Pulley decoupler
10359084 ยท 2019-07-23
Assignee
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/0827
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B67/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2041/0605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B67/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A decoupler is provided for rotationally driving a generator of an auxiliary-unit belt drive of an internal combustion engine, including: a pulley, a hub, and two bearing points, at which the pulley is rotatably supported on the hub, a series arrangement of a helical torsion spring and a one-way clutch, which allows the hub to overtake the pulley, and a spring plate, which is rotationally fixed in relation to the pulley or the hub, for the one spring end and a spring plate, which can be rotated in relation to the pulley and the hub, for the other spring end. The spring ends, which lie against ramp steps of the spring plates, radially expand the helical torsion spring as the driving torque is transmitted. The frictional torque, produced in one of the bearing points when the hub is overtaking, acts on the rotatable spring plate in a direction of rotation of the rotationally fixed spring plate. The other bearing point, according to the invention, has a part that is rotationally fixed in relation to the rotationally fixed spring plate, on which part the rotatable spring plate is supported, a further frictional torque thus being produced, which acts on the rotatable spring plate in the direction of rotation of the rotationally fixed spring plate.
Claims
1. A decoupler for a rotational drive of a generator of an auxiliary unit belt drive of an internal combustion engine, the decoupler comprising: a belt pulley adapted to be rotationally driven by a belt; a hub that is adapted to rotationally drive a shaft of the generator arranged radially inside the belt pulley; two axially spaced bearing points at which the belt pulley is supported for rotation on the hub; a series arrangement radially between the belt pulley and the hub formed of a helical torsion spring and a one-way coupling that allows the hub to overtake the belt pulley in a driving rotational direction to form an overrunning hub; a rotationally fixed spring plate that is rotationally fixed relative to the belt pulley or the hub for one end of the helical torsion spring and a rotating spring plate that rotates relative to the belt pulley and the hub for another end of the helical torsion spring; wherein the rotationally fixed spring plate and the rotating spring plate each rise up to a step axially with a ramp shape, and spring ends of the helical torsion spring contact the ramp steps to expand the helical torsion spring radially while transferring a drive moment and a friction moment generated in one of the bearing points by the overrunning hub loads the rotating spring plate in a rotational direction of the rotationally fixed spring plate, the other bearing point has a part that is rotationally fixed relative to the rotationally fixed spring plate and on which the rotating spring plate is supported while generating another friction moment that loads the rotating spring plate in the rotational direction of the rotationally fixed spring plate, the clamping roller overriding clutch extends axially completely outside of a belt groove in the belt pulley, and the one bearing point is formed by a sliding bearing ring that surrounds the hub and is enclosed by an inner ring of the clamping roller overriding clutch.
2. The decoupler according to claim 1, wherein the clamping roller overriding clutch extends axially completely outside of a belt groove in the belt pulley.
3. The decoupler according to claim 1, wherein the rotating spring plate comprises a cylindrical sheet metal formed part that is mounted in the inner ring of the clamping roller overriding clutch.
4. The decoupler according to claim 3, wherein the rotating spring plate comprises a spring contact part that is held in the sheet metal formed part and on which the ramp step is formed and forms a contact secured against rotation on a radially inward extending collar of the sheet metal formed part.
5. The decoupler according to claim 1, wherein the other bearing point is a ball bearing having an inner ring that is mounted on the hub and axially supports the rotating spring plate.
6. The decoupler according to claim 5, wherein the inner ring of the ball bearing supports the rotating spring plate by a metallic support washer and a sliding bearing washer made from plastic.
7. A decoupler for use in an internal combustion engine, the decoupler comprising: a belt pulley; a hub that is adapted to rotationally drive a shaft of a load arranged radially inside the belt pulley; two axially spaced bearing points at which the belt pulley is supported for rotation on the hub; a series arrangement radially between the belt pulley and the hub formed of a helical torsion spring and a one-way coupling that allows the hub to overtake the belt pulley in a driving rotational direction to form an overrunning hub; a rotationally fixed spring plate that is rotationally fixed relative to the belt pulley or the hub for one end of the helical torsion spring and a rotating spring plate that rotates relative to the belt pulley and the hub for another end of the helical torsion spring; wherein the rotationally fixed spring plate and the rotating spring plate each rise up to a step axially with a ramp-shape, and spring ends of the helical torsion spring contact the ramp steps to expand the helical torsion spring radially while transferring a drive moment and a friction moment generated in one of the bearing points by the overrunning hub loads the rotating spring plate in a rotational direction of the rotationally fixed spring plate, the other bearing point has a part that is rotationally fixed relative to the rotationally fixed spring plate and on which the rotating spring plate is supported while generating another friction moment that loads the rotating spring plate in the rotational direction of the rotationally fixed spring plate, and the one-way coupling is constructed as a clamping roller overriding clutch that is arranged radially outside of the helical torsion spring, and the other bearing point is a ball bearing having an inner ring that is mounted on the hub and axially supports the rotating spring plate.
8. The decoupler according to claim 7, wherein the clamping roller overriding clutch extends axially completely outside of a belt groove in the belt pulley.
9. The decoupler according to claim 7, wherein the one bearing point is formed by a sliding bearing ring that surrounds the hub and is enclosed by an inner ring of the clamping roller overriding clutch.
10. The decoupler according to claim 9, wherein the rotating spring plate comprises a cylindrical sheet metal formed part that is mounted in the inner ring of the clamping roller overriding clutch.
11. The decoupler according to claim 10, wherein the rotating spring plate comprises a spring contact part that is held in the sheet metal formed part and on which the ramp step is formed and forms a contact secured against rotation on a radially inward extending collar of the sheet metal formed part.
12. The decoupler according to claim 7, wherein the inner ring of the ball bearing supports the rotating spring plate by a metallic support washer and a sliding bearing washer made from plastic.
13. A decoupler for a belt drive, the decoupler comprising: a belt pulley adapted to be rotationally driven by a belt; a hub adapted to rotationally drive a shaft arranged radially inside the belt pulley; at least two bearing points supporting the belt pulley for rotation on the hub, a first bearing point of the at least two bearing points comprising a clamping roller overriding clutch; a helical torsion spring and a one-way coupling arranged between the belt pulley and the hub; a fixed spring plate formed integrally with the hub and engaged with a first end of the helical torsion spring, the fixed spring plate radially surrounding the helical torsion spring and forming a sliding bearing section for the first bearing point of the at least two bearing points; and a rotatable spring plate that rotates relative to the belt pulley and the hub, and the rotatable spring plate is engaged with a second end of the helical torsion spring.
14. The decoupler of claim 13, wherein a second bearing point of the at least two bearing points is formed as a ball bearing assembly, and the ball bearing assembly includes an inner ring mounted on the hub that axially supports the rotating spring plate.
Description
BRIEF DESCRIPTION OF THE CLAIMS
(1) Additional features of the invention are given from the subsequent description and the drawings in which a decoupler according to the invention is shown for the generator of an auxiliary unit belt drive of an internal combustion engine. Shown are:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) The decoupler 1 shown in
(8) The elastic transmission of the drive moment from the belt pulley 2 to the hub 4 is realized by a series arrangement that extends radially between the belt pulley 2 and the hub 4 and is made from a one-way coupling 12 and a helical torsion spring 13. The one-way coupling 12 is a clamping roller overriding clutch that forms a structural unit with a clamping roller row 14, a support bearing row 15 axially adjacent to the clamping roller row, an inner ring 16 provided with clamping ramps in the area of the clamping roller row 14, and an outer ring 17. This extends radially outside of the helical torsion spring 13 at the expense of the smallest possible loop diameter of the belt and axially completely outside of the area w of the belt groove 3. The overriding clutch outer ring 17 is pressed into a diameter extension of the belt pulley 2 adjacent to the belt groove 3 and the overriding clutch inner ring 16 encloses the sliding bearing ring 7.
(9) The helical torsion spring 13 is clamped with leg-less spring ends between a spring plate 18 that can rotate relative to the belt pulley 2 and the hub 4 and a spring plate 19 that is rotationally fixed relative to the hub 4. As can be seen in
(10) The rotationally fixed spring plate 19 on which the one spring end contacts is constructed in one piece on the hub 4 and its outer lateral surface forms the sliding bearing section 8. The rotating spring plate 18 on which the other spring contacts has a two-part construction and comprises a cylindrical sheet metal formed part 21 and a spring contact part 22 rotationally fixed therein and on which the ramp step 20 is formed. The sheet metal formed part 21 is pressed onto one end in the overriding clutch inner ring 16 and has, at the other end, a radially inward running collar 23 for the rotationally fixed support of the spring contact part 22. The rotational fixing is realized by multiple, in the present case, five axial projections 24 on the spring contact part 22 that engage in corresponding openings 25 in the collar 23. As an alternative, the overriding clutch inner ring 16 and the sheet metal formed part 21 and also the spring contact part 22 can be combined into a one-piece and, for example, sintered component.
(11) The rotating spring plate 18 is supported on one side by the overriding clutch inner ring 16 on the one bearing point 5 and on the other side by the spring contact part 22 on a bearing point 26 radially on the hub 4 and also supported axially against the ball bearing 9. The axial support is realized by a metallic thrust washer 27 and an adjacent sliding bearing washer 28 made from plastic that are clamped between the bearing inner ring 10 and the collar 23 with the axial pre-tensioning force of the helical torsion spring 13. Thus, the bearing inner ring 10 forms a part that is also rotationally fixed relative to the rotationally fixed spring plate 19 and on which the rotating spring plate 18 is supported.
(12) The belt drives the belt pulley 2 of the decoupler 1 in the rotational direction drawn in
LIST OF REFERENCE NUMBERS
(13) 1 Decoupler 2 Belt pulley 3 Belt groove 4 Hub 5 Bearing point 6 Bearing point 7 Sliding bearing ring 8 Sliding bearing section 9 Ball bearing 10 Bearing inner ring 11 Bearing outer ring 12 One-way coupling/clamping roller overriding clutch 13 Helical torsion spring 14 Clamping roller row 15 Support bearing row 16 Overriding clutch inner ring 17 Overriding clutch outer ring 18 Rotating spring plate 19 Rotationally fixed spring plate 20 Ramp stage 21 Sheet metal formed part 22 Spring contact part 23 Collar 24 Projection 25 Opening 26 Bearing point 27 Thrust washer 28 Sliding bearing washer