Clutch arrangement for a drive train of a motor vehicle
10641346 ยท 2020-05-05
Assignee
Inventors
- Alexander Hehenberger (Premstaetten, AT)
- Kurt Kippes (Weiz, AT)
- Alexander Klar (Graz, AT)
- Wolfgang Schweiger (St. Stefan, AT)
Cpc classification
F16H25/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2011/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2023/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2063/3056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
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
F16D2011/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2063/3093
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch arrangement for a drive train of a motor vehicle comprising a switching element with a control geometry, an actuator, an actuating element, and a running roller. The switching element is arranged on an output element such that it is fixed in terms of rotation but can be moved axially into a first switching position and into a second switching position, an actuator operable for movement of the switching element from the first switching position into the second switching position and/or vice versa. The actuating element, via the actuator, actuates movement of the switching element from the first switching position into the second switching position and/or vice versa. The running roller is arranged on the actuating element.
Claims
1. Clutch arrangement for a drive train of a motor vehicle comprising: a switching element with a control geometry, the switching element being arranged on an output element such that it is fixed in terms of rotation but can be moved axially, namely can be moved selectively into a first switching position and into a second switching position, the output element being drive-connected to a drive element in the first switching position of the switching element, and the output element not being drive-connected to the drive element in the second switching position of the switching element; an actuator, the movement of the switching element from the first switching position into the second switching position and/or vice versa to be actuated via the actuator; an actuating element, via which the actuator actuates the movement of the switching element from the first switching position into the second switching position and/or vice versa; and a running roller which is arranged on the actuating element, wherein the actuating element is actuated via the actuator in the first switching position of the switching element in such a way that the running roller can be brought into engagement with the control geometry of the switching element, with the result that the switching element can be transferred from the first switching position into the second switching position, wherein the actuating element has a crescent-shaped configuration.
2. The clutch arrangement according to claim 1, further comprising a holding mechanism which locks the switching element mechanically in the first switching position and in the second switching position.
3. The clutch arrangement according to claim 2, wherein the holding mechanism has a braking element which is arranged on the actuating element and which, upon the actuation of a movement of the switching element from the second switching position into the first switching position, acts on the holding mechanism in such a way that the mechanical locking of the switching element in the second switching position is released and thus the movement of the switching element from the second switching position into the first switching position is initiated.
4. The clutch arrangement according to claim 3, wherein the braking element acts on the holding mechanism in a frictionally locking or positively locking manner.
5. The clutch arrangement according to one of claim 1, wherein the actuating element can be pivoted about a rotational axis which runs parallel to a central rotational axis of the output element.
6. The clutch arrangement according to claim 1, wherein the actuation of the actuating element takes place via the actuator in an electromechanical, electrohydraulic or electromagnetic manner.
7. The clutch arrangement according to claim 1, wherein the control geometry of the switching element has at least one undercut, with a result that, in the first switching position of the switching element and/or in the second switching position of the switching element, the running roller is situated in an all-round clearance with respect to the control geometry.
Description
DRAWINGS
(1) The invention will be described below by way of example with reference to the drawings.
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DESCRIPTION
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(31) The exemplary variant embodiment of the clutch arrangement 1 according to the invention that is illustrated in
(32) The clutch arrangement 1 comprises a switching element 2 with a control geometry 3, an actuator 6, an actuating element 7, a running roller 8, a braking element 9 and a holding mechanism 16.
(33) The switching element 2 is illustrated in different detailed illustrations in
(34) The output element 5 is drive-connected to the drive element 4, here a second shaft, in the first switching position of the switching element 2.
(35) In the present exemplary embodiment, the actuator 6 is designed in the form of an electromagnet. Depending on the design, i.e. depending on the desired behaviour of the actuator 6 in the currentless state, the actuator 6 has a coil, a spring or a permanently magnetic armature, and also a pin 13. It is possible for a first switching operation of the switching element 2, namely an axial movement of the switching element 2 from the first switching position into the second switching position, to be actuated via the actuator 6 (
(36) The actuating element 7 of the clutch arrangement 1 is of substantially crescent-shaped configuration and is pivotable about a rotational axis 10 which, in the present case, is fixed on the housing. The rotational axis 10 which is fixed on the housing runs parallel to the central rotational axis 11 of the output element 5. A running roller 8 and also a braking element 9 are arranged on the actuating element 7 in a fixed position, i.e. neither movable axially nor radially. The terminology radially describes a direction normal to the central rotational axis 11 of the output element 5.
(37) The braking element 9 is part of the holding mechanism 16 of the clutch arrangement 1 and is connected to the actuating element 7 via a fastening element 42 which is spring-mounted in the radial direction with respect to the central rotational axis 11. The switching element 2 is held mechanically in the first switching position and in the second switching position via the holding mechanism 16 of the clutch arrangement 1. The holding mechanism 16 comprises a first elastic element 14, a first holding element 17 and a second holding element 18.
(38) The second elastic element 15 is designed as a compression spring and is arranged on the output element 5 coaxially with respect to the switching element 2 between a stop formed on the switching element 2 and a stop (not illustrated) arranged fixedly on the output element 5. By means of the force of the second elastic element 15, the switching element 2 is pressed axially into the first switching position and is held mechanically in the first switching position.
(39) The first holding element 17 is illustrated in
(40) The second holding element 18 is illustrated in
(41) One or more first holding elements 17 with third elastic elements 19 in the form of sheet-metal spring elements are guided radially outwards via passage openings 43 recessed in the switching element 2 and are brought into engagement with the holding geometry 20 of the second holding element 18 or are pressed radially inwards over the toothing region 22, which is arranged on the inner circumferential surface of the second holding element 18, when the second holding element 18 rotates. A locking function and, by rotation of the second holding element 18 relative to the switching element 2, an unlocking function of the switching element 2 can therefore be provided.
(42) The first switching operation, namely the transition of the switching element 2 from the first switching position into the second switching position, takes place by means of a state change of the actuator 6 (
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(44) During the first switching operation, a second elastic element 15 is tensioned and, at the end of the first switching operation, the switching element 2 is locked in a positively locking manner in the second switching position via the third elastic elements 19 of the first holding elements 17. The action of force of the actuator 6 fixes the end position of the actuating element 7 counter to the acting spring force of the pretensioned first elastic element 14 at the end of the first switching operation (
(45) The second switching operation, namely the transition of the switching element 2 from the second switching position into the first switching position, takes place via a new state change of the actuator 6. In this case, the pin 13 of the actuator 6 is moved via the actuating element 7 from the second (extended) end position into a first (retracted) end position by means of the energy stored in the first elastic element 14. This takes place, depending on the design of the actuator 6, by energizing or by deenergizing or by opposing-current energizing of the coil of the actuator 6. As a result, the braking element 9 arranged on the actuating element 7 via the fastening element 42 is brought into engagement with the internal cone 21 formed on a second holding element 18. This brings about a rotation of the second holding element 18 relative to the switching element 2, as a result of which the third elastic elements 19 of the first holding elements 17 are pressed radially inwards by means of the tooth flanks of the toothing region 22 formed on the second holding element 18, and the unlocking operation is initiated. The movement of the switching element 2 from the second into the first switching position takes place by means of the energy stored in the second elastic element 15. At the end of the second switching operation, the first elastic element 14, the second elastic element 15 and the third elastic elements 19 are in a relaxed end position.
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(48) In the 2WD mode, here the drive via a rear axle 36, the transmission of power by the distribution gear 30 takes place entirely to the rear wheels of the motor vehicle via the rear cardan shaft 37. In this operating state, the disconnect unit 38, which is designed as a coupling element, permits an entire shutdown of the angular drive in the front axle gear 31 and the front cardan shaft 39with the aid of the clutch arrangement 1 according to the invention, as a result of which an economical 2WD mode is ensured by reduction of unnecessary drag losses. The terminology 2WD stands for two-wheel drive and describes a motor vehicle drive via just one motor vehicle axle, the rear axle 36 or the front axle 35 in the example shown in
(49) The disconnect unit 38 and therefore the clutch arrangement 1 according to the invention are controlled by a control unit (not illustrated) via an electric control line 40.
LIST OF REFERENCE SIGNS
(50) 1 Clutch arrangement
(51) 2 Switching element
(52) 3 Control geometry
(53) 4 Drive element
(54) 5 Output element
(55) 6 Actuator
(56) 7 Actuating element
(57) 8 Running roller
(58) 9 Braking element
(59) 10 Rotational axis
(60) 11 Central rotational axis (of the output element)
(61) 12 Undercut
(62) 13 Pin
(63) 14 First elastic element
(64) 15 Second elastic element
(65) 16 Holding mechanism
(66) 17 First holding element
(67) 18 Second holding element
(68) 19 Third elastic element
(69) 20 Holding geometry
(70) 21 Internal cone
(71) 22 Toothing region
(72) 23 Web
(73) 24 Radial play
(74) 25 Bearing bolt (of the running roller)
(75) 26 Outer lateral surface
(76) 27 Axial play
(77) 28 Internal combustion engine
(78) 29 Main gear
(79) 30 Distribution gear
(80) 31 Front axle gear
(81) 32 Rear axle gear
(82) 33 Front side shaft
(83) 34 Rear side shaft
(84) 35 Front axle
(85) 36 Rear axle
(86) 37 Rear cardan shaft
(87) 38 Disconnect unit
(88) 39 Front cardan shaft
(89) 40 Electric control line
(90) 41 Carry-along toothing
(91) 42 Fastening element
(92) 43 Passage opening
(93) 44 First radial portion
(94) 45 Second radial portion
(95) 46 Third radial portion