Clutch device for a hybrid drive system
10711845 ยท 2020-07-14
Assignee
Inventors
Cpc classification
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
F16D2021/0692
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/0638
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2021/0607
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10S903/914
GENERAL 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
F16D25/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2021/0669
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D13/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
F16D21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch device, comprising a first and second input side and a first and second output side that can be rotated about a common axis. The clutch device further includes a first clutch located between the first input side and first output side, a second clutch located between the second input side and the second output side, and a centrifugal pendulum connected to the clutch device.
Claims
1. A clutch device, comprising: a first and a second input side; a first and a second output side; wherein the first and second input sides and the first and second output sides can be rotated about a common rotation axis; a first clutch between the first input side and the first output side; a second clutch between the first input side and the second output side; a third clutch between the first input side and the second input side; and a centrifugal pendulum; wherein the centrifugal pendulum is directly connected to the first input side.
2. The clutch device of claim 1, wherein the first and second clutches are axially offset.
3. The clutch device of claim 1, wherein the centrifugal pendulum is arranged axially outside the first and second clutches.
4. The clutch device of claim 1, wherein the centrifugal pendulum is arranged radially outside the first and second clutches.
5. The clutch device of claim 4, wherein the first input side lies on a radial outside of the first and second clutches, and is supported relative to the rotation axis by using a radial element which forms a pendulum flange of the centrifugal pendulum.
6. The clutch device of claim 1, wherein two centrifugal pendulums are provided that are arranged on different axial sides of the first and second clutches.
7. The clutch device of claim 1, wherein at least one of the first, second, or third clutches and the centrifugal pendulum are arranged in a common housing that is partially filled with a liquid medium.
8. The clutch device of claim 1, wherein the first input side is configured for connection to a rotor of an electrical machine.
9. The clutch device of claim 8, wherein the rotor is surrounded radially outwardly by a stator of the electrical machine.
10. The clutch device of claim 1, wherein the second input side is configured for connection to an output shaft of an internal combustion engine.
11. A clutch device, comprising: a first and second input side and a first and second output side that can be rotated about a common axis; a first clutch located between the first input side and first output side; a second clutch located between the second input side and the second output side; and a centrifugal pendulum connected to the clutch device, wherein the clutch device includes a third clutch located between the first input side and the second input side; wherein the centrifugal pendulum is directly connected to the first input side.
12. The clutch device of claim 11, wherein a flywheel is located between either the first or second input side and an internal combustion engine.
13. The clutch device of claim 11, wherein the first clutch and the second clutch are radially offset from one another.
14. A clutch device, comprising: a first and second input side and a first and second output side that can be rotated about a common axis; a first clutch located between the first input side and first output side; a second clutch located between the second input side and the second output side; a third clutch located between the first input side and the second input side; and a centrifugal pendulum is directly connected to the second input side.
15. The clutch device of claim 14, wherein the centrifugal pendulum is arranged axially outside the first and second clutches with respect to the common axis.
16. The clutch device of claim 15, wherein the centrifugal pendulum is arranged axially outside the third clutch.
17. The clutch device of claim 14, wherein the centrifugal pendulum is arranged radially outside the first and second clutches with respect to the common axis.
18. The clutch device of claim 14, wherein the centrifugal pendulum and the first, second, and third clutch are arranged in a common housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure is now explained in more detail below with reference to the attached figures, in which:
(2)
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DETAILED DESCRIPTION
(7)
(8) A first clutch 130 lies between the first input side 110 and the first output side 120, a second clutch 135 lies between the first input side 110 and the second output side 125, and an optional third clutch 140 lies between the first input side 110 and the second input side 115. The first two clutches 130 and 135 are offset radially or preferably axially to each other and form an axial double clutch. The third clutch 140 is preferably offset axially to at least one of the two other clutches 130 and 135.
(9) The first input side 110 is configured for connection to an electrical machine 145 which in general comprises a rotor 150 and a stator 155. Preferably, the electrical machine 145 is of the internal rotor type, wherein the rotor 150 lies radially inside the stator 155. It is further preferred that the stator 155 comprises at least one magnetic coil, and the rotor 150 comprises at least one permanent magnet. The rotor 150 preferably lies radially outside the clutches 130, 135 and 140, and in the embodiment shown is connected to the first input side 110 by using riveting. The second input side 115 may be configured for connection to a combustion machine, in particular an internal combustion engine, further preferably a reciprocating piston engine.
(10) The output sides 120 and 125 are configured for connection to input shafts of a double gearbox (not shown). The double gearbox is normally configured to couple each of the input shafts to a common output shaft by a separate gearwheel pair. If the drive train is arranged in a motor vehicle, the output shaft may finally act on a drive wheel of the motor vehicle. In order to select a gear, usually one of the clutches 130, 135 is closed while the respective other clutch 130, 135 is opened. Preferably, the double gearbox comprises several gearwheel pairs on each gearbox shaft, each pair forming a gear stage. A gearwheel pair may usually be engaged or disengaged when it is connected to an output shaft 120, 125, the assigned clutch 130, 135 of which is already opened.
(11) The clutch device 100 in particular is configured to be used in the drive train of a motor vehicle. The motor vehicle may preferably have hybrid drive, i.e. be driven either by the internal combustion engine, or by the electrical machine 145, or alternatively by both drive motors. If the internal combustion engine is used, the third clutch 140 is closed. If the electrical machine 145 is used, it is normally actuated electrically such that torque can be transferred. The two drive motors may apply both positive and negative torque to the drive train. The electrical machine 145 may also receive kinetic energy from the drive train and convert this into electrical energy, which for example may be temporarily stored in an energy accumulator. Because of its compact structure, the clutch device 100 is particularly suitable for installation transversely at the front of the motor vehicle.
(12) A first actuator device 160 is assigned to the first clutch 130, a second actuator device 165 to the second clutch 135, and a third actuator device 170 to the third clutch 140. Preferably, all three actuator devices 160, 165 and 170 are hydraulic and are each configured to exert an axial force on one of the clutches 130, 135, 140, so that friction elements of the clutches 130, 135 or 140 are pressed axially against each other in order to generate a friction engagement and transmit a torque between the friction elements. The friction elements may each be pressed together between the assigned actuator device 160, 165, 170 and an axial thrust bearing. Furthermore, the hydraulic actuator devices 160, 165, 170 can be actively controlled individually in that, by use of e.g. a valve or pump, pressurized pressure medium is deliberately introduced into or discharged from a hydraulic pressure chamber of the respective actuator device 160, 165, 170. Alternatively for example, a centrifugal oil-controlled actuation may be provided.
(13) The three clutches 130, 135 and 140 may be arranged in a common housing 175 which may be at least partially filled with a liquid medium 180, in particular an oil. The medium 180 may also be used as a working medium (hydraulic fluid) for one of the actuator devices 160, 165 and 170. The clutches 130, 135 and 140 may be each of the wet-running type and may be designed independently of each other as single plate or multiplate clutches. Furthermore, the first clutch 130 and the second clutch 135 may be of the multiplate type, in order to allow finely-controlled opening and closing of the torque flow through the clutches 130, 135. The third clutch 140 may also, as shown, be of the single plate type, wherein the third clutch 140 may be configured as a shift clutch which as far as possible is not operated under slip.
(14) In the embodiment shown, a radial flange 185 is arranged axially between the first clutch 130 and the second clutch 135 as a thrust bearing, against which the clutches 130, 135 may be pressed by using the assigned actuator device 160, 165. Axial forces of the actuator devices 160, 165, 170 are preferably supported inside the clutch device 100, so that no resulting forces need be supported externally.
(15) If the clutch device 100 is used in a drive train without the electrical machine 145, the third clutch 140 may also be omitted. The first input side 110 and the second input side 115 then coincide.
(16) It is proposed to attach a centrifugal pendulum to the clutch device 100 in order to reduce irregularities of a rotational motion which may be transmitted by the clutch device 100. These irregularities may in particular comprise a rotational vibration, which may be induced for example by a reciprocating piston internal combustion engine which is connected to the second input side 115.
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(18) The second input side 115 may lie axially opposite the output sides 120, 125 relative to the clutches 130, 135. A centrifugal pendulum 205 is attached to the first input side 110. Here, the centrifugal pendulum preferably lies axially offset to the clutches 130, 135 and where applicable also 140.
(19) The centrifugal pendulum 205 comprises a pendulum flange which is attached rotationally stably around the rotation axis 105 on the first input side 110, and a pendulum mass 215 which is movable along a predefined pendulum track that extends in the rotational plane about the rotation axis 105. The centrifugal pendulum 205 depicted is of the external type, wherein the pendulum mass 215 comprises two pendulum elements 220 which lie opposite each other on different axial sides of the pendulum flange 210. The pendulum elements 220 may be attached to each other by using a bolt 225, wherein the bolt 225 extends axially through a groove 230 made in the pendulum flange 210. Thus the pendulum mass 215 is held movably on the pendulum flange 210 in the manner of a sliding block guide.
(20) In an alternative internal embodiment, two axially offset pendulum flanges 210 are provided, between which a pendulum element 220 is arranged movably. Here again, a fixing in the manner of a sliding block guide may be used, in which the bolt 225 extends preferably through the single pendulum element 220 and through two mutually corresponding grooves 230 in the two pendulum flanges 210. Combinations of the internal and external type of centrifugal pendulum 210 may also be used on the clutch device 100.
(21) The clutch device 100 may be configured such that it has approximately the same damping as a dual mass flywheel, which may be arranged in particular between the second input side 115 and an internal combustion engine.
(22) In the embodiment depicted, the centrifugal pendulum 205 is arranged on the side lying axially opposite the second input side 115 relative to the clutches 130, 135 and where applicable 140; alternatively, the centrifugal pendulum 205 and the input side 115 may however lie on the same axial side. It is further preferred that the centrifugal pendulum 205, and more precisely the pendulum mass 215, lies radially outside the clutches 130, 135 and where applicable 140. Embodiments lying further inward are however also possible.
(23) The centrifugal pendulum 205 depicted is flanged axially to the arrangement of clutches 130, 135 and where applicable 140, so it can be dismounted therefrom. A force-fit connection between the centrifugal pendulum 205 and the first input side 110 may be created by a interference fit. The force flow, as depicted in
(24)
(25) On the left in the depiction of
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(28) With different compositions of components or features described above with reference to
LIST OF REFERENCE DESIGNATIONS
(29) 100 Clutch device
(30) 105 Rotation axis
(31) 110 First input side
(32) 115 Second input side
(33) 120 First output side
(34) 125 Second output side
(35) 130 First clutch
(36) 135 Second clutch
(37) 140 Third clutch
(38) 145 Electrical machine
(39) 150 Rotor
(40) 155 Stator
(41) 160 First actuator device
(42) 165 Second actuator device
(43) 170 Third actuator device
(44) 175 Housing
(45) 180 Liquid medium
(46) 185 Flange
(47) 205 Centrifugal pendulum
(48) 210 Pendulum flange
(49) 215 Pendulum mass
(50) 220 Pendulum element
(51) 225 Bolt
(52) 230 Groove
(53) 235 Web
(54) 240 Bearing
(55) 505 Decoupling device