CLUTCH OR BRAKE SYSTEM FOR A TORQUE TRANSMISSION WITH A PLANETARY GEAR
20230220887 · 2023-07-13
Inventors
Cpc classification
F16D41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D28/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M11/16
PERFORMING OPERATIONS; TRANSPORTING
F16D11/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H3/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch or brake system for a torque transmission. The clutch or brake system includes a first rotatable unit connectable to an input or output, including at least one first abutment surface and a second rotatable unit connectable to an output or input, respectively, including at least one second abutment surface arranged for selectively engaging the first abutment surface. The first and second abutment surfaces are adapted to each other so as to allow disengaging under load. The system includes a third rotatable unit including at least one retaining member, the third unit being arranged for selectively being in a first rotational position or a second rotational position relative to the second rotatable unit, wherein the at least one retaining member in the first rotational position locks the at least one second abutment surface for rotationally coupling the second rotatable unit to the first rotatable unit.
Claims
1. A clutch or brake system for a torque transmission having an input arranged for connection to a drive source, and an output arranged for connection to a load, the clutch system including: a first rotatable unit connectable to the input or output, including at least one first abutment surface; a second rotatable unit connectable to the output or input, respectively, including at least one second abutment surface arranged for selectively engaging the first abutment surface, the first and second abutment surfaces being adapted to each other so as to allow disengaging under load, e.g. in two directions; a third rotatable unit including at least one retaining member, the third unit being arranged for selectively being in one of one or more first rotational positions or one of one or more second rotational positions relative to the second rotatable unit, wherein the at least one retaining member in a first rotational position locks the at least one second abutment surface in a first disposition for rotationally coupling the second unit to the first unit, and in a second rotational position releases the at least one second abutment surface to a second disposition for decoupling the second unit from the first unit; wherein the third rotatable unit includes a first actuation member arranged for moving the third rotatable unit from a first position to a second position and a second actuation member arranged for moving the third rotatable unit from a second position to a first position relative to the second rotatable unit; a fourth unit including a selector, the selector being arranged for selectively being in a first mode or second mode, the selector in the first mode being arranged for gripping the first actuation member for rotating the third rotatable unit from a first position to a second position relative to the second rotatable unit; the selector in the second mode being arranged for gripping the second actuation member for rotating the third rotatable unit from a second position to a first position relative to the second rotatable unit; the second rotatable unit including a retractor member arranged for moving the first and/or second actuation member out of engagement with the selector; wherein the at least one second abutment surface and the first actuation member are angularly positioned such that while the at least one second abutment surface moves from the second disposition to the first disposition the first actuation member is prevented from being gripped by the selector.
2. The clutch or brake system of claim 1, wherein the at least one second abutment surface and the first actuation member are positioned such that while the at least one second abutment surface moves from the second disposition to the first disposition the first actuation member is kept out of engagement with the selector by a trailing end of the retractor member.
3. The clutch or brake system of claim 2, wherein the at least one second abutment surface and the first actuation member are positioned such that while the at least one second abutment surface moves from the second disposition to the first disposition the first actuation member rests on the trailing end of the retractor member.
4. The clutch or brake system of claim 2, wherein the at least one second abutment surface and the first actuation member are positioned such that while the at least one second abutment surface moves from the second disposition to the first disposition the first actuation member is biased against a trailing side of the retractor member.
5. The clutch or brake system of any of claims 1-4, wherein the at least one second abutment surface is a gripping member arranged for radially moving in and out of engagement with the at least one first abutment surface.
6. The clutch or brake system of claim 5, wherein the at least one second abutment surface and the second actuation member are angularly positioned such that when the at least one gripping member engages a ramp of the at least one retaining member and the at least one second abutment surface of the gripping member engages or is immediately adjacent a radially inner surface of the first unit, the second actuation member is moved out of engagement with the selector by the retractor member.
7. The clutch or brake system of claim 6, wherein the first and second actuation members are hingedly connected to the third unit.
8. The clutch or brake system of claim 7, wherein the first and second actuation members are biased towards the fourth unit by resilient elements.
9. The clutch or brake system of any of claims 1-8, wherein the third unit has predefined angular indexing positions with respect to the second unit, such as six predefined indexing positions.
10. The clutch or brake system of claim 9, wherein the second and/or third units are arranged such that each indexing position has associated therewith an angular biasing area, such that when the second and third units are rotationally within the biasing area relative to each other they are biased into the predefined indexing position.
11. The clutch or brake system of claim 9 or 10 when dependent from claim 5, wherein the angular indexing positions are such that in at least one of the indexing positions the gripping member is positioned on the top of the retaining member.
12. The clutch or brake system of claim 9, 10 or 11 when dependent from claim 5, wherein the angular indexing positions are such that in at least one of the indexing positions the gripping member is positioned on a leading ramp of the retaining member.
13. The clutch or brake system according to any of claims 9-12, wherein the third rotatable unit includes at least one retainer, and the second rotatable unit includes at least one notch, or wherein the second rotatable unit includes at least one retainer, and the third rotatable unit includes at least one notch, for indexing the second rotatable unit relative to the third rotatable unit, in one of the predefined angular indexing positions, by resilient engagement of at least one of the at least one retainers in at least one of the at least one notches.
14. The clutch or brake system according to claim 13 when dependent from claim 10, wherein the at least one notch has a tapered mouth for biasing the retainer towards the predefined indexing position.
15. The clutch or brake system of claim 13 or 14, wherein the retainer is hingedly connected to the third rotatable unit, such as for pivoting motion around a pivot axis parallel to the rotational axis of the third rotational unit.
16. The clutch or brake system of claim 13 or 14, wherein the retainer is formed as a pin slidable along an axis parallel to the rotational axis of the third rotational unit.
17. The clutch or brake system of any of claims 1-16 wherein the third rotatable unit includes a first body and a second body, wherein the second body includes the second actuation member, and optionally the first actuation member.
18. The clutch or brake system of claim 17, wherein the first body is rotationally resiliently coupled to the second body.
19. The clutch or brake system according to claim 18 when dependent from claim 10, wherein a first force biasing the second and third units towards a predefined angular indexing position, is smaller than a second force biasing the first body relative to the second body.
20. The clutch or brake system according to claim 10 or any preceding claim when dependent from claim 10, wherein the first and/or second actuation member is positioned to be moved out of engagement with the selector once the second and third units are rotationally within the biasing area relative to each other.
21. The clutch or brake system of any of claims 5-20, wherein the at least one second abutment surface and the first actuation member are angularly positioned such that when the at least one gripping member engages a ramp of the at least one retaining member and the at least one second abutment surface of the gripping member engages or is immediately adjacent a radially inner surface of the first unit, the first actuation member is biased against a trailing side of the retractor member, in particular pushed by a tangential spring force applied by a resilient element arranged between the first and the second body of the third unit.
22. The clutch or brake system of any of claims 1-21, wherein the third rotatable unit is arranged for co-rotating with the second rotatable unit, and the system is arranged for temporarily changing rotation speed of the third rotatable unit relative to the second rotatable unit for rotating from the first position to the second position, or from the second position to the first position.
23. The clutch or brake system of any of claims 1-22, wherein the third rotatable unit is rotatable relative to the second rotatable unit, and a rotation angle of the third rotatable unit relative to the second rotatable unit is unlimited.
24. The clutch or brake system of claim 23, wherein the third rotatable unit is arranged to be rotated from a first position to a second position, and from that second position to a first position in one and the same rotational direction.
25. The clutch or brake system of claim 23 or 24, wherein the third rotatable unit is arranged for selectively being in one of a plurality of first or second positions relative to the second rotatable unit.
26. The clutch or brake system of any of claims 1-25, wherein the engagement or disengagement of the second abutment surface with the at least one first abutment surface is independent of input torque and/or rotation speed.
27. The clutch or brake system of any of claims 1-26, wherein the first and second actuation members are arranged such that when the first actuation member is biased into contact with the selector, the second actuation member is maintained at a distance from the selector and vice versa.
28. A clutch or brake system for a torque transmission having an input arranged for connection to a drive source, and an output arranged for connection to a load, the clutch system including: a first rotatable unit connectable to the input or output, including at least one first abutment surface; a second rotatable unit connectable to the output or input, respectively, including at least one second abutment surface arranged for selectively engaging the first abutment surface, the first and second abutment surfaces being adapted to each other so as to allow disengaging under load, e.g. in two directions; a third rotatable unit including at least one retaining member, the third unit being arranged for selectively being in one of one or more first rotational positions or one of one or more second rotational positions relative to the second rotatable unit, wherein the at least one retaining member in a first rotational position locks the at least one second abutment surface in a first disposition for rotationally coupling the second unit to the first unit, and in a second rotational position releases the at least one second abutment surface to a second disposition for decoupling the second unit from the first unit; wherein the third rotatable unit includes a first actuation member arranged for moving the third rotatable unit from a first position to a second position and a second actuation member arranged for moving the third rotatable unit from a second position to a first position relative to the second rotatable unit; a fourth unit including a selector, the selector being arranged for selectively being in a first mode or second mode, the selector in the first mode being arranged for gripping the first actuation member for rotating the third rotatable unit from a first position to a second position relative to the second rotatable unit; the selector in the second mode being arranged for gripping the second actuation member for rotating the third rotatable unit from a second position to a first position relative to the second rotatable unit.
29. The clutch or brake system of any of claims 1-28, wherein the selector includes a groove including partial grooves, wherein in the first mode the partial grooves allow engaging the first actuation member and prevent engagement of the second actuation member, and in the second mode the partial grooves allows engaging the second actuation member and prevent engagement of the first actuation member.
30. The clutch or brake system of claim 29, wherein the groove includes a first partial groove, a second partial groove and a third partial groove, wherein in the first mode the first and second partial grooves allow gripping the first actuation member, and in the second mode the second and third partial grooves allow gripping the second actuation member.
31. The clutch or brake system of claim 30, wherein the first partial groove, the second partial groove and the third partial groove extend substantially axially on a cylindrical surface of the fourth unit.
32. The clutch or brake system of claim 30 or 31, wherein the first partial groove is arranged to be immobile.
33. The clutch or brake system of claim 30, 31 or 32, wherein the second partial groove and the third partial groove are arranged to be moved.
34. The clutch or brake system of claim 33, wherein the second and third partial groove are arranged to be moved, e.g. simultaneously, in opposite directions.
35. The clutch or brake system of claim 34, wherein the second partial groove is arranged for moving in the same direction as the first actuation member when the second partial groove moves from the second mode to the first mode, and the third partial groove is arranged for moving in the same direction as the second actuation member when the third partial groove moves from the first mode to the second mode.
36. The clutch or brake system of claim 33, wherein the second and third partial groove are arranged to be moved, e.g. simultaneously, in the same direction.
37. The clutch or brake system of claim 36, wherein the second and third partial groove are arranged to be moved in unison.
38. The clutch or brake system of claim 37, wherein the second and third partial groove are arranged on a unitary part.
39. The clutch or brake system of claim 36, 37 or 38, wherein the second partial groove is arranged for moving in the same direction as the first actuation member when the second partial groove moves from the second mode to the first mode, and the third partial groove is arranged for moving in the opposite direction as the second actuation member when the third partial groove moves from the first mode to the second mode.
40. The clutch or brake system of any of claims 33-39, wherein the second and third partial groove are arranged to be moved against an end stop having a predefine position relative to the first partial groove.
41. The clutch or brake system of any of claims 29-40, having a plurality of grooves including partial grooves.
42. The clutch or brake system of any of claims 1-41, wherein the first and second actuation members are arranged for radially moving in and out of engagement with the fourth unit.
43. The clutch or brake system of any of claims 1-42, wherein the first and/or second abutment surface is biased to disengage.
44. The clutch or brake system of any of claims 1-43, including a plurality of first and/or second abutment surfaces.
45. The clutch or brake system of any of claims 1-44, including a plurality of retaining members.
46. The clutch or brake system of any of claims 1-45, wherein first, second, third, and/or fourth unit are coaxial.
47. The clutch or brake system of any of claims 1-46, wherein the fourth unit is positioned at least partially within the third rotatable unit, and/or the third rotatable unit is at least partially positioned within the second rotatable unit, and/or the second rotatable unit is at least partially positioned within the first rotatable unit.
48. A torque transmission, including a clutch or brake system for instance according to any of claims 1-47 and a planetary gear, wherein the clutch or brake system is arranged in the torque transmission so as to selectively couple two of a sun gear, a planet carrier and a ring gear of the planetary gear.
49. The torque transmission of claim 48, wherein the ring gear is rotationally fixed to the first rotational unit and the planet carrier is rotationally fixed to the second rotational unit, or wherein the ring gear is rotationally fixed to the second rotational unit and the planet carrier is rotationally fixed to the first rotational unit.
50. The torque transmission of claim 48 or 49, wherein the sun gear is connected to the fourth unit via a one way bearing.
51. The torque transmission of claim 50, wherein the one way bearing is arranged to allow rotation of the sun gear in forward direction with respect to the fourth unit.
52. The torque transmission of claim 50 or 51, wherein the one way bearing is arranged to allow rotation of the sun gear with respect to the fourth unit with minimum friction and/or minimum noise.
53. The torque transmission of claim 50, 51 or 52, wherein the one way bearing is arranged to lock rotation of the sun gear in backward direction with respect to the fourth unit.
54. The torque transmission of any of claims 50-53, wherein the one way bearing is arranged to allow a torque of up to 118 Nm, and/or prevent slip.
55. The torque transmission of any of claims 50-54, wherein the one way bearing is a radial one-way bearing with rollers or with ratchet teeth.
56. The torque transmission of any of claims 50-55, wherein the one way bearing is an axial one-way bearing with rollers or with ratchet teeth.
57. A wheel axle assembly, such as a bicycle wheel axle assembly, including a torque transmission according to any of claims 48-56.
58. The wheel axle assembly of claim 57, wherein an axle of the wheel axle assembly is rotationally fixed to the fourth unit.
59. The wheel axle assembly of claim 57 or 58, wherein a driver body is connected to the first rotational unit or the second rotational unit.
60. The wheel axle assembly of any of claims 57-59, arranged for receiving a cassette having a plurality of gear wheels.
61. A bicycle including a clutch or brake system according to any of claims 1-47, a torque transmission according to any of claims 48-56, or a wheel axle assembly according to any of claims 57-60.
62. A method for operating a clutch or brake system for a torque transmission having an input arranged for connection to a drive source, and an output arranged for connection to a load, the method including: providing a clutch or brake system according to any of claims 1-47; and rotating the third rotatable unit relative to the second rotatable unit from a first rotational position to a second rotational position for disengaging the clutch or brake system, and rotating the third rotatable unit relative to the second rotatable unit from a second rotational position to a first rotational position for engaging the clutch or brake system.
63. The method of claim 62, including having the third rotatable unit co-rotate with the second rotatable unit, and temporarily changing rotation speed of the third rotatable unit relative to the second rotatable unit for rotating the third rotatable unit from a first position to a second position, or from a second position to a first position, relative to the second rotatable unit.
64. The method of claim 63, including automatically resuming co-rotation of the third rotatable unit with the second rotatable unit after the third rotatable unit has been rotated from a first rotational position to a second rotational position or vice versa.
65. A method for operating a clutch or brake system for a torque transmission having an input arranged for connection to a drive source, and an output arranged for connection to a load, the method including: providing a clutch or brake system according to any of claims 1-47; and temporarily changing rotation speed of the third rotatable unit relative to the second rotatable unit for rotating the third rotatable unit from a first rotational position to a second rotational position, or from a second rotational position to a first rotational position, relative to the second rotatable unit.
66. The method of any one of claims 62-65, including rotating the third rotatable unit from a first rotational position to a second rotational position and from a second rotational position to a first rotational position in one and the same rotational direction.
67. The method of any one of claims 62-66, including: with the selector in the first mode gripping the first actuation member for rotating the third rotatable unit from a first rotational position to a second rotational position; and with the selector in the second mode gripping the second actuation member for rotating the third rotatable unit from a second rotational position to a first rotational position.
68. A method for operating a clutch or brake system for a torque transmission having an input arranged for connection to a drive source, and an output arranged for connection to a load, the method including: providing a clutch or brake system according to any of claims 1-47; and with the selector in the first mode gripping the first actuation member for rotating the third rotatable unit from a first rotational position to a second rotational position; and with the selector in the second mode gripping the second actuation member for rotating the third rotatable unit from a second rotational position to a first rotational position.
69. The method of claim 68, including in a first rotational position locking the at least one second abutment surface for rotationally coupling the second rotatable unit to the first rotatable unit, and in a second rotational position releasing the at least one second abutment surface for decoupling the second rotatable unit from the first rotatable unit.
70. The method of any one of claims 67-69, including moving the first actuation member out of engagement with the selector after the third rotatable unit has been rotated from a first rotational position to a second rotational position, and/or moving the second actuation member out of engagement with the selector after the third rotatable unit has been rotated from a second rotational position to a first rotational position.
71. The method of any one of claims 67-70, wherein the selector includes a groove including partial grooves; the method including: in the first mode allowing the partial grooves to engage the first actuation member and prevent engagement of the second actuation member, and in the second mode allowing the partial grooves to engage the second actuation member and prevent engagement of the first actuation member.
72. The method of any one of claims 67-71, wherein when the first actuation member is biased into contact with the selector, the second actuation member is maintained at a distance from the selector and vice versa, the method including: selectively setting the selector in the first mode or in the second mode, wherein in the first mode the selector is in gripping mode for the first actuation member and in non-gripping mode for the second actuation member, and in the second mode the selector is in non-gripping mode for the first actuation member and in gripping mode for the second actuation member.
73. The method of claim 71 or 72, wherein the selector includes a groove including a first partial groove, a second partial groove and a third partial groove, wherein in the first mode the first and second partial grooves allow gripping the first actuation member, and in the second mode the second and third grooves allow gripping the second actuation member.
74. The method of claim 73, including moving the second and third partial grooves, e.g. simultaneously, in opposite directions.
75. The method of claim 73 or 74, including moving the second partial groove in the same direction as the first actuation member when the second partial groove moves from the second mode to the first mode, and moving the third partial groove in the same direction as the second actuation member when the third partial groove moves from the first mode to the second mode.
76. The method of claim 73, including moving the second and third partial grooves, e.g. simultaneously, in the same direction.
77. The method of claim 73 or 76, including moving the second partial groove in the same direction as the first actuation member when the second partial groove moves from the second mode to the first mode, and moving the third partial groove in the opposite direction as the second actuation member when the third partial groove moves from the first mode to the second mode.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0088] The invention will further be elucidated on the basis of exemplary embodiments which are represented in a drawing. The exemplary embodiments are given by way of non-limitative illustration. It is noted that the figures are only schematic representations of embodiments of the invention that are given by way of non-limiting example.
[0089] In the drawing:
[0090]
[0091]
[0092]
[0093]
[0094]
[0095]
[0096]
[0097]
[0098]
[0099]
[0100]
[0101]
[0102]
[0103]
[0104]
[0105]
[0106]
[0107]
[0108]
[0109]
[0110]
DETAILED DESCRIPTION
[0111]
[0112] The clutch or brake system in
[0113] The clutch or brake system 1 in
[0114] The third rotatable unit 10 includes at least one retaining member 12. In this example, the third rotatable unit 10 includes three retaining members 12, here evenly distributed along the perimeter of the third rotatable unit 10 at 120 degrees mutual spacing. The third rotatable unit 10 is arranged for selectively being in a first position (see
[0115] In the first position (shown in
[0116] In the second position (shown in
[0117] Hence, while the first abutment surfaces 6 and second abutment surfaces 8 are adapted to each other so as to allow disengaging under load, or to disengage under load, the relative positioning of the second rotatable unit 4 and the third rotatable unit 10 can selectively in the first position lock the second abutment surfaces 8 in engagement with the first abutment surfaces 6, and in the second position release the second abutment surfaces 8 for disengagement from the first abutment surfaces 6. It will be appreciated that while the first rotatable unit 2 and second rotatable unit 4 are decoupled, rotating the third rotatable unit 10 from the first position to the second position relative to the second rotatable unit 4, will couple the first and second rotatable units. While the first rotatable unit 2 and second rotatable unit 4 are coupled, rotating the third rotatable unit 10 from the second position to the first position relative to the second rotatable unit 4, will decouple the first and second rotatable units.
[0118] Changing the position of the third rotatable unit 10 relative to the second rotatable unit 4 from the first position to the second position, or vice versa, can be performed in many different ways. Changing the position of the third rotatable unit 10 relative to the second rotatable unit 4 from the first position to the second position can be performed by rotating the third rotatable unit 10 relative to the second rotatable unit 4 in a forward direction, and changing the position of the third rotatable unit 10 relative to the second rotatable unit 4 from the second position to the first position can be performed by rotating the third rotatable unit 10 relative to the second rotatable unit 4 in an opposite, rearward direction. It is also possible to rotate the third rotatable unit 10 relative to the second rotatable unit 4 from the first position to the second position, and from the second position to the first position in one and the same rotational direction.
[0119] An actuator can be provided for rotating the third rotatable unit and/or the second rotatable unit from the first position to the second position, and/or from the second position to the first position.
[0120] In the example of
[0121] In the example of
[0122] Here, the third rotatable unit 10 can be rotated relative to the second rotatable unit 4 from a first first position to a first second position, from the first second position to a second first position, from the second first position to a second second position, from the second second position to a third first position, from the third first position to a third second position, and from the third second position to the first first position in one and the same rotational direction. The clutch or brake system 1 can be arranged for temporarily changing rotation speed of the third rotatable unit 10 relative to the second rotatable unit 4, e.g. by temporarily speeding up, braking or halting the second and/or third rotatable unit, for rotating from a first position (e.g. the first position or a first position of the plurality of first positions) to a second position (e.g. the second position or a second position of the plurality of second positions) or from a second position (e.g. the second position or a second position of the plurality of second positions) to a first position (e.g. the first position or a first position of the plurality of first positions). Hence, the second and third rotatable units can in a simple manner be rotated from a first position to a second position or vice versa.
[0123]
[0124] The third rotatable unit 10 includes at least one, here two, actuation member 10a arranged for moving the third rotatable unit 10 from a first position to a second position or from a second position to a first position relative to the second rotatable unit 4. The actuation members 10a are hingedly connected to a body portion 10b of the third rotatable unit 10. In this example, the body portion 10b of the third rotatable unit 10 includes an first body portion 10b1 and a second body portion 10b2. The first body portion 10b1 hingedly receives the actuation members 10a. The second body portion 10b2 includes the retaining members 12. The first body portion 10b1 is rotatable relative to the second body portion 10b2, here over an angular stroke S. The first and second body portions 10b1, 10b2 are biased in abutment with a resilient element 10c, here a tension spring. This allows the first and second body portions to rotate relative to each other. For example, when the retaining member 12 can not yet push the gripping member 4a radially outwardly in abutment with the first abutment surface 6 the resilient element 10c allows the first body portion 10b1 to rotate relative to the first rotatable unit 2 while the second body portion 10b2 does not rotate relative to the first rotatable unit 2.
[0125] In
[0126] As shown in
[0127] As shown in
[0128] In this example, the third rotatable unit 10 includes a retainer 24. In this example, the retainer 24 is hingedly connected to the body portion 10b of the third rotatable unit 10. Here, the retainer 24 includes a tooth 26. The tooth 26 is biased by a resilient element, here a spring 28. The second rotatable unit 4 includes a, here three, notch 30. Here the notch 30 has an angled face 30a. As can be seen in
[0129] Having been rotated over 60 degrees, the third rotatable unit 10 has been rotated from a first position to a second position, or from a second position to a first position relative to the second rotatable unit 4. Now, the first actuation member 10a1 is maintained in a non-deployed position by the retractor member 4e and is maintained at a distance from the selector 18.
[0130] At approximately the same time, the other retractor member 4e3 is also rotated and releases the second actuation member 10a2 to engage the fourth unit 16. However, as can be seen in
[0131] For again actuating the third rotatable unit 10, the second partial groove 20b is moved out of alignment with the first partial groove 20a, and the third partial groove 20c is moved into alignment with the first partial groove 20a. In this situation, the second actuation member 10a2 can enter into the first partial groove 20a. It will be appreciated that it can be possible that the second actuation member 10a2 can already enter into the first partial groove 20a when the first partial groove 20a and the third partial groove 20c are not yet in complete alignment. Hence, the second actuation member 10a2 can already enter into the first partial groove 20a when the third partial groove 20c is still moving into alignment with the first partial groove 20a. When the second actuation member 10a2 has entered into the first partial groove, the first partial groove 20a supports the second actuation member 10a2, allowing a force to be guided from the fourth unit 16 via the second actuation member 10a2 to the third rotatable unit 10. As a result, the third rotatable unit 10 will again be halted, and when, in use, the second rotatable unit 4 will remain rotating, the third rotatable unit 10 will be rotated relative to the second rotatable unit 4. The tooth 26 of the retainer 24 will be moved out of the notch 30 by sliding over a second angled face 30b of the notch. When the second rotatable unit 4 has rotated over approximately 60 degrees after gripping of the second actuation member 10a2 by the first partial groove 20a, the retractor member 4e, now 4e2, knocks the second actuation member 10a2 out of the first partial groove 20a and the third rotatable unit 10 resumes co-rotating with the second rotatable unit 4 again. The tooth 26 of the retainer 24 will be seated at the bottom of a notch 30 again. Having been rotated over 60 degrees, the third rotatable unit 10 has been rotated from a second position to a first position, or from a first position to a second position relative to the second rotatable unit 4. Now, the second actuation member 10a2 is maintained in a non-deployed position by the retractor member 4e again and is maintained at a distance from the selector 18 as shown in
[0132] At approximately the same time, the other retractor member 4e1 is also rotated and again releases the first actuation member 10a1 to engage the fourth unit 16. However, the first actuation member 10a1 cannot enter into the first partial groove 20a, as the shape of the first actuation member 10a1 requires the second partial groove 20b to align with the first partial groove 20a for allowing the first actuation member 10a1 to enter into the first partial groove 20a. The first actuation member 10a1 will now slide along the surface of the selector 18 without being gripped.
[0133] Thus, the selector 18 can be in a first mode for gripping the first actuation member and for not engaging the second actuation member, and in a second mode for gripping the second actuation member and not engaging the first actuation member.
[0134] It will be appreciated that in this example, forces from the third rotatable unit 10 via, the actuation members 10a are supported by the first partial groove 20a only. The second and third partial grooves 20b, 20c absorb no, or hardly any, force. The second and third partial grooves merely act as keys to select whether the first or second actuation member can enter the first partial groove 20a or not.
[0135] In the example of
[0136] In the example of
[0137]
[0138] It will be appreciated that in this example, forces from the third rotatable unit 10 via, the actuation members 10a are supported by the first partial groove 20a only. The second and third partial grooves 20b, 20c absorb no, or hardly any, force. The second and third partial grooves merely act as keys to select whether the first or second actuation member can enter the first partial groove 20a or not.
[0139] In the example of
[0140] In the example of
[0141]
[0142]
[0143]
[0144]
[0145]
[0146]
[0147]
[0148]
[0149] The axle assembly 100 in this example includes a torque transmission 108, Here the torque transmission includes a clutch or brake system 1, e.g. as described in view of
[0150] The planet carrier 114 is also fixedly coupled to the hub 102. Therefore, depending on whether the first rotatable unit 2 and second rotatable unit 4 are rotationally coupled, or rotationally disengaged, driving the driver 106 causes the hub 102 to rotate according to a first or second gear ratio relative to the driver 106. An overrunning clutch may thereto be positioned between the sun gear 112 and the axle 101. In the examples of
[0151]
[0152] In the examples of
[0153] When the retractor member 4e1 has knocked the first actuation member 10a1 out of the first partial groove 20a, the tip of the retainer pin 24 is on the angled face 30a of the notch 30, as can be seen in
[0154] In the example of
[0155] The first actuation member 10a1 thus being released from the retractor member 4e when the gripping member 4a reaches the plateau surface 12b enables that while the gripping member 4a is in contact with the plateau surface 12b, at least one of the actuation members 10 is available for engagement with (or is engaged with) a groove 20, so that the gripping member 4a can thereby be disengaged from the first rotating member 2 if and when desired while the gripping member 4a is engaged with the first rotating member 2. In the same exemplary configuration of
[0156] In the example of
[0157] Such a configuration can help to prevent the system 1 from locking up by preventing that the gripping member 4a is forced (e.g. clamped) against the inner plateau surface 6a. From the situation shown in
[0158] In the configuration of
[0159] In the example of
[0160] Such a configuration can help to prevent the system 1 from locking up by preventing that the first actuation member 10a1 can engage with a groove 20 while the gripping member 4a nearly contacts or contacts the inner plateau surface 6a. Once the gripping member 4a has moved away from said surface 6a, the resilient element 10c and/or the retainer 24 can cause the retaining member 12 to subsequently be moved in alignment with the gripping member 4a for completing the coupling between the second and first rotating units 4, 2. During this time, as shown in
[0161] While
[0162] The clutch or brake system 1 can e.g. be used for selectively operating a planetary gear according to a first mode when the second rotatable unit is engaged with the first rotatable unit, and according to a second mode when the second rotatable unit is disengaged from the first rotatable unit. Hence, the clutch or brake system 1 can be used in a torque transmission for operating the torque transmission at a first transmission ratio in the first mode, and at a second, different transmission ratio in the second mode. The clutch or brake system can e.g. be used in a rear hub of a bicycle. The clutch or brake system can then be used e.g. for emulating the functioning of a front derailleur, so as to be able to omit the front derailleur from the bicycle. The invention also relates to a bicycle including such clutch or brake system.
[0163] Herein, the invention is described with reference to specific examples of embodiments of the invention. It will, however, be evident that various modifications and changes may be made therein, without departing from the essence of the invention. For the purpose of clarity and a concise description features are described herein as part of the same or separate examples or embodiments, however, alternative embodiments having combinations of all or some of the features described in these separate embodiments are also envisaged.
[0164] In the examples, the first rotatable unit includes nine first abutment surfaces. It will be appreciated that other numbers of first abutment surfaces, such as one, two, three, four, six or any other suitable number are also possible. In the examples, the second rotatable unit includes three second abutment surfaces. It will be appreciated that other numbers of second abutment surfaces, such as one, two, four, six or any other suitable number are also possible. In the examples, the third rotatable unit includes three retaining members. It will be appreciated that other numbers of retaining members, such as one, two, four, six or any other suitable number are also possible. In the examples, the third rotatable unit includes two actuation members. It will be appreciated that other numbers of actuation members, such as one, three, four, six or any other suitable number are also possible.
[0165] In the examples, the gripping members are separate items hingedly connected to the body portion of the second rotatable unit. It will be appreciated that it is also possible that the gripping members are integral with the body portion of the second rotatable unit.
[0166] In the examples, the third rotatable unit includes an first body portion and a second body portion. It will be appreciated that the first and second body portions may also be an integral portion.
[0167] In the examples, the actuation members are separate items hingedly connected to the body portion of the third rotatable unit. It will be appreciated that it is also possible that the actuation members are integral with the body portion of the third rotatable unit.
[0168] In the examples, the gripping members are arranged for pivoting in a radial direction. It will be appreciated that it is also possible that the gripping members are arranged for pivoting in an axial direction. Then e.g. the second rotatable unit and the first rotatable unit can be positioned, at least partially, axially next to each other. Also, then the third rotatable unit and the second rotatable unit can be positions, at least partially, axially next to each other.
[0169] In the examples, the actuation members are arranged for pivoting in a radial direction. It will be appreciated that it is also possible that the actuation members are arranged for pivoting in an axial direction. Then e.g. the third rotatable unit and the fourth unit can be positioned, at least partially, axially next to each other.
[0170] Herein, the invention is described with reference to specific examples of embodiments of the invention. It will, however, be evident that various modifications, variations, alternatives and changes may be made therein, without departing from the essence of the invention. For the purpose of clarity and a concise description features are described herein as part of the same or separate embodiments, however, alternative embodiments having combinations of all or some of the features described in these separate embodiments are also envisaged and understood to fall within the framework of the invention as outlined by the claims. The specifications, figures and examples are, accordingly, to be regarded in an illustrative sense rather than in a restrictive sense. The invention is intended to embrace all alternatives, modifications and variations which fall within the spirit and scope of the appended claims. Further, many of the elements that are described are functional entities that may be implemented as discrete or distributed components or in conjunction with other components, in any suitable combination and location.
[0171] In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word ‘comprising’ does not exclude the presence of other features or steps than those listed in a claim. Furthermore, the words ‘a’ and ‘an’ shall not be construed as limited to ‘only one’, but instead are used to mean ‘at least one’, and do not exclude a plurality. The mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot be used to an advantage.