Selectable clutch
12410838 ยท 2025-09-09
Assignee
Inventors
Cpc classification
F16D41/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D41/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
To provide a simple-structured selectable clutch that can be switched between operating modes, has high responsiveness, allows a desired torque capacity to be secured, causes less rattling and noise, and allows for switching with a small force even when transmitting a large torque. The clutch includes a first clutch mechanism configured to transmit rotation at any rotation angle via movable and/or rotatable locking members disposed between a first rotating element and a second rotating element, a second clutch mechanism configured to transmit rotation at a predetermined angle by engagement between a first engaging element and a second engaging element, and an operating mechanism for switching the actions of at least the first clutch mechanism and/or second clutch mechanism. The clutch is configured to allow switching between transmission and interruption of torque between relatively rotatable first and second shafts.
Claims
1. A selectable clutch comprising: a first clutch mechanism and a second clutch mechanism for transmitting and interrupting rotation between coaxial and relatively rotatable first and second shafts; and an operating mechanism for switching actions of at least one of the first clutch mechanism and the second clutch mechanism, to allow switching between transmission and interruption of torque between the relatively rotatable first and second shafts, the first clutch mechanism being configured to transmit rotation at any rotation angle via a locking member disposed between a first rotating element and a second rotating element, the second clutch mechanism being configured to transmit rotation at a predetermined angle by engagement between a first engaging element and a second engaging element, wherein the first rotating element and the second rotating element are an outer race and an inner race disposed to slide into one another in an axial direction, the locking member is a plurality of cams, and the first clutch mechanism includes the plurality of cams circumferentially arranged between the outer race and the inner race, and a biasing mechanism biasing the plurality of cams.
2. The selectable clutch according to claim 1, wherein the operating mechanism includes a selector member configured to switch between a state allowing rotation of the cams and a state stopping rotation of the cams.
3. The selectable clutch according to claim 1, wherein the first engaging element and the second engaging element face each other, respectively having ratchet teeth and ratchet pawls.
4. The selectable clutch according to claim 3, wherein the first engaging element and the second engaging element face each other in an axial direction, and the operating mechanism is configured to move either the first engaging element or the second engaging element in an axial direction.
5. The selectable clutch according to claim 1, wherein the first engaging element and the second engaging element face each other in an axial direction, the first engaging element being formed by a plurality of ratchet pawls provided on an end face of the outer race, the second engaging element being formed by a plurality of ratchet teeth disposed to extend from an end face of the inner race radially outward.
6. The selectable clutch according to claim 1, wherein the locking member is at least one of movable and rotatable.
7. A selectable clutch comprising: a first clutch mechanism and a second clutch mechanism for transmitting and interrupting rotation between coaxial and relatively rotatable first and second shafts; and an operating mechanism for switching actions of at least one of the first clutch mechanism and the second clutch mechanism, to allow switching between transmission and interruption of torque between the relatively rotatable first and second shafts, the first clutch mechanism being configured to transmit rotation at any rotation angle via a locking member disposed between a first rotating element and a second rotating element, the second clutch mechanism being configured to transmit rotation at a predetermined angle by engagement between a first engaging element and a second engaging element, wherein the first rotating element and the second rotating element are an outer race and an inner race disposed to slide into one another in an axial direction, and the first engaging element and the second engaging element face each other in an axial direction, the first engaging element being formed by a plurality of ratchet pawls provided on an end face of the outer race, the second engaging element being formed by a plurality of ratchet teeth disposed to extend from an end face of the inner race radially outward.
8. The selectable clutch according to claim 7, wherein the locking member is a plurality of cams, the first clutch mechanism includes the plurality of cams circumferentially arranged between the outer race and the inner race, and a biasing mechanism biasing the plurality of cams, and the operating mechanism includes a selector member configured to switch between a state allowing rotation of the cams and a state stopping rotation of the cams.
9. The selectable clutch according to claim 7, wherein the operating mechanism is configured to move either the first engaging element or the second engaging element in an axial direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(9) One embodiment of the present invention is described with reference to
(10) As shown in
(11) The second clutch mechanism is a one-way ratchet clutch configured to transmit rotation at a predetermined angle by engagement between ratchet teeth 141 on a ratchet teeth holding member 140 that is a first engaging element and ratchet pawls 131 on a ratchet pawl holding member 130 that is a second engaging element.
(12) The ratchet pawls 131 are configured to engage the ratchet teeth 141 when the teeth rotate relative to the pawls in one direction, while sliding over the ratchet teeth 141 in relative rotation in the other direction, with the relative distance between them changing.
(13) In this embodiment, the ratchet pawls 131 are shaped similarly to the ratchet teeth 141. The ratchet pawl holding member 130 and the ratchet teeth holding member 140 are configured to move relative to each other in an axial direction. Instead, the ratchet pawls 131 may be provided on the ratchet pawl holding member 130 such as to be each pivotable.
(14) The ratchet pawl holding member 130 is secured to an end face of the outer race 110. The ratchet teeth holding member 140 is secured to the inner race 120 and disposed to extend from an end face of the inner race 120 radially outward so that the ratchet pawls 131 and the ratchet teeth 141 face each other in the axial direction.
(15) A side plate 151 is attached to the outer race 110. Thus the ratchet pawl holding member 130 and the side plate 151 define the axial position of the cams 150, which form the first clutch mechanism.
(16) The operating mechanism for switching the actions of the first clutch mechanism includes a selector member 160 that fits on the inner race 120 and axially slidable on a selector sliding surface 122 of the inner race 120.
(17) At one end of the inner race 120 is arranged an inner race stopper plate 123 that restricts the movement of the selector member 160 and prevents it from coming off.
(18) The cams 150 in the first clutch mechanism are loaded toward the inner race 120 with a spring 170 passing over their pressing portions 152 as shown in
(19) The selector member 160 is configured to slide on the selector sliding surface 122 of the inner race 120 in the axial direction and under the pressing portions 152 to maintain the cams 150 in an orientation unloaded from either of the inner race 120 and outer race 110 against the biasing force of the spring 170. The selector member thus allows for free relative rotation of the inner race 120 and outer race 110 in both directions, interrupting the torque transmission in both directions.
(20) The operating mechanism for switching the actions of the second clutch mechanism is configured to move the inner race 120 itself in an axial direction relative to the outer race 110 to change the distance between the ratchet teeth 141 on the ratchet teeth holding member 140 and the ratchet pawls 131 on the ratchet pawl holding member 130. The second clutch mechanism thus switches between a state where the ratchet mechanism is operable and transmits rotation in one direction only and a state where the ratchet pawls 131 separate from the ratchet teeth 141 so that the torque transmission is interrupted in both directions.
(21) The inner race stopper plate 123 mentioned above and the selector member 160 serve to prevent the inner race 120 from sliding excessively in this switching operation.
(22) The operation of the selectable clutch 100 configured as described above is explained.
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(24) Sliding the selector member 160 to move away from the pressing portions 152 of the cams 150 in this state allows the first clutch mechanism to operate as a one-way clutch, bringing the selectable clutch into a one-way free mode.
(25) As the selector member 160 further slides and contacts the inner race stopper plate 123, the inner race 120 slides, too, as a unit, so that the ratchet pawls 131 and the ratchet teeth 141 can engage each other. The second clutch mechanism can thus operate as a one-way clutch, in the opposite direction from that of the first clutch mechanism. This is a two-way lock mode where the selectable clutch transmits rotation in both directions.
(26) This operation can be performed by directly sliding the inner race 120.
(27) This embodiment adopts a configuration in which the selector member 160 of the first clutch mechanism can come into contact with the pressing portions 152 of the cams 150 only when the inner race 120 is positioned in the free mode of the second clutch mechanism. Therefore, the same operation of switching the first clutch mechanism in the two-way free mode by means of the selector member 160 causes the inner race 120 to slide and switch the second clutch mechanism, allowing for direct switching to the two-way lock mode.
(28) When switching from the two-way lock mode, the selector member 160 is slid, causing the inner race 120 to also slide at the same time. Both the first clutch mechanism and the second clutch mechanism return to the free mode, i.e., the selectable clutch returns to the two-way free mode shown in
(29) The two-way free mode can be switched to the one-way free mode where the second clutch mechanism is maintained in the free mode, by stopping the selector member 160 at the position before it causes the inner race 120 to slide during the switching of the first clutch mechanism.
(30) While one embodiment of the present invention has been described in detail, the present invention is not limited to the above-described embodiment and may be carried out with various design changes without departing from the scope of the present invention set forth in the claims.
(31) In the above embodiment, as described above, the selector member 160 of the first clutch mechanism can come into contact with the pressing portions 152 of the cams 150 only when the inner race 120 is positioned in the free mode of the second clutch mechanism. In an alternative configuration, both clutch mechanisms may be independently switchable, with the second clutch mechanism alone operable as a one-way clutch, allowing the switching between four modes including the one-way free mode in the opposite direction.
(32) Other known switching mechanisms may be adopted to be used with the axially slidable selector member 160 and the sliding inner race 120 as the respective operating mechanisms of the first and second clutch mechanisms in the above embodiment.
(33) The cams 150 used as the first clutch mechanism in the above embodiment may have a different shape depending on the required torque resistance or other properties. The first clutch mechanism may be configured as a clutch that uses rollers or the like instead of cams, to transmit rotation at any rotation angle by the rollers slightly moving and wedging between two rotating elements.
(34) The second clutch mechanism may be configured with ratchet pawls 131 and ratchet teeth 141 that face each other in a radial direction, instead of the axial direction as in the above embodiment.
(35) In yet another alternative configuration without the one-way free mode in the opposite direction as in the above embodiment, the second clutch mechanism may be configured as a dog clutch without the one-way clutch function. The cams may be designed in different shapes in accordance with required torque resistance and other properties.