Belt pulley decoupler
11326648 · 2022-05-10
Assignee
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A belt pulley decoupler for the drive torque transmission between a belt of a starter-generator belt drive and the starter generator is provided. A hub is fastened on a generator shaft of the starter generator. A decoupler spring is configured to transmit drive torque of the belt from the belt pulley to the hub when the starter generator is powered. A rotary stop has a stop part on the belt pulley and a stop part on the hub. The rotary stop is configured to transmit drive torque of the generator shaft from the hub to the belt pulley when the starter generator is driving the belt. The decoupler spring is loaded in both torque directions and participates in the transmission of the drive torque from the hub to the belt pulley when the starter generator is driving the belt.
Claims
1. A belt pulley decoupler for transmitting drive torque between a belt of a starter generator belt drive and a starter generator, the belt pulley decoupler comprising: a belt pulley; a hub configured to be fastened on a generator shaft of the starter generator; a decoupler spring configured to transmit drive torque from the belt pulley to the hub when the starter generator is driven by the belt; and a rotary stop comprising a first stop part on the belt pulley and a second stop part on the hub, which transmits drive torque of the generator shaft from the hub to the belt pulley when the starter generator is driving the belt; wherein the decoupler spring is loaded in both directions of rotation and participates in the transmission of the drive torque from the hub to the belt pulley when the starter generator is driving the belt; the decoupler spring comprising spring ends at opposing torque directions attached in a form-fit manner with a spring plate of the belt pulley and a spring plate of the hub; and wherein axial end faces of the spring ends each have a recess which encompasses an axial elevation of the associated spring plate, wherein the recesses in the spring ends transmit the drive torque.
2. A belt pulley decoupler according to claim 1, wherein the decoupler spring is a torsion spring which extends in axial direction of the belt pulley decoupler.
3. A belt pulley decoupler according to claim 2, wherein the second stop part is formed by a driver which can be rotated in a recess restricted by the first stop part.
4. A belt pulley decoupler according to claim 3, wherein the recess is formed by a driver ring fastened in the belt pulley.
5. A belt pulley decoupler according to claim 4, wherein a sliding disc with an axial projection is arranged between the driver ring and an end face of the hub facing away from the torsion spring, wherein the sliding disc runs circumferentially between the second stop part and the first stop part and forms part of the rotary stop.
6. A belt pulley decoupler according to claim 2 wherein the spring plates are elevated axially in the form of a ramp, forming a step, with end faces of the spring ends transmitting the drive torque from the step of the spring plate of the hub to the step of the spring plate of the belt pulley when the starter generator is driving the belt.
7. A belt pulley decoupler according to claim 6, wherein the spring ends comprise a tangential spring end or a secant spring end; wherein the spring ends are received in corresponding moldings of the spring plates to secure against twisting in both directions of rotation.
8. A belt pulley decoupler according to claim 6, wherein the recesses in the spring ends transmit the drive torque from the axial elevation of the spring plate of the belt pulley to the axial elevation of the spring plate of the hub when the generator is driven by the belt.
9. A belt pulley decoupler for transmitting drive torque between a belt of a starter generator belt drive and a starter generator, the belt pulley decoupler comprising: a belt pulley; a hub configured to be fastened on a generator shaft of the starter generator; a decoupler spring configured to transmit drive torque from the belt pulley to the hub when the starter generator is driven by a belt, wherein the decoupler spring is loaded in both directions of rotation and participates in the transmission of the drive torque from the hub to the belt pulley when the starter generator is driving the belt; the decoupler spring comprising spring ends at opposing torque directions attached in a form-fit manner with a spring plate of the belt pulley and a spring plate of the hub; and wherein axial end faces of the spring ends each have a recess which encompasses an axial elevation of the associated spring plate, wherein the recesses in the spring ends transmit the drive torque.
10. The belt pulley decoupler of claim 9, further comprising a rotary stop having a first stop part on the belt pulley and a second stop part on the hub, wherein the rotary stop is configured to transmit drive torque of the generator shaft from the hub to the belt pulley when the starter generator is driving the belt.
11. The belt pulley decoupler of claim 10, wherein the decoupler spring is a torsion spring which extends in axial direction of the belt pulley decoupler.
12. The belt pulley decoupler of claim 11, wherein the second stop part is formed by a driver which can be rotated in a recess restricted by the first stop part.
13. The belt pulley decoupler of claim 11, wherein the first stop part includes a first plurality of tabs extending radially inwardly from the belt pulley, and the second stop part includes a second plurality of tabs that can rotate between adjacent tabs of the first plurality of tabs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further characteristics are included in the following description and the drawings, which show a principle presentation and two embodiments of the belt pulley decoupler for a starter generator belt drive of an internal combustion engine:
(2)
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DETAILED DESCRIPTION OF THE DRAWINGS
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(16) For the purpose of comparison,
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(21) The decoupler spring 11 involves a component that may be essential for the function of the belt pulley decoupler 1. It is a helical torsion spring which extends in axial direction of the belt pulley decoupler 1 and has spring ends 12 and 13, which bear against a spring plate 14 of the hub 4 and against a spring plate 15 of the belt pulley 2 in such a way that the decoupler spring 11 can transmit drive torque in both torque directions in accordance with
(22) Another component involves a rotary stop, which has two stop parts 23 on the hub 4 and two stop parts 24 on the belt pulley 2, which come into contact at the same time. The stop parts 23 of the hub 4 are formed by circumferential end faces of cam-like drivers 25. These are axially located on the end face of the flange 20, which faces away from the decoupler spring 11. The two stop parts 24 of the belt pulley 2 are formed by a driver ring 26 with two recesses 27 fastened therein, in which the drivers 25 can be rotated and the circumferential extension of which is limited by the stop parts 24. The mounting of the driver ring 26 in the belt pulley 2, which is designed to transmit the relatively high start and boost torques, is reinforced by a collar on the outer circumference of the driver ring 26.
(23) The rotatability of the drivers 25 within the recesses 27 is configured symmetrically so that—starting from the unloaded condition of the decoupler spring 11—the non-impact torsion angle is equal in both load directions of the decoupler spring 11. Different from this and depending on the spring stiffness of the drive torques to be transmitted in the generator and electric motor operation of the starter generator and the number of stop parts 23, 24, the stop-free torsion angles can be configured asymmetrically. For example, in the case of a rotary stop with only one pair of stop parts, the non-stop angle of rotation in generator operation can be selected either significantly larger or significantly smaller than in electric motor operation.
(24) A plastic sliding disc 28 arranged between the driver ring 26 and the end face of the spring plate 14 serves, on the one hand, as an axial bearing of the hub 4 rotating in relation to the belt pulley 2 and, on the other hand, as a stop damper during the initial contact of the rotary stop. For this purpose, the sliding disc 28 is provided with two pairs of axial projections 29, which hold the sliding disc 28 on the drivers 25 and form part of the rotary stop, in that the projections 29 extend circumferentially between the stop parts 23 of the hub 4 and the stop parts 24 of the belt pulley 2, preventing their direct (metallic) contact.
(25) On the functioning of the belt pulley decoupler 1:
(26) 1.) The starter generator is in generator operation and is driven by the belt in the direction of rotation as shown in
(27) In this operating condition, the extensive distance between the stop parts 23 and 24 is on average greater than in the unloaded condition according to
(28) 2.) The starter generator is in electric motor operation and drives the belt. The hub 4 rotates with the drivers 25 in the direction of rotation shown in
(29)
(30) The belt pulley decoupler 1′ rotates according to the arrow direction shown in
(31) The rotary stop is formed by three pairs of stop parts 23′, 24′, wherein the hub 4′ has three radially projecting cam-like drivers 25′, which project radially in relation to its cylindrical shape and which can be rotated in three recesses 27′ running directly in the belt pulley 2′.
(32) On the functionality of the belt pulley decoupler 1′:
(33) 1.) The starter generator is in generator operation and is driven by the belt in the direction of rotation as shown in
(34) 2.) The starter generator is in electric motor operation and drives the belt. The hub 4′ rotates with the drivers 25′ in the direction of rotation shown in
LIST OF REFERENCE NUMERALS
(35) 1 belt pulley decoupler
(36) 2 belt pulley
(37) 3 outer casing
(38) 4 hub
(39) 5 middle section of the hub
(40) 6 internal multipoint screw
(41) 7 roller bearing
(42) 8 plain bearing
(43) 9 circumferential groove
(44) 10 protective cap
(45) 11 decoupler spring
(46) 12 spring end (on the part of the hub)
(47) 13 spring end (on the part of the belt pulley)
(48) 14 spring plate (on the part of the hub)
(49) 15 spring plate (on the part of the belt pulley)
(50) 16 molding (on the part of the hub)
(51) 17 molding (on the part of the belt pulley)
(52) 18 flange (on the part of the belt pulley)
(53) 19 sleeve
(54) 20 flange (on the part of the hub)
(55) 21 step (on the part of the hub)
(56) 22 step (on the part of the belt pulley)
(57) 23 stop part (on the part of the hub)
(58) 24 stop part (on the part of the belt pulley)
(59) 25 driver (on the part of the hub)
(60) 26 driver ring (on the part of the belt pulley)
(61) 27 recess (on the part of the belt pulley)
(62) 28 sliding disc
(63) 29 axial projection of the sliding disc
(64) 30 opposite end face of the driver
(65) 31 opposite restriction of the recess
(66) 32 recess in the spring end (on the part of the hub)
(67) 33 recess in the spring end (on the part of the belt pulley)
(68) 34 axial elevation (on the part of the hub)
(69) 35 axial elevation (on the part of the belt pulley)