DISCONNECTABLE MECHANICAL ANTI-BACKLASH COUPLING MECHANISM FOR TORQUE TRANSMITTING SHAFTS
20200309198 · 2020-10-01
Inventors
- Henrique Böckmann ALVES (São José dos Campos - SP, BR)
- Expedito DE SOUZA RIBEIRO (São José dos Campos - SP, BR)
- Guilherme Cremasco COELHO (São José dos Campos - SP, BR)
- Everton Sérgio Ribeiro DA SILVA (São José dos Campos - SP, BR)
- Rafael Santos IWAMURA (São José dos Campos - SP, BR)
- David Dias FERRAZ (São José dos Campos - SP, BR)
Cpc classification
F16D2125/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2011/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2023/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Coupling mechanisms for torque transmitting shafts are provided with sliding and fixed plates operably connectable to respective torque transmitting shafts, and a leaf spring having a preloaded spring force exerted on the sliding plate when the sliding and fixed plates are operably connected to one another. A hub is attached to the leaf spring and coaxially received within the sliding plate to allow the sliding plate to be capable of reciprocal axial movements relative to the hub between engaged and disengaged positions wherein the sliding and fixed plates are engaged and disengaged with one another so as to allow and prevent torque being transmitted from one to another of the shafts, respectively. An inner piston is coaxially received within the hub and moveable between a first position wherein the hub retains the sliding plate in the engaged position thereof, and a second position wherein the hub releases the sliding plate to allow movement of the sliding plate under bias force from the leaf spring into the disengaged position thereof.
Claims
1. A coupling mechanism for torque transmitting shafts comprising: sliding and fixed plates operably connectable to respective torque transmitting shafts; a leaf spring having a preloaded spring force exerted on the sliding plate when the sliding and fixed plates are operably connected to one another; a hub attached to the leaf spring and coaxially received within the sliding plate to allow the sliding plate to be capable of reciprocal axial movements relative to the hub between engaged and disengaged positions wherein the sliding and fixed plates are engaged and disengaged with one another so as to allow and prevent torque being transmitted from one to another of the shafts, respectively; and an inner piston coaxially received within the hub and moveable between a first position wherein the hub retains the sliding plate in the engaged position thereof, and a second position wherein the hub releases the sliding plate to allow movement of the sliding plate under bias force from the leaf spring into the disengaged position thereof.
2. The coupling mechanism according to claim 1, wherein the sliding plate includes a circumferential internal sliding plate groove, and wherein the hub includes at least one ball detent which is received within the internal groove of the sliding plate when the hub is in the first position thereof so as to retain the sliding plate in the engaged position thereof.
3. The coupling mechanism according to claim 2, wherein the inner piston comprises a piston groove which is aligned with the at least one ball detent when the hub is in the second position thereof so as to allow the at least one ball detent to be released from the sliding plate groove.
4. The coupling mechanism according to claim 3, wherein the hub includes multiple ball detents.
5. The coupling mechanism according to claim 2, further comprising a disconnection bell crank operable connected to the inner piston to move the inner piston from the first position to the second position thereof in response to the bell crank being moved into a disconnection position thereof.
6. The coupling mechanism according to claim 1, wherein the fixed plate comprises a rotational bearing, and wherein the hub comprises a forwardly projecting shaft coupled to the rotational bearing to allow one of the torque transmitting shafts to rotate when sliding and fixed plates are disconnected. The coupling mechanism according to claim 6, wherein the leaf spring comprises a flange fixed to an end of the hub.
8. The coupling mechanism according to claim 7, wherein the forwardly projecting shaft includes an adjusting nut threadably connected to a terminal end thereof to allow positional adjustment of the flange so as to responsively adjust the preloaded spring force of the leaf spring.
9. The coupling mechanism according to claim 1, wherein each of the sliding and fixed plates includes multiple torque transmission arms having terminal ends that are releasably connected to one another when the sliding plate is in the engaged position thereof.
10. The coupling mechanism according to claim 9, wherein the terminal ends of the sliding and fixed plates have respective conformably shaped recesses and bosses.
11. The coupling mechanism according to claim 5, further comprising a visual indicator associated with the disconnection bell crank to visually indicate the sliding plate being in the engaged position thereof.
12. The coupling mechanism according to claim 11, wherein the visual indicator comprises a visual marking on the disconnection bell crank, and a fixed position indicator plate having a slot, wherein alignment of the visual marking and the slot of the indicator plate provides visual indication that the sliding plate is in the engaged position thereof.
13. The coupling mechanism according to claim 1, further comprising connection sleeves to connect the coupling mechanism to respective ones of the torque transmitting shafts.
14. The coupling mechanism according to claim 13, further comprising a scissors jack assembly operably connectable to a respective one of the connection sleeves and the sliding plate to move the sliding plate from the disengaged position thereof to the engaged position thereof.
15. The coupling mechanism according to claim 14, wherein each of the respective one of the connection sleeves and the sliding plate includes an externally circumferential groove, and wherein the scissors jack includes a pair of opposed jaws each being positionable in a respective circumferential groove associated with the respective one of the connection sleeves and the sliding plate such that operating the scissors jack so as to spread apart the opposed jaws thereof causes the sliding plate to be moved from the disengaged position and into the engaged position thereof.
16. The coupling mechanism according to claim 15, wherein the sliding plate includes a circumferential internal sliding plate groove, and wherein the hub includes at least one ball detent which is received within the internal groove of the sliding plate when the hub is in the first position thereof so as to retain the sliding plate in the engaged position thereof.
17. The coupling mechanism according to claim 16, wherein the inner piston comprises a piston groove which is aligned with the at least one ball detent when the hub is in the second position thereof so as to allow the at least one ball detent to be released from the sliding plate groove.
18. The coupling mechanism according to claim 17, wherein the hub includes multiple ball detents.
19. The coupling mechanism according to claim 16, further comprising a disconnection bell crank operable connected to the inner piston to move the inner piston from the first position to the second position thereof in response to the bell crank being moved into a disconnection position thereof.
20. The coupling mechanism according to claim 15, wherein the fixed plate comprises a rotational bearing, and wherein the hub comprises a forwardly projecting shaft coupled to the rotational bearing to allow one of the torque transmitting shafts to rotate when sliding and fixed plates are disconnected.
Description
BRIEF DESCRIPTION OF ACCOMPANYING DRAWINGS
[0020] The disclosed embodiments of the present invention will be better and more completely understood by referring to the following detailed description of exemplary non-limiting illustrative embodiments in conjunction with the drawings of which:
[0021]
[0022]
[0023]
[0024]
[0025]
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[0030]
DETAILED DESCRIPTION OF EMBODIMENTS
[0031] Accompanying
[0032] The terminal ends of the torque transmission arms 18a, 20a include conformably shaped bosses and recesses, respectively, as shown in
[0033] As is perhaps best shown in
[0034] The inner piston 32 carries an actuator rod 32bwhich is operably interconnected to a lower end of the bell crank 34. A compression spring 36 is housed within the inner piston 32 and is compressed when the piston moves from the engaged position as shown in
[0035] The sliding plate 20 includes an internal circumferential groove 40 which receives therein ball detents 42 carried within holes 43a formed in the leaf spring hub 33 when the coupling mechanism 10 is in the engaged position thereof. The inner piston 32 on the other hand defines a piston groove 44 that is positioned forwardly of the ball detents 42 when the coupling mechanism 10 is in the engaged position. The compression spring 36 thus maintains the ball detents 42 locked within the sliding plate groove 40 when the coupling mechanism 10 is in the engaged position.
[0036] To disconnect the plates 18, 20, the coupling mechanism 10 is operated so as to pivotally move the bell crank 34 into a disengaged position, e.g., by operably exerting a pulling force (see arrow A1 in
[0037] The torque transmitted during the moment of actuation does not affect the force needed to move the bellcrank 34 during disengagement. In this regard, the preloaded force existing between sliding plate 20, the fixed plate 18 and the leaf spring defines such preloaded force. An adjusting nut 50 may thus be provided at the terminal end of the projecting shaft 48 so as to allow selective adjustment of the force preload and, therefore, in turn the disconnecting force. Thus, if the nut 50 is tightened, the preload and disconnecting forces increase, while conversely if the nut 50 is loosened, such preload and disconnecting force decrease. The force preload also affects the maximum transmitted torque allowed by the coupling mechanism 10. Thus, the greater the preload force, the higher the maximum transmitted torque and vice versa. Those skilled in this art will readily recognize the parameters for the preloaded force of the coupling mechanism 10 based on the application in which the coupling mechanism 10 is employed.
[0038] In order to reengage the coupling mechanism 10 and thereby reconnect the plates 18 and 20, it is necessary to employ a mechanical scissors jack 52 as shown in
[0039] When positioned in such grooves as shown in
[0040] While reference is made to a particular embodiment of the invention, various modifications within the skill of those in the art may be envisioned. Therefore, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope thereof.