EP4157470B1 - Bremssysteme und -verfahren für übungsgeräte - Google Patents
Bremssysteme und -verfahren für übungsgeräteInfo
- Publication number
- EP4157470B1 EP4157470B1 EP21733673.4A EP21733673A EP4157470B1 EP 4157470 B1 EP4157470 B1 EP 4157470B1 EP 21733673 A EP21733673 A EP 21733673A EP 4157470 B1 EP4157470 B1 EP 4157470B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- resistance
- user
- flywheel
- target
- exercise
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Active
Links
Classifications
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B24/00—Electric or electronic controls for exercising apparatus of preceding groups; Controlling or monitoring of exercises, sportive games, training or athletic performances
- A63B24/0087—Electric or electronic controls for exercising apparatus of groups A63B21/00 - A63B23/00, e.g. controlling load
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B21/00—Exercising apparatus for developing or strengthening the muscles or joints of the body by working against a counterforce, with or without measuring devices
- A63B21/22—Resisting devices with rotary bodies
- A63B21/225—Resisting devices with rotary bodies with flywheels
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B22/00—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements
- A63B22/06—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements with support elements performing a rotating cycling movement, i.e. a closed path movement
- A63B22/0605—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements with support elements performing a rotating cycling movement, i.e. a closed path movement performing a circular movement, e.g. ergometers
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B24/00—Electric or electronic controls for exercising apparatus of preceding groups; Controlling or monitoring of exercises, sportive games, training or athletic performances
- A63B24/0062—Monitoring athletic performances, e.g. for determining the work of a user on an exercise apparatus, the completed jogging or cycling distance
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B71/00—Games or sports accessories not covered in groups A63B1/00 - A63B69/00
- A63B71/06—Indicating or scoring devices for games or players, or for other sports activities
- A63B71/0619—Displays, user interfaces and indicating devices, specially adapted for sport equipment, e.g. display mounted on treadmills
- A63B71/0622—Visual, audio or audio-visual systems for entertaining, instructing or motivating the user
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B24/00—Electric or electronic controls for exercising apparatus of preceding groups; Controlling or monitoring of exercises, sportive games, training or athletic performances
- A63B24/0087—Electric or electronic controls for exercising apparatus of groups A63B21/00 - A63B23/00, e.g. controlling load
- A63B2024/009—Electric or electronic controls for exercising apparatus of groups A63B21/00 - A63B23/00, e.g. controlling load the load of the exercise apparatus being controlled in synchronism with visualising systems, e.g. hill slope
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B71/00—Games or sports accessories not covered in groups A63B1/00 - A63B69/00
- A63B71/06—Indicating or scoring devices for games or players, or for other sports activities
- A63B71/0619—Displays, user interfaces and indicating devices, specially adapted for sport equipment, e.g. display mounted on treadmills
- A63B71/0622—Visual, audio or audio-visual systems for entertaining, instructing or motivating the user
- A63B2071/0638—Displaying moving images of recorded environment, e.g. virtual environment
- A63B2071/0644—Displaying moving images of recorded environment, e.g. virtual environment with display speed of moving landscape controlled by the user's performance
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B71/00—Games or sports accessories not covered in groups A63B1/00 - A63B69/00
- A63B71/06—Indicating or scoring devices for games or players, or for other sports activities
- A63B2071/0691—Maps, e.g. yardage maps or electronic maps
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B22/00—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements
- A63B22/02—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements with movable endless bands, e.g. treadmills
- A63B22/0235—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements with movable endless bands, e.g. treadmills driven by a motor
- A63B22/0242—Exercising apparatus specially adapted for conditioning the cardio-vascular system, for training agility or co-ordination of movements with movable endless bands, e.g. treadmills driven by a motor with speed variation
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B2220/00—Measuring of physical parameters relating to sporting activity
- A63B2220/20—Distances or displacements
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B2225/00—Miscellaneous features of sport apparatus, devices or equipment
- A63B2225/20—Miscellaneous features of sport apparatus, devices or equipment with means for remote communication, e.g. internet or the like
-
- A—HUMAN NECESSITIES
- A63—SPORTS; GAMES; AMUSEMENTS
- A63B—APPARATUS FOR PHYSICAL TRAINING, GYMNASTICS, SWIMMING, CLIMBING, OR FENCING; BALL GAMES; TRAINING EQUIPMENT
- A63B24/00—Electric or electronic controls for exercising apparatus of preceding groups; Controlling or monitoring of exercises, sportive games, training or athletic performances
- A63B24/0084—Exercising apparatus with means for competitions, e.g. virtual races
Definitions
- the present application relates generally to the field of exercise equipment and methods, and more specifically to systems and methods for sensing and/or adjusting resistance in exercise equipment.
- Modern fitness equipment is often configured to allow a user to adjust the intensity and/or other settings according to personal training goals.
- the adjustment operation may be difficult and cumbersome for many users, especially during exercise.
- an exercise cycle such as a spin bike
- the torque adjustment can be difficult to operate and take a long time to accurately set, inconveniencing the user during exercise.
- the torque adjustment can also interfere with the exercise session if the user is distracted by sudden changes to the torque during adjustment.
- an auxiliary brake may also be included to stop the spinning flywheel and the drivetrain for safety purposes.
- US8845493 discloses systems for generating exercise programs simulating real-world terrain.
- a stationary exercise cycle includes an incline mechanism adjusting the vertical and/or lateral incline of the stationary exercise cycle.
- the incline mechanism responds to control signals that change vertical incline to simulate an ascent or descent of a hill, or a lateral incline to simulate a turn.
- a communication system provides exercise programs to the exercise cycle by operating in connection with third party providers of topographical, map, or other information.
- US2007/232452 discloses computerized spinning exercise system comprises a spinning exercise machine, a sensing system, and a computer and communication system coupled to the sensing system.
- the spinning exercise machine has a flywheel and different resistance settings for the spinning exercise machine may be selected.
- the sensing system counts rotations of the flywheel due to activity of a person when exercising on the spinning exercise machine.
- the computer and communication system is arranged to process mechanical properties of the spinning exercise machine, the count of rotations and a selected resistance setting of the spinning exercise machine in order to generate user performance data for the activity.
- EP0925096 discloses an exercise device comprising: a control unit having a processor; an input device connected to the control unit for providing information related to a route to be simulated on the exercise device; a resistance unit module operably connected to the control unit; an output interface operably connected to the control unit; a heart rate determination apparatus operably connected to the control unit which provides a heart rate value; and software means operative on the processor for: controlling the resistance unit module based on information provided through the input device regarding the route to be simulated; outputting exercise related information through the output interface, and monitoring and processing the heart rate values provided to the control unit.
- a braking system includes a plurality of magnets providing varying exercise resistance when moved in relation to a flywheel of the exercise apparatus.
- a braking system includes both an easy to use and accurate resistance adjustment assembly for adjusting resistance during exercise and an auxiliary brake for bringing the flywheel to a full stop through the same adjustment knob, providing convenience and safety for the operator.
- a control system smoothly adjusts the resistance during operation and derives power, cadence, resistance, and other values for use by the system and display to the user.
- the resistance adjustment apparatus is operable to control the level of resistance in the resistance brake using electronic systems and methods. Further, it may be desirable to physically measure the amount of torque being applied to the flywheel of an exercise bike, and the amount of resistance being felt by the user in order to determine how much instantaneous power is being generated and how much total work has been done by the user. Physically measuring the level of applied resistance increases the accuracy of the measurement compared to conventional methods that infer an amount of resistance applied by measuring the position of the braking mechanism relative to the flywheel and comparing this measurement to a previously measured and correlated resistance level.
- the embodiments disclosed herein provide these and other advantages as will be apparent to those skilled in the art.
- a resistance system includes an electronic resistance assembly operable to adjust the resistance applied to a flywheel 5 of an exercise apparatus.
- the electronic resistance assembly may include an electrically driven actuator 1 that drives a resistance brake assembly 2 to pivot towards and away from the flywheel 5 about a pivot point 3.
- the pivot point 3 comprises one or more screws, bolts or other components to pivotably attach the resistance brake assembly 2 to a frame of the cycle 9.
- the resistance brake assembly 2 includes two or more magnets 4 selected and arranged such that, as the magnets 4 move closer to (e.g., eclipsing the edge of the flywheel 5) and/or further away from the center of the flywheel 5, the amount of resistance can be adjusted from a maximum level to zero.
- the flywheel 5 may be made of aluminum or other material capable of generating resistive forces while passing through the field of the magnet 4.
- the actuator 1 is a stepper motor, such as a permanent magnet linear stepper motor, comprising a shaft 6.
- the shaft 6 has a first end pivotably attached to the frame of the cycle 9, allowing the shaft 6 to pivot as the stepper motor traverses along the shaft 6.
- the fixed end is hinged preventing rotation along its primary axis.
- the stepper motor body 1 is pivotably attached to the resistance brake assembly 2 at a mounting point 8, allowing the stepper motor 1 to pivot relative to the resistance brake assembly 2 during operation.
- the stepper motor 1 is operable to translate up and down the threaded shaft 6, causing the brake assembly 2 to pivot about the pivot point 3.
- the magnets 4 are selectively moved up and down relative to the flywheel 5 to adjust the resistance.
- the resistance system further includes an auxiliary brake assembly 10, which can operate independently of the pivoting resistance brake assembly 2.
- the auxiliary brake assembly 10 may be activated by the operator by pressing down onto an adjustment knob 11, which will cause an elongated adjustment shaft 12 to translate towards the flywheel, causing the pivoting friction brake assembly 10 to pivot towards the flywheel 5, eventually contacting the edge of the flywheel and providing the braking force.
- Rotating the adjustment knob 11 will cause the elongated adjustment shaft 12 to rotate about its primary axis which is connected to an electrical encoder (e.g., as shown in FIG. 4A ).
- the electrical encoder generates a signal in response to sensed rotation of the adjustment knob 11, which may be used by the electronic control system to generate commands to activate the electronic actuator 1 to move the pivoting resistance brake assembly 2 closer or further away from the flywheel 5.
- a load cell 13 measures the reaction force transmitted from a second part 14 of the pivoting brake assembly (including a magnet holding bracket and one or more magnets held therein) to the first part 7 mounted to the frame.
- the load cell 13 may have metal body and be comprised of bonded metal foil strain gauges, silicon strain gauges, and/or other components.
- the load cell 13 joins the first part of the brake assembly 7 to the second part of the brake assembly 14.
- the brake assembly 14 is supported by the load cell 13 and is not supported by other devices or assemblies.
- the configuration of the magnet holding bracket 14 and the load cell 13 will be such that the force measured by the load cell 13 will be proportional to the load being applied to the flywheel 5.
- the product of the applied force, and the distance from the center of the flywheel will yield the torque applied to the flywheel.
- the rotational speed of the flywheel may also be measured using one or more sensors (e.g., using one or more sensors to measure RPMs).
- the braking system 20 is provided for an exercise cycle that includes a torque sensing apparatus that can reduce the adjustment effort and shorten the sensing time, thereby increasing the convenience of the operation for the user.
- the braking system 20 includes a torque adjusting unit 30 and a linkage assembly 40.
- the torque adjusting unit 30 includes an adjusting bracket 31, an adjusting shaft 34, and a brake compression spring 35.
- the brake compression spring 35 is provided to bias the adjust shaft 34 in an upward position (no resistance on flywheel) absent downward force applied to the adjusting shaft 34.
- the adjusting bracket 31 is disposed around a periphery of a flywheel 14, with one end of the adjusting bracket 31 attached to load cell 40.
- the adjusting shaft 34 (in some embodiments, a push rod having a push rod tip 36), passes through a brake encoder 37, which senses the rotation of the adjusting shaft 34.
- the push rod tip 36 includes an end portion adapted to correspondingly engage with a portion of brake pad assembly 50.
- a joint is formed between push rod tip 36 and the brake pad assembly 50 housing.
- the push rod tip 36 is substantially conical shaped with a rounded tip to engage a corresponding concave portion of the brake pad assembly 50 housing, allowing the push rod to apply downward pressure on the brake pad assembly 50, which pivotably rotates to the fly wheel 14.
- the push rod tip 36 and the brake pad assembly 50 housing may be correspondingly formed in other configurations that enable the push rod 34 to pivotably move the brake pad assembly 50 towards the flywheel 14.
- a brake pad 64 is disposed in the adjusting bracket 31 to apply additional resistance to the flywheel 14 when the adjusting bracket 31 is pushed down onto the flywheel 14 by the adjusting shaft 34.
- the adjusting bracket includes a brake pad disposed to apply a resistance to the flywheel when the adjusting bracket is pushed into the flywheel 14 by the adjusting shaft 34.
- a knob, handle, lever or other mechanism may be disposed at an end of the adjusting shaft 34 to facilitate the application of force to lower the brake pad assembly 50 to contact the flywheel 14.
- the load cell 40 is connected on a first end to the adjusting bracket 31 and on a second end to a first mounting bracket 60.
- An actuator such as stepper motor 70, is pivotably attached between the first mounting bracket 60 and a second mounting bracket 62.
- the stepper motor 70 includes a stepper motor rod 72 that is pivotably attached to a brake mounting bracket 74. In operation, the stepper motor 72 is driven to move up and down along the stepper motor rod 72.
- the mounting brackets 60 and 62 move up and down, causing corresponding movement of the adjusting bracket 31 relative to the flywheel 14, such that magnetic flux between one or more pairs of magnetic members 32 disposed on opposite sides of the flywheel is changed, providing resistance to the flywheel 14.
- the stepper motor 74 When the stepper motor 74 is driven, the mounting brackets 60 and 62 and the load cell 40 adjust accordingly.
- the torque adjustment unit 30 is driven to orient toward or away from the brake mounting bracket 74 such that a distance and orientation between the stepper motor 70 and the brake mounting bracket 74 is changed, as may be sensed by the load cell 40.
- the braking system 10 of the present embodiment includes a load cell 40 mounted to support and move the adjusting bracket 31 in response to the stepper motor 70 to provide resistance to the flywheel 14.
- the mounting brackets 60 and 62 are pivotably attached to a bike frame.
- the mounting brackets 60 and 62 are pivotably attached to the bike frame through a bike frame weldment 64, in an assembly that may include one or more screws, bolts and/or spacers to center the brake assembly over the flywheel and allow for pivoting of the brake assembly up and down relative to the flywheel.
- a brake mounting bracket pivotably connects the brake pad assembly 50 to the frame at the same pivot point connecting mounting bracket 60 to frame 64.
- a torque spring is provided to bias the brake pad assembly 50 upward absent downward force applied by the push down rod 34.
- FIG. 5A illustrates a stepper motor 70 in a first position adjacent to the brake mounting bracket 74. In this first position, the magnets in the adjusting bracket 31 are maintained in a position above the flywheel 14, providing minimal resistance on the flywheel 14.
- FIG. 5B illustrates the stepper motor 70 in a second position, adjacent to a second end of the stepper motor rod 72. In this second position, the magnets in the adjusting bracket 31 are lowered such that the flywheel is between each corresponding pair of magnets, thereby maximizing magnetic resistance during exercise. The position of the magnets relative to the flywheel 14 is sensed through the load cell 40.
- FIG. 5C illustrates the auxiliary brake in a first position, providing no resistance on the flywheel. In the first position, the brake pad assembly 50 is biased away from the flywheel 14.
- FIG. 5D illustrates the auxiliary brake in second position, with the brake pad 64 pressed against the flywheel 14 through the downward pressure applied by a user on the adjusting rod 34. It will be appreciated that the operation of the auxiliary brake does not affect the resistance applied by the magnets of the adjusting bracket 31, which is controlled by the stepper motor 70. It will be appreciated that certain advantages are achieved in the disclosure embodiments. For example, a user may be provided with a single knob that may be rotated to control the stepper motor 70 to raise or lower the resistance braking assembly, and that may be depressed to activate an auxiliary brake through a second braking assembly.
- a braking mechanism may include a resistance control system comprising a user-controlled adjustment knob and a brake encoder for sensing the user knob adjustments.
- the sensed knob adjustments may be translated into signals for driving an electric actuator to vary the resistance.
- accuracy will approach and/or exceed +/-1%.
- the actuator may include a stepper motor operable to selectively drive the brake assembly towards and away from the flywheel, with speed and precision exceeding human control. In this manner, the user is provided with fully programmatic control of brake level.
- the braking force is measured via a load cell, which may include a low cost, high precision load cell operable to measure forces generated directly within the brake mechanism. Braking force can be used with a measured flywheel speed to accurately calculate user power output.
- the actuator may comprise a 35mm permanent magnet, non-captive, linear stepper motor to actuate the braking mechanism.
- the load cell may include a low-cost aluminum, single point load cell, arranged such that the load cell is the only member connecting the magnet holding bracket to the rest of the braking mechanism.
- the stepper motor may include an integrated stepper driver with current control. In some embodiments, a stepper motor operable at 12v, 500-900mA may be used. Microstepping may be used for smooth and quiet operation.
- the signal from the load cell may be conditioned via integrated amplifiers and high-resolution analog-to-digital converters (ADCs) compatible for load cell amplification.
- ADCs analog-to-digital converters
- a standalone amplifier could be used in conjunction with a built in ADC on a microcontroller.
- the load cells may include conditioning circuitry and provide a digital output.
- the resistance magnets may include 6 resistance magnets arranged in 3 corresponding magnet pairs (or other paired arrangement). Each magnet may be, for example, 25mm diameter, 8mm thick sintered Neodymium rare earth magnets, grade N32.
- the resistance apparatus may include a magnet holder that is formed in one piece, machined and bent into shape for use as described herein. In some embodiments, two opposing linear bearings carry the measurement subassembly and common drawer slides or linear bearings with a similar envelope could be used.
- FIGs. 6A-B illustrate an alternate embodiment of a brake mechanism 600 in a first position ( FIG. 6A ) providing resistance to the flywheel 620 and a second position ( FIG. 6B ) with the magnets maintained in a position above the flywheel 620, providing minimal resistance on the flywheel 620.
- the brake mechanism 600 includes an actuator 602, a bracket 604, magnet brake components 606 disposed on the bracket 604, a load cell (not shown) disposed between the bracket and a mounting bracket 610, which is slidably mounted to drawer slides 614.
- the auxiliary e.g., emergency brake
- the auxiliary may be activated via a cable, plunger or other mechanical system.
- logical components are operable to evaluate the load cell signals and adjust for noise, accuracy, precision, resolution and/or drift throughout a workout.
- the logical components may include a calibration procedure, power calculation method, reporting of data to a display, tablet or other connected device, and/or other features associated with the operation of the exercise apparatus.
- the logical components may also function to evaluate and tune the actuator assembly motion, accuracy, speed and audible noise.
- communication with a tablet or display may be facilitated across a wired (e.g., using RS-232 standard) or wireless communications (e.g., Bluetooth, WiFi, etc.) standard.
- the logical components may include a "go to resistance" option directing the stepping motor/actuator to adjust the resistance until a desired resistance is sensed.
- FIG. 7 illustrates electrical and processing components for an example exercise apparatus in accordance with various embodiments of the present disclosure.
- a system 700 includes exercise apparatus electrical components 710 and an operator terminal 750.
- the exercise apparatus electrical components 710 facilitate the operation of an exercise apparatus, including communications with the operator terminal 750, controlling various components (e.g., a linear actuator), and receiving and processing sensor data.
- various components e.g., a linear actuator
- the exercise apparatus electrical components 710 include a controller 712, power supply 714, communications components 722, a stepper motor driver 716 for controlling the linear actuator 732, load cell circuitry 718 (e.g., PGA and/or ADC) for receiving a signal from load cell 734 and conditioning the signal, and interfaces with other sensors 736, which may include sensors for detecting flywheel RPMs and/or sensors for measuring changes in knob positon in response to user adjustments as disclosed herein.
- load cell circuitry 718 e.g., PGA and/or ADC
- the controller 712 may be implemented as one or more microprocessors, microcontrollers, application specific integrated circuits (ASICs), programmable logic devices (PLDs) (e.g., field programmable gate arrays (FPGAs), complex programmable logic devices (CPLDs), field programmable systems on a chip (FPSCs), or other types of programmable devices), or other processing devices used to control the operations of the exercise apparatus.
- ASICs application specific integrated circuits
- PLDs programmable logic devices
- FPGAs field programmable gate arrays
- CPLDs complex programmable logic devices
- FPSCs field programmable systems on a chip
- Communications components 722 may include wired and wireless interfaces.
- Wired interfaces may include communications links with the operator terminal 750, and may be implemented as one or more physical networks or device connect interfaces.
- Wireless interfaces may be implemented as one or more WiFi, Bluetooth, cellular, infrared, radio, and/or other types of network interfaces for wireless communications, and may facilitate communications with the operator terminal, and other wireless devices.
- the controller 712 is operable to provide control signals and commnications with the operator terminal 750.
- the operator terminal 750 is operable to communicate with and control the operation of the exercise apparatus electrical components 710 in response to user input.
- the operator terminal 750 includes a controller 760, exercise and user control logic 770, display components 780, user input/output components 790, and communications components 792.
- the processor 760 may be implemented as one or more microprocessors, microcontrollers, application specific integrated circuits (ASICs), programmable logic devices (PLDs) (e.g., field programmable gate arrays (FPGAs), complex programmable logic devices (CPLDs), field programmable systems on a chip (FPSCs), or other types of programmable devices), or other processing devices used to control the operator terminal.
- processor 760 may execute machine readable instructions (e.g., software, firmware, or other instructions) stored in a memory.
- Exercise logic 770 may be implemented as circuitry and/or a machine readable medium storing various machine readable instructions and data.
- exercise logic 770 may store an operating system and one or more applications as machine readable instructions that may be read and executed by controller 760 to perform various operations described herein.
- exercise logic 770 may be implemented as non-volatile memory (e.g., flash memory, hard drive, solid state drive, or other non-transitory machine readable mediums), volatile memory, or combinations thereof.
- the exercise logic 770 may include status, configuration and control features which may include various control features disclosed herein.
- the exercise logic 770 executes an exercise class (e.g., live or archived) which may include an instructor and one or more other class participants.
- the exercise class may include a leaderboard and/or other comparative performance parameters for display to the user during the the exercise class.
- Communications components 792 may include wired and wireless interfaces.
- a wired interface may be implemented as one or more physical network or device connection interfaces (e.g., Ethernet, and/or other protocols) configured to connect the operator terminal 750 with the exercise apparatus electrical components 710.
- Wireless interfaces may be implemented as one or more WiFi, Bluetooth, cellular, infrared, radio, and/or other types of network interfaces for wireless communications.
- Display 780 presents information to the user of operator terminal 750.
- display 780 may be implemented as an LED display, a liquid crystal display (LCD), an organic light emitting diode (OLED) display, and/or any other appropriate display.
- User input/output components 790 receive user input to operate features of the operator terminal 750.
- a stationary bike 102 includes integrated or connected digital hardware including at least one display screen 104.
- a stationary bike 102 may comprise a frame 106, a handlebar post 108 to support the handlebars 110, a seat post 112 to support the seat 114, a rear support 116 and a front support 118.
- Pedals 120 are used to drive a flywheel 122 via a belt, chain, or other drive mechanism.
- the flywheel 122 may be a heavy metal disc or other appropriate mechanism.
- the force on the pedals necessary to spin the flywheel 122 can be adjusted using a resistance adjustment knob 124 which adjusts a resistance mechanism 126, such as the braking system disclosed herein.
- the resistance adjustment knob may rotate an adjustment shaft to control the resistance mechanism 126 to increase or decrease the resistance of the flywheel 122 to rotation. For example, rotating the resistance adjustment knob clockwise may cause a set of magnets of the resistance mechanism 126 to move relative to the flywheel 122, increasing its resistance to rotation and increasing the force that the user must apply to the pedals 120 to make the flywheel 122 spin.
- the stationary bike 102 may also include various features that allow for adjustment of the position of the seat 114, handlebars 110, etc.
- a display screen 104 may be mounted in front of the user forward of the handlebars.
- Such display screen may include a hinge or other mechanism to allow for adjustment of the position or orientation of the display screen relative to the rider.
- the digital hardware associated with the stationary bike 102 may be connected to or integrated with the stationary bike 102, or it may be located remotely and wirelessly connected to the stationary bike.
- the digital hardware may be integrated with a display screen 104 which may be attached to the stationary bike or it may be mounted separately but should be positioned to be in the line of sight of a person using the stationary bike.
- the digital hardware may include digital storage, processing, and communications hardware, software, and/or one or more media input/output devices such as display screens, cameras, microphones, keyboards, touchscreens, headsets, and/or audio speakers. In various exemplary embodiments these components may be integrated with the stationary bike. All communications between and among such components may be multichannel, multi-directional, and wireless or wired, using any appropriate protocol or technology.
- the system may include associated mobile and web-based application programs that provide access to account, performance, and other relevant information to users from local or remote personal computers, laptops, mobile devices, or any other digital device.
- the stationary bike 102 is equipped with various sensors that can measure a range of performance metrics from both the stationary bike and the rider, instantaneously and/or over time.
- the resistance mechanism126 may include sensors providing resistance feedback on the position of the resistance mechanism.
- the stationary bike may also include power measurement sensors such as magnetic resistance power measurement sensors or an eddy current power monitoring system that provides continuous power measurement during use.
- the stationary bike may also include a wide range of other sensors to measure speed, pedal cadence, flywheel rotational speed, etc.
- the stationary bike may also include sensors to measure rider heart-rate, respiration, hydration, or any other physical characteristic.
- Such sensors may communicate with storage and processing systems on the bike, nearby, or at a remote location, using wired (such as view wired connection 128) or wireless connections.
- Hardware and software within the sensors or in a separate processing system may be provided to calculate and store a wide range of status and performance information.
- Relevant performance metrics that may be measured or calculated include resistance, distance, speed, power, total work, pedal cadence, heart rate, respiration, hydration, calorie burn, and/or any custom performance scores that may be developed. Where appropriate, such performance metrics can be calculated as current/instantaneous values, maximum, minimum, average, or total over time, or using any other statistical analysis. Trends can also be determined, stored, and displayed to the user, the instructor, and/or other users.
- a user interface may be provided for the user to control the language, units, and other characteristics for the information displayed.
- step 902 a rotation of an adjustment shaft is sensed using a brake encoder and received by the electrical control components (step 904).
- the electrical control components generate a signal to drive a linear actuator to adjust the resistance applied to the flywheel (step 906).
- the linear actuator is then operated in response to the generated signal, to vary resistance by moving resistance components towards and/or away from the flywheel (step 908).
- a load cell is connected between the resistance components and the frame and senses a load applied to the resistance assembly.
- the load cell data is received by the electrical control components and one or more operational parameters is determined (step 912), such as instantaneous power or a measure of resistance applied to flywheel.
- FIGS. 10A-12 An example brake implementation in accordance with one or more embodiments will now be described with reference to FIGS. 10A-12 .
- the illustrated embodiments provide example criteria for the brake, encoder and for deriving values for power, cadence and resistance, which may be displayed to the user.
- the data may be stored in a memory component associated with the exercise apparatus, a central server, such as a cloud storage service, or other storage system.
- FIGs. 10A-E illustrate an example control system, in accordance with one or more embodiments of the present disclosure.
- a processing system 1000 includes a control unit 1050 configured to receive and process signals from a plurality of sensors and/or components of an exercise apparatus and facilitate communications between components and a computing device.
- the control unit 1050 is electrically connected to a rotary encoder 1012, which is configured to sense rotation of a brake adjustment shaft 1010, a load cell 1020 configured to measure the force being applied to the flywheel by a magnetic braking assembly, a hall effect sensor 1032, which may be disposed to track rotation of a flywheel 1030 (e.g., speed of rotation), and a stepper motor 1040, which provides information regarding a current brake position.
- the control unit 1050 may be connected to other devices through a communications link 1060 (e.g., USB-C connection providing 24V power to the control unit).
- the control unit 1050 processes the sensor inputs to generate data 1052 for processing by the system 1000 and/or display to the user (e.g., through a display device 1066), such as revolutions per minute (RPMs), power, resistance and brake position.
- RPMs revolutions per minute
- the control unit 1050 may be implemented as circuitry providing an interface between the sensors and a processing system, a sensor board, a data logger, a computing device and/or other hardware and/or software configured in accordance with system requirements.
- the control unit 1050 include an RPM/cadence processing module 1054, a load cell processing module 1055, a knob position processing module 1056, a resistance controller 1057, a stepping supervisor 1058 and a data processing module 1059.
- FIG. 11 illustrates example power states for efficient operation of an exercise apparatus, such as system 1000 of Fig. 10A .
- the power states 1100 include production system states, state transitions and mapping to subsystem states including a touch display/tablet, brake controller and other system components.
- NO POWER state 1110 the system is not receiving power (e.g., not connected to a wall power outlet) and all components are off.
- the system enters an OFF state 1120. This is a lower power state (e.g., consuming less than .5W) and no processing is performed.
- a light e.g., a LED
- AWAKE DSP OFF
- AWAKE DSP OFF
- a process 1070 for calculating the RPM and cadence metrics is illustrated in FIG. 10C .
- the rate of rotation of the flywheel is determined in Step 1072 using a sensor, for example, receiving data from the hall effect sensor 1032 which is configured to calculate the RPMs of the exercise apparatus during operation.
- the system may then calculate the cadence in Step 1074 using the hall effect sensor 1032 located on the flywheel.
- the hall effect sensor 1032 may be disposed in a fixed position on the exercise apparatus to sense a magnet on the flywheel 1030 with each revolution of the flywheel.
- the sample rate may be interrupt driven and may represent crank RPM which is proportional to the flywheel RPM.
- the crank RPM is calculated by dividing the flywheel RPM by a constant (e.g., 4.395 in an example implementation) representing the relationship between a crank revolution and a flywheel revolution.
- An interrupt routine is attached to the falling edge of the hall effect sensor input.
- the routine may calculate and update variables that represent flywheel rpm, crank rpm, and/or other rate information specific to the exercise apparatus.
- the routine may incorporate a debouncing method to reject false triggering if two or more falling edges are detected on one passing of the magnet.
- the system may also be configured to reject interrupts that would produce clearly erroneous data (e.g., a RPM that is above a predetermined threshold).
- the routine may further incorporate a process to decay the measured RPM to zero in a natural way if flywheel comes to an abrupt stop.
- the rate of rotation and/or pedaling cadence is provided to other components of the control unit and/or exercise apparatus for processing, display, and/or storage.
- the load cell 1020 operates at a predetermined sample rate (e.g., 4 Hz) and measures the force being applied to the flywheel (e.g., in decagrams or a similar measurement unit) by the magnetic braking assembly.
- the control unit 1050 communicates with the load cell 1020 using a standard protocol such as I 2 C.
- the force measurements from the load cell 1020 may be used to calculate power and other criteria. For example, power may be calculated as a function of the force derived from the load cell 1020 which corresponds to a position of the braking assembly and the speed (or other rate calculation) of the flywheel calculated from the RPM data.
- control unit 1050 and/or tablet/display 1066 includes a load cell calibration routine.
- the routine creates a table of load cell measurement values at spaced positions (e.g., equally spaced positions) of the brake assembly (e.g., 10 locations) while the flywheel is still. This data allows for "zeroing" of the load cell without moving the brake to a 'home' position.
- the process 1080 starts in Step 1082 by initiating a load cell calibration routine, which determines the calibration steps needed to the device (e.g., creation of table of load cell measurements, determination of offsets, updating load cell measurements, etc.).
- the brake assembly is positioned to a first position at an edge of the flywheel in Step 1084.
- the load cell values at the first position and a plurality of spaced positions of the brake assembly from the first position are measured in Step 1086.
- the plurality of brake positions and corresponding load cell values are stored in a table in Step 1088.
- the table may be stored in non-volatile memory including the load cell value, brake position, and a crc checksum to ensure data integrity.
- the resistance applied during operation of the exercise apparatus is calculated in Step 1089 based on sensed load cell value and the values stored in the table.
- the computing system e.g., the tablet, control unit or other processing device
- the computing system e.g., the tablet, control unit or other processing device
- the computing system e.g., the tablet, control unit or other processing device
- the calibration routine is executed to build a new table and store the new table in memory.
- a current load cell reading can be used to calculate a position/offset by interpolating from the position information from the table.
- load cell zeroing is performed at or near the beginning of an exercise session.
- the reading from the load cell 1032 can drift over time based on many factors that cannot be controlled.
- a routine may be performed to generate an "offset" which may be added to future readings from the load cell 1032, or until the next time the load cell is zeroed.
- the offset table is used to calculate the offset to apply. For example, a formula to calculate "offset" is the current reading plus an interpolation of output from position from the table.
- the procedure described herein may be executed in approximately 1 second or less and may be performed automatically within the sensor firmware. In some configuration, the procedure is performed before every ride.
- the firmware may wake up and take the reading on regular intervals (e.g., every few minutes), for example, as determined by the permissible power draw. Motion of the flywheel may result in inaccurate readings. Thus, if the flywheel is moving upon wake (e.g., > 10 RPMs), the last recorded value may be used if it is not too old (e.g., not older than 10 minutes).
- the position of the adjustable shaft (e.g., knob position) is sampled at a rate through interrupts and may be measured in terms of rotations by the rotary encoder 1012.
- the knob position may be calculated and tracked using components of the rotary encoder 1012 and the resulting data may be used to drive the stepper motor.
- the stepper motor 1040 is configured to operate from an integrated circuit or other control components to initialize, configure and drive the stepper motor to provide positional control of the brake. As previously discussed, the stepper motor position is used to populate an offset table of position values and load cell measurement values.
- Step 1092 An example process 1090 for operating a stepper motor is illustrated in FIG. 10E .
- Step 1092 a homing process is performed on the stepper motor through an initial startup routine, which can be re-run upon user request.
- a homing routine may be performed on every power cycle (e.g., unplug/replug a power source).
- the homing routine may touch the brake mechanism to the edge of the flywheel to achieve homing.
- Operation of the stepping motor includes a plurality of processing steps.
- homing is achieved using integrated stall detection (Step 1096) within the stepper driver.
- An open loop position control routine (Step 1093) may be provided to keep track of the brake position vs. the zero position (for example as a number of steps from the homing position).
- the homing routine may be used to determine the upper and lower limit of the range of motion of the brake.
- Stepper motor position may be counted as steps up and away from contact between the magnet holder and the edge of the flywheel.
- logic is provided to detect motion of the flywheel and prevent the homing routine from executing if motion of the flywheel is detected from the hall effect sensor. In this case, the user may be notified to stop pedaling while the homing routine is executed.
- the homing routines disclosed herein may be completed in approximately five seconds or less.
- the stepper motor 1040 position is used to determine a location value of the brake assembly in units of full steps. For example, a scale of 0 to 1000 steps may be used, where 1000 is when the brake contacts the flywheel and 0 is near the top of the range of the travel during operation. In some embodiments, the stepper motor 1040 is configured to operate between positions 0 and a value that is less than 1000 (e.g., 750) to avoid contact with the flywheel and to match an operational range of the exercise apparatus.
- a value that is less than 1000 e.g., 750
- a computing system e.g., the tablet/display 1066
- resistance controller e.g., control unit or other device/circuitry
- a stepper motor 1040 is configured to provide instructions to a stepper motor 1040, including generating a "Drive to Position" command.
- a resistance setting e.g., as set by a user or controlled by the exercise apparatus in accordance with a terrain feature
- a corresponding target position is determined and a drive to position command is issued.
- the stepper motor 1040 is configured to receive the "Drive to Position" command, including the desired position value (Step 1094), and command the stepper motor to execute a corresponding number of steps between a current position and the target position (Step 1095).
- the resistance may be converted into a position using a reverse lookup from the offset table.
- the command should then be used to drive to position using a smooth motion control profile for a desirable user experience.
- the encoder is configured to update the resistance setpoint (e.g., according to a fixed linear ratio of 7.5 revolutions per 100 resistance percentage points).
- the firmware does not cause any offset to the resistance setpoint based on relative knob position.
- the knob acts as an incremental encoder with no zero reference.
- the encoder updates the resistance setpoint according to the defined ratio.
- the encoder movement logic may be configured to reject small inputs (e.g., changes under 1-degree) to avoid movement when users place their hand on the knob.
- acceleration, speed and current position value of the stepper motor is managed by a stepper supervisor process to achieve synchronous stepping under various speed and load conditions and protect the stepper motor from overheating in the event the user cycles the stepper continuously at high load for a long time.
- Tuning acceleration and running speeds and custom current profiles of the stepper facilitates a user experience that feels smooth.
- Operation of the stepper motor may further include protection circuitry and/or control logic to provide thermal protection for the stepper motor
- acceleration, speed and/or current of the stepper motor 1040 is controlled by a stepper supervisor with a goal to achieve synchronous stepping under all possible speed and load conditions and protect the stepper from overheating in the event the user cycles the stepper continuously at high load over a period of time. Tuning acceleration and running speeds and custom current profiles of the stepper allows operation to feel smooth.
- motor position and speed are generally referenced in terms of whole steps (0 to 1000) and whole steps per second.
- the motor is operated in a microstepping mode, where the two motor phases are both partially energized in order to achieve partial steps between the whole steps.
- the actual motor position is counted in microsteps (0 to 8000), but most higher-level functions specify full step values.
- the motor driver allows the user to program in custom current profiles for the individual phases of microstepping. Nominally, these steps would be programmed to a sinusoidal profile.
- a custom profile may be used, derived from the back EMF waveform of its motor. This profile gives smoother and quieter operation than an ideal sinusoid does with this particular motor.
- the speed of the stepper motor varies as the motors reaches a target position.
- the target motor speed may be specified as a multiple of the remaining distance to be traveled (in full steps).
- the speed is also bounded by minimum and maximum values. For small hops, low speeds are used. For very long commanded motions, the speed will peg at the maximum allowable value. As the motor approaches the target position, the motor will naturally decelerate as the remaining distance value gets smaller.
- This proportional speed setting allows the motor to follow continuous position updates (e.g. from the encoder) without stutter stepping, caused by catching up too quickly and stopping repeatedly.
- the motor will settle into an average speed which matches the position updates, with an angular lag that is proportional to speed.
- the motor will catch up to the target position and stop.
- acceleration of the stepping motor is also controlled.
- the motor may have a minimum speed setting and be capable of reaching a certain minimum speed instantly (e.g., within one step) and there is no point in trying to ramp up from a slower speed, which will only hurt responsiveness of the control. Starting from too low of a speed simply wastes time and results in the motor moving and stopping for each step. If the target speed value for a given motion is higher than the minimum speed, then the motor speed will ramp up linearly on each successive step until the target speed is reached. After each step completes, a new target speed is calculated, as well as a new maximum speed that is allowed, while remaining within the linear acceleration limit. The resultant speed value is then used to determine the time to the next motor step.
- there is no explicit deceleration control but the speed setpoint may naturally ramp down as the distance from the actual position to the target position is decreased.
- stepper motor driver allows for multiple possible current magnitude values (e.g., 8 current settings from 0 - 7) to be applied to the motor. Higher current values allow the motor to put out more torque, thus reducing the possibility of losing a step. Because the motor position is controlled by open loop step counting, it is critical that steps are never lost. However, higher current levels contribute to more audible noise and perceptible vibration, as well as more heating of the motor. Therefore, it is desirable to optimize the current setting to the present operational state, while allowing plenty of headroom for design tolerances.
- the controller is configured to calculate and/or determine the necessary current level, depending on conditions.
- the current may be set by setting registered in the stepper motor. The desired current is determined when the motor starts to move, and is recalculated during operation, such as every time a step completes. Therefore, if conditions change (flywheel speed, motor position, etc.) the current value can be updated. If the target current value changes, a message or command is sent to update stepper motor (e.g., by setting registers of the stepper motor), while the motor is in motion.
- the current set point is determined by combining characterization data for the motor (maximum linear force as a function of current setpoint and speed) with data for the brake (required linear force as a function of motor position, direction of movement, and flywheel speed).
- a current setpoint is chosen that will allow the motor to meet the necessary force requirement and should provide a margin (e.g., at least 30-40% margin), based on a sampling of motors and brakes.
- the motor force curve is a function of current and motor speed. However, below a motor speed of 300 PPS (currently the maximum allowed), the curve is fairly flat. Given the amount of margin desired on the motor current setting, motor speed is ignored when selecting a current setpoint. In other words, maximum force capability is treated only as a function of motor current, not as a function of motor speed. The ratings are conservative enough to apply at 300 PPS. If a higher motor speed is required, it may be necessary to consider motor speed in the current setpoint determination.
- the force required by the brake is affected by several factors.
- the brake moves against a spring, so there is a static force that is a function of motor position. The further down the brake moves, the more the spring is deflected and the more force is required.
- a spinning flywheel causes a load on the brake, which increases the force requirement. This load is proportional to flywheel speed.
- a baseline force requirement is calculated from the target motor position, then an additional force, proportional to flywheel speed, is added. If the target position or flywheel speed change while the motor is in motion, the required force may be updated, leading to a change in motor current setpoint.
- the control system may include a stall detection mechanism. which is dependent on the operating conditions of the motor.
- the controller functions to regulate the motor current.
- the device sets a Pulse Width Modulation (PWM) duty cycle which, in conjunction with the supply voltage, determines the voltage applied to the motor.
- PWM Pulse Width Modulation
- the applied voltage, minus the motor's back EMF voltage is divided by the motor's resistance in order to set the motor current.
- the stall detection mechanism functions by monitoring the PWM duty cycle.
- the controller is configured with a threshold PWM duty cycle, below which a stall is reported.
- the nominal PWM duty cycle is dependent on power supply voltage (e.g., stepper motor regulated to 12V), motor winding resistance (production tolerance and temperature dependent), motor speed, and motor current setpoint. If any of these parameters change, the nominal PWM duty cycle may change and the stall detection threshold may need to be changed, as well. If the threshold is set too high, stalls will be falsely reported. If the threshold is set too low, a true stall will never be reported.
- stall detection may be limited to use in one situation: motor homing.
- motor When the motor is being homed, it is operated at a fixed current level (level 7) and a fixed speed (300 PPS). The motor drives at constant speed until it runs into the flywheel and stops abruptly.
- a stall detection threshold was chosen for these specific conditions, in the middle of the range between the last failure to detect a stall and the first false stall detection. If power supply voltage, homing speed, homing current, or the motor design change, it will be necessary to reevaluate the stall detection threshold.
- a stall detection threshold was set at 125 and this proved to be an issue in PVT for a small ⁇ 1% of bikes due to a spring manufacturing defect. This was resolved by implementing a smart and adaptive stall detection procedure.
- the calibration routine is updated such that a stall detection value is pulled from persistent memory and is no longer hard coded for each brake.
- a common threshold value e.g., set stall threshold to 125. If a stall does not get detected, increase the stall detection by 5 and repeat up to a maximum value (e.g., a maximum threshold value of 145).
- a stall should be detected. If a stall is not detected, update the stall detection threshold stored in memory by 5 up to a maximum value (e.g., a maximum threshold value of 145.
- the power calculated and displayed on the tablet/display 1066 is calculated using a polynomial equation and matching coefficients with variables.
- the power calculation uses readings of position value of resistance apparatus and RPMs of flywheel.
- the system can sum of all terms of an element-wise multiplication of the two lists of values.
- the power value can be provided based on a fallback power map based on resistance and RPM only.
- resistance is displayed to the user corresponding to the position at which the brake is currently located. This is done using a lookup table corresponding brake position to a resistance value.
- a reverse lookup is used when the processing system provides instructions to the stepper motor to drive to a particular resistance/position.
- the user interface can be configured to show the target resistance value (e.g., the resistance setpoint) and provide an indication (e.g., display flashing value) until the current resistance value matches.
- An exercise apparatus 1210 including a braking system disclosed herein includes an interactive display. As the user rides the exercise apparatus 1210, the resistance is displayed to the user (step 1220) based on a mapping of brake position to resistance, as illustrated in table 1230. At the same time, values are checked against a fixed map 1240 and an error value is calculated in step 1222. In step 1264, the errors values are stored in a new error map 1260. The display table 1230 then gets updated in step 1262. The resulting resistance value is displayed for the user as shown in screen shot 1270.
- the procedure of FIG. 12 may be implemented to eliminate bike to bike variability in power output for given cadence / resistance pairs (e.g., when an older bike is replaced with a newer bike in accordance with the present disclosure or when data from different types of bikes is shared/compared in a larger system).
- the position table is updated through the auto correction procedure of FIG. 12 , which can occur once per minute and only after the knob is turned the at least 5 percentage points, for example.
- the resistance determination uses the two tables, which may be referred to as (i) the active resistance and position table (e.g., table 1230), and (ii) a static, ideal, power / resistance / cadence model that is very closely matched to a reference bike or a lookup table (e.g., fixed table 1240), which will be used to calculate an error signal. Because the actual map may be large, a model of that relationship can be used in its place. The same model can be used, for example, across bikes of a certain brand.
- Resistance auto-correction is achieved using the procedure of FIG. 12 .
- the relationship between resistance and brake position is stored in the resistance and position table 1230.
- the lookup table serves as the method to transform between the two.
- an error signal is generated and kept track of using a running average technique. The error signal is the difference between the resistance generated from the current lookup table, and one that is found using the static, ideal table of power / resistance / cadence combos of table 1240.
- the error is calculated periodically (e.g., once per second). In some embodiments, error is not calculated if the acceleration of the flywheel is above a threshold (e.g., 3 revolutions/minute 2 ), when RPM is less than 20, or when power is less than 22W.
- the running average can have various lengths (e.g., 30 values). The length and frequency of the running average can be adjusted to improve performance as desired.
- resistance setpoint changes are executed where the commanded change is more than 5 percentage points, the value for the running average of error is used to update the table of resistance to percentage table to zero out the error. If the running average is not yet reached the threshold number of readings (e.g., 30 readings long), no zeroing will take place. If the error signal is greater than 2 percentage points, it can be split up into different moves.
- Program logic for implementing the resistance calculation procedure of FIG. 12 includes a function to transform a percentage setpoint (e.g., value of resistance from 0-100%) to a position setpoint. This function suppresses error correction for moves that are larger than a particular number of steps (e.g., 38 full steps) or about 5 percentage points. This function could be called when the system executes a move to a new percentage either from the encoder or from the tablet/display.
- a percentage setpoint e.g., value of resistance from 0-100%
- Various ranges used in an implementation of the present embodiment may be system dependent and determined experimentally. An initial value of less than 5 rpm/second 2 may be used to start. Third, the size of the running average and the frequency to call that function should be determined experimentally.
- the systems disclosed herein may be used to capture diagnostic and other data and transmit the data to an central server, the cloud or other processing system for further processing, which may include tracking data across one or more exercise apparatus.
- the diagnostic data may be captured and kept up to date in a nonvolatile memory and passed to the tablet/computing device and/or cloud on a periodic basis (e.g., once per wake cycle).
- the diagnostic data may include: 1. Odometer (in total revolutions); 2. Hours (in minutes); 3. Calibration cycles; 4. Wake cycles; 5. Encoder moves (total number the encoder has been moved); 6. Drive to position moves (total number of tablet directed movements); 7. Average motor position (0-768); 8. Average encoder movement size in terms of motor position (0-768); 9. Maximum encoder movement size in terms of motor position (0-768).
- Cadence-resistance-output values used in conventional exercise equipment do not provide accurate readings of power due to inherent manufacturing variations between devices and other factors.
- the systems disclosed herein include a novel load cell arrangement and a positioning stepper motor that provides improved sensing of the location of the brake and measures the load being applied to the flywheel by the magnetic brake. Load, position, and cadence values from the system are used to calculate the power input by the user. This could be done with the empirical equations for torque and power, and the known geometry and configuration of the load sensor. During development, the coefficients/relationships that define the system may be carefully measured, calibrated and adjusted for accurate results during use.
- the system illustrated in FIG. 12 includes a cadence-power model for updating resistance values.
- a system and method for efficient and accurate simulation/modeling of a power sensor to measure output power on exercise machines (which, for now, is bikes) will now be described.
- a statistical model can be used in place of the empirical formulas and/or coefficients. This model will predict output power given resistance, cadence, and load.
- the method starts by measuring output power generated by a bike at various levels of cadence, resistance, and load, using a high-precision dynameter.
- This data is collected to a cloud data store.
- This data is downloaded onto a server/remote/host machine to train an elastic net model (or other statistical model as appropriate) on this data to learn the underlying relationships between output power and the other variables.
- the elastic net is a linear model that is trained using regularization, a technique that penalizes large model coefficients/weights, which reduces overfitting, and regularization and variable selection via the elastic net.
- these weights are embedded at a firmware level on chips that may not have high numerical precision and/or memory to fit larger values. These weight values will be uploaded to a data store, and eventually loaded onto the exercise machine/bike firmware.
- an instructor leads a class of riders through a workout routine that includes instructions to change a pedaling resistance, cadence or other target performance metrics at various times in the class.
- a live class the instructor may vocalize the performance target ranges and in response, each rider may adjust settings on the exercise bike and/or adjust performance to follow the class.
- the exercise class content may include data identifying target ranges for various class segments.
- live classes are recorded, and a post-processing method is used to populate the class content with target ranges.
- a manual process may include having a person listen to the recorded live classes for target cadence and resistance ranges and annotating the class content with data representing the target ranges based on a timestamp.
- an automated process may include automated speech processing to detect and annotate target events, analysis of the performance metrics from the instructor's exercise apparatus and/or class participants, and/or other data processing techniques.
- the user interface may display one or more performance target metrics for a current class segment. For example, at a certain point in the class, the instructor may instruct the class participants of the target ranges for resistance and cadence (e.g., resistance 20-30 and cadence 80-100).
- An example user interface 1500 is illustrated in FIG. 15 , an includes video and audio from an instructor 1510 who is leading the class.
- the user interface 1500 further displays performance data in one or more windows, such as windows 1520, 1522, 1524 and 1526.
- the performance data may include current data such as speed, distance traveled, power output, calories burned, heart rate, class progress, a leaderboard allowing the rider to compare performance to other riders in the class, and/or other performance data.
- the displayed content may further include target metrics such as the rider's current cadence 1530 and a current target cadence range 1532 for the class segment, and the current resistance setting 1540 of the exercise bike and a current target resistance range 1542 for the class segment. In some embodiments, other performance metrics and ranges may be displayed as desired.
- example user interfaces for displaying resistance target metrics 1610 and cadence target metrics 1650 including user control of an auto-follow feature, will now be described.
- the user interfaces 1610 and 1650 may be displayed to a user on an interactive display screen, such as user interface 1500 of FIG. 15 , during an exercise class.
- a user participating in an exercise class that has associated target range data will be presented with an interface that shows the current resistance and cadence numbers along with a target range for each (e.g., the target range 1622 for resistance is displayed above the current resistance number 1624 in the example user interface 1610a).
- the user interfaces 1610 further include an icon or other user input method for initiating an auto-follow mode.
- a lock 1620 is displayed, illustrating an unlocked lock (representing a standard mode) and a locked lock (e.g., icon 1632) (representing a locking the resistance the auto-follow range).
- the user may tap the lock icon 1620 to engage and disengage the auto-follow mode.
- the auto-follow mode will automatically adjust the resistance applied to the flywheel in accordance with the target resistance range.
- the resistance adjustment systems and methods described herein are used to automatically adjust the resistance, with the target range being used to drive the linear actuator in place of the sensed rotation of the adjustment shaft.
- the resistance mechanism may be automatically adjusted to achieve a resistance value in the middle of the target range.
- the lock icon 1632 includes a ring or other graphical indicia adapted to provide the user with a notification that automatic resistance will be changing to a new resistance range.
- the ring can extend along the circumference of the lock icon, growing from no ring or a dot at the start of the target range, to a closed position (full ring) indicating the end of the target range and a switch to the new target range.
- a closed position full ring
- the user interfaces 1610 further include a graphical representation 1626 (e.g., a dot) illustrating where along the resistance target range the exercise apparatus is currently set.
- the user may adjust the resistance during operation to increase or decrease the resistance (e.g., by turning an adjustment knob as described with reference to FIG. 9 ), and the graphical representation 1626 will move accordingly.
- the graphical representation may be displayed at the end of the range and further indicia may be provided to the user, such as change in color of one or more screen elements (e.g., fill in the range box with an alert color such as red), an audible signal such as a beep, or other indicia.
- Other target metrics such as cadence, can have similar display representations indicating the user's relative performance with respect to the target range.
- the auto-follow features described herein may be supported in various user interfaces and implemented through a plurality of modes of operation, allowing the user to select, toggle or otherwise control the implementation of the auto-follow functionality.
- the user interface and/or mapping of the user performance to the exercise class may be modified in real time during class participation.
- Local storage may be used to track tooltips (e.g., a graphical user interface element displayed as information to a user, such as in a graphical box over a screen element as shown in tooltip 1640 and tooltip 1642) seen across sessions and maintain tooltip display logic inside mappers.
- Tooltips e.g., a graphical user interface element displayed as information to a user, such as in a graphical box over a screen element as shown in tooltip 1640 and tooltip 1642
- User interactions may be handled by actions associated with the graphical user interface to handle navigating through tooltips and handling user interactions (e.g., taps) related to enabling or disabling auto follow, triggering tap-to-ju
- the graphical user interfaces 1610a-i illustrates various interfaces that may be presented to a user during operation.
- Interface 1610a shows an "auto-follow off” state with a resistance range 1622, a current resistance value 1624 that is within range, and a lock icon 1620 for selecting the "auto-follow” mode.
- Interface 1610b show the interface with a current resistance that is below the target range.
- the target metric is hidden.
- the lock icon indicates that "auto-follow" mode has been selected and the status ring around the lock icon provides an indication of when the target range will change.
- Interface 1610e illustrates an auto-follow mode with a current resistance that is below range.
- Interface 1610f illustrates an auto-follow mode with the target metric hidden from view.
- Interface 1610g illustrates a resistance metric in the middle of the target range in a standard mode of operation.
- Interface 1610h illustrates a tooltip informing the user that auto-follow is off.
- Interface 1610i illustrates a tooltip informing the user that auto-follow is on.
- Interfaces 1650a, 1650b, and 1650c illustrate cadence metrics that are in range, above range, and hidden, respectively.
- an exercise system includes one or more live and/or archived instructor led classes available for delivery to one or more exercise devices at remote locations.
- the exercise device such as an exercise cycle, includes a user interface (e.g., user interface 1500) that guides the user through the exercise class through video, audio and/or displayed content.
- the class content includes instructor cues directing the riders towards certain performance metrics or settings, such as cadence (e.g., pedal within an identified cadence range), resistance (e.g., set the exercise device to within a particular resistance range), and/or other metrics.
- the rider manually adjusts target parameters to stay within range.
- the exercise cycle receives target range data for a segment of the class and adjusts the resistance (and/or other target metric) to position within the range (e.g., in the middle of the range).
- the rider may not be able to perform to a desired instructor target metric and may manually adjust exercise performance to fit the rider's ability. For example, the rider may reduce the resistance using a knob to make the ride easier. In such cases, it may still be desirable for the rider to use the auto-follow features described herein.
- the exercise system includes one or more auto-follow features and logic to enhance the exercise experience for the rider with user-initiated adjustments.
- the user may adjust the resistance to a higher or lower part of the range, and the next automatic resistance change will set the resistance to value at a similar relative position in the new resistance range.
- the exercise content includes instructor cue data, annotations or similar data or designation that informs the system of target metrics and ranges associated with the exercise content.
- the content may be displayed to the user allowing the user to manually follow the instructor or used in an auto follow mode, where the exercise device automatically implements one or more instructor cues (e.g., by automatically setting a resistance) and/or adjusts settings, performance targets, and/or class content presented to the user on the user interface during an exercise class.
- the auto follow mode may include logic to adjust one or more settings in accordance with detected user performance and/or user adjustments.
- tutorial features e.g., tooltips 1640 and 1642
- data may be stored identifying whether the user has seen certain tutorials (e.g., a Boolean value for each tutorial).
- tutorials may be provided, for example, in a window overlay on the graphical user interface during the exercise class.
- an example educational state data flow 1300 is illustrated, in accordance with one or more embodiments.
- the process begins by identifying the user, such as through a user login procedure 1302, to associate the rider with a user account.
- the process fetches user educational data in step 1304, which may include an identification of tutorials viewed, user preferences, and/or other user-specific data.
- step 1306 a current educational state is identified for the user.
- the education state is taken into account in auto follow routines, manual routines, the current user interface display mode, and other state information, allowing the system to display and/or hide specific educational tooltips appropriate for the user.
- the educational state is updated from shared at the start of whichever activity requires a sub-state. For example, an in-class, auto-follow tutorial state can be initialized by entering the class.
- an exercise program that utilizes tooltip seen data is implemented.
- the program logic may include logic that correlates the user's exercise performance to corresponding data of an exercise class and displays relevant data to the user.
- the system determines whether the current program and content use HasSeen data and whether tutorial information is available for display in the current state.
- the tutorial information is displayed in step 1312 to notify the user of the educational information and the user record is changed to reflect that the tutorial information has already been observed. After the state is populated, it can be used to instruct the user interface to display tutorial tooltips when needed.
- user actions are controlled by toggling through tooltips on the user interface. This will be used to cycle through to the next tooltip. This allows the mappers to hold the logic for which tooltips to show and in which order.
- An enable/disable Auto follow Action will be responsible for enabling the auto follow feature as well as updating the state to reflect that the feature is enabled/disabled.
- User interface logic may include Auto-follow logic, Onboarding/Tooltips logic, Hiding/Unhiding logic, and Domain Models logic.
- a data class CueRangeDomainModel may be defined identifying whether an icon is visible, whether auto-follow button is visible, whether to collapse the tooltip or other display element; etc.
- the tooltip display tracking is handled for individual users, which may include user preference data, custom keys to handle per user tooltip display tracking, etc.
- the auto-follow functionality further includes detecting, tracking and responding to sensor data.
- sensor data related to current resistance value and target resistance value are read. These may be available through a sensor state operation.
- the resistance value can also be written with a class BikeSensorWriter.
- the target resistance value can be sent to the one or more control mechanisms for adjusting the resistance value to provide for smooth and accurate changes during a ride.
- a rate of change follows logic indicating that upon resistance changes going down, the system sends two messages to writer, one to an intermediate value then once we get to the intermediate value we send it down to final resistance. Upon resistance going up, we just write once to the sense and have the sensor take care of the smoothing.
- Example auto-follow logic 1400 will now be described with reference to FIG. 14 .
- the current exercise state is determined, which may include tracking current performance metrics (metric state 1404), such as a resistance setting a current cadence, and other desired data.
- the state may further include an instructor cue state 1405, in which exercise class information includes instructor cue data identifying target metrics for particular exercise segments, which are available for display to the user and auto-follow processing, if enabled.
- An auto-follow routine 1406 tracks the current metrics and target metrics and renders an appropriate user interface such as illustrated in FIGs. 15 and 16 .
- Tooltip Seen Data 1408 may be displayed to provide the user with educational information as appropriate.
- an auto-follow manager routine 1410 identifies a target metric ranges and auto-follow values, such as a target resistance, and provides instructions to adjust the resistance to achieve the target value.
- a sensor service routine adjusts the resistance to the new target resistance value.
- the logic implements a set of rules for adjusting the resistance, that may include one or more of the rules set forth in the following discussion.
- the auto-follow feature may be toggled on or off by tapping an icon (e.g., a lock icon).
- a popup notification can let the user know that auto-follow is on and the lock icon can change state (e.g., from an unlocked lock to a locked lock).
- a progress indicator such as an animated ring around the lock icon, can be displayed showing the progress to the next range change.
- the user is brought to the middle of the range.
- the resistance can stay the same without adjustment to the middle.
- the auto-follow logic is configured to adjust to one or more user preferences. For example, if the rider is in the current range when the next range starts, then the resistance may be adjusted to stay at the same relative position in the new range (e.g., new resistance value calculated as a percentage from the middle, where 1% equals the range/100). If the rider is below the current range once the next range starts, the resistance may be adjusted to to the bottom of the new range. If the rider is above the current range when the next range starts, the resistance may be adjusted to the top of the new range. If the user manually adjusts the resistance during auto-follow adjustments (e.g., if the automatic resistance is too hard or too easy, the user may manually adjust the resistance to a desired value) then the automatic adjustment may be ignored in favor of the manual adjustment.
- the resistance may be adjusted to stay at the same relative position in the new range (e.g., new resistance value calculated as a percentage from the middle, where 1% equals the range/100). If the rider is below the current range once the next range
- the manually adjusted resistance may be outside the range, and the new range may be set to (i) the bottom of the range, (ii) to a relative position outside the range, with notification (e.g., a tooltip) indicating that the rider is outside of the range, or (iii) other setting according to user preferences.
- workout cues may be overlap in time such that an adjustment of one cue is not complete when the next cue is triggered. In this case, the first cue may be cancelled allowing the system to adjust to the current cue.
- the instructor-cues may be implemented in a class setting or individual workout.
Landscapes
- Health & Medical Sciences (AREA)
- General Health & Medical Sciences (AREA)
- Physical Education & Sports Medicine (AREA)
- Engineering & Computer Science (AREA)
- Human Computer Interaction (AREA)
- Vascular Medicine (AREA)
- Biophysics (AREA)
- Orthopedic Medicine & Surgery (AREA)
- Cardiology (AREA)
- Multimedia (AREA)
- Life Sciences & Earth Sciences (AREA)
- Force Measurement Appropriate To Specific Purposes (AREA)
- Mechanical Control Devices (AREA)
- Electric Propulsion And Braking For Vehicles (AREA)
- Bending Of Plates, Rods, And Pipes (AREA)
- Braking Arrangements (AREA)
- Manipulator (AREA)
- Braking Systems And Boosters (AREA)
Claims (15)
- Ein Widerstandssystem (700) für eine Trainingsvorrichtung, die einen Rahmen (9) und ein Schwungrad (5; 14; 620) aufweist, wobei das Widerstandssystem Folgendes beinhaltet:eine Widerstandsvorrichtung (4; 32; 604), die ein Betätigungselement (1; 732) beinhaltet, das konfiguriert ist, um die Widerstandsvorrichtung relativ zu dem Schwungrad selektiv zu positionieren, wobei ein Abstand zwischen der Widerstandsvorrichtung und dem Schwungrad dem auf das Schwungrad ausgeübten Widerstand entspricht;Steuerkomponenten (712), die konfiguriert sind, um den Betrieb des Widerstandssystems als Reaktion auf automatisierte Anweisungen zu steuern; und eine Recheneinrichtung (750; 1050), die konfiguriert ist, um Medien für einen Trainingskurs an einen Benutzer auszugeben, wobei der Trainingskurs einen oder mehrere Zielwiderstandsbereiche beinhaltet, die einem oder mehreren Segmenten des Trainingskurses entsprechen, wobei die Medien mindestens eine automatisierte Anweisung zum Steuern des Betriebs des Widerstandssystems umfassen;wobei die Recheneinrichtung ferner konfiguriert ist, um selektiv eine Auto-Follow-Logik zu implementieren, die konfiguriert ist, um einen Zielwiderstandswert für ein aktuelles Segment des Trainingskurses zu bestimmen, mindestens teilweise basierend auf dem entsprechenden Zielwiderstandsbereich und einer relativen Position des Benutzers innerhalb eines vorhergehenden Zielwiderstandsbereichs, und um die Steuerkomponenten anzuweisen, das Widerstandssystem auf den Zielwiderstandswert einzustellen.
- Widerstandssystem gemäß Anspruch 1, das ferner Folgendes beinhaltet:einen manuellen Widerstandseinstellmechanismus, der konfiguriert ist, um einen auf das Schwungrad ausgeübten aktuellen Widerstand einzustellen;einen Bremsencoder (1012), der konfiguriert ist, um eine Bewegung des manuellen Widerstandseinstellmechanismus zu erfassen; undeinen Kraftaufnehmer (13; 734; 1020), der die Widerstandsvorrichtung mit dem Rahmen koppelt, wobei der Kraftaufnehmer ein Signal erzeugt, das einer Position der Widerstandsvorrichtung relativ zu dem Rahmen entspricht.
- Widerstandssystem gemäß Anspruch 1, wobei die Steuerkomponenten konfiguriert sind, um die relative Position des Benutzers innerhalb des vorhergehenden Zielwiderstandsbereichs zu bestimmen, wobei die relative Position mindestens teilweise auf einer detektierten Benutzerarbeitsleistung und/oder manuellen Benutzereinstellungen basiert, und um den Zielwiderstandswert auf eine entsprechende relative Position in dem aktuellen Segment festzusetzen.
- Widerstandssystem gemäß Anspruch 3, wobei der Trainingskurs ein von einem Lehrer geleiteter Trainingskurs ist, der Audio- und Videoaufnahmen des Lehrers umfasst, und wobei die mindestens eine automatisierte Anweisung mindestens teilweise basierend auf einer Analyse von Audiohinweisdaten aus der Audioaufnahme des Lehrers und/oder einer detektierten Arbeitsleistung des Lehrers während des von dem Lehrer geleiteten Kurses erzeugt wird.
- Widerstandssystem gemäß Anspruch 3, wobei die Steuerkomponenten ferner konfiguriert sind, um den Zielwiderstandswert auf ein unteres Ende des Zielwiderstandsbereichs festzusetzen, wenn die bestimmte relative Position des Benutzers unter einem unteren Ende des vorhergehenden Widerstandsbereichs liegt, und um den Zielwiderstandswert auf ein oberes Ende des Zielwiderstandsbereichs festzusetzen, wenn die bestimmte relative Position des Benutzers über einem oberen Ende des vorhergehenden Widerstandsbereichs liegt.
- Widerstandssystem gemäß Anspruch 1, wobei die Steuerkomponenten konfiguriert sind, um das Widerstandssystem zu kalibrieren, indem Kraftaufnehmerwerte an einer entsprechenden Vielzahl von Positionen des Betätigungselements gemessen und in einer Tabelle gespeichert werden;wobei die Steuerkomponenten ferner konfiguriert sind, um einen Betriebswiderstand basierend auf einem erfassten Kraftaufnehmerwert und der gespeicherten Tabelle zu berechnen; undwobei die Steuerkomponenten konfiguriert sind, um eine "Stepper-Homing-Routing" zum Bestimmen einer Nullposition durchzuführen.
- Widerstandssystem gemäß Anspruch 3, wobei die Steuerkomponenten eine Schrittmotorhauptsteuerung beinhalten, die konfiguriert ist, um einen Antriebspositionsbefehl einschließlich einer gewünschten Betätigungselementposition zu empfangen und um das Betätigungselement auf die gewünschte Betätigungselementposition einzustellen;wobei die Schrittmotorhauptsteuerung die Bewegungssteuerung, Beschleunigungssteuerung und/oder Strom- und Drehmomentsteuerung des Betätigungselements beinhaltet;wobei die Schrittmotorhauptsteuerung eine Blockierdetektion beinhaltet, die konfiguriert ist, um ein Betätigungselementblockierereignis zu detektieren; und/oderwobei die Schrittmotorhauptsteuerung konfiguriert ist, um eine Betätigungselementposition unter Verwendung einer offenen Regelkreisroutine zu verfolgen, mindestens teilweise basierend auf Einheiten von Betätigungselementschritten von der Nullposition.
- Widerstandssystem gemäß Anspruch 1, das ferner Folgendes beinhaltet:
eine zweite Widerstandsvorrichtung, die Folgendes beinhaltet:eine Bremsbelaganordnung, die einen Bremsbelag beinhaltet; undeine Aktivierungsvorrichtung, die betriebsfähig ist, um den Bremsbelag gegen das Schwungrad vorzuspannen und diesem Widerstand entgegenzusetzen. - Widerstandssystem gemäß Anspruch 1, das ferner einen Speicher beinhaltet, in dem eine feste Zuordnung von Trittfrequenz und Leistung, eine dynamische Zuordnung von Position zu Widerstand und eine Fehlerzuordnung gespeichert sind; wobei das Widerstandssystem ferner eine Logikeinrichtung beinhaltet, die konfiguriert ist, um einen Fehler bei Widerstandswerten zu berechnen und um die dynamische Zuordnung von Position zu Widerstand zu aktualisieren, um den Fehler auszugleichen.
- Ein Verfahren zum Einstellen des Widerstands eines Widerstandssystems gemäß Anspruch 1 in einer Trainingsvorrichtung, die einen Rahmen und ein Schwungrad aufweist, wobei das Verfahren Folgendes beinhaltet:selektives Positionieren einer Widerstandsvorrichtung relativ zu dem Schwungrad, wobei ein Abstand zwischen der Widerstandsvorrichtung und dem Schwungrad dem auf das Schwungrad ausgeübten Widerstand entspricht;Anweisen von Steuerkomponenten zum Einstellen des auf das Schwungrad ausgeübten Widerstands durch die Widerstandsvorrichtung als Reaktion auf automatisierte Anweisungen;Ausgeben von Medien für einen Trainingskurs an einen Benutzer, wobei der Trainingskurs einen oder mehrere Zielwiderstandsbereiche beinhaltet, die einem oder mehreren Segmenten des Trainingskurses entsprechen; undselektives Implementieren einer Auto-Follow-Logik, die konfiguriert ist, um einen Zielwiderstandswert für ein aktuelles Segment des Trainingskurses zu bestimmen, mindestens teilweise basierend auf dem entsprechenden Zielwiderstandsbereich und einer relativen Position des Benutzers innerhalb eines vorhergehenden Zielwiderstandsbereichs, und um die Steuerkomponenten anzuweisen, die Widerstandsvorrichtung auf den Zielwiderstandswert einzustellen.
- Verfahren gemäß Anspruch 10, das ferner Folgendes beinhaltet:Erfassen einer Drehung einer Einstellwelle;Erzeugen eines Signals, um ein Betätigungselement anzutreiben, wobei das Betätigungselement betriebsfähig ist, um den auf das Schwungrad ausgeübten Widerstand zu variieren;Betreiben des Betätigungselements als Reaktion auf das Signal, um Widerstandskomponenten in Richtung des Schwungrads und/oder davon weg zu treiben, um den auf das Schwungrad ausgeübten Widerstand zu variieren;Erfassen, über einen Kraftaufnehmer, der zwischen den Widerstandskomponenten und dem Rahmen angeschlossen ist, von Kraftaufnehmerwerten;Kalibrieren des Widerstandssystems, indem die Kraftaufnehmerwerte an einer entsprechenden Vielzahl von Positionen des Betätigungselements in einer Tabelle gespeichert werden; undBerechnen eines Betriebswiderstands basierend auf einem erfassten Kraftaufnehmerwert und der gespeicherten Tabelle.
- Verfahren gemäß Anspruch 10, das ferner Folgendes beinhaltet:Bestimmen der relativen Position des Benutzers innerhalb eines vorhergehenden Zielwiderstandsbereichs, wobei die relative Position mindestens teilweise auf einer detektierten Benutzerarbeitsleistung und/oder manuellen Benutzereinstellung basiert; undFestsetzen des Zielwiderstandswerts auf eine entsprechende relative Position in dem aktuellen Segment.
- Verfahren gemäß Anspruch 12, wobei der Trainingskurs ein von einem Lehrer geleiteter Trainingskurs ist, der Audio- und Videoaufnahmen des Lehrers umfasst, und wobei das Verfahren ferner das Erzeugen der mindestens einen automatisierten Anweisung mindestens teilweise basierend auf einer Analyse von Audiohinweisdaten aus der Audioaufnahme des Lehrers und/oder einer detektierten Arbeitsleistung des Lehrers während des von dem Lehrer geleiteten Kurses beinhaltet.
- Verfahren gemäß Anspruch 13, das ferner das Festsetzen des Zielwiderstandswert auf ein unteres Ende des Zielwiderstandsbereichs, wenn die relative Position des Benutzers unter einem unteren Ende des vorhergehenden Widerstandsbereichs liegt, und das Festsetzen des Zielwiderstandswerts auf ein oberes Ende des Zielwiderstandsbereichs, wenn die relative Position des Benutzers über einem oberen Ende des vorhergehenden Widerstandsbereichs liegt, beinhaltet.
- Verfahren gemäß Anspruch 11, das ferner Folgendes beinhaltet: Durchführen einer "Stepper-Motor-Homing-Routing" zum Bestimmen einer Nullposition;Verfolgen einer Betätigungselementposition unter Verwendung einer offenen Regelkreisroutine mindestens teilweise basierend auf Einheiten von Betätigungselementschritten von der Nullposition; undEmpfangen eines Antriebspositionsbefehls einschließlich einer gewünschten Betätigungselementposition und Einstellen des Betätigungselements auf die gewünschte Betätigungselementposition.
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202063032512P | 2020-05-29 | 2020-05-29 | |
| US202063075198P | 2020-09-06 | 2020-09-06 | |
| PCT/US2021/034632 WO2021243092A1 (en) | 2020-05-29 | 2021-05-27 | Braking systems and methods for exercise equipment |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4157470A1 EP4157470A1 (de) | 2023-04-05 |
| EP4157470B1 true EP4157470B1 (de) | 2025-07-30 |
Family
ID=76523509
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP21733673.4A Active EP4157470B1 (de) | 2020-05-29 | 2021-05-27 | Bremssysteme und -verfahren für übungsgeräte |
Country Status (7)
| Country | Link |
|---|---|
| EP (1) | EP4157470B1 (de) |
| AU (1) | AU2021282376B2 (de) |
| BR (1) | BR112022024365A2 (de) |
| CA (1) | CA3180720A1 (de) |
| MX (1) | MX2022015108A (de) |
| TW (1) | TWI804877B (de) |
| WO (1) | WO2021243092A1 (de) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| TWI860781B (zh) * | 2022-07-18 | 2024-11-01 | 蒂西國際股份有限公司 | 一種量測一飛輪的一阻抗機構之反作用力及扭力的方法及其量測裝置 |
| CN116877365B (zh) * | 2023-06-20 | 2024-07-16 | 深圳博尔乐能源技术有限公司 | 运动设备的阻力调整方法、装置和计算机可读存储介质 |
| CN118500758B (zh) * | 2024-07-17 | 2024-10-29 | 厦门康百福体育用品股份有限公司 | 一种基于数据分析的动感单车设备运维检测系统 |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0925096B1 (de) * | 1996-07-02 | 2004-05-19 | Graber Products, Inc. | Elektronisches übungssystem |
| US20070232452A1 (en) * | 2004-10-22 | 2007-10-04 | Mytrak Health System Inc. | Computerized Spinning Exercise System and Methods Thereof |
| US8251874B2 (en) * | 2009-03-27 | 2012-08-28 | Icon Health & Fitness, Inc. | Exercise systems for simulating real world terrain |
| TWM565048U (zh) * | 2018-02-27 | 2018-08-11 | 岱宇國際股份有限公司 | 用於健身器材之轉動輪的阻力調整裝置 |
| TWM577747U (zh) * | 2018-11-13 | 2019-05-11 | 祺驊股份有限公司 | 具有可變磁阻之飛輪健身器 |
-
2021
- 2021-05-27 MX MX2022015108A patent/MX2022015108A/es unknown
- 2021-05-27 WO PCT/US2021/034632 patent/WO2021243092A1/en not_active Ceased
- 2021-05-27 EP EP21733673.4A patent/EP4157470B1/de active Active
- 2021-05-27 AU AU2021282376A patent/AU2021282376B2/en active Active
- 2021-05-27 CA CA3180720A patent/CA3180720A1/en active Pending
- 2021-05-27 BR BR112022024365A patent/BR112022024365A2/pt unknown
- 2021-05-28 TW TW110119484A patent/TWI804877B/zh active
Also Published As
| Publication number | Publication date |
|---|---|
| AU2021282376B2 (en) | 2025-10-30 |
| MX2022015108A (es) | 2023-03-02 |
| AU2021282376A1 (en) | 2023-01-19 |
| TW202202206A (zh) | 2022-01-16 |
| EP4157470A1 (de) | 2023-04-05 |
| WO2021243092A1 (en) | 2021-12-02 |
| BR112022024365A2 (pt) | 2023-03-07 |
| TWI804877B (zh) | 2023-06-11 |
| CA3180720A1 (en) | 2021-12-02 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US12239870B2 (en) | Braking systems and methods for exercise equipment | |
| US12263368B2 (en) | Braking systems and methods for exercise equipment | |
| AU2021282376B2 (en) | Braking systems and methods for exercise equipment | |
| US20230022066A1 (en) | Exercise system | |
| US20240226662A1 (en) | Handle controls systems and methods for exercise equipment | |
| US20100062904A1 (en) | System and method for controlling an exercise apparatus | |
| US11426617B2 (en) | Braking system and method for exercise equipment | |
| US10780320B2 (en) | Intelligent treadmill and method for controlling the same | |
| KR20210007906A (ko) | 운동 기구 컨트롤 | |
| US20180000379A1 (en) | Patient Reminder System and Method for Incentive Spirometer Utilization | |
| TWM565048U (zh) | 用於健身器材之轉動輪的阻力調整裝置 | |
| US20070265139A1 (en) | Non-strenuous under furniture exercise device | |
| CA3108622C (en) | Braking systems and methods for exercise equipment | |
| CN114259688B (zh) | 一种用于自行车训练台用的阻力大小无线控制的阻力装置 | |
| HK40053686B (en) | Braking systems and methods for exercise equipment | |
| HK40053686A (en) | Braking systems and methods for exercise equipment | |
| CN116585676A (zh) | 一种健身车位置控制系统及方法 | |
| KR101371962B1 (ko) | 스마트 기기를 이용한 상지 재활 방법 및 그 장치 | |
| CN219743805U (zh) | 一种带位置定位和记忆功能的健身车 |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: UNKNOWN |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20221129 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| RIN1 | Information on inventor provided before grant (corrected) |
Inventor name: EVANCHA, BETINA Inventor name: LEJA, PIOTR Inventor name: LEE, JOOYOUNG Inventor name: POLAT, METE Inventor name: INTONATO, BUD Inventor name: VIVORI, MARISSA Inventor name: KISS, ERIC Inventor name: SKAVENSKI, MATT Inventor name: NG, WONG KUN Inventor name: PETRILLO, DAVID WILLIAM |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| GRAP | Despatch of communication of intention to grant a patent |
Free format text: ORIGINAL CODE: EPIDOSNIGR1 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: GRANT OF PATENT IS INTENDED |
|
| INTG | Intention to grant announced |
Effective date: 20241122 |
|
| GRAJ | Information related to disapproval of communication of intention to grant by the applicant or resumption of examination proceedings by the epo deleted |
Free format text: ORIGINAL CODE: EPIDOSDIGR1 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| GRAP | Despatch of communication of intention to grant a patent |
Free format text: ORIGINAL CODE: EPIDOSNIGR1 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: GRANT OF PATENT IS INTENDED |
|
| INTC | Intention to grant announced (deleted) | ||
| INTG | Intention to grant announced |
Effective date: 20250423 |
|
| GRAS | Grant fee paid |
Free format text: ORIGINAL CODE: EPIDOSNIGR3 |
|
| GRAA | (expected) grant |
Free format text: ORIGINAL CODE: 0009210 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE PATENT HAS BEEN GRANTED |
|
| AK | Designated contracting states |
Kind code of ref document: B1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| REG | Reference to a national code |
Ref country code: GB Ref legal event code: FG4D |
|
| REG | Reference to a national code |
Ref country code: CH Ref legal event code: EP |
|
| REG | Reference to a national code |
Ref country code: DE Ref legal event code: R096 Ref document number: 602021035104 Country of ref document: DE |
|
| REG | Reference to a national code |
Ref country code: IE Ref legal event code: FG4D |
|
| REG | Reference to a national code |
Ref country code: NL Ref legal event code: MP Effective date: 20250730 |
|
| REG | Reference to a national code |
Ref country code: AT Ref legal event code: MK05 Ref document number: 1818325 Country of ref document: AT Kind code of ref document: T Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: PT Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20251202 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: IS Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20251130 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: NO Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20251030 |
|
| REG | Reference to a national code |
Ref country code: LT Ref legal event code: MG9D |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: AT Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: FI Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: NL Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 Ref country code: HR Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: GR Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20251031 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: SE Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: LV Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: PL Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 Ref country code: BG Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: RS Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20251030 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: ES Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: SM Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: DK Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: IT Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: CZ Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |
|
| PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: EE Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 Ref country code: SK Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT Effective date: 20250730 |