Automotive Operating Company Inc. Damper with printed circuit board carrier
US10493622B2 (en) 2017-07-14 2019-12-03 Uatc, Llc Systems and methods for communicating future vehicle actions to be performed by an autonomous vehicle
CN110646226A (en) * 2018-06-27 2020-01-03 通用汽车环球科技运作有限责任公司 Test method and metric for assessing quality of road feedback to driver in steer-by-wire system
US10529147B2 (en) 2017-01-05 2020-01-07 International Business Machines Corporation Self-driving vehicle road safety flare deploying system
US10535265B2 (en) * 2016-11-30 2020-01-14 Hyundai Motor Company Apparatus and method for recognizing position of vehicle
US20200039316A1 (en) * 2017-04-05 2020-02-06 ClearMotion, Inc. Active force cancellation at structural interfaces
US10588233B2 (en) 2017-06-06 2020-03-10 Tenneco Automotive Operating Company Inc. Damper with printed circuit board carrier
US10607293B2 (en) 2015-10-30 2020-03-31 International Business Machines Corporation Automated insurance toggling for self-driving vehicles
EP3640110A1 (en) * 2018-10-17 2020-04-22 Aptiv Technologies Limited Vehicle system and method for steep slope pick-up and drop-off site avoidance
US10643256B2 (en) 2016-09-16 2020-05-05 International Business Machines Corporation Configuring a self-driving vehicle for charitable donations pickup and delivery
US10685391B2 (en) 2016-05-24 2020-06-16 International Business Machines Corporation Directing movement of a self-driving vehicle based on sales activity
US10692377B1 (en) * 2017-10-06 2020-06-23 Zoox, Inc. Enhanced travel modes for vehicles
US20200200877A1 (en) * 2018-12-21 2020-06-25 Infineon Technologies Ag Real time gating and signal routing in laser and detector arrays for lidar application
US10737544B2 (en) 2017-07-24 2020-08-11 Ford Global Technologies, Llc Systems and methods to control a suspension of a vehicle
US10782701B2 (en) 2015-07-30 2020-09-22 Samsung Electronics Co., Ltd. Autonomous vehicle and method of controlling the same
US10800403B2 (en) * 2018-05-14 2020-10-13 GM Global Technology Operations LLC Autonomous ride dynamics comfort controller
US10867139B2 (en) 2014-11-12 2020-12-15 Joseph E. Kovarik Method and system for autonomous vehicles
US20200408533A1 (en) * 2019-06-28 2020-12-31 DeepMap Inc. Deep learning-based detection of ground features using a high definition map
US10901432B2 (en) * 2017-09-13 2021-01-26 ClearMotion, Inc. Road surface-based vehicle control
US10962378B2 (en) 2015-07-30 2021-03-30 Samsung Electronics Co., Ltd. Autonomous vehicle and method of controlling the autonomous vehicle
US10973041B2 (en) * 2015-09-15 2021-04-06 Lg Electronics Inc. Resource selection method for V2X operation of terminal in wireless communication system, and terminal using method
US10967862B2 (en) 2017-11-07 2021-04-06 Uatc, Llc Road anomaly detection for autonomous vehicle
US10974563B2 (en) * 2017-12-20 2021-04-13 Audi Ag Control of a suspension component of a vehicle
US11001267B2 (en) 2019-08-01 2021-05-11 Lear Corporation Method and system for proactively adjusting vehicle occupant biometric monitor in view of upcoming road conditions
US11001121B2 (en) * 2017-01-18 2021-05-11 Ntn Corporation Vehicular suspension device
US11009875B2 (en) 2017-03-09 2021-05-18 Waymo Llc Preparing autonomous vehicles for turns
US20210197838A1 (en) * 2017-11-03 2021-07-01 Zf Friedrichshafen Ag Method for adapting the comfort of a vehicle, regulating device and vehicle
WO2021138700A1 (en) * 2020-01-05 2021-07-08 Eva, Llc Automated steering control mechanism and system for wheeled vehicles
US20220161624A1 (en) * 2019-03-27 2022-05-26 Hitachi Astemo, Ltd. Suspension control apparatus
US20220242417A1 (en) * 2019-08-27 2022-08-04 Bayerische Motoren Werke Aktiengesellschaft Operational Assistance Method for a Vehicle, Control Unit, and Vehicle
US11428536B2 (en) * 2018-12-19 2022-08-30 Nvidia Corporation Navigable boundary generation for autonomous vehicles
US11505023B2 (en) * 2019-12-13 2022-11-22 Hyundai Motor Company Method and apparatus for controlling electronic control suspension
US11529953B2 (en) 2020-04-30 2022-12-20 Ford Global Technologies, Llc Adjust operational parameters based on identified roadway irregularities
US11535159B2 (en) 2018-07-18 2022-12-27 Faraday & Future Inc. System and methods for mounting a peripheral vehicular device
US11541882B2 (en) * 2019-09-24 2023-01-03 Volvo Car Corporation Low-impact collision detection
US11830302B2 (en) 2020-03-24 2023-11-28 Uatc, Llc Computer system for utilizing ultrasonic signals to implement operations for autonomous vehicles
KR102616457B1 (en) * 2023-06-16 2023-12-21 에이디어스 주식회사 Air Suspension Operation Planning Generation Device for Autonomous Vehicles
US11859571B2 (en) 2021-07-21 2024-01-02 Ford Global Technologies, Llc Methods for a road surface metric
US11966808B2 (en) 2023-01-23 2024-04-23 Joseph E. Kovarik Method for charging an electric vehicle

Families Citing this family (144)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140265560A1 (en) * 2013-03-15 2014-09-18 Levant Power Corporation System and method for using voltage bus levels to signal system conditions
US10465925B2 (en) * 2013-12-17 2019-11-05 Belimo Holding Ag Systems and methods for fault detection using smart valves
DE102015205369B4 (en) * 2014-04-04 2019-08-22 Ford Global Technologies, Llc Method for operating a suspension system
US11635075B1 (en) 2014-06-25 2023-04-25 ClearMotion, Inc. Gerotor pump with bearing
US10851816B1 (en) 2014-08-19 2020-12-01 ClearMotion, Inc. Apparatus and method for active vehicle suspension
DE102014219977A1 (en) * 2014-10-01 2016-04-07 Bayerische Motoren Werke Aktiengesellschaft Method and system for controlling an actuator of an active damper system
US9440508B2 (en) * 2014-11-25 2016-09-13 Seth M. LACHICA Active vehicle suspension system and method for managing drive energy
US10308352B2 (en) * 2014-12-12 2019-06-04 Borealis Technical Limited Monitoring system for aircraft drive wheel system
WO2016118887A1 (en) 2015-01-23 2016-07-28 Levant Power Corporation Method and apparatus for controlling an actuator
DE102015201411A1 (en) * 2015-01-28 2016-07-28 Robert Bosch Gmbh Motor-pump unit for a brake system
DE102015101248A1 (en) * 2015-01-28 2016-07-28 Fraba B.V. Magnet-based rotation angle measuring system
HUE055736T2 (en) * 2015-02-06 2021-12-28 Bourns Inc Vehicle chassis level sensor
CA2976472C (en) 2015-02-13 2021-05-18 Fluid Handling Llc No flow detection means for sensorless pumping control applications
KR20160117894A (en) * 2015-04-01 2016-10-11 현대자동차주식회사 Device and method for controlling air suspension system
US9505404B2 (en) * 2015-04-10 2016-11-29 Jaguar Land Rover Limited Collision avoidance system
DE102015208787B4 (en) * 2015-05-12 2018-10-04 Zf Friedrichshafen Ag Adjustable spring carrier
KR102373365B1 (en) * 2015-05-29 2022-03-11 주식회사 만도 Electronic control suspension apparatus having multiple stage switch and method for controlling damping force thereof
US9868332B2 (en) 2015-06-03 2018-01-16 ClearMotion, Inc. Methods and systems for controlling vehicle body motion and occupant experience
DE102015011517B3 (en) * 2015-09-03 2016-09-08 Audi Ag Method for determining a current level position of a vehicle
DE202015105246U1 (en) * 2015-10-05 2017-01-09 Ebm-Papst St. Georgen Gmbh & Co. Kg Electric motor with control electronics
US10030961B2 (en) 2015-11-27 2018-07-24 General Electric Company Gap measuring device
US9681568B1 (en) 2015-12-02 2017-06-13 Ge Energy Power Conversion Technology Ltd Compact stacked power modules for minimizing commutating inductance and methods for making the same
DE102015016555B4 (en) 2015-12-18 2020-06-04 Audi Ag Method for operating a damper of a motor vehicle
US10906371B2 (en) 2015-12-24 2021-02-02 ClearMotion, Inc. Integrated multiple actuator electro-hydraulic units
LU92990B1 (en) 2016-03-09 2017-09-19 Ovalo Gmbh Actuator system for a motor vehicle
US10389202B2 (en) * 2016-03-22 2019-08-20 American Precision Industries, Inc. Contaminant-resistant motors for surgical instruments
US10987617B2 (en) 2016-04-05 2021-04-27 Hamilton Sundstrand Corporation Pressure detection system immune to pressure ripple effects
EP3445978B1 (en) 2016-04-19 2021-03-10 Clearmotion, Inc. Active hydraulec ripple cancellation methods and systems
WO2017184950A1 (en) 2016-04-22 2017-10-26 ClearMotion, Inc. Method and apparatus for on-center steering and a fast response vehicle
DE102016207659A1 (en) * 2016-05-03 2017-11-09 Robert Bosch Gmbh Actuator device for a vehicle, brake system
EP3464982B1 (en) 2016-06-02 2022-11-02 Clearmotion, Inc. Hydraulic apparatus
DE102016225253A1 (en) * 2016-12-16 2018-06-21 Robert Bosch Gmbh Method for detecting the rack position in a steering system with electric servomotor
US10906545B2 (en) * 2016-12-22 2021-02-02 Blackberry Limited Adjusting mechanical elements of cargo transportation units
CN110168879B (en) * 2017-01-13 2021-08-10 日本电产株式会社 Sensor magnet assembly and motor
US10480552B2 (en) 2017-01-27 2019-11-19 ClearMotion, Inc. Accumulator with secondary gas chamber
EP3580075A4 (en) 2017-02-12 2021-01-20 Clearmotion, Inc. Hydraulic actuator with a frequency dependent relative pressure ratio
US10465612B2 (en) 2017-04-03 2019-11-05 Hamilton Sundstrand Corporation Aircraft fluid control system having a pressure sensor
CA3058715C (en) 2017-04-06 2022-07-19 Kongsberg Inc. Power steering system and a method of operating same
US11491841B2 (en) * 2017-05-05 2022-11-08 Fox Factory, Inc. System for minimizing data transmission latency between a sensor and a suspension controller of a vehicle
WO2019006361A1 (en) * 2017-06-30 2019-01-03 Hyperloop Technologies, Inc. Active control system
IT201700101028A1 (en) * 2017-09-08 2019-03-08 Magneti Marelli Spa BIDIRECTIONAL ENERGY CONVERSION SYSTEM OF DC-DC TYPE OPERATING BETWEEN A LOW VOLTAGE SYSTEM AND A HIGH VOLTAGE SYSTEM OF A VEHICLE INCLUDING A STAGE OF ENERGY RECOVERY AND ITS PROCEDURE
IT201700101020A1 (en) * 2017-09-08 2019-03-08 Magneti Marelli Spa CONVERSION SYSTEM OF DC-DC TYPE ENERGY OPERATING BETWEEN A LOW VOLTAGE SYSTEM AND A HIGH VOLTAGE SYSTEM OF A VEHICLE INCLUDING AN ENERGY RECOVERY STAGE AND ITS PROCEDURE
RU175985U1 (en) * 2017-09-27 2017-12-26 Акционерное общество "Электромашиностроительный завод "ЛЕПСЕ" CONTACTLESS ELECTRIC MACHINE
US10933710B2 (en) 2017-09-29 2021-03-02 Fox Factory, Inc. Modular electronic damping control
DE102017218648A1 (en) * 2017-10-19 2019-04-25 Robert Bosch Gmbh Drive unit, in particular hydraulic unit of an electronically slip-controllable vehicle brake system
US10802932B2 (en) 2017-12-04 2020-10-13 Nxp Usa, Inc. Data processing system having lockstep operation
US10493990B2 (en) * 2017-12-15 2019-12-03 Tenneco Automotive Operating Company Inc. Systems and methods for ride control blending in electric vehicles
GB2571100A (en) 2018-02-15 2019-08-21 Airbus Operations Ltd Controller for an aircraft braking system
WO2019168858A2 (en) 2018-02-27 2019-09-06 ClearMotion, Inc. Through tube active suspension actuator
US10757340B2 (en) 2018-03-09 2020-08-25 Pony Ai Inc. Adaptive filter system for self-driving vehicle
GB201803947D0 (en) * 2018-03-12 2018-04-25 Evectek Ltd Electric vehicle with an electro-hydraulic propulsion system
CN108832760B (en) * 2018-07-09 2024-01-23 天津市拓达车辆配件有限公司 Fine-tuning damping equipment for brushless direct-current motor
US10907631B2 (en) * 2018-08-01 2021-02-02 Rolls-Royce Corporation Pump ripple pressure monitoring for incompressible fluid systems
EP3626489A1 (en) 2018-09-19 2020-03-25 Thermo King Corporation Methods and systems for energy management of a transport climate control system
EP3626490A1 (en) 2018-09-19 2020-03-25 Thermo King Corporation Methods and systems for power and load management of a transport climate control system
US11034213B2 (en) 2018-09-29 2021-06-15 Thermo King Corporation Methods and systems for monitoring and displaying energy use and energy cost of a transport vehicle climate control system or a fleet of transport vehicle climate control systems
US11273684B2 (en) 2018-09-29 2022-03-15 Thermo King Corporation Methods and systems for autonomous climate control optimization of a transport vehicle
US11440366B1 (en) 2018-10-03 2022-09-13 ClearMotion, Inc. Frequency dependent pressure and/or flow fluctuation mitigation in hydraulic systems
US11186273B2 (en) * 2018-10-30 2021-11-30 Toyota Motor North America, Inc. Vehicle data processing systems and methods using one or more local processors
US11059352B2 (en) 2018-10-31 2021-07-13 Thermo King Corporation Methods and systems for augmenting a vehicle powered transport climate control system
US10926610B2 (en) 2018-10-31 2021-02-23 Thermo King Corporation Methods and systems for controlling a mild hybrid system that powers a transport climate control system
US10875497B2 (en) 2018-10-31 2020-12-29 Thermo King Corporation Drive off protection system and method for preventing drive off
US11022451B2 (en) 2018-11-01 2021-06-01 Thermo King Corporation Methods and systems for generation and utilization of supplemental stored energy for use in transport climate control
US11536268B2 (en) * 2018-11-09 2022-12-27 Kyb Corporation Electric pump
US10432127B1 (en) 2018-11-15 2019-10-01 Goodrich Corporation Method of dissipating regenerative energy in cargo handling systems
MX2021006351A (en) * 2018-11-29 2021-10-13 Electrans Tech Ltd Fuel efficiency optimization apparatus and method for hybrid tractor trailer vehicles.
US11554638B2 (en) 2018-12-28 2023-01-17 Thermo King Llc Methods and systems for preserving autonomous operation of a transport climate control system
US11072321B2 (en) 2018-12-31 2021-07-27 Thermo King Corporation Systems and methods for smart load shedding of a transport vehicle while in transit
US11421656B2 (en) * 2019-01-03 2022-08-23 Lucomm Technologies, Inc. Generative system
US11635734B2 (en) * 2019-01-10 2023-04-25 Dalian University Of Technology Interval error observer-based aircraft engine active fault tolerant control method
FR3092010B1 (en) * 2019-01-25 2021-01-22 Zodiac Fluid Equipment Magnetic head for magnetic detector of metal particles and magnetic detector provided with such a head.
US11084349B2 (en) 2019-01-31 2021-08-10 Tenneco Automotive Operating Company Inc. Leaf spring and actuator control systems and methods
US11285844B2 (en) 2019-01-31 2022-03-29 Toyota Motor Engineering & Manufacturing North America, Inc. Vehicle seat with morphing portions
US11370330B2 (en) * 2019-03-22 2022-06-28 Toyota Motor Engineering & Manufacturing North America, Inc. Vehicle seat with morphing portions
FI129920B (en) * 2019-03-25 2022-10-31 Eee Innovations Oy Vehicle positioning
FI129942B (en) * 2019-03-25 2022-11-15 Eee Innovations Oy Enhancement of map data
US11752901B2 (en) 2019-03-28 2023-09-12 Toyota Motor Engineering & Manufacturing North America, Inc. Vehicle seat with tilting seat portion
AU2020202306A1 (en) * 2019-04-02 2020-10-22 The Raymond Corporation Systems and methods for an arbitration controller to arbitrate multiple automation requests on a material handling device
US11560185B2 (en) * 2019-04-12 2023-01-24 Honda Motor Co., Ltd. System and method for controlling deployment of a vehicle air dam
US11286925B2 (en) * 2019-04-23 2022-03-29 Peopleflo Manufacturing, Inc. Electronic apparatus and method for optimizing the use of motor-driven equipment in a control loop system
CN110138246B (en) * 2019-05-30 2020-11-13 东北电力大学 Impedance remodeling method based on three-level Dual-Buck circuit
DE102019116086A1 (en) * 2019-06-13 2020-12-17 WABCO Global GmbH Device and method for braking a vehicle with a front load-bearing device
DE102019118384A1 (en) * 2019-07-08 2021-01-14 Rapa Automotive Gmbh & Co. Kg MPE AXLE SET WITH A COMMON ECU
US20210031760A1 (en) * 2019-07-31 2021-02-04 Nissan North America, Inc. Contingency Planning and Safety Assurance
US11458802B2 (en) 2019-09-09 2022-10-04 Thermo King Corporation Optimized power management for a transport climate control energy source
US11203262B2 (en) 2019-09-09 2021-12-21 Thermo King Corporation Transport climate control system with an accessory power distribution unit for managing transport climate control loads
US10985511B2 (en) 2019-09-09 2021-04-20 Thermo King Corporation Optimized power cord for transferring power to a transport climate control system
EP3790157A1 (en) 2019-09-09 2021-03-10 Thermo King Corporation Optimized power distribution to transport climate control systems amongst one or more electric supply equipment stations
US11376922B2 (en) 2019-09-09 2022-07-05 Thermo King Corporation Transport climate control system with a self-configuring matrix power converter
EP3789221A1 (en) 2019-09-09 2021-03-10 Thermo King Corporation Prioritized power delivery for facilitating transport climate control
US11420495B2 (en) 2019-09-09 2022-08-23 Thermo King Corporation Interface system for connecting a vehicle and a transport climate control system
US11214118B2 (en) 2019-09-09 2022-01-04 Thermo King Corporation Demand-side power distribution management for a plurality of transport climate control systems
US11135894B2 (en) 2019-09-09 2021-10-05 Thermo King Corporation System and method for managing power and efficiently sourcing a variable voltage for a transport climate control system
US20210107650A1 (en) * 2019-10-15 2021-04-15 Mike Elias Bandak Aerial firefighting system
US11619560B2 (en) 2019-10-18 2023-04-04 Hamilton Sundstrand Corporation Pressure ripple mitigation in pressure sensors
TWI716175B (en) * 2019-10-31 2021-01-11 東元電機股份有限公司 Current response compensating system and method thereof
CN114466764A (en) * 2019-10-31 2022-05-10 康明斯公司 Method and system for controlling pole switches in an electric motor
US11305602B2 (en) * 2019-11-04 2022-04-19 GM Global Technology Operations LLC Vehicle detection and isolation system for detecting spring and stabilizing bar associated degradation and failures
US11207937B2 (en) 2019-11-20 2021-12-28 DRiV Automotive Inc. Suspension system for a vehicle
CN110962519B (en) * 2019-11-25 2022-11-25 福建省汽车工业集团云度新能源汽车股份有限公司 Active suspension control method with intelligent adjusting function for electric automobile
CN110861462B (en) * 2019-12-02 2022-10-04 西安科技大学 Image recognition-based whole vehicle intelligent hybrid suspension coordination control system
CN111016567A (en) * 2019-12-30 2020-04-17 东风小康汽车有限公司重庆分公司 Automatic switching method and device for automobile driving modes
US11489431B2 (en) 2019-12-30 2022-11-01 Thermo King Corporation Transport climate control system power architecture
JP7298515B2 (en) * 2020-03-04 2023-06-27 トヨタ自動車株式会社 Vehicle preview damping control device and vehicle preview damping control method
DE102020106642B4 (en) 2020-03-11 2022-12-22 Ford Global Technologies, Llc Method for controlling vertical vibration damping of at least one wheel of a vehicle and vehicle with vertical vibration damping of at least one wheel
DE102021105566A1 (en) 2020-03-24 2021-09-30 Honeywell International Inc. ROTARY ENCODER
JP7354916B2 (en) 2020-04-28 2023-10-03 トヨタ自動車株式会社 Vehicle vibration damping control device, vibration damping control system, vibration damping control method, and data providing device.
JP7188413B2 (en) 2020-06-04 2022-12-13 トヨタ自動車株式会社 Vehicle damping control device and method
JP7180638B2 (en) 2020-06-08 2022-11-30 トヨタ自動車株式会社 VEHICLE RUNNING STATE CONTROL DEVICE AND METHOD
JP7180640B2 (en) * 2020-06-10 2022-11-30 トヨタ自動車株式会社 Vehicle damping control device and damping control method
KR20210156885A (en) * 2020-06-17 2021-12-28 현대자동차주식회사 Control system when Brake-By-wire device
JP7314869B2 (en) 2020-06-24 2023-07-26 トヨタ自動車株式会社 Vehicle damping control device and method
JP7252521B2 (en) 2020-06-29 2023-04-05 トヨタ自動車株式会社 Vehicle damping control device and method
US11772496B2 (en) * 2020-08-26 2023-10-03 Anusheel Nahar Regenerative braking system of an automobile and a method to operate
US11605249B2 (en) 2020-09-14 2023-03-14 Dish Wireless L.L.C. Using automatic road hazard detection to categorize automobile collision
JP7307404B2 (en) * 2020-10-07 2023-07-12 トヨタ自動車株式会社 Damping control device and data management device
JP7314897B2 (en) 2020-10-07 2023-07-26 トヨタ自動車株式会社 VEHICLE PREVIEW DAMAGE CONTROL DEVICE AND METHOD
JP7367652B2 (en) 2020-10-07 2023-10-24 トヨタ自動車株式会社 Vehicle preview vibration damping control device and method
JP7314899B2 (en) 2020-10-14 2023-07-26 トヨタ自動車株式会社 Vibration control device
JP7306362B2 (en) 2020-10-19 2023-07-11 トヨタ自動車株式会社 Database creation method for vehicle preview damping control
JP7251538B2 (en) * 2020-10-19 2023-04-04 トヨタ自動車株式会社 VEHICLE CONTROL METHOD AND CONTROL DEVICE
JP7322855B2 (en) * 2020-10-23 2023-08-08 トヨタ自動車株式会社 Road surface information creation device and vehicle control system
WO2022093847A1 (en) * 2020-10-27 2022-05-05 Clearmotion,Inc. Systems and methods for vehicle control using terrain-based localization
JP7314902B2 (en) 2020-10-29 2023-07-26 トヨタ自動車株式会社 VEHICLE CONTROL METHOD AND CONTROL DEVICE
JP7328626B2 (en) 2020-10-30 2023-08-17 トヨタ自動車株式会社 Vehicle damping control system
JP7314904B2 (en) 2020-10-30 2023-07-26 トヨタ自動車株式会社 Vibration control device
CN112417619B (en) * 2020-11-23 2021-10-08 江苏大学 Pump unit optimal operation adjusting system and method based on digital twinning
JP7406182B2 (en) 2020-12-11 2023-12-27 トヨタ自動車株式会社 Related value information update system and related value information update method
CN113014462A (en) * 2021-02-22 2021-06-22 上海节卡机器人科技有限公司 Data conversion method, device, controller and circuit thereof
US11932072B2 (en) * 2021-03-08 2024-03-19 DRiV Automotive Inc. Suspension control system and method with event detection based on unsprung mass acceleration data and pre-emptive road data
DE202021101206U1 (en) 2021-03-10 2022-06-15 Dana Italia S.R.L. Hydraulically suspended vehicle axle assembly and vehicle axle assembly incorporating this assembly
JP2022147002A (en) * 2021-03-23 2022-10-06 本田技研工業株式会社 Damper control device
CN115520193A (en) * 2021-06-10 2022-12-27 罗伯特·博世有限公司 Method, device and computer program product for operating a vehicle
FR3124437B1 (en) * 2021-06-25 2023-10-13 Renault Sas Method for controlling a vehicle equipped with at least one suspension controlled by learning.
DE102021116460A1 (en) * 2021-06-25 2022-12-29 Bühler Motor GmbH Bearing arrangement for a pump motor
JP2023037113A (en) 2021-09-03 2023-03-15 トヨタ自動車株式会社 Vehicle and control method of vehicular suspension
DE102021123306B3 (en) 2021-09-09 2023-01-05 Audi Ag Vehicle with a curve tilting function
DE102021210043A1 (en) 2021-09-10 2023-03-16 Vitesco Technologies Germany Gmbh Pump, in particular gear oil pump with a modular structure
JP2023042372A (en) * 2021-09-14 2023-03-27 トヨタ自動車株式会社 Map data, map update method, vehicle control method and vehicle control system
JP2023042329A (en) * 2021-09-14 2023-03-27 トヨタ自動車株式会社 Map data, map update method, vehicle control method and vehicle control system
US11897379B2 (en) 2021-10-20 2024-02-13 Toyota Motor Engineering & Manufacturing North America, Inc. Seat with shape memory material member actuation
DE102021211978A1 (en) 2021-10-25 2023-04-27 Continental Automotive Technologies GmbH SYSTEM AND METHOD FOR STABILIZING ONE OR MORE SENSORS ON A VEHICLE
DE102022206540B3 (en) * 2022-06-28 2023-10-12 Robert Bosch Gesellschaft mit beschränkter Haftung Method for controlling variable-speed fluid pumps
WO2024059522A1 (en) * 2022-09-12 2024-03-21 ClearMotion, Inc. Dynamic groundhook control in a vehicle using an active suspension system

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6502837B1 (en) * 1998-11-11 2003-01-07 Kenmar Company Trust Enhanced computer optimized adaptive suspension system and method
US20050060069A1 (en) * 1997-10-22 2005-03-17 Breed David S. Method and system for controlling a vehicle
US20140195114A1 (en) * 2013-01-10 2014-07-10 Ford Global Technologies, Llc Suspension Control System To Facilitate Wheel Motions During Parking
US20140195112A1 (en) * 2013-01-08 2014-07-10 Ford Global Technologies, Llc Adaptive Active Suspension System With Road Preview

Family Cites Families (300)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US998128A (en) 1910-02-03 1911-07-18 Thomas C Neal Combined air pump and cushion.
US1116293A (en) 1914-02-02 1914-11-03 Joseph G Waters Apparatus for transforming energy.
US1290293A (en) 1918-04-15 1919-01-07 American Motor Spring Patents Company Shock-absorber and suspension for vehicles.
US2194530A (en) 1938-01-05 1940-03-26 Servel Inc Vehicle refrigeration
GB652732A (en) 1943-04-16 1951-05-02 British Thomson Houston Co Ltd Improvements relating to regulators for dynamo electric machines
FR1089112A (en) 1952-12-08 1955-03-15 Siegener Eisenbahnbedarf Ag Vehicle suspension
US2958292A (en) 1956-10-22 1960-11-01 Allis Chalmers Mfg Co Canned motor
US2942581A (en) 1958-03-12 1960-06-28 Fisher Governor Co Hydraulic operator
GB1070783A (en) 1963-06-17 1967-06-01 Ass Elect Ind Improvements relating to power transfer circuit arrangements
US3507580A (en) 1967-05-12 1970-04-21 Landon H Howard Energy generator
US3515889A (en) 1967-08-14 1970-06-02 Lamphere Jean K Power generation apparatus
US3540482A (en) 1967-09-25 1970-11-17 Bendix Corp Accumulator inlet fitting
US3559027A (en) 1967-09-27 1971-01-26 Harold B Arsem Electric shock absorber
US3610611A (en) * 1970-03-13 1971-10-05 Gen Motors Corp Automatic vehicle leveling system with electronic time delay
US3688859A (en) 1970-10-08 1972-09-05 Fma Inc Vehicular air compression system
US3805833A (en) 1971-10-20 1974-04-23 G Teed Back-suction diverter valve
DE2217536C2 (en) 1972-04-12 1974-05-09 Carl Schenck Maschinenfabrik Gmbh, 6100 Darmstadt Arrangement for regulating a dynamic test system, in particular for a hydraulically driven one
US3800202A (en) 1972-04-24 1974-03-26 J Oswald Cemf dependent regenerative braking for dc motor
FR2152111A6 (en) 1972-09-05 1973-04-20 Ferrara Guy
US3921746A (en) 1972-12-28 1975-11-25 Alexander J Lewus Auxiliary power system for automotive vehicle
US4295538A (en) 1974-03-21 1981-10-20 Lewus Alexander J Auxiliary power system for automotive vehicle
US3947004A (en) 1974-12-23 1976-03-30 Tayco Developments, Inc. Liquid spring, vehicle suspension system and method for producing a low variance in natural frequency over a predetermined load range
US4032829A (en) 1975-08-22 1977-06-28 Schenavar Harold E Road shock energy converter for charging vehicle batteries
FR2346176A1 (en) 1975-10-31 1977-10-28 Milleret Michel Vehicle braking energy recovery system - has hydraulic or pneumatic recuperator supplying fluid to motor which drives generator
US4033580A (en) 1976-01-15 1977-07-05 Paris Irwin S Elastic type exercising
IT1093284B (en) 1977-02-11 1985-07-19 Cableform Ltd IMPROVEMENTS RELATED TO PULSE CHECKS
JPS586364B2 (en) 1977-08-10 1983-02-04 株式会社日立製作所 Braking control system for chopper electric cars
US5794439A (en) 1981-11-05 1998-08-18 Lisniansky; Robert Moshe Regenerative adaptive fluid control
US4480709A (en) 1982-05-12 1984-11-06 Commanda Ephrem E Fluid powered generator
JPH07100404B2 (en) 1983-01-21 1995-11-01 グループ ロータス リミテッド Vehicle suspension system
JPS59187124A (en) 1983-04-06 1984-10-24 Chiyoda Chem Eng & Constr Co Ltd Vibration damping device
IT1164365B (en) 1983-08-04 1987-04-08 Alfa Romeo Auto Spa OSCILLATION SHOCK ABSORBER DEVICE FOR A VEHICLE
US4770438A (en) 1984-01-20 1988-09-13 Nissan Motor Co., Ltd. Automotive suspension control system with road-condition-dependent damping characteristics
US4500827A (en) 1984-06-11 1985-02-19 Merritt Thomas D Linear reciprocating electrical generator
US4729459A (en) 1984-10-01 1988-03-08 Nippon Soken, Inc. Adjustable damping force type shock absorber
DE3524862A1 (en) 1985-04-12 1986-10-30 Robert Bosch Gmbh, 7000 Stuttgart DEVICE FOR DAMPING MOTION PROCESSES
JPS61287808A (en) 1985-06-14 1986-12-18 Nissan Motor Co Ltd Suspension control device for vehicle
US4740711A (en) 1985-11-29 1988-04-26 Fuji Electric Co., Ltd. Pipeline built-in electric power generating set
US5657840A (en) 1986-06-05 1997-08-19 Lizell; Magnus B. Method and apparatus for absorbing mechanical shock
JP2575379B2 (en) 1987-03-24 1997-01-22 日産自動車株式会社 Active suspension device
US4868477A (en) 1987-06-23 1989-09-19 The Superior Electric Company Method and apparatus for controlling torque and torque ripple in a variable reluctance motor
JPS6430816A (en) 1987-07-24 1989-02-01 Toyota Motor Corp Active suspension for vehicle
KR910009242B1 (en) * 1987-08-04 1991-11-07 가부시기가이샤 히다찌세이사꾸쇼 Torque control apparatus for rotating motor machine
JPH0192526A (en) * 1987-09-30 1989-04-11 Isuzu Motors Ltd Turbocharger provided with electric rotary machine
US4815575A (en) 1988-04-04 1989-03-28 General Motors Corporation Electric, variable damping vehicle suspension
US4857755A (en) 1988-09-27 1989-08-15 Comstock W Kenneth Constant power system and method
US5060959A (en) 1988-10-05 1991-10-29 Ford Motor Company Electrically powered active suspension for a vehicle
CA1336616C (en) 1988-10-05 1995-08-08 I. Davis Roy Electrically powered active suspension for a vehicle
US4908553A (en) 1988-12-20 1990-03-13 Eaton Corporation Magnetic regenerative braking system
US4887699A (en) 1989-02-10 1989-12-19 Lord Corporation Vibration attenuating method utilizing continuously variable semiactive damper
US4921080A (en) 1989-05-08 1990-05-01 Lin Chien H Hydraulic shock absorber
US4981309A (en) 1989-08-31 1991-01-01 Bose Corporation Electromechanical transducing along a path
DE69031794T2 (en) 1989-09-11 1998-04-23 Toyota Motor Co Ltd Suspension control system
US5183127A (en) * 1989-09-13 1993-02-02 Mazda Motor Corporation Suspension-traction total control system
DE3937987A1 (en) 1989-11-15 1991-05-16 Bosch Gmbh Robert VEHICLE SUSPENSION I
US5046309A (en) 1990-01-22 1991-09-10 Shin Caterpillar Mitsubishi Ltd. Energy regenerative circuit in a hydraulic apparatus
JPH03123981U (en) 1990-03-30 1991-12-17
DE4014466A1 (en) 1990-05-07 1991-11-14 Bosch Gmbh Robert VEHICLE SUSPENSION
KR100201267B1 (en) 1990-05-16 1999-06-15 가와모토 노부히코 Regeneration braking apparatus of an electric car
NL9001394A (en) 1990-06-19 1992-01-16 P G Van De Veen Consultancy B CONTROLLED SILENCER.
US5091679A (en) 1990-06-20 1992-02-25 General Motors Corporation Active vehicle suspension with brushless dynamoelectric actuator
US5203199A (en) 1990-10-12 1993-04-20 Teledyne Industries, Inc. Controlled acceleration platform
US5145206A (en) 1991-03-07 1992-09-08 Trw Inc. Semi-active suspension system with energy saving actuator
US5102161A (en) 1991-03-07 1992-04-07 Trw Inc. Semi-active suspension system with energy saving valve
US5098119A (en) 1991-03-22 1992-03-24 Trw Inc. Semi-active suspension system with energy saving
US5497324A (en) * 1991-05-20 1996-03-05 General Motors Corporation Vehicle suspension system with gain scheduling
US5572425A (en) 1991-06-18 1996-11-05 Ford Motor Company Powered active suspension system responsive to anticipated power demand
US5232242A (en) 1991-06-18 1993-08-03 Ford Motor Company Power consumption limiting means for an active suspension system
US5205326A (en) 1991-08-23 1993-04-27 Hydraulic Power Systems, Inc. Pressure response type pulsation damper noise attenuator and accumulator
US5276622A (en) 1991-10-25 1994-01-04 Lord Corporation System for reducing suspension end-stop collisions
US5360445A (en) * 1991-11-06 1994-11-01 International Business Machines Corporation Blood pump actuator
JP3049136B2 (en) 1991-12-09 2000-06-05 マツダ株式会社 Vehicle suspension device
JPH0550195U (en) 1991-12-09 1993-07-02 株式会社昭和製作所 Hydraulic shock absorber with power generation function
US5337560A (en) 1992-04-02 1994-08-16 Abdelmalek Fawzy T Shock absorber and a hermetically sealed scroll gas expander for a vehicular gas compression and expansion power system
US5425436A (en) 1992-08-26 1995-06-20 Nippondenso Co., Ltd. Automotive suspension control system utilizing variable damping force shock absorber
US5291960A (en) 1992-11-30 1994-03-08 Ford Motor Company Hybrid electric vehicle regenerative braking energy recovery system
US5295563A (en) 1993-03-01 1994-03-22 General Motors Corporation Active suspension actuator with control flow through the piston rod
US5570286A (en) 1993-12-23 1996-10-29 Lord Corporation Regenerative system including an energy transformer which requires no external power source to drive same
JP2833463B2 (en) * 1994-02-10 1998-12-09 株式会社デンソー AC motor rotation torque detector
US5529152A (en) 1994-07-08 1996-06-25 Aimrite Systems International, Inc. Variable constant force hydraulic components and systems
JP2738819B2 (en) 1994-08-22 1998-04-08 本田技研工業株式会社 Power generation control device for hybrid vehicle
JPH0865809A (en) 1994-08-25 1996-03-08 Yamaha Motor Co Ltd Motor controller for motor driven vehicle
JP3125603B2 (en) 1994-10-07 2001-01-22 トヨタ自動車株式会社 Suspension control device
EP0706906A3 (en) 1994-10-12 1997-07-02 Unisia Jecs Corp Apparatus and method for controlling damping force characteristic of vehicular suspension system
JP3089958B2 (en) 1994-12-06 2000-09-18 三菱自動車工業株式会社 Electric vehicle braking control device
JPH08226377A (en) 1994-12-09 1996-09-03 Fuotsukusu Hetsudo:Kk Surge generator
US5590734A (en) 1994-12-22 1997-01-07 Caires; Richard Vehicle and method of driving the same
US5480186A (en) 1994-12-23 1996-01-02 Ford Motor Company Dynamic roll control system for a motor vehicle
JP3387287B2 (en) 1995-09-19 2003-03-17 日産自動車株式会社 Regenerative charging control device
DE19535752A1 (en) 1995-09-26 1997-03-27 Peter Dipl Ing Mumm Control of independent power generation system
JP3454036B2 (en) 1995-11-13 2003-10-06 トヨタ自動車株式会社 Hybrid drive
US5659205A (en) 1996-01-11 1997-08-19 Ebara International Corporation Hydraulic turbine power generator incorporating axial thrust equalization means
IT1289322B1 (en) 1996-01-19 1998-10-02 Carlo Alberto Zenobi DEVICE FOR OBTAINING ELECTRICITY FROM THE DYNAMIC ACTIONS ARISING FROM THE RELATIVE MOTION BETWEEN VEHICLES AND THE GROUND
US5682980A (en) 1996-02-06 1997-11-04 Monroe Auto Equipment Company Active suspension system
AU2055697A (en) 1996-02-26 1997-09-10 Board Of Regents, The University Of Texas System Constant force suspension, near constant force suspension, and associated control algorithms
US5717303A (en) 1996-03-04 1998-02-10 Tenergy, L.L.C. DC motor drive assembly including integrated charger/controller/regenerator circuit
DE69605019T2 (en) * 1996-03-29 2000-02-24 St Microelectronics Srl Drive system for a brushless motor that uses predetermined drive currents and is stored in a read-only memory
JP3118414B2 (en) 1996-05-22 2000-12-18 株式会社豊田中央研究所 Vehicle sprung unsprung relative speed calculation device
GB9610846D0 (en) 1996-05-23 1996-07-31 Switched Reluctance Drives Ltd Output smoothing in a switched reluctance machine
JP3689829B2 (en) 1996-10-04 2005-08-31 株式会社日立製作所 Suspension control device
US5892293A (en) 1997-01-15 1999-04-06 Macrosonix Corporation RMS energy conversion
US6025665A (en) * 1997-02-21 2000-02-15 Emerson Electric Co. Rotating machine for use in a pressurized fluid system
EP0878333B1 (en) * 1997-05-16 2003-08-27 Conception et Développement Michelin Suspension device with spring correction unit
EP0895344B1 (en) 1997-07-30 2003-10-01 Matsushita Electric Industrial Co., Ltd A method of controlling a torque ripple of a motor having interior permanent magnets and a controller using the same method
US6092618A (en) 1997-10-31 2000-07-25 General Motors Corporation Electro-hydraulic power steering control with fluid temperature and motor speed compensation of power steering load signal
US5941328A (en) 1997-11-21 1999-08-24 Lockheed Martin Corporation Electric vehicle with variable efficiency regenerative braking depending upon battery charge state
JPH11166474A (en) 1997-12-01 1999-06-22 Kotou Unyu Kk Generator using reciprocating motion
US6049746A (en) 1998-04-01 2000-04-11 Lord Corporation End stop control method
DE29809485U1 (en) 1998-05-28 1998-09-10 Kraemer & Grebe Kg Wolf for chopping frozen and fresh meat
US5925951A (en) * 1998-06-19 1999-07-20 Sundstrand Fluid Handling Corporation Electromagnetic shield for an electric motor
US6349543B1 (en) 1998-06-30 2002-02-26 Robert Moshe Lisniansky Regenerative adaptive fluid motor control
JP3787038B2 (en) 1998-09-10 2006-06-21 トヨタ自動車株式会社 Elastic support device, vehicle elastic support device, and control device for vehicle suspension device
US6282453B1 (en) 1998-12-02 2001-08-28 Caterpillar Inc. Method for controlling a work implement to prevent interference with a work machine
US6575264B2 (en) * 1999-01-29 2003-06-10 Dana Corporation Precision electro-hydraulic actuator positioning system
JP2002541014A (en) 1999-04-12 2002-12-03 キネティック プロプライエタリー リミテッド Active ride control for vehicle suspension systems
US6190319B1 (en) * 1999-06-21 2001-02-20 International Business Machines Corporation Self calibrating linear position sensor
CA2279435A1 (en) 1999-07-30 2001-01-30 Michael Alexander Duff Linear actuator
US6227817B1 (en) * 1999-09-03 2001-05-08 Magnetic Moments, Llc Magnetically-suspended centrifugal blood pump
US7195250B2 (en) 2000-03-27 2007-03-27 Bose Corporation Surface vehicle vertical trajectory planning
DE10019532C2 (en) 2000-04-20 2002-06-27 Zf Sachs Ag Suspension system for motor vehicles
JP2001311452A (en) 2000-04-28 2001-11-09 Tokico Ltd Electromagnetic suspension control system
WO2001089066A1 (en) 2000-05-17 2001-11-22 Kabushiki Kaisha Sankyo Seiki Seisakusho Small power generating device and water faucet device
US6394238B1 (en) 2000-05-25 2002-05-28 Husco International, Inc. Regenerative suspension for an off-road vehicle
EP1188587B1 (en) 2000-05-25 2008-04-16 Husco International, Inc. Regenerative suspension for an off-road vehicle
US6731019B2 (en) 2000-08-07 2004-05-04 Ocean Power Technologies, Inc. Apparatus and method for optimizing the power transfer produced by a wave energy converter (WEC)
US6467748B1 (en) * 2000-09-05 2002-10-22 Deere & Company Hydraulic circuit for active suspension system
CN100341227C (en) 2000-09-06 2007-10-03 日本电产三协株式会社 Small-sized hydroelectric power generating apparatus
US6915600B2 (en) * 2000-09-12 2005-07-12 Yanmar Co., Ltd. Hydraulic circuit of excavating and slewing working vehicle
US6397134B1 (en) 2000-09-13 2002-05-28 Delphi Technologies, Inc. Vehicle suspension control with enhanced body control in steering crossover
US6644590B2 (en) 2000-09-15 2003-11-11 General Dynamics Advanced Information Systems, Inc. Active system and method for vibration and noise reduction
US6834737B2 (en) 2000-10-02 2004-12-28 Steven R. Bloxham Hybrid vehicle and energy storage system and method
JP3582479B2 (en) 2000-11-21 2004-10-27 日産自動車株式会社 Vehicle battery charge control device
US6441508B1 (en) 2000-12-12 2002-08-27 Ebara International Corporation Dual type multiple stage, hydraulic turbine power generator including reaction type turbine with adjustable blades
US6573675B2 (en) 2000-12-27 2003-06-03 Transportation Techniques Llc Method and apparatus for adaptive energy control of hybrid electric vehicle propulsion
DE10104851A1 (en) * 2001-02-03 2002-08-22 Zf Lenksysteme Gmbh Pump system with a hydraulic pump, in particular for a steering system
US7571683B2 (en) 2001-03-27 2009-08-11 General Electric Company Electrical energy capture system with circuitry for blocking flow of undesirable electrical currents therein
US6973880B2 (en) 2001-03-27 2005-12-13 General Electric Company Hybrid energy off highway vehicle electric power storage system and method
CA2343489C (en) 2001-04-05 2007-05-22 Electrofuel, Inc. Energy storage device for loads having variable power rates
US6952060B2 (en) 2001-05-07 2005-10-04 Trustees Of Tufts College Electromagnetic linear generator and shock absorber
DE10126933B4 (en) 2001-06-01 2004-08-26 Continental Aktiengesellschaft Method for regulating or controlling the damper force of adjustable dampers on vehicles
US6575484B2 (en) 2001-07-20 2003-06-10 Husco International, Inc. Dual mode regenerative suspension for an off-road vehicle
JP2003035254A (en) 2001-07-24 2003-02-07 Sony Corp Power source device
US6752250B2 (en) * 2001-09-27 2004-06-22 Northrop Grumman Corporation Shock, vibration and acoustic isolation system
US6679504B2 (en) 2001-10-23 2004-01-20 Liquidspring Technologies, Inc. Seamless control of spring stiffness in a liquid spring system
FR2831226B1 (en) * 2001-10-24 2005-09-23 Snecma Moteurs AUTONOMOUS ELECTROHYDRAULIC ACTUATOR
US6631960B2 (en) 2001-11-28 2003-10-14 Ballard Power Systems Corporation Series regenerative braking torque control systems and methods
US6650985B2 (en) * 2001-12-28 2003-11-18 Case, Llc Skid steer vehicle having anti-rolling system
US6452535B1 (en) 2002-01-29 2002-09-17 Ford Global Technologies, Inc. Method and apparatus for impact crash mitigation
CN1370926A (en) 2002-02-01 2002-09-25 张玉森 Electrically driven vehicle device to collecting vibration-reducing energy and converting inti electric energy and its method
AU2003210875A1 (en) 2002-02-05 2003-09-02 The Texas A And M University System Gerotor apparatus for a quasi-isothermal brayton cycle engine
KR100427364B1 (en) 2002-03-06 2004-04-14 현대자동차주식회사 Battery system current measuring system of electric vehicle
DE20209120U1 (en) 2002-06-12 2003-10-16 Hemscheidt Fahrwerktech Gmbh Suspension device for motor vehicles
US7156406B2 (en) 2002-10-25 2007-01-02 Ina- Schaeffler Kg Anti-roll bar for the chassis of a motor vehicle
US6886650B2 (en) 2002-11-13 2005-05-03 Deere & Company Active seat suspension control system
GB0226843D0 (en) 2002-11-16 2002-12-24 Cnh Uk Ltd cab support system for an agricultural vehicle
JP2004190845A (en) 2002-12-13 2004-07-08 Shin Caterpillar Mitsubishi Ltd Drive device for working machine
US6841970B2 (en) 2002-12-20 2005-01-11 Mark Zabramny Dual-use generator and shock absorber assistant system
CN100444495C (en) 2003-01-24 2008-12-17 三菱电机株式会社 Battery power circuit
EP2154028B8 (en) 2003-02-17 2015-12-09 Denso Corporation Vehicle power supply system
JP4131395B2 (en) 2003-02-21 2008-08-13 株式会社デンソー Regenerative braking device for vehicle
US7087342B2 (en) 2003-04-15 2006-08-08 Visteon Global Technologies, Inc. Regenerative passive and semi-active suspension
US6920951B2 (en) 2003-04-17 2005-07-26 Visteon Global Technologies, Inc. Regenerative damping method and apparatus
US20040212273A1 (en) 2003-04-24 2004-10-28 Gould Len Charles Heat engine and generator set incorporating multiple generators for synchronizing and balancing
US20040211631A1 (en) 2003-04-24 2004-10-28 Hsu William W. Hydraulic damper
US6765389B1 (en) 2003-06-12 2004-07-20 Delphi Technologies, Inc. Method of computing AC impedance of an energy system
US20050017462A1 (en) 2003-07-23 2005-01-27 Kroppe William J. Suspension system
EP1685480B1 (en) 2003-08-12 2017-05-31 Graeme K. Robertson Shock absorber assembly
DE10337620B4 (en) 2003-08-16 2017-09-28 Daimler Ag Motor vehicle with a pre-safe system
US6964325B2 (en) 2003-09-15 2005-11-15 Tenneco Automotive Operating Company Inc. Integrated tagging system for an electronic shock absorber
US20060090462A1 (en) 2003-11-14 2006-05-04 Kazunori Yoshino Energy regeneration system for working machinery
US7438164B2 (en) 2003-12-08 2008-10-21 Tenneco Automotive Operating Company Inc. Solenoid actuated continuously variable servo valve for adjusting damping in shock absorbers and struts
US7333882B2 (en) 2004-02-12 2008-02-19 Hitachi, Ltd. Suspension control apparatus
JP2005253126A (en) 2004-03-01 2005-09-15 Nissan Motor Co Ltd Brake controller of hybrid vehicle and vehicle mounting that controller
US8380416B2 (en) 2004-03-18 2013-02-19 Ford Global Technologies Method and apparatus for controlling brake-steer in an automotive vehicle in reverse
CN2707546Y (en) 2004-04-16 2005-07-06 江苏大学 Energy feeding back type semi-active suspension
GB0410355D0 (en) * 2004-05-10 2004-06-09 Delphi Tech Inc Vehicle roll control system
US7335999B2 (en) 2004-06-15 2008-02-26 Honeywell International, Inc. Fluid actuated rotating device including a low power generator
US7202577B2 (en) 2004-06-17 2007-04-10 Bose Corporation Self-cooling actuator
US7427072B2 (en) 2004-06-18 2008-09-23 Bose Corporation Active vehicle suspension
US7421954B2 (en) 2004-06-18 2008-09-09 Bose Corporation Active suspension controller
GB0415511D0 (en) 2004-07-10 2004-08-11 Trw Ltd Motor drive voltage-boost control
JP4134964B2 (en) 2004-08-02 2008-08-20 株式会社デンソー Power generation control device
US6944544B1 (en) 2004-09-10 2005-09-13 Ford Global Technologies, Llc Adaptive vehicle safety system for collision compatibility
US7051526B2 (en) 2004-10-01 2006-05-30 Moog Inc. Closed-system electrohydraulic actuator
EP1841608B1 (en) 2004-10-25 2013-12-11 Horstman, Inc. Compressible fluid independent active suspension
US7983813B2 (en) 2004-10-29 2011-07-19 Bose Corporation Active suspending
US20060108860A1 (en) 2004-11-23 2006-05-25 Delaware Capital Formation Brake energy recovery system
JP2008522117A (en) 2004-12-01 2008-06-26 ハルデックス・ハイドローリクス・コーポレーション Hydraulic drive system
US7702440B2 (en) 2005-02-08 2010-04-20 Ford Global Technologies Method and apparatus for detecting rollover of an automotive vehicle based on a lateral kinetic energy rate threshold
GB2425160B (en) 2005-04-12 2010-11-17 Perpetuum Ltd An Electromechanical Generator for, and method of, Converting Mechanical Vibrational Energy into Electrical Energy
JP4525918B2 (en) 2005-04-15 2010-08-18 トヨタ自動車株式会社 Damping force generating system and vehicle suspension system including the same
JP4114679B2 (en) 2005-05-24 2008-07-09 トヨタ自動車株式会社 Vehicle damping force control device
TWI279970B (en) 2005-07-20 2007-04-21 Delta Electronics Inc Configuration and controlling method of boost circuit having pulse-width modulation limiting controller
JP4852919B2 (en) * 2005-07-25 2012-01-11 アイシン・エィ・ダブリュ株式会社 Vehicle ride control system and vehicle ride control method
US20070045067A1 (en) * 2005-08-26 2007-03-01 Husco International, Inc. Hydraulic circuit with a pilot operated check valve for an active vehicle suspension system
US7286919B2 (en) 2005-10-17 2007-10-23 Gm Global Technology Operations, Inc. Method and apparatus for controlling damping of a vehicle suspension
US20070089924A1 (en) 2005-10-24 2007-04-26 Towertech Research Group Apparatus and method for hydraulically converting movement of a vehicle wheel to electricity for charging a vehicle battery
US7261171B2 (en) 2005-10-24 2007-08-28 Towertech Research Group Apparatus and method for converting movements of a vehicle wheel to electricity for charging a battery of the vehicle
US7823891B2 (en) 2005-11-29 2010-11-02 Bose Corporation Active vehicle suspension system
DE102006010508A1 (en) 2005-12-20 2007-08-09 Robert Bosch Gmbh Vehicle with a drive motor for driving a traction drive and a working hydraulics
US8269359B2 (en) 2006-01-17 2012-09-18 Uusi, Llc Electronic control for a hydraulically driven generator
US8269360B2 (en) 2006-01-17 2012-09-18 Uusi, Llc Electronic control for a hydraulically driven auxiliary power source
DE102006002983B4 (en) * 2006-01-21 2016-09-15 Bayerische Motoren Werke Aktiengesellschaft Active chassis system of a vehicle
JP4380640B2 (en) * 2006-02-09 2009-12-09 トヨタ自動車株式会社 Vehicle stabilizer system
EP1991180B1 (en) 2006-03-09 2012-09-05 The Regents of the University of California Power generating leg
TWM299089U (en) 2006-04-28 2006-10-11 Shui-Chuan Chiao Wireless adjustment controller for damping of shock absorber on a vehicle
US7887033B2 (en) 2006-06-06 2011-02-15 Deere & Company Suspension system having active compensation for vibration
DE602006002816D1 (en) 2006-06-23 2008-10-30 Fondazione Torino Wireless Undercarriage module for wheeled vehicles and wheeled vehicle equipped with such a module
JP4828325B2 (en) 2006-07-03 2011-11-30 カヤバ工業株式会社 Shock absorber controller
EP1878598A1 (en) * 2006-07-13 2008-01-16 Fondazione Torino Wireless Regenerative suspension for a vehicle
CN201002520Y (en) 2006-11-09 2008-01-09 宋杨 Hydraulic energy-feeding type vibration damping suspension for vehicle
US8067863B2 (en) 2007-01-18 2011-11-29 Bose Corporation Detent force correcting
US8448432B2 (en) * 2007-02-13 2013-05-28 The Board Of Regents Of The University Of Texas System Actuators
DE102007008736A1 (en) * 2007-02-22 2008-08-28 Wabco Gmbh Method for controlling a compressor and device for carrying out the method
JP5046690B2 (en) * 2007-03-12 2012-10-10 日立建機株式会社 Control device for work vehicle
JP5129493B2 (en) 2007-03-12 2013-01-30 日立建機株式会社 Travel control device for work vehicle
US8285447B2 (en) 2007-03-20 2012-10-09 Enpulz, L.L.C. Look ahead vehicle suspension system
EP1974965A1 (en) 2007-03-26 2008-10-01 C.R.F. Società Consortile per Azioni System for controlling damping and roll and pitch body movements of a motor vehicle, having adjustable hydraulic actuators
US8032281B2 (en) 2007-03-29 2011-10-04 Ford Global Technologies Vehicle control system with advanced tire monitoring
US7948224B2 (en) 2007-03-30 2011-05-24 Hong Kong Applied Science And Technology Research Institute Co. Ltd. Feedback controller having multiple feedback paths
US7656055B2 (en) 2007-04-12 2010-02-02 Rosalia Torres Hydro-wind power generating turbine system and retrofitting method
BRPI0704656A2 (en) 2007-04-19 2008-12-02 Seahorse Wave Energy Hybrid plant for the generation of electricity by sea waves
DE102007026956A1 (en) * 2007-06-12 2008-12-18 Kuka Innotec Gmbh Method and system for robot-guided depalletizing of tires
CN101687455B (en) 2007-07-02 2012-04-25 爱考斯研究株式会社 Camber angle controlling device
US8022674B2 (en) 2007-07-10 2011-09-20 Toyota Motor Engineering & Manufacturing North America, Inc. State of charge control method and systems for vehicles
KR101826534B1 (en) * 2007-08-30 2018-03-22 마이크로펌프, 아이엔씨. Pumps and pump―heads comprising internal pressure―absorbing member
JP2009115301A (en) 2007-11-09 2009-05-28 Toyota Motor Corp Shock absorber controlling device
JP4968005B2 (en) * 2007-11-13 2012-07-04 トヨタ自動車株式会社 Suspension control device
EP2065295A1 (en) 2007-11-27 2009-06-03 TNO Bedrijven B.V. Suspension assembly for suspending a cabin of a truck or the like vehicle
US8589049B2 (en) * 2007-12-03 2013-11-19 Lockheed Martin Corporation GPS-based system and method for controlling vehicle characteristics based on terrain
US20090192674A1 (en) 2008-01-24 2009-07-30 Gerald Frank Simons Hydraulically propelled - gryoscopically stabilized motor vehicle
US7847444B2 (en) 2008-02-26 2010-12-07 Gm Global Technology Operations, Inc. Electric motor assembly with stator mounted in vehicle powertrain housing and method
US7938217B2 (en) 2008-03-11 2011-05-10 Physics Lab Of Lake Havasu, Llc Regenerative suspension with accumulator systems and methods
US8376100B2 (en) 2008-04-17 2013-02-19 Levant Power Corporation Regenerative shock absorber
US8392030B2 (en) 2008-04-17 2013-03-05 Levant Power Corporation System and method for control for regenerative energy generators
US8839920B2 (en) 2008-04-17 2014-09-23 Levant Power Corporation Hydraulic energy transfer
DE102009002849A1 (en) 2008-07-11 2010-01-14 Deere & Company, Moline Drive system for a feed conveyor of a harvester
US8080888B1 (en) 2008-08-12 2011-12-20 Sauer-Danfoss Inc. Hydraulic generator drive system
EP2156970A1 (en) 2008-08-12 2010-02-24 Nederlandse Organisatie voor toegepast- natuurwetenschappelijk onderzoek TNO Multi-point hydraulic suspension system for a land vehicle
US7963529B2 (en) 2008-09-08 2011-06-21 Bose Corporation Counter-rotating motors with linear output
US8453441B2 (en) 2008-11-06 2013-06-04 Purdue Research Foundation System and method for pump-controlled cylinder cushioning
US8075002B1 (en) * 2008-11-18 2011-12-13 Am General Llc Semi-active suspension system
US9067005B2 (en) * 2008-12-08 2015-06-30 Thoratec Corporation Centrifugal pump apparatus
DE102009022328A1 (en) 2008-12-10 2010-06-17 Daimler Ag damper device
DE102009027939A1 (en) 2009-02-03 2010-08-05 Robert Bosch Gmbh Method for suspension control of a motor vehicle, and device for implementation
US8253281B2 (en) 2009-02-27 2012-08-28 GM Global Technology Operations LLC Energy harvesting apparatus incorporated into shock absorber
US8063498B2 (en) 2009-02-27 2011-11-22 GM Global Technology Operations LLC Harvesting energy from vehicular vibrations
US7936113B2 (en) 2009-02-27 2011-05-03 GM Global Technology Operations LLC Harvesting energy from vehicular vibrations using piezoelectric devices
US8143766B2 (en) 2009-02-27 2012-03-27 GM Global Technology Operations LLC Harvesting energy from vehicular vibrations using piezoelectric devices
WO2010111376A1 (en) 2009-03-25 2010-09-30 Nikhil Bhat Energy harvesting system
EP2415621B1 (en) 2009-03-31 2015-03-25 Toyota Jidosha Kabushiki Kaisha Damping force control apparatus
WO2010116485A1 (en) 2009-04-06 2010-10-14 トヨタ自動車株式会社 Stabilizer device for vehicle
US9222538B2 (en) 2009-04-16 2015-12-29 Oneiric Systems, Inc. Shock absorber having unidirectional fluid flow
MX2011010753A (en) 2009-04-16 2012-01-12 Oneiric Systems Inc Shock absorber having unidirectional fluid flow.
US20100308589A1 (en) 2009-05-27 2010-12-09 Rohrer Technologies, Inc. Heaving ocean wave energy converter
JP2011062000A (en) 2009-09-11 2011-03-24 Denso Corp Controller of ac motor
JP5463263B2 (en) 2009-11-30 2014-04-09 日立オートモティブシステムズ株式会社 Suspension control device for vehicle
JP5306974B2 (en) 2009-12-02 2013-10-02 日立オートモティブシステムズ株式会社 Electric oil pump
US8356861B2 (en) 2010-01-26 2013-01-22 Bose Corporation Active suspension seat skirt
CN101749353B (en) 2010-01-27 2011-10-19 武汉理工大学 Electrohydraulic energy-regenerative type shock absorber
JP2011174494A (en) 2010-02-23 2011-09-08 Takeuchi Seisakusho:Kk Hydraulic control device
JP5287787B2 (en) * 2010-04-16 2013-09-11 株式会社デンソー Electric device
US20110293450A1 (en) * 2010-06-01 2011-12-01 Micropump, Inc. Pump magnet housing with integrated sensor element
US8844392B2 (en) * 2010-06-09 2014-09-30 Gm Global Technology Operations, Llc Electro-hydraulic and electro-mechanical control system for a dual clutch transmission
US9035477B2 (en) 2010-06-16 2015-05-19 Levant Power Corporation Integrated energy generating damper
JP5193259B2 (en) 2010-09-14 2013-05-08 株式会社日立カーエンジニアリング Motor control device and control method for electric oil pump
JP5571519B2 (en) 2010-09-27 2014-08-13 日立オートモティブシステムズ株式会社 Body posture control device
JP5692588B2 (en) * 2010-12-28 2015-04-01 株式会社デンソー Drive device
JP5927766B2 (en) 2011-03-11 2016-06-01 株式会社ジェイテクト Electric pump unit
US20120233991A1 (en) 2011-03-16 2012-09-20 Purdue Research Foundtion Multi-function machines, hydraulic systems therefor, and methods for their operation
EP2693609B1 (en) * 2011-03-28 2017-05-03 Thoratec Corporation Rotation and drive device and centrifugal pump device using same
US9067501B2 (en) * 2011-04-01 2015-06-30 Caterpillar Inc. System and method for adjusting balance of operation of hydraulic and electric actuators
DE102011100307A1 (en) * 2011-05-03 2012-11-08 Daimler Ag Land bound passenger vehicle with a decoupling device and method for decoupling a body of the land-based passenger vehicle
JP5789131B2 (en) 2011-05-31 2015-10-07 日立オートモティブシステムズ株式会社 Shock absorber and suspension device
US10008910B2 (en) * 2011-06-10 2018-06-26 Axiflux Holdings Pty Ltd. Electric motor/generator
US8616563B2 (en) 2011-08-25 2013-12-31 Stealth Innovative Systems, Llc Device for adjusting the height of a vehicle
GB2494528B (en) * 2011-09-06 2014-01-29 Jaguar Land Rover Ltd Improvements in vehicle suspension control
US20130081382A1 (en) 2011-09-30 2013-04-04 Bryan E. Nelson Regeneration configuration for closed-loop hydraulic systems
US8966889B2 (en) 2011-11-01 2015-03-03 Tenneco Automotive Operating Company Inc. Energy harvesting passive and active suspension
US8641053B2 (en) 2012-02-27 2014-02-04 Bose Corporation Actuator assembly
US8744694B2 (en) 2012-04-17 2014-06-03 Bose Corporation Active suspension seat and vehicle operation interlocks
US8938333B2 (en) 2012-06-27 2015-01-20 Bose Corporation Active wheel damping
US9102209B2 (en) 2012-06-27 2015-08-11 Bose Corporation Anti-causal vehicle suspension
DE102012013462A1 (en) 2012-07-09 2014-01-09 Zf Friedrichshafen Ag Energy recuperating fluid vibration damper
US20140012468A1 (en) 2012-07-09 2014-01-09 Ford Global Technologies, Llc Real-Time Center-of-Gravity Height Estimation
US20140095022A1 (en) 2012-10-03 2014-04-03 Thomas J. Cashman Active Suspension System
US8820064B2 (en) 2012-10-25 2014-09-02 Tenneco Automotive Operating Company Inc. Recuperating passive and active suspension
EP2933161B1 (en) * 2012-12-11 2019-09-25 Toyota Jidosha Kabushiki Kaisha Vehicle state detection device
US8892304B2 (en) 2013-01-08 2014-11-18 Ford Global Technologies, Llc Adaptive crash height adjustment using active suspensions
EP2968709B1 (en) 2013-03-15 2019-10-02 ClearMotion, Inc. Active vehicle suspension improvements
JP6396414B2 (en) 2013-03-15 2018-09-26 クリアモーション,インコーポレイテッド Multi-path fluid diverter valve
US9702349B2 (en) 2013-03-15 2017-07-11 ClearMotion, Inc. Active vehicle suspension system
US9145905B2 (en) 2013-03-15 2015-09-29 Oshkosh Corporation Independent load sensing for a vehicle hydraulic system
US9174508B2 (en) 2013-03-15 2015-11-03 Levant Power Corporation Active vehicle suspension
EP3825156A1 (en) 2013-04-23 2021-05-26 ClearMotion, Inc. Active suspension with structural actuator
US9199563B2 (en) 2013-06-04 2015-12-01 Bose Corporation Active suspension of a motor vehicle passenger seat
US9108484B2 (en) 2013-07-25 2015-08-18 Tenneco Automotive Operating Company Inc. Recuperating passive and active suspension
US20150059325A1 (en) * 2013-09-03 2015-03-05 Caterpillar Inc. Hybrid Apparatus and Method for Hydraulic Systems
US20150114739A1 (en) 2013-10-31 2015-04-30 Curtis Arnold Newman Hydraulic Hybrid Vehicle
US9702424B2 (en) 2014-10-06 2017-07-11 ClearMotion, Inc. Hydraulic damper, hydraulic bump-stop and diverter valve

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050060069A1 (en) * 1997-10-22 2005-03-17 Breed David S. Method and system for controlling a vehicle
US6502837B1 (en) * 1998-11-11 2003-01-07 Kenmar Company Trust Enhanced computer optimized adaptive suspension system and method
US20140195112A1 (en) * 2013-01-08 2014-07-10 Ford Global Technologies, Llc Adaptive Active Suspension System With Road Preview
US20140195114A1 (en) * 2013-01-10 2014-07-10 Ford Global Technologies, Llc Suspension Control System To Facilitate Wheel Motions During Parking

Cited By (180)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9597939B2 (en) 2008-04-17 2017-03-21 ClearMotion, Inc. Hydraulic energy transfer
US9260011B2 (en) 2008-04-17 2016-02-16 Levant Power Corporation Hydraulic energy transfer
US9695900B2 (en) 2009-10-06 2017-07-04 Tenneco Automotive Operating Company Inc. Damper with digital valve
US9810282B2 (en) 2009-10-06 2017-11-07 Tenneco Automotive Operating Company Inc. Damper with digital valve
US9035477B2 (en) 2010-06-16 2015-05-19 Levant Power Corporation Integrated energy generating damper
US9689382B2 (en) 2010-06-16 2017-06-27 ClearMotion, Inc. Integrated energy generating damper
US20140214283A1 (en) * 2011-10-04 2014-07-31 Parker-Hannifin Corporation Method and System for Controlling Electric Actuators
US9223302B2 (en) * 2011-10-04 2015-12-29 Parker-Hannifin Corporation Method and system for controlling electric actuators
US20150339921A1 (en) * 2012-11-13 2015-11-26 Audi Ag Method for making available route information by means of at least one motor vehicle
US9368030B2 (en) * 2012-11-13 2016-06-14 Audi Ag Method for making available route information by means of at least one motor vehicle
US9925842B2 (en) 2013-02-28 2018-03-27 Tenneco Automotive Operating Company Inc. Valve switching controls for adjustable damper
US9884533B2 (en) 2013-02-28 2018-02-06 Tenneco Automotive Operating Company Inc. Autonomous control damper
US10000104B2 (en) 2013-02-28 2018-06-19 Tenneco Automotive Operating Company Inc. Damper with integrated electronics
US9802456B2 (en) 2013-02-28 2017-10-31 Tenneco Automotive Operating Company Inc. Damper with integrated electronics
US10029534B2 (en) 2013-03-15 2018-07-24 ClearMotion, Inc. Hydraulic actuator with on-demand energy flow
US9440507B2 (en) 2013-03-15 2016-09-13 Levant Power Corporation Context aware active suspension control system
US9550404B2 (en) 2013-03-15 2017-01-24 Levant Power Corporation Active suspension with on-demand energy flow
US10412368B2 (en) 2013-03-15 2019-09-10 Uber Technologies, Inc. Methods, systems, and apparatus for multi-sensory stereo vision for robotics
US9174508B2 (en) 2013-03-15 2015-11-03 Levant Power Corporation Active vehicle suspension
US9809078B2 (en) * 2013-03-15 2017-11-07 ClearMotion, Inc. Multi-path fluid diverter valve
US9597940B2 (en) 2013-03-15 2017-03-21 ClearMotion, Inc. Active vehicle suspension
US9879746B2 (en) 2013-03-15 2018-01-30 Tenneco Automotive Operating Company Inc. Rod guide system and method with multiple solenoid valve cartridges and multiple pressure regulated valve assemblies
US9676244B2 (en) 2013-03-15 2017-06-13 ClearMotion, Inc. Integrated active suspension smart valve
US9879748B2 (en) 2013-03-15 2018-01-30 Tenneco Automotive Operating Company Inc. Two position valve with face seal and pressure relief port
US10160276B2 (en) 2013-03-15 2018-12-25 ClearMotion, Inc. Contactless sensing of a fluid-immersed electric motor
US9694639B2 (en) 2013-03-15 2017-07-04 ClearMotion, Inc. Distributed active suspension control system
US9702349B2 (en) 2013-03-15 2017-07-11 ClearMotion, Inc. Active vehicle suspension system
US20160031285A1 (en) * 2013-03-15 2016-02-04 Levant Power Corporation Multi-path fluid diverter valve
US9707814B2 (en) 2013-03-15 2017-07-18 ClearMotion, Inc. Active stabilization system for truck cabins
US9855814B2 (en) 2013-04-23 2018-01-02 ClearMotion, Inc. Active suspension with structural actuator
US9733643B2 (en) 2013-12-20 2017-08-15 Agjunction Llc Hydraulic interrupter safety system and method
US10539958B2 (en) 2013-12-20 2020-01-21 Agjunction Llc Hydraulic interrupter safety system and method
US10377371B2 (en) 2014-04-02 2019-08-13 ClearMotion, Inc. Active safety suspension system
US10316492B2 (en) * 2014-07-31 2019-06-11 Cnh Industrial America Llc Active force/vibration feedback control method and apparatus for a movable machine
US20170267049A1 (en) * 2014-08-19 2017-09-21 Kyb Corporation Suspension Control Apparatus, Suspension Control Method, and Program
US9702424B2 (en) 2014-10-06 2017-07-11 ClearMotion, Inc. Hydraulic damper, hydraulic bump-stop and diverter valve
US10867139B2 (en) 2014-11-12 2020-12-15 Joseph E. Kovarik Method and system for autonomous vehicles
US11151339B2 (en) 2014-11-12 2021-10-19 Joseph E. Kovarik Method and system for charging electric autonomous vehicles
US11568159B2 (en) 2014-11-12 2023-01-31 Joseph E. Kovarik Method for charging an electric vehicle
US20170294120A1 (en) * 2014-11-17 2017-10-12 Hitachi Automotive Systems Ltd. Automatic driving system
US10783781B2 (en) * 2014-11-17 2020-09-22 Hitachi Automotive Systems, Ltd. Automatic driving system
US10246094B2 (en) * 2014-12-09 2019-04-02 Ford Global Technologies, Llc Autonomous vehicle cornering maneuver
US20160159360A1 (en) * 2014-12-09 2016-06-09 Ford Global Technologies, Llc Autonomous vehicle cornering maneuver
CN105667504A (en) * 2014-12-09 2016-06-15 福特全球技术公司 Autonomous vehicle cornering maneuver
US9937765B2 (en) * 2015-04-28 2018-04-10 Ram Sivaraman Method of adapting an automobile suspension in real-time
US20160325595A1 (en) * 2015-05-08 2016-11-10 Man Truck & Bus Ag Method For Controlling The Damping Force Of Adjustable Dampers In Motor Vehicles, Particularly In Commercial Vehicles
US10131446B1 (en) * 2015-07-16 2018-11-20 Near Earth Autonomy, Inc. Addressing multiple time around (MTA) ambiguities, particularly for lidar systems, and particularly for autonomous aircraft
US10782701B2 (en) 2015-07-30 2020-09-22 Samsung Electronics Co., Ltd. Autonomous vehicle and method of controlling the same
US10962378B2 (en) 2015-07-30 2021-03-30 Samsung Electronics Co., Ltd. Autonomous vehicle and method of controlling the autonomous vehicle
US11460308B2 (en) 2015-07-31 2022-10-04 DoorDash, Inc. Self-driving vehicle's response to a proximate emergency vehicle
US9869560B2 (en) 2015-07-31 2018-01-16 International Business Machines Corporation Self-driving vehicle's response to a proximate emergency vehicle
US9483948B1 (en) 2015-08-07 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and pedestrians
US9785145B2 (en) 2015-08-07 2017-10-10 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9721397B2 (en) 2015-08-11 2017-08-01 International Business Machines Corporation Automatic toll booth interaction with self-driving vehicles
US9718471B2 (en) 2015-08-18 2017-08-01 International Business Machines Corporation Automated spatial separation of self-driving vehicles from manually operated vehicles
US9481366B1 (en) 2015-08-19 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and animals
US10564297B2 (en) * 2015-08-20 2020-02-18 Trimble Inc. Cordless inertial vehicle navigation with elevation data input
US20170052261A1 (en) * 2015-08-20 2017-02-23 Trimble Navigation Limited Cordless inertial vehicle navigation with elevation data input
US9896100B2 (en) 2015-08-24 2018-02-20 International Business Machines Corporation Automated spatial separation of self-driving vehicles from other vehicles based on occupant preferences
US10202117B2 (en) 2015-08-24 2019-02-12 International Business Machines Corporation Automated spatial separation of self-driving vehicles from other vehicles based on occupant preferences
US10173679B2 (en) 2015-08-24 2019-01-08 International Business Machines Corporation Automated spatial separation of self-driving vehicles from other vehicles based on occupant preferences
US10235817B2 (en) 2015-09-01 2019-03-19 Ford Global Technologies, Llc Motion compensation for on-board vehicle sensors
US20170061669A1 (en) * 2015-09-01 2017-03-02 Mitsubishi Jidosha Kogyo Kabushiki Kaisha Vehicular information processing apparatus
US9884629B2 (en) 2015-09-02 2018-02-06 International Business Machines Corporation Redirecting self-driving vehicles to a product provider based on physiological states of occupants of the self-driving vehicles
US9731726B2 (en) 2015-09-02 2017-08-15 International Business Machines Corporation Redirecting self-driving vehicles to a product provider based on physiological states of occupants of the self-driving vehicles
US11832239B2 (en) 2015-09-15 2023-11-28 Lg Electronics Inc. Resource selection method for V2X operation of terminal in wireless communication system, and terminal using method
US10973041B2 (en) * 2015-09-15 2021-04-06 Lg Electronics Inc. Resource selection method for V2X operation of terminal in wireless communication system, and terminal using method
US9513632B1 (en) 2015-09-16 2016-12-06 International Business Machines Corporation Driving mode alerts from self-driving vehicles
US11738765B2 (en) 2015-09-25 2023-08-29 Slingshot Iot Llc Controlling driving modes of self-driving vehicles
US11091171B2 (en) 2015-09-25 2021-08-17 Slingshot Iot Llc Controlling driving modes of self-driving vehicles
US10029701B2 (en) 2015-09-25 2018-07-24 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9566986B1 (en) 2015-09-25 2017-02-14 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US10717446B2 (en) 2015-09-25 2020-07-21 Slingshot Iot Llc Controlling driving modes of self-driving vehicles
US11597402B2 (en) 2015-09-25 2023-03-07 Slingshot Iot Llc Controlling driving modes of self-driving vehicles
US9481367B1 (en) 2015-10-14 2016-11-01 International Business Machines Corporation Automated control of interactions between self-driving vehicles and animals
US9723473B2 (en) * 2015-10-14 2017-08-01 Toyota Jidosha Kabushiki Kaisha Millimeter wave communication system
US9981669B2 (en) 2015-10-15 2018-05-29 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9834224B2 (en) 2015-10-15 2017-12-05 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9751532B2 (en) 2015-10-27 2017-09-05 International Business Machines Corporation Controlling spacing of self-driving vehicles based on social network relationships
US10543844B2 (en) 2015-10-27 2020-01-28 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US9944291B2 (en) 2015-10-27 2018-04-17 International Business Machines Corporation Controlling driving modes of self-driving vehicles
US10607293B2 (en) 2015-10-30 2020-03-31 International Business Machines Corporation Automated insurance toggling for self-driving vehicles
US10176525B2 (en) 2015-11-09 2019-01-08 International Business Machines Corporation Dynamically adjusting insurance policy parameters for a self-driving vehicle
US9791861B2 (en) 2015-11-12 2017-10-17 International Business Machines Corporation Autonomously servicing self-driving vehicles
US10036642B2 (en) 2015-12-08 2018-07-31 Uber Technologies, Inc. Automated vehicle communications system
US20180163647A1 (en) * 2015-12-08 2018-06-14 Ford Global Technologies, Llc Fuel vapor flow based on road conditions
US10234863B2 (en) 2015-12-08 2019-03-19 Uber Technologies, Inc. Autonomous vehicle communication configuration system
US10021614B2 (en) 2015-12-08 2018-07-10 Uber Technologies, Inc. Optimizing communication for autonomous vehicles
US10113494B2 (en) * 2015-12-08 2018-10-30 Ford Global Technologies, Llc Fuel vapor flow based on road conditions
US10243604B2 (en) 2015-12-08 2019-03-26 Uber Technologies, Inc. Autonomous vehicle mesh networking configuration
US10050760B2 (en) 2015-12-08 2018-08-14 Uber Technologies, Inc. Backend communications system for a fleet of autonomous vehicles
US9740205B2 (en) 2015-12-08 2017-08-22 Uber Technologies, Inc. Autonomous vehicle communication configuration system
US10061326B2 (en) 2015-12-09 2018-08-28 International Business Machines Corporation Mishap amelioration based on second-order sensing by a self-driving vehicle
US20190023095A1 (en) * 2015-12-18 2019-01-24 Jaguar Land Rover Limited Control unit for an active suspension system
US20170210297A1 (en) * 2016-01-14 2017-07-27 Faraday&Future Inc. Modular mirror assembly
US10315578B2 (en) * 2016-01-14 2019-06-11 Faraday&Future Inc. Modular mirror assembly
US10109195B2 (en) 2016-01-27 2018-10-23 International Business Machines Corporation Selectively controlling a self-driving vehicle's access to a roadway
US9836973B2 (en) 2016-01-27 2017-12-05 International Business Machines Corporation Selectively controlling a self-driving vehicle's access to a roadway
US20190033876A1 (en) * 2016-01-29 2019-01-31 Nissan Motor Co., Ltd. Vehicle Travel Control Method and Vehicle Travel Control Device
US10705530B2 (en) * 2016-01-29 2020-07-07 Nissan Motor Co., Ltd. Vehicle travel control method and vehicle travel control device
US9969326B2 (en) 2016-02-22 2018-05-15 Uber Technologies, Inc. Intention signaling for an autonomous vehicle
US10160378B2 (en) 2016-02-22 2018-12-25 Uber Technologies, Inc. Light output system for a self-driving vehicle
US9902311B2 (en) * 2016-02-22 2018-02-27 Uber Technologies, Inc. Lighting device for a vehicle
AU2016393890B2 (en) * 2016-02-22 2019-02-21 Aurora Operations, Inc. Intention signaling for an autonomous vehicle
US10239529B2 (en) 2016-03-01 2019-03-26 Ford Global Technologies, Llc Autonomous vehicle operation based on interactive model predictive control
US20170259753A1 (en) * 2016-03-14 2017-09-14 Uber Technologies, Inc. Sidepod stereo camera system for an autonomous vehicle
US10077007B2 (en) * 2016-03-14 2018-09-18 Uber Technologies, Inc. Sidepod stereo camera system for an autonomous vehicle
US10486699B2 (en) * 2016-05-04 2019-11-26 Ford Global Technologies, Llc Off-road autonomous driving
US9849883B2 (en) 2016-05-04 2017-12-26 Ford Global Technologies, Llc Off-road autonomous driving
GB2551630A (en) * 2016-05-04 2017-12-27 Ford Global Tech Llc Off road autonomous driving
US11295372B2 (en) 2016-05-24 2022-04-05 International Business Machines Corporation Directing movement of a self-driving vehicle based on sales activity
US10685391B2 (en) 2016-05-24 2020-06-16 International Business Machines Corporation Directing movement of a self-driving vehicle based on sales activity
US10442475B2 (en) * 2016-07-26 2019-10-15 Man Truck & Bus Ag Method and device for performing open-loop control of a driver's cab mount
US20180029651A1 (en) * 2016-07-26 2018-02-01 Man Truck & Bus Ag Method and device for performing open-loop control of a driver's cab mount
DE102016116856A1 (en) 2016-09-08 2018-03-08 Knorr-Bremse Systeme für Nutzfahrzeuge GmbH System and method for adjusting a height of at least a part of a commercial vehicle
WO2018046250A1 (en) 2016-09-08 2018-03-15 Knorr-Bremse Systeme für Nutzfahrzeuge GmbH System and method for adjusting a height of at least one part of a utility vehicle
US10093322B2 (en) 2016-09-15 2018-10-09 International Business Machines Corporation Automatically providing explanations for actions taken by a self-driving vehicle
US10207718B2 (en) 2016-09-15 2019-02-19 International Business Machines Corporation Automatically providing explanations for actions taken by a self-driving vehicle
US10643256B2 (en) 2016-09-16 2020-05-05 International Business Machines Corporation Configuring a self-driving vehicle for charitable donations pickup and delivery
WO2018057658A1 (en) * 2016-09-20 2018-03-29 Apple Inc. Motion minimization systems and methods
US10191493B2 (en) 2016-09-27 2019-01-29 Baidu Usa Llc Vehicle position point forwarding method for autonomous vehicles
WO2018063426A1 (en) * 2016-09-27 2018-04-05 Baidu Usa Llc A vehicle position point forwarding method for autonomous vehicles
US10535265B2 (en) * 2016-11-30 2020-01-14 Hyundai Motor Company Apparatus and method for recognizing position of vehicle
US10474164B2 (en) 2016-12-30 2019-11-12 DeepMap Inc. Representing navigable surface boundaries of lanes in high definition maps for autonomous vehicles
US10845820B2 (en) * 2016-12-30 2020-11-24 DeepMap Inc. Route generation using high definition maps for autonomous vehicles
WO2018125848A1 (en) * 2016-12-30 2018-07-05 DeepMap Inc. Route generation using high definition maps for autonomous vehicles
US20180188743A1 (en) * 2016-12-30 2018-07-05 DeepMap Inc. Route generation using high definition maps for autonomous vehicles
US10259452B2 (en) 2017-01-04 2019-04-16 International Business Machines Corporation Self-driving vehicle collision management system
US10363893B2 (en) 2017-01-05 2019-07-30 International Business Machines Corporation Self-driving vehicle contextual lock control system
US10529147B2 (en) 2017-01-05 2020-01-07 International Business Machines Corporation Self-driving vehicle road safety flare deploying system
US11001121B2 (en) * 2017-01-18 2021-05-11 Ntn Corporation Vehicular suspension device
US10703359B2 (en) * 2017-01-27 2020-07-07 Ford Global Technologies, Llc Controlling vehicle orientation
US20180215373A1 (en) * 2017-01-27 2018-08-02 Ford Global Technologies, Llc Semi-stationary surface
US10983520B2 (en) 2017-03-07 2021-04-20 Uber Technologies, Inc. Teleassistance data prioritization for self-driving vehicles
US10293818B2 (en) 2017-03-07 2019-05-21 Uber Technologies, Inc. Teleassistance data prioritization for self-driving vehicles
US10202126B2 (en) 2017-03-07 2019-02-12 Uber Technologies, Inc. Teleassistance data encoding for self-driving vehicles
US10152060B2 (en) 2017-03-08 2018-12-11 International Business Machines Corporation Protecting contents of a smart vault being transported by a self-driving vehicle
US20210240184A1 (en) * 2017-03-09 2021-08-05 Waymo Llc Preparing autonomous vehicles for turns
US11009875B2 (en) 2017-03-09 2021-05-18 Waymo Llc Preparing autonomous vehicles for turns
US11938967B2 (en) * 2017-03-09 2024-03-26 Waymo Llc Preparing autonomous vehicles for turns
US20200039316A1 (en) * 2017-04-05 2020-02-06 ClearMotion, Inc. Active force cancellation at structural interfaces
US20180334162A1 (en) * 2017-05-22 2018-11-22 Ford Global Technologies, Llc Torque converter control for a variable displacement engine
US11518367B2 (en) 2017-05-22 2022-12-06 Ford Global Technologies, Llc Torque converter control for a variable displacement engine
US10543836B2 (en) * 2017-05-22 2020-01-28 Ford Global Technologies, Llc Torque converter control for a variable displacement engine
US10479160B2 (en) 2017-06-06 2019-11-19 Tenneco Automotive Operating Company Inc. Damper with printed circuit board carrier
US10588233B2 (en) 2017-06-06 2020-03-10 Tenneco Automotive Operating Company Inc. Damper with printed circuit board carrier
US10493622B2 (en) 2017-07-14 2019-12-03 Uatc, Llc Systems and methods for communicating future vehicle actions to be performed by an autonomous vehicle
US10737544B2 (en) 2017-07-24 2020-08-11 Ford Global Technologies, Llc Systems and methods to control a suspension of a vehicle
US11733707B2 (en) 2017-09-13 2023-08-22 ClearMotion, Inc. Road surface-based vehicle control
US10901432B2 (en) * 2017-09-13 2021-01-26 ClearMotion, Inc. Road surface-based vehicle control
US20200380865A1 (en) * 2017-10-06 2020-12-03 Zoox, Inc. Enhanced travel modes for vehicles
US10692377B1 (en) * 2017-10-06 2020-06-23 Zoox, Inc. Enhanced travel modes for vehicles
US11657714B2 (en) * 2017-10-06 2023-05-23 Zoox, Inc. Enhanced travel modes for vehicles
US20210197838A1 (en) * 2017-11-03 2021-07-01 Zf Friedrichshafen Ag Method for adapting the comfort of a vehicle, regulating device and vehicle
US10967862B2 (en) 2017-11-07 2021-04-06 Uatc, Llc Road anomaly detection for autonomous vehicle
US11731627B2 (en) 2017-11-07 2023-08-22 Uatc, Llc Road anomaly detection for autonomous vehicle
US10974563B2 (en) * 2017-12-20 2021-04-13 Audi Ag Control of a suspension component of a vehicle
US11794749B2 (en) 2018-04-18 2023-10-24 Rivian Ip Holdings, Llc Methods, systems, and media for determining characteristics of roads
US11104345B2 (en) 2018-04-18 2021-08-31 Rivian Ip Holdings, Llc Methods, systems, and media for determining characteristics of roads
WO2019204495A1 (en) * 2018-04-18 2019-10-24 Rivian Ip Holdings, Llc Methods, systems, and media for determining characteristics of roads
US10800403B2 (en) * 2018-05-14 2020-10-13 GM Global Technology Operations LLC Autonomous ride dynamics comfort controller
CN110646226A (en) * 2018-06-27 2020-01-03 通用汽车环球科技运作有限责任公司 Test method and metric for assessing quality of road feedback to driver in steer-by-wire system
US11535159B2 (en) 2018-07-18 2022-12-27 Faraday & Future Inc. System and methods for mounting a peripheral vehicular device
US10843700B2 (en) 2018-10-17 2020-11-24 Aptiv Technologies Limited Vehicle system and method for steep slope site avoidance
EP3640110A1 (en) * 2018-10-17 2020-04-22 Aptiv Technologies Limited Vehicle system and method for steep slope pick-up and drop-off site avoidance
US11428536B2 (en) * 2018-12-19 2022-08-30 Nvidia Corporation Navigable boundary generation for autonomous vehicles
US20200200877A1 (en) * 2018-12-21 2020-06-25 Infineon Technologies Ag Real time gating and signal routing in laser and detector arrays for lidar application
US11709231B2 (en) * 2018-12-21 2023-07-25 Infineon Technologies Ag Real time gating and signal routing in laser and detector arrays for LIDAR application
US20220161624A1 (en) * 2019-03-27 2022-05-26 Hitachi Astemo, Ltd. Suspension control apparatus
US20200408533A1 (en) * 2019-06-28 2020-12-31 DeepMap Inc. Deep learning-based detection of ground features using a high definition map
US11001267B2 (en) 2019-08-01 2021-05-11 Lear Corporation Method and system for proactively adjusting vehicle occupant biometric monitor in view of upcoming road conditions
US20220242417A1 (en) * 2019-08-27 2022-08-04 Bayerische Motoren Werke Aktiengesellschaft Operational Assistance Method for a Vehicle, Control Unit, and Vehicle
US11541882B2 (en) * 2019-09-24 2023-01-03 Volvo Car Corporation Low-impact collision detection
US11505023B2 (en) * 2019-12-13 2022-11-22 Hyundai Motor Company Method and apparatus for controlling electronic control suspension
WO2021138700A1 (en) * 2020-01-05 2021-07-08 Eva, Llc Automated steering control mechanism and system for wheeled vehicles
US11830302B2 (en) 2020-03-24 2023-11-28 Uatc, Llc Computer system for utilizing ultrasonic signals to implement operations for autonomous vehicles
US11529953B2 (en) 2020-04-30 2022-12-20 Ford Global Technologies, Llc Adjust operational parameters based on identified roadway irregularities
US11859571B2 (en) 2021-07-21 2024-01-02 Ford Global Technologies, Llc Methods for a road surface metric
US11966808B2 (en) 2023-01-23 2024-04-23 Joseph E. Kovarik Method for charging an electric vehicle
KR102616457B1 (en) * 2023-06-16 2023-12-21 에이디어스 주식회사 Air Suspension Operation Planning Generation Device for Autonomous Vehicles

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US9694639B2 (en) 2017-07-04
EP2968709A2 (en) 2016-01-20
US10160276B2 (en) 2018-12-25
US9707814B2 (en) 2017-07-18
US20140297117A1 (en) 2014-10-02
US10828953B2 (en) 2020-11-10
WO2014145018A2 (en) 2014-09-18
EP2968709A4 (en) 2017-08-09
US20140297113A1 (en) 2014-10-02
EP3626485A1 (en) 2020-03-25
US20180154723A1 (en) 2018-06-07
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US20140294601A1 (en) 2014-10-02
WO2014145018A3 (en) 2015-01-29

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