US20200158232A1 - Hybrid module including a torque converter bypass clutch - Google Patents

Hybrid module including a torque converter bypass clutch Download PDF

Info

Publication number
US20200158232A1
US20200158232A1 US16/195,824 US201816195824A US2020158232A1 US 20200158232 A1 US20200158232 A1 US 20200158232A1 US 201816195824 A US201816195824 A US 201816195824A US 2020158232 A1 US2020158232 A1 US 2020158232A1
Authority
US
United States
Prior art keywords
impeller
cover
torque converter
connect
clutch
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.)
Granted
Application number
US16/195,824
Other versions
US10670142B1 (en
Inventor
Matthew Payne
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Schaeffler Technologies AG and Co KG
Original Assignee
Schaeffler Technologies AG and Co KG
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Schaeffler Technologies AG and Co KG filed Critical Schaeffler Technologies AG and Co KG
Priority to US16/195,824 priority Critical patent/US10670142B1/en
Priority to DE102019129244.1A priority patent/DE102019129244A1/en
Publication of US20200158232A1 publication Critical patent/US20200158232A1/en
Application granted granted Critical
Publication of US10670142B1 publication Critical patent/US10670142B1/en
Expired - Fee Related legal-status Critical Current
Adjusted expiration legal-status Critical

Links

Images

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H61/00Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
    • F16H61/14Control of torque converter lock-up clutches
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K6/00Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00
    • B60K6/20Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs
    • B60K6/22Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs characterised by apparatus, components or means specially adapted for HEVs
    • B60K6/38Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs characterised by apparatus, components or means specially adapted for HEVs characterised by the driveline clutches
    • B60K6/387Actuated clutches, i.e. clutches engaged or disengaged by electric, hydraulic or mechanical actuating means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K6/00Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00
    • B60K6/20Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs
    • B60K6/42Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs characterised by the architecture of the hybrid electric vehicle
    • B60K6/48Parallel type
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H45/00Combinations of fluid gearings for conveying rotary motion with couplings or clutches
    • F16H45/02Combinations of fluid gearings for conveying rotary motion with couplings or clutches with mechanical clutches for bridging a fluid gearing of the hydrokinetic type
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H61/00Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
    • F16H61/38Control of exclusively fluid gearing
    • F16H61/40Control of exclusively fluid gearing hydrostatic
    • F16H61/4043Control of a bypass valve
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K6/00Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00
    • B60K6/20Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs
    • B60K6/42Arrangement or mounting of plural diverse prime-movers for mutual or common propulsion, e.g. hybrid propulsion systems comprising electric motors and internal combustion engines ; Control systems therefor, i.e. systems controlling two or more prime movers, or controlling one of these prime movers and any of the transmission, drive or drive units Informative references: mechanical gearings with secondary electric drive F16H3/72; arrangements for handling mechanical energy structurally associated with the dynamo-electric machine H02K7/00; machines comprising structurally interrelated motor and generator parts H02K51/00; dynamo-electric machines not otherwise provided for in H02K see H02K99/00 the prime-movers consisting of electric motors and internal combustion engines, e.g. HEVs characterised by the architecture of the hybrid electric vehicle
    • B60K6/48Parallel type
    • B60K2006/4825Electric machine connected or connectable to gearbox input shaft
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H45/00Combinations of fluid gearings for conveying rotary motion with couplings or clutches
    • F16H2045/002Combinations of fluid gearings for conveying rotary motion with couplings or clutches comprising a clutch between prime mover and fluid gearing
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H45/00Combinations of fluid gearings for conveying rotary motion with couplings or clutches
    • F16H45/02Combinations of fluid gearings for conveying rotary motion with couplings or clutches with mechanical clutches for bridging a fluid gearing of the hydrokinetic type
    • F16H2045/0221Combinations of fluid gearings for conveying rotary motion with couplings or clutches with mechanical clutches for bridging a fluid gearing of the hydrokinetic type with damping means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H61/00Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
    • F16H61/04Smoothing ratio shift
    • F16H2061/0425Bridging torque interruption
    • F16H2061/0433Bridging torque interruption by torque supply with an electric motor
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/62Hybrid vehicles

Definitions

  • the present disclosure relates generally to hybrid module and more specifically to hybrid modules including torque converters.
  • Hybrid modules including torque converters are known.
  • a hybrid module is provided.
  • the hybrid module is configured for arrangement in the torque path upstream from a transmission and downstream from an internal combustion engine includes an electric motor including a stator and a rotor rotatable within the stator, and a torque converter including a cover, an impeller and a turbine.
  • the cover includes a pump drive configured for driving a fluid pump of the transmission.
  • the torque converter includes a bypass clutch configured for frictionally drivingly connecting the cover to the impeller in an engaged orientation and for frictionally drivingly disconnecting the cover from the impeller in a disengaged orientation, the cover being non-rotatably fixed to rotor.
  • the hybrid module also includes a connect/disconnect clutch having an output non-rotatably fixed to the rotor.
  • the connect/disconnect clutch is configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter.
  • the hybrid module is configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • the torque converter may include a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation.
  • the impeller may include an impeller hub.
  • the impeller hub may be drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch.
  • the torque converter may include a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft.
  • the torque converter may include a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission.
  • the hybrid module may include a connect/disconnect shaft configured for drivingly connecting to the internal combustion engine.
  • the connect/disconnect clutch may be configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect shaft and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect shaft.
  • a motor vehicle drive train including the hybrid module as and the internal combustion engine.
  • An input of the connect/disconnect clutch is drivingly connected to the internal combustion engine.
  • the motor vehicle drive train also includes the transmission comprising the pump drive.
  • the hybrid module, the internal combustion engine and the transmission are arranged and configured with respect to each other such that the hybrid module transmits torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • a method of constructing a hybrid module configured for arrangement in a torque path upstream from a transmission and downstream from an internal combustion engine.
  • the method includes providing a torque converter including a cover, an impeller and a turbine.
  • the cover includes a pump drive configured for driving a fluid pump of the transmission.
  • the torque converter includes a bypass clutch configured for frictionally drivingly connecting the cover to the impeller in an engaged orientation and for frictionally drivingly disconnecting the cover from the impeller in a disengaged orientation.
  • the cover is non-rotatably fixed to rotor.
  • the method also includes non-rotatably connecting the cover of the torque converter to a rotor of an electric motor and non-rotatably connecting an output of a connect/disconnect clutch to the rotor.
  • the connect/disconnect clutch is configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter.
  • the hybrid module is configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • the torque converter includes a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation.
  • the impeller may include an impeller hub.
  • the impeller hub may be drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch.
  • the torque converter may include a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft.
  • the torque converter may include a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission.
  • the method may further include drivingly connecting a connect/disconnect shaft to an input of the connect/disconnect clutch.
  • the connect/disconnect shaft may be configured for drivingly connecting to the internal combustion engine.
  • the connect/disconnect clutch may be configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect clutch and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect clutch.
  • FIG. 1 schematically shows a motor vehicle drive train including a hybrid module in accordance with an embodiment of the present disclosure.
  • the present disclosure provides hybrid modules that allows the hybrid vehicle in which the hybrid module is included to be used for example on a jobsite or when camping to generate power without rotating the impeller of the torque converter. Because the impeller is non-rotatably fixed to the transmission fluid pump in conventional hybrid modules and the transmission pump is used to actuate a disconnect/connect clutch for connecting the internal combustion engine to and disconnecting the internal combustion engine from the torque converter cover, a parasitic loss occurs from rotating the torque converter impeller in conventional hybrid modules to generate power using the hybrid vehicle.
  • the hybrid modules of the present disclosure can disconnect the torque converter impeller while still spinning the transmission fluid pump, providing pressure to the disconnect/connect clutch.
  • FIG. 1 shows a schematic view of a hybrid motor vehicle drive train 11 including a hybrid module 10 in accordance with an embodiment of the present invention.
  • Module 10 includes a hybrid drive unit 12 configured for attachment to an internal combustion engine 13 at a front side 10 a of module 10 and a torque converter 14 configured for attachment to a transmission input shaft 15 at a rear side 10 b of module 10 .
  • Hybrid drive unit 12 is selectively operable to transmit torque from the internal combustion engine 13 to torque converter 14 or directly drive torque converter 14 via an electric motor 16 of drive unit 12 .
  • hybrid drive unit 12 includes an engine connect/disconnect clutch 18 for selectively connecting torque converter 14 to a connect/disconnect shaft 20 , which is configured for non-rotatably connecting for example via a flywheel to a crankshaft of the internal combustion engine 13 , or disconnecting torque converter 14 from shaft 20 such that torque converter can be driven solely by electric motor 16 .
  • Electric motor 16 includes a stator 22 and a rotor 24 , with stator 22 being non-rotatably fixed to, i.e., statically mounted on, a housing of hybrid module 10 .
  • stator 22 being non-rotatably fixed to, i.e., statically mounted on, a housing of hybrid module 10 .
  • rotor 24 is rotated about a center axis of motor 16 , due to rotor 24 including a plurality of annular rotor segments that each include a plurality of circumferentially space magnets, which in at least some preferred embodiments are permanent magnets, that are energized by the current in the coils.
  • Rotor 24 may non-rotatably fixed to a rotor carrier 28 such that rotor 24 and rotor carrier 28 rotate together about the center axis of the motor 16 .
  • Torque converter 14 includes a shell or cover 30 that is rigidly and non-rotatably fixed to rotor 22 via rotor carrier 28 . More specifically, a front portion of cover 30 may be fixed directly to rotor carrier 28 for example by fasteners, such as rivets, or welding. A rear portion of cover 30 surrounds an impeller 32 of torque converter 14 . Impeller 32 is separate and distinct from cover 30 and can be engaged to and disengaged from cover 30 via a torque converter bypass clutch in the form of an impeller friction clutch 34 . Impeller 32 includes an impeller shell 32 a supporting a plurality of impeller blades 32 b. A cylindrical impeller hub 36 is non-rotatably fixed to a radially inner end of the impeller shell 32 a and protrudes axially away from a radially inner end of impeller shell 32 a toward the transmission 38 .
  • Impeller friction clutch 34 may be formed by an inner radially extending surface of cover 30 and an outer radially extending surface of impeller shell 32 a being frictionally connectable to each other via a friction surface on at least one of impeller shell 32 a and cover 30 .
  • Impeller 32 is axially movable by fluid pressure, and thus acts as a piston, such that impeller shell 32 a can be forced into engagement with cover 30 to frictionally drivingly engage impeller shell 32 a and cover 30 for rotation together at the same speed, and such that impeller shell 32 a can be forced away from cover 30 and out of engagement with cover 30 such that cover 30 can be rotated while impeller 32 is not rotated.
  • Impeller 32 can only receive torque and transmit torque to turbine 40 when impeller friction clutch 34 is engaged and impeller 32 is thus connected to cover 30 .
  • Torque converter 14 also includes a turbine 40 that includes a turbine shell 40 a supporting a plurality of turbine blades 40 b.
  • a damper assembly 42 which may include springs 42 a for damping torsional vibrations, may be drivingly fixed to turbine 40 at an input thereof and may be configured for connecting to input shaft 15 of transmission at an output thereof.
  • Damper assembly 42 includes an input part 42 b that is non-rotatably fixed to turbine 40 and an output part 42 c that is configured for non-rotatably connecting to transmission input shaft 15 of transmission 38 .
  • Input part 42 b and output part 42 c are drivingly connected by springs 42 a such that relative rotation of parts 42 b, 42 c occurs via the compression and expansion of springs 42 a.
  • springs 42 a receive torque from input part 42 b and transfer the torque to output part 42 c.
  • Damper assembly 42 is configured for receiving torque from turbine shell 40 a and transferring torque to the transmission input shaft 15 while damping torsional vibrations of the input torque. Transmission 15 may then drive wheels 43 a, 43 b by transferring torque received from torque converter 14 through a differential 43 c and axles 43 d, 43 e.
  • torque converter 14 For frictionally engaging turbine 40 and impeller 32 together, torque converter 14 includes a turbine lockup clutch 44 .
  • lockup clutch 44 When lockup clutch 44 is engaged, lockup clutch 44 non-rotatably fixes turbine 40 and impeller 32 together for rotation about a center axis of torque converter 14 at the same speed.
  • lockup clutch 44 When lockup clutch 44 is disengaged, turbine 40 and impeller may be rotated about a center axis of torque converter 14 at different speeds than each other.
  • turbine 40 may be configured to define a piston that is axially moveable toward and away from impeller shell 32 a such that an engagement section of turbine 40 engages an engagement section of impeller shell 32 a so as to form the lockup clutch 44 .
  • a friction material may be bonded onto a radially extending impeller facing surface of an outer radial extension of turbine shell 40 a radially outside of blades 40 a and forms the engagement section of turbine 40 , for engaging a radially extending wall of impeller shell 32 a, which is radially outside of blades 32 b and forms the engagement section of impeller shell 32 a.
  • lockup clutch 44 may include a piston and one or more clutch plates that are distinct and separate from impeller 32 and turbine 40 .
  • impeller friction clutch 34 When impeller friction clutch 34 is engaged and impeller 32 is driven via cover 30 , impeller 32 drives turbine 40 via fluid flow from impeller blades 32 b to turbine blades 40 , when the lockup clutch 44 is disengaged, or impeller 32 drives turbine 40 via the friction material, when lockup clutch 44 is engaged.
  • Turbine 40 then drives damper assembly 40 , which in turn drives the transmission input shaft.
  • Torque converter 14 also includes a stator 46 axially between turbine 40 and impeller 32 including a plurality of circumferentially spaced stator blades 46 a to redirect fluid flowing from the turbine blades 40 b before the fluid reaches impeller blades 32 b to increase the efficiency of torque converter 14 .
  • Torque converter 14 also includes a stator shaft 48 that is configured for being fixed to transmission 38 .
  • Stator shaft 48 may be fixed to stator 46 by a one-way clutch provided on an outer circumferential surface of stator shaft 48 .
  • Stator shaft 48 may be non-rotatably fixed to transmission 38 such that it is stationary and the one-way clutch, in a known manner, allows stator 46 to rotate about the center axis of torque converter 14 in a free-wheeling manner in a first rotational direction and prevents stator 46 from rotating about the center axis of torque converter 14 in a second rotational direction.
  • a sealing bushing 54 is provided in contact with the outer circumferential surface of stator shaft 48 and the inner circumferential surface of impeller hub 36 such that fluid is prevented from leaking out between stator shaft 48 and impeller hub 36 and impeller hub 36 is rotatably supported on stator shaft 48 via bushing 54 .
  • Clutch 18 may include a plurality of clutch plates and a piston that is axially slidable along to engage and disengage the clutch plates.
  • clutch 18 When the piston is forced against the clutch plates, clutch 18 is engaged and torque from engine 13 is transmitted via shaft 20 through clutch 18 into torque converter cover 30 via rotor carrier 28 .
  • clutch 18 When the piston is held away from the clutch plates, clutch 18 is disengaged so torque from engine 13 is not transmitted through the clutch plates into rotor 22 . Torque is then transmitted from rotor 22 to torque converter cover 30 via rotor carrier 28 .
  • clutch 18 is configured for being actuated between an engaged orientation for drivingly connecting shaft 20 and engine 13 to torque converter cover 30 and a disengaged orientation for drivingly disconnecting shaft 20 and engine 13 from torque converter cover 30 .
  • the rear portion of torque converter cover 30 is non-rotatably fixed to a fluid pump 50 of transmission 38 by a pump drive 52 of cover 30 .
  • Pump drive 52 may be configured as gearing configured for drivingly connecting to gearing of pump 50 .
  • impeller hub 36 is thus not provided with a pump drive for driving pump 50 ; instead, impeller hub 36 is drivingly disengagable from pump 50 in the disengaged orientation of impeller friction clutch 34 .
  • Transmission fluid pump 50 is driven by torque converter cover 30 during operation via the rotation of cover 30 .
  • pump 50 can supply transmission fluid to connect/disconnect clutch 18 in order to engage clutch 18 so that internal combustion engine 13 can be used to generate electricity by rotating rotor 24 in stator 22 without driving wheels 43 a, 43 b.
  • impeller friction clutch 34 is disengaged so that impeller 32 is disconnected from cover 30 , and impeller 32 , turbine 40 and stator 46 (and half of one clutch pack in the transmission 38 ) do not rotate with cover 30 as pump 50 is driven to engage clutch 18 .
  • drive train 11 does not drive wheels 43 a, 43 b when impeller friction clutch 34 is disengaged, but is merely used to generate electricity by spinning rotor 24 within stator 22 .
  • FIG. 1 allows engine 13 to run at optimal generator speed and torque with clutch 18 connected and impeller friction clutch 34 disconnected. This allows the system to generate electricity at a peak efficiency while still powering the mechanical fluid pump 50 in the transmission 38 , which supplies clutch 18 with apply pressure and motor 16 with fluid cooling flow.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Transportation (AREA)
  • Hybrid Electric Vehicles (AREA)

Abstract

A hybrid module configured for arrangement in the torque path upstream from a transmission and downstream from an internal combustion engine includes an electric motor including a stator and a rotor rotatable within the stator, and a torque converter including a cover, an impeller and a turbine. The cover includes a pump drive configured for driving a fluid pump of the transmission. The torque converter includes a bypass clutch configured for frictionally drivingly connecting the cover to the impeller in an engaged orientation and for frictionally drivingly disconnecting the cover from the impeller in a disengaged orientation, the cover being non-rotatably fixed to rotor. The hybrid module also includes a connect/disconnect clutch having a clutch output non-rotatably fixed to the rotor. The connect/disconnect clutch is configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter. The hybrid module is configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.

Description

  • The present disclosure relates generally to hybrid module and more specifically to hybrid modules including torque converters.
  • BACKGROUND
  • Hybrid modules including torque converters are known.
  • SUMMARY OF THE INVENTION
  • A hybrid module is provided. The hybrid module is configured for arrangement in the torque path upstream from a transmission and downstream from an internal combustion engine includes an electric motor including a stator and a rotor rotatable within the stator, and a torque converter including a cover, an impeller and a turbine. The cover includes a pump drive configured for driving a fluid pump of the transmission. The torque converter includes a bypass clutch configured for frictionally drivingly connecting the cover to the impeller in an engaged orientation and for frictionally drivingly disconnecting the cover from the impeller in a disengaged orientation, the cover being non-rotatably fixed to rotor. The hybrid module also includes a connect/disconnect clutch having an output non-rotatably fixed to the rotor. The connect/disconnect clutch is configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter. The hybrid module is configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • In embodiments of the hybrid module, the torque converter may include a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation. The impeller may include an impeller hub. The impeller hub may be drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch. The torque converter may include a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft. The torque converter may include a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission. The hybrid module may include a connect/disconnect shaft configured for drivingly connecting to the internal combustion engine. The connect/disconnect clutch may be configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect shaft and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect shaft.
  • A motor vehicle drive train is also provided including the hybrid module as and the internal combustion engine. An input of the connect/disconnect clutch is drivingly connected to the internal combustion engine. The motor vehicle drive train also includes the transmission comprising the pump drive. The hybrid module, the internal combustion engine and the transmission are arranged and configured with respect to each other such that the hybrid module transmits torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • A method of constructing a hybrid module configured for arrangement in a torque path upstream from a transmission and downstream from an internal combustion engine is provided. The method includes providing a torque converter including a cover, an impeller and a turbine. The cover includes a pump drive configured for driving a fluid pump of the transmission. The torque converter includes a bypass clutch configured for frictionally drivingly connecting the cover to the impeller in an engaged orientation and for frictionally drivingly disconnecting the cover from the impeller in a disengaged orientation. The cover is non-rotatably fixed to rotor. The method also includes non-rotatably connecting the cover of the torque converter to a rotor of an electric motor and non-rotatably connecting an output of a connect/disconnect clutch to the rotor. The connect/disconnect clutch is configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter. The hybrid module is configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
  • In embodiments of the method, the torque converter includes a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation. The impeller may include an impeller hub. The impeller hub may be drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch. The torque converter may include a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft. The torque converter may include a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission. The method may further include drivingly connecting a connect/disconnect shaft to an input of the connect/disconnect clutch. The connect/disconnect shaft may be configured for drivingly connecting to the internal combustion engine. The connect/disconnect clutch may be configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect clutch and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect clutch.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The present disclosure is described below by reference to the following drawings, in which:
  • FIG. 1 schematically shows a motor vehicle drive train including a hybrid module in accordance with an embodiment of the present disclosure.
  • DETAILED DESCRIPTION
  • The present disclosure provides hybrid modules that allows the hybrid vehicle in which the hybrid module is included to be used for example on a jobsite or when camping to generate power without rotating the impeller of the torque converter. Because the impeller is non-rotatably fixed to the transmission fluid pump in conventional hybrid modules and the transmission pump is used to actuate a disconnect/connect clutch for connecting the internal combustion engine to and disconnecting the internal combustion engine from the torque converter cover, a parasitic loss occurs from rotating the torque converter impeller in conventional hybrid modules to generate power using the hybrid vehicle. The hybrid modules of the present disclosure can disconnect the torque converter impeller while still spinning the transmission fluid pump, providing pressure to the disconnect/connect clutch.
  • FIG. 1 shows a schematic view of a hybrid motor vehicle drive train 11 including a hybrid module 10 in accordance with an embodiment of the present invention. Module 10 includes a hybrid drive unit 12 configured for attachment to an internal combustion engine 13 at a front side 10 a of module 10 and a torque converter 14 configured for attachment to a transmission input shaft 15 at a rear side 10 b of module 10. Hybrid drive unit 12 is selectively operable to transmit torque from the internal combustion engine 13 to torque converter 14 or directly drive torque converter 14 via an electric motor 16 of drive unit 12. Along these lines, hybrid drive unit 12 includes an engine connect/disconnect clutch 18 for selectively connecting torque converter 14 to a connect/disconnect shaft 20, which is configured for non-rotatably connecting for example via a flywheel to a crankshaft of the internal combustion engine 13, or disconnecting torque converter 14 from shaft 20 such that torque converter can be driven solely by electric motor 16.
  • Electric motor 16 includes a stator 22 and a rotor 24, with stator 22 being non-rotatably fixed to, i.e., statically mounted on, a housing of hybrid module 10. Upon current being provided to coils of stator 22, rotor 24 is rotated about a center axis of motor 16, due to rotor 24 including a plurality of annular rotor segments that each include a plurality of circumferentially space magnets, which in at least some preferred embodiments are permanent magnets, that are energized by the current in the coils. Rotor 24 may non-rotatably fixed to a rotor carrier 28 such that rotor 24 and rotor carrier 28 rotate together about the center axis of the motor 16.
  • Torque converter 14 includes a shell or cover 30 that is rigidly and non-rotatably fixed to rotor 22 via rotor carrier 28. More specifically, a front portion of cover 30 may be fixed directly to rotor carrier 28 for example by fasteners, such as rivets, or welding. A rear portion of cover 30 surrounds an impeller 32 of torque converter 14. Impeller 32 is separate and distinct from cover 30 and can be engaged to and disengaged from cover 30 via a torque converter bypass clutch in the form of an impeller friction clutch 34. Impeller 32 includes an impeller shell 32 a supporting a plurality of impeller blades 32 b. A cylindrical impeller hub 36 is non-rotatably fixed to a radially inner end of the impeller shell 32 a and protrudes axially away from a radially inner end of impeller shell 32 a toward the transmission 38.
  • Impeller friction clutch 34 may be formed by an inner radially extending surface of cover 30 and an outer radially extending surface of impeller shell 32 a being frictionally connectable to each other via a friction surface on at least one of impeller shell 32 a and cover 30. Impeller 32 is axially movable by fluid pressure, and thus acts as a piston, such that impeller shell 32 a can be forced into engagement with cover 30 to frictionally drivingly engage impeller shell 32 a and cover 30 for rotation together at the same speed, and such that impeller shell 32 a can be forced away from cover 30 and out of engagement with cover 30 such that cover 30 can be rotated while impeller 32 is not rotated. Impeller 32 can only receive torque and transmit torque to turbine 40 when impeller friction clutch 34 is engaged and impeller 32 is thus connected to cover 30.
  • Torque converter 14 also includes a turbine 40 that includes a turbine shell 40 a supporting a plurality of turbine blades 40 b. A damper assembly 42, which may include springs 42 a for damping torsional vibrations, may be drivingly fixed to turbine 40 at an input thereof and may be configured for connecting to input shaft 15 of transmission at an output thereof. Damper assembly 42 includes an input part 42 b that is non-rotatably fixed to turbine 40 and an output part 42 c that is configured for non-rotatably connecting to transmission input shaft 15 of transmission 38. Input part 42 b and output part 42 c are drivingly connected by springs 42 a such that relative rotation of parts 42 b, 42 c occurs via the compression and expansion of springs 42 a. In other words, springs 42 a receive torque from input part 42 b and transfer the torque to output part 42 c. Damper assembly 42 is configured for receiving torque from turbine shell 40 a and transferring torque to the transmission input shaft 15 while damping torsional vibrations of the input torque. Transmission 15 may then drive wheels 43 a, 43 b by transferring torque received from torque converter 14 through a differential 43 c and axles 43 d, 43 e.
  • For frictionally engaging turbine 40 and impeller 32 together, torque converter 14 includes a turbine lockup clutch 44. When lockup clutch 44 is engaged, lockup clutch 44 non-rotatably fixes turbine 40 and impeller 32 together for rotation about a center axis of torque converter 14 at the same speed. When lockup clutch 44 is disengaged, turbine 40 and impeller may be rotated about a center axis of torque converter 14 at different speeds than each other.
  • In some embodiments, turbine 40 may be configured to define a piston that is axially moveable toward and away from impeller shell 32 a such that an engagement section of turbine 40 engages an engagement section of impeller shell 32 a so as to form the lockup clutch 44. A friction material may be bonded onto a radially extending impeller facing surface of an outer radial extension of turbine shell 40 a radially outside of blades 40 a and forms the engagement section of turbine 40, for engaging a radially extending wall of impeller shell 32 a, which is radially outside of blades 32 b and forms the engagement section of impeller shell 32 a. Accordingly, the friction material may be provided axially between the outer radial extension of turbine shell 40 a and the radially wall of impeller shell 32 a to selectively rotationally engage the engagement section of turbine 40 with the engagement section of impeller 32. In other embodiments, lockup clutch 44 may include a piston and one or more clutch plates that are distinct and separate from impeller 32 and turbine 40. When impeller friction clutch 34 is engaged and impeller 32 is driven via cover 30, impeller 32 drives turbine 40 via fluid flow from impeller blades 32 b to turbine blades 40, when the lockup clutch 44 is disengaged, or impeller 32 drives turbine 40 via the friction material, when lockup clutch 44 is engaged. Turbine 40 then drives damper assembly 40, which in turn drives the transmission input shaft.
  • Torque converter 14 also includes a stator 46 axially between turbine 40 and impeller 32 including a plurality of circumferentially spaced stator blades 46 a to redirect fluid flowing from the turbine blades 40 b before the fluid reaches impeller blades 32 b to increase the efficiency of torque converter 14. Torque converter 14 also includes a stator shaft 48 that is configured for being fixed to transmission 38. Stator shaft 48 may be fixed to stator 46 by a one-way clutch provided on an outer circumferential surface of stator shaft 48. Stator shaft 48 may be non-rotatably fixed to transmission 38 such that it is stationary and the one-way clutch, in a known manner, allows stator 46 to rotate about the center axis of torque converter 14 in a free-wheeling manner in a first rotational direction and prevents stator 46 from rotating about the center axis of torque converter 14 in a second rotational direction. A sealing bushing 54 is provided in contact with the outer circumferential surface of stator shaft 48 and the inner circumferential surface of impeller hub 36 such that fluid is prevented from leaking out between stator shaft 48 and impeller hub 36 and impeller hub 36 is rotatably supported on stator shaft 48 via bushing 54.
  • Clutch 18 may include a plurality of clutch plates and a piston that is axially slidable along to engage and disengage the clutch plates. When the piston is forced against the clutch plates, clutch 18 is engaged and torque from engine 13 is transmitted via shaft 20 through clutch 18 into torque converter cover 30 via rotor carrier 28. When the piston is held away from the clutch plates, clutch 18 is disengaged so torque from engine 13 is not transmitted through the clutch plates into rotor 22. Torque is then transmitted from rotor 22 to torque converter cover 30 via rotor carrier 28. Accordingly, clutch 18 is configured for being actuated between an engaged orientation for drivingly connecting shaft 20 and engine 13 to torque converter cover 30 and a disengaged orientation for drivingly disconnecting shaft 20 and engine 13 from torque converter cover 30.
  • The rear portion of torque converter cover 30 is non-rotatably fixed to a fluid pump 50 of transmission 38 by a pump drive 52 of cover 30. Pump drive 52 may be configured as gearing configured for drivingly connecting to gearing of pump 50. In contrast to the arrangement of conventional hybrid modules, impeller hub 36 is thus not provided with a pump drive for driving pump 50; instead, impeller hub 36 is drivingly disengagable from pump 50 in the disengaged orientation of impeller friction clutch 34. Transmission fluid pump 50 is driven by torque converter cover 30 during operation via the rotation of cover 30. As pump 50 is being driven, pump 50 can supply transmission fluid to connect/disconnect clutch 18 in order to engage clutch 18 so that internal combustion engine 13 can be used to generate electricity by rotating rotor 24 in stator 22 without driving wheels 43 a, 43 b. In order to prevent parasitic energy loss, impeller friction clutch 34 is disengaged so that impeller 32 is disconnected from cover 30, and impeller 32, turbine 40 and stator 46 (and half of one clutch pack in the transmission 38) do not rotate with cover 30 as pump 50 is driven to engage clutch 18. Accordingly, drive train 11 does not drive wheels 43 a, 43 b when impeller friction clutch 34 is disengaged, but is merely used to generate electricity by spinning rotor 24 within stator 22.
  • The embodiment shown in FIG. 1 allows engine 13 to run at optimal generator speed and torque with clutch 18 connected and impeller friction clutch 34 disconnected. This allows the system to generate electricity at a peak efficiency while still powering the mechanical fluid pump 50 in the transmission 38, which supplies clutch 18 with apply pressure and motor 16 with fluid cooling flow.
  • In the preceding specification, the invention has been described with reference to specific exemplary embodiments and examples thereof. It will, however, be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of invention as set forth in the claims that follow. The specification and drawings are accordingly to be regarded in an illustrative manner rather than a restrictive sense.
  • List of Reference Numerals
    CA center axis
    10 hybrid module
    10a front side
     10b rear side
    11 hybrid motor vehicle drive train
    12 hybrid drive unit
    13 internal combustion engine
    14 torque converter
    15 transmission input shaft
    16 electric motor
    18 engine connect/disconnect clutch
    20 connect/disconnect shaft
    22 stator
    24 rotor
    28 rotor carrier
    30 torque converter cover
    32 impeller
    32a impeller shell
    32b impeller blades
    34 torque converter bypass clutch (impeller friction clutch)
    36 impeller hub
    38 transmission
    40 turbine
    40a turbine shell
    40b turbine blades
    42 damper assembly
     42a springs
     42b damper input part
     42c damper output part
    43a, 43b wheels
     43c differential
    43d, 43e axles
    44 lockup clutch
    46 stator
    48 stator shaft
    50 transmission fluid pump
    52 pump drive
    54 sealing bushing

Claims (13)

What is claimed is:
1. A hybrid module configured for arrangement in a torque path upstream from a transmission and downstream from an internal combustion engine, the hybrid module comprising:
an electric motor including a stator and a rotor rotatable within the stator;
a torque converter including a cover, an impeller and a turbine, the cover including a pump drive configured for driving a fluid pump of the transmission, the torque converter including a bypass clutch configured for drivingly connecting the cover to the impeller in an engaged orientation and for drivingly disconnecting the cover from the impeller in a disengaged orientation, the cover being non-rotatably fixed to rotor;
a connect/disconnect clutch having an output non-rotatably fixed to the rotor, the connect/disconnect clutch configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter, the hybrid module being configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
2. The hybrid module as recited in claim 1 wherein the torque converter includes a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation.
3. The hybrid module as recited in claim 1 wherein the impeller includes an impeller hub, the impeller hub being drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch.
4. The hybrid module as recited in claim 3 wherein the torque converter includes a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft.
5. The hybrid module as recited in claim 1 wherein the torque converter includes a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission.
6. The hybrid module as recited in claim 1 further comprising a connect/disconnect shaft configured for drivingly connecting to the internal combustion engine, the connect/disconnect clutch configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect shaft and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect shaft.
7. A motor vehicle drive train comprising:
the hybrid module as recited in claim 1;
the internal combustion engine, an input of the connect/disconnect clutch being drivingly connected to the internal combustion engine; and
the transmission comprising the pump drive,
the hybrid module, the internal combustion engine and the transmission being arranged and configured with respect to each other such that the hybrid module transmits torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
8. A method of constructing a hybrid module configured for arrangement in a torque path upstream from a transmission and downstream from an internal combustion engine, the method comprising:
providing a torque converter including a cover, an impeller and a turbine, the cover including a pump drive configured for driving a fluid pump of the transmission, the torque converter including a bypass clutch configured for drivingly connecting the cover to the impeller in an engaged orientation and for drivingly disconnecting the cover from the impeller in a disengaged orientation;
non-rotatably connecting the cover of the torque converter to a rotor of an electric motor; and
non-rotatably connecting an output of a connect/disconnect clutch to the rotor, the connect/disconnect clutch being configured for being actuated between an engaged orientation for drivingly connecting the internal combustion engine to the cover of the torque converter and a disengaged orientation for drivingly disconnecting the internal combustion engine from the cover of the torque converter, the hybrid module being configured for transmitting torque from the internal combustion engine to the pump drive without driving the impeller when the connect/disconnect clutch is in the engaged orientation and the bypass clutch is in the disengaged orientation.
9. The method as recited in claim 8 wherein the torque converter includes a lockup clutch configured for frictionally drivingly connecting the impeller to the turbine in an engaged orientation and for frictionally drivingly disconnecting the impeller from the turbine in a disengaged orientation.
10. The method as recited in claim 8 wherein the impeller includes an impeller hub, the impeller hub being drivingly disengaged from the fluid pump of the transmission in the disengaged orientation of the bypass clutch.
11. The method as recited in claim 10 wherein the torque converter includes a stator connected to a stator shaft and a sealing bushing contacting an inner circumferential surface of the impeller hub and an outer circumferential surface of the stator shaft.
12. The method as recited in claim 8 wherein the torque converter includes a damper assembly configured for drivingly connecting the turbine to a transmission input shaft of the transmission.
13. The method as recited in claim 8 further comprising drivingly connecting a connect/disconnect shaft to an input of the connect/disconnect clutch, the connect/disconnect shaft being configured for drivingly connecting to the internal combustion engine, the connect/disconnect clutch configured for drivingly connecting the connect/disconnect shaft to the cover of the torque converter in the engaged orientation of the connect/disconnect clutch and for drivingly disconnecting the connect/disconnect shaft from the cover of the torque converter in the disengaged orientation of the connect/disconnect clutch.
US16/195,824 2018-11-19 2018-11-19 Hybrid module including a torque converter bypass clutch Expired - Fee Related US10670142B1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
US16/195,824 US10670142B1 (en) 2018-11-19 2018-11-19 Hybrid module including a torque converter bypass clutch
DE102019129244.1A DE102019129244A1 (en) 2018-11-19 2019-10-30 Hybrid module with a torque converter lock-up clutch

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US16/195,824 US10670142B1 (en) 2018-11-19 2018-11-19 Hybrid module including a torque converter bypass clutch

Publications (2)

Publication Number Publication Date
US20200158232A1 true US20200158232A1 (en) 2020-05-21
US10670142B1 US10670142B1 (en) 2020-06-02

Family

ID=70470206

Family Applications (1)

Application Number Title Priority Date Filing Date
US16/195,824 Expired - Fee Related US10670142B1 (en) 2018-11-19 2018-11-19 Hybrid module including a torque converter bypass clutch

Country Status (2)

Country Link
US (1) US10670142B1 (en)
DE (1) DE102019129244A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20230167887A1 (en) * 2021-11-30 2023-06-01 GM Global Technology Operations LLC Hydraulic system and control logic for torque converter assemblies

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5458540A (en) * 1993-03-08 1995-10-17 Ford Motor Company Flow control valve for a continuously variable transmission control system
US5389046A (en) * 1993-05-25 1995-02-14 Ford Motor Company Automatic transmission control system
US5771691A (en) * 1996-10-23 1998-06-30 Borg-Warner Automotive, Inc. Torque converter having spatially oriented flat turbine blades
DE10024191B4 (en) 1999-05-21 2012-06-28 Schaeffler Technologies Gmbh & Co. Kg Torque transfer device
US6254507B1 (en) * 2000-01-18 2001-07-03 General Motors Corporation Reverse one-way torque converter clutch
JP2002168333A (en) * 2000-11-28 2002-06-14 Fuji Heavy Ind Ltd Hill-hold control device of automobile
DE102006034935B4 (en) * 2006-07-28 2016-10-06 Dr. Ing. H.C. F. Porsche Aktiengesellschaft Drive train and associated operating method
JP2016525197A (en) 2013-07-19 2016-08-22 シェフラー テクノロジーズ アー・ゲー ウント コー. カー・ゲーSchaeffler Technologies AG & Co. KG 2-pass multifunction torque converter
US9180766B2 (en) 2013-12-16 2015-11-10 Ford Global Technologies, Llc Front module for a modular hybrid transmission and a method for connecting/disconnecting the front module from a torque converter

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20230167887A1 (en) * 2021-11-30 2023-06-01 GM Global Technology Operations LLC Hydraulic system and control logic for torque converter assemblies
US12104682B2 (en) * 2021-11-30 2024-10-01 GM Global Technology Operations LLC Hydraulic system and control logic for torque converter assemblies

Also Published As

Publication number Publication date
US10670142B1 (en) 2020-06-02
DE102019129244A1 (en) 2020-05-20

Similar Documents

Publication Publication Date Title
US6862887B2 (en) Hybrid drive
US9841059B2 (en) Torsional vibration damper and arrangement and method for the damping of a drivetrain of a motor vehicle
KR20210029708A (en) Hybrid module
US20220219525A1 (en) P2 module architecture
JPWO2014051110A1 (en) Hybrid drive unit
US20190084401A1 (en) Hybrid module shipping assembly
US11919401B2 (en) Compact P2 hybrid architecture
CN114867624A (en) Compact P2 hybrid architecture
US11365793B2 (en) Hybrid module including torque converter inside of e-motor and having remote compensation chamber
KR20220155521A (en) Power transmission apparatus for hybrid vehicle
WO2019168801A1 (en) Hybrid module including axial retention housing for bearing
US10094459B2 (en) Torque-coupling device with torsional vibration damper and one-way turbine clutch, and method for making the same
US10670142B1 (en) Hybrid module including a torque converter bypass clutch
US11745577B2 (en) Torque converter
US11007862B2 (en) Hybrid module including rotor adhesively bonded to rotor carrier
CN111989844A (en) Hybrid module comprising a stamped rotor carrier
US10792991B2 (en) Hybrid module including torque converter having a stator friction brake
US11358462B2 (en) Transmission device for a hybrid vehicle
US10753425B2 (en) Internal rotor damper modular hybrid transmission
US11331998B2 (en) System for a hybrid torque converter with e-motor on an output
US11285798B2 (en) Drive system
KR102335206B1 (en) Hybrid drive module using fluid clutch and operating method tehreof
US20220379709A1 (en) Torque transmission unit, drive train and method for operating a torque transmission unit
KR102655262B1 (en) Hybrid drive module
US20240117859A1 (en) Torque transmitting device

Legal Events

Date Code Title Description
FEPP Fee payment procedure

Free format text: ENTITY STATUS SET TO UNDISCOUNTED (ORIGINAL EVENT CODE: BIG.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

STCF Information on status: patent grant

Free format text: PATENTED CASE

FEPP Fee payment procedure

Free format text: MAINTENANCE FEE REMINDER MAILED (ORIGINAL EVENT CODE: REM.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

STCH Information on status: patent discontinuation

Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362

FP Lapsed due to failure to pay maintenance fee

Effective date: 20240602