Decoupler
10514079 ยท 2019-12-24
Assignee
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2055/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2238/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A decoupler is disclosed for transmitting a drive torque from a rotary drive to a rotary output. The decoupler may include a first spring collar arranged on a drive-part side of a first end of a coil torsion spring and a second spring collar arranged on an output-part side of a second end of the coil torsion spring. The spring collars include axially ascending ramps, and the ends of the coil torsion spring resting thereon widen the coil torsion spring radially with transmission of a drive torque. The ends of the coil torsion spring and the spring collars include reciprocal rotary stops that prevent a relative rotation of the second spring collar with respect to the second coil torsion spring end and of the first coil torsion spring end with respect to the first spring collar.
Claims
1. A decoupler for transmitting a drive torque from a rotary drive to a rotary output, said decoupler comprising: a drive part arranged in a drive torque flow on a drive-side; an output part arranged in the drive torque flow on an output-side; a series connection situated between the drive part and the output part and made up of a coil torsion spring and a one-way clutch which permits overrunning of the output part with respect to the drive part in a rotational drive direction; a first spring collar arranged in the drive torque flow on the drive-side for a first end of the coil torsion spring; a second spring collar arranged in the drive torque flow on the output-side for a second end of the coil torsion spring; the first and second spring collars including axially ascending ramps, and the ends of the coil torsion spring resting thereon widening the coil torsion spring radially with transmission of the drive torque; and the coil torsion spring ends and the spring collars including reciprocal rotary stops that in the rotational drive direction, respectively prevent a relative rotation of the second spring collar with respect to the second end of the coil torsion spring and of the first end of the coil torsion spring with respect to the first spring collar; and, in a disengaged state of the one-way clutch, a torque entraining the coil torsion spring is transmitted on the output-side from the rotary stop of the second spring collar to the rotary stop of the second end of the coil torsion spring, and on the drive-side from the rotary stop of the first end of the coil torsion spring to the rotary stop of the first spring collar.
2. The decoupler of claim 1, wherein the decoupler drives a generator of an auxiliary unit belt drive of an internal combustion engine, wherein: the rotary drive is the belt of the belt drive, the drive part is a belt pulley, the rotary output is a generator shaft; and the output part is a hub to be fixed on the generator shaft.
3. The decoupler of claim 1, wherein the rotary stops are formed on the coil torsion spring by axially outward angled coil torsion spring ends and, on the spring collar, by peripheral limitations of axial recesses into which the coil torsion spring ends protrude.
4. The decoupler of claim 1, wherein the rotary stops are formed on the coil torsion spring by radially inward angled coil torsion spring ends and on the spring collar by inner shoulders that engage behind the coil torsion spring ends radially on the inside.
5. The decoupler of claim 4, wherein the coil torsion spring ends are supported radially on the outside against outer shoulders of the spring collars.
6. The decoupler of claim 5, wherein the outer shoulders extend equidistant to the inner shoulders.
7. The decoupler of claim 1, wherein the rotary stops are formed on the coil torsion spring by axial recesses in the coil torsion spring ends and on the spring collar by axial projections that project into the recesses.
8. The decoupler of claim 1, wherein the rotary stops are formed on the coil torsion spring by axial projections on the coil torsion spring ends and on the spring collar by axial recesses into which the projections extend.
9. The decoupler of claim 2, wherein the second spring collar is fixed in rotation to the hub.
10. The decoupler of claim 2, wherein the first spring collar is non-rotatably connected to the belt pulley in an engaged state of the one-way clutch.
11. The decoupler of claim 1, wherein (i) the second end of the coil torsion spring is fixed to the second spring collar by a press-fit connection or a welded connection; or (ii) the first end of the coil torsion spring is fixed to the first spring collar by a press-fit connection or a welded connection.
12. The decoupler of claim 1, wherein the rotary stop of the first end of the coil torsion spring is symmetric to the rotary stop of the second end of the coil torsion spring.
13. The decoupler of claim 1, wherein the decoupler drives an auxiliary unit belt drive of an internal combustion engine, wherein: the rotary drive is crankshaft, the drive part is a shaft connected to the crankshaft, the rotary output is the belt of the belt drive; and the output part is a belt pulley.
14. A decoupler for transmitting a drive torque from a rotary drive to a rotary output, said decoupler comprising: a drive part arranged in a drive torque flow on a drive-side; an output part arranged in the drive torque flow on an output-side; a series connection situated between the drive part and the output part and made up of a coil torsion spring and a one-way clutch which permits overrunning of the output part with respect to the drive part in a rotational drive direction; a first spring collar arranged in the drive torque flow on the drive-side for a first end of the coil torsion spring; a second spring collar arranged in the drive torque flow on the output-side for a second end of the coil torsion spring; the first and second spring collars including axially ascending ramps, and the ends of the coil torsion spring resting thereon widening the coil torsion spring radially with transmission of the drive torque; and the coil torsion spring ends and the spring collars including reciprocal rotary stops that in the rotational drive direction, respectively prevent a relative rotation of the second spring collar with respect to the second end of the coil torsion spring and of the first end of the coil torsion spring with respect to the first spring collar; and, in an engaged state of the one-way clutch, the drive torque is transmitted: (i) from the drive part to the coil torsion spring by a step of the first spring collar to a front face of the first end of the coil torsion spring, and, (ii) from the coil torsion spring to the output part by a front face of the second end of the coil torsion spring to a step of the second spring collar.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features of the disclosure will become obvious from the following description and the attached drawings in which the disclosure is elucidated in principle and with reference to examples of embodiment. If not otherwise stated, identical and functionally identical features or components are identified at identical reference numerals. The figures show:
(2)
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DETAILED DESCRIPTION
(13)
(14) a belt pulley 6 surrounded by the belt 2 and arranged as a drive-side drive part 7,
(15) a hub 8 fixed on the generator shaft 4 and arranged as an output-side output part 9,
(16) a series connection arranged between the belt pulley 6 and the hub 8 and made up of a one-way clutch 10 and a coil torsion spring 11 whose first end 12 extends on the belt pulley-side and whose second end 13 extends on the hub-side,
(17) a first spring collar 14 for the first end 12 of the coil torsion spring and
(18) a second spring collar 15 for the second end 13 of the coil torsion spring.
(19) The drive of the generator takes place in the direction of rotation shown graphically on the generator shaft 4 i.e., in the clockwise direction when the belt drive is viewed in the figure from the left.
(20) The coil torsion spring 11 serving to elastically transmit the drive torque from the belt pulley 6 to the generator shaft 4 is clamped both in the peripheral direction and also slightly biased in the axial direction between the first, drive-side spring collar 14 and the second, output-side spring collar 15. The first spring collar 14 is rotatable both with respect to the belt pulley 6 as well as with respect to the hub 8, and is non-rotatably connected only through the engaged one-way clutch 10 to the belt pulley 6. The second spring collar 15 is fixed in rotation to the hub 8. Both spring collars 14, 15 ascend axially in the manner of ramps (with the respective periphery of their front faces) and are therefore shaped substantially complementarily to the ends 12, 13 of the coil torsion spring 11 that are in contact respectively with the spring collars 14, 15. The transmission of the drive torque is accomplished at both ends 12 and 13 of the coil torsion spring 11 through a respective pressure contact between the front faces 16 of the ends 12, 13 of the coil torsion spring 11 and a respective step 18 formed by the axial ramp 17 of each spring collar 14, 15 so that the coil spool of the coil torsion spring 11 gets radially widened under the drive torque load applied to its ends 12, 13.
(21) The arrows shown on the spring collars 14, 15 in
(22)
(23) Analogous to
(24)
(25) a shaft 22 fixed on the crankshaft 21 and arranged as a drive-side drive part 7,
(26) a belt pulley 6 surrounded by the belt 2 and arranged as an output-side output part 9,
(27) a series connection arranged between the shaft 22 and the belt pulley 6 and made up of a coil torsion spring 11 and a one-way clutch 10, the first end 12 of the coil torsion spring 11 extending on the side shaft-side and the second end 13 of the coil torsion spring 11 extending on the belt pulley-side,
(28) a first spring collar 14 for the first end 12 of the coil torsion spring 11 and
(29) a second spring collar 15 for the second end 13 of the coil torsion spring 11.
(30) The drive of the belt takes place in the direction of rotation shown graphically on the crankshaft 21 i.e., likewise in the clockwise direction when the belt drive is viewed in the figure from the left. Because, in contrast to
(31) In
(32) The coil torsion spring 11 shown in
(33) The pairs of arrows shown in
(34) The coil torsion spring 11 shown in
(35) The spring collar 14 shown in
(36) In the third example of embodiment according to
(37)
(38) As an alternative to the shown rotary stops 19, 20 of the ends 12, 13 of the coil torsion spring 11 and the spring collars 14, 15, a variety of further configurations may be used as long as the rotary stops can apply the entraining torque responsible for the radial contraction of the coil torsion spring to the ends of the coil torsion spring. Such alternatives can be, for example:
(39) non circular projections and/or recesses;
(40) radially oriented projections and recesses;
(41) radially outward angled coil torsion spring ends; and/or
(42) radial or axial bent regions of the coil torsion spring ends with an angle of >90 and <180.
LIST OF REFERENCE CHARACTERS
(43) 1 Decoupler 2 Belt 3 Rotary drive 4 Generator shaft 5 Rotary output 6 Belt pulley 7 Drive part 8 Hub 9 Output part 10 One-way clutch 11 Coil torsion spring 12 First end of coil torsion spring 13 Second end of coil torsion spring 14 First spring collar 15 Second spring collar 16 Front face of a coil torsion spring end 17 Ramp of a spring collar 18 Step 19 Rotary stop of a coil torsion spring end 20 Rotary stop of a spring collar 21 Crankshaft 22 Shaft 23 Limitation of the axial recess of a spring collar 24 Outer shoulder of a spring collar