Clutch Mechanism Between Leadscrew and Electric Motor
20170247930 ยท 2017-08-31
Inventors
Cpc classification
F16H1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2023/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E05F15/657
FIXED CONSTRUCTIONS
International classification
E05F15/657
FIXED CONSTRUCTIONS
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch mechanism for coupling and uncoupling an electric motor and leadscrew has dog-clutch gears that can be engaged by a linear actuator, bell crank, and linkage shaft. Uncoupling force due to narrowed dog teeth are resisted by the alignment of the linkage shaft with the central portion of the bell crank.
Claims
1. A clutch mechanism between a rotatable output shaft of an electric motor fixed to a base and a leadscrew rotatably journaled to the base comprising: a leadscrew gear (71) having a plurality of wide gear teeth spaced on the circumference, said leadscrew gear mounted to rotate with said leadscrew; a drive gear (73) having a plurality of gear teeth spaced on the circumference, said drive gear mounted to rotate with the output shaft of an electric motor; an axially slidable dog-clutch gear (78) directly or indirectly driving the leadscrew (60), said slidable dog-clutch gear having a plurality of dog teeth axially extending away from the leadscrew and circumferentially spaced on a face of the slidable dog-clutch gear, said face being perpendicular to a rotating axis of the gear, said slidable dog-clutch gear having gear teeth on the circumference for engaging the gear teeth on the leads crew gear (71); an axially fixed dog-clutch gear (75) for engaging or disengaging the axially slidable dog- clutch gear (78), said second fixed dog-clutch gear having a plurality of dog teeth axially extending toward the leadscrew and circumferentially spaced on a face of the second dog-clutch gear, said face being perpendicular to the rotating axis of the gear, said fixed dog-clutch having gear teeth on the circumference for engaging the gear teeth on the drive gear (73); a bell crank (50) being rotatably mounted to the base, said bell crank having extensions in at least two radial directions; a linear actuator (52) having a shaft extending from a first end thereof, said linear actuator being pivotally mounted to the base at the other end, said linear actuator having a biasing means for extending the shaft when not powered, the shaft of the linear actuator being pivotally connected to an extension of the bell crank; and a linkage shaft (54) pivotally connected at one end to an extension of the bell crank and connected via a universal joint connection at the other end to the axially slidable dog-clutch, whereby when the linear actuator is unpowered, the linkage shaft due to the biasing means in the linear actuator forces the disengagement of dog teeth on the dog-clutch gears enabling the emergency manual opening of the sliding door.
2. The clutch mechanism according to claim 1, wherein the dog teeth on the dog-clutch gears have planar contact faces that taper radially toward the axis and also in the direction of the axis, the dog teeth thus narrowing moving away from the face of the dog-clutch gears to facilitate disengagement.
3. The clutch mechanism according to claim 1, wherein the linkage shaft and the linear actuator shaft are pivotally connected to the bell crank angularly spaced more than 90 degrees and less than 180 degrees such that at one stop position when the dog-gears are coupled the axis of the linkage shaft passes centrally through the bell crank and in a second position when the dog-gears are uncoupled the axis of the linkage shaft pass through an outer edge of the bell crank.
4. The clutch mechanism according to claim 3, wherein the bell crank has a third extension engaging a stop fixed to the base when the bell crank has rotated to a coupled position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Further features and other objects and advantages will become clear from the following detailed description made with references to the drawings in which:
[0012]
[0013]
[0014]
[0015]
[0016]
DESCRIPTION OF THE INVENTION
[0017]
[0018]
[0019] Door system 10 also has a second door 30 connected to a drive leadscrew 60 for longitudinal movement opposite to the first door 20, the second door 30 moving in a second door closing direction 32 to a second door closed position at least partially covering aperture 12 when first door 20 moves in the first door closing direction 22, and second door 30 moving in a second door opening direction 36 to a second door open position at least partially uncovering aperture 12 when first door 20 moves in the first door opening direction 26. The second door closing direction 32 is generally opposite to the first door closing direction 22 and the second door opening direction 36 is generally opposite to the first door opening direction 26. Hence, the first door 20 and the second door 30 cooperate to cover and uncover the aperture 12, as shown in
[0020] Referring now to
[0021] A leadscrew gear 71 has a plurality of wide gear teeth 72 spaced on the circumference. The leadscrew gear is mounted to rotate with the leadscrew.
[0022] A drive gear 73 has a plurality of gear teeth 74 spaced on the circumference, said drive gear mounted to rotate with the output shaft 68 of the electric motor 66.
[0023] An axially fixed dog-clutch gear 75 directly or indirectly drives the leadscrew. The fixed dog-clutch gear 75 has a plurality of dog teeth 76 axially extending away from and circumferentially spaced on the face of the fixed dog-clutch gear. The face is perpendicular to the rotating axis of the gear. The fixed dog-clutch gear 75 has gear teeth 77 on the circumference for engaging the gear teeth 74 on the drive gear 73.
[0024] An axially sliding dog-clutch gear 78 is secured axially slidable relative to the base for engaging or disengaging the fixed dog-clutch gear 75. The slidable dog-clutch gear 78 has a plurality of dog teeth 79 axially extending and circumferentially spaced on the face of the slidable dog-clutch gear. The face is perpendicular to the rotating axis of the gear. The slidable dog-clutch 78 has gear teeth 80 on the circumference for engaging the wide gear teeth 72 on the lead screw gear 71.
[0025] The sliding dog-clutch gear 78 and the fixed dog-clutch gear 75 are attached to a sliding shaft and fixed axle, respectively. They rotate due to bearings affixed between them and the shaft or axle.
[0026] Referring now to
[0027] A linkage shaft 54 is pivotally connected at one end to an extension 55 of the bell crank 50 and connected via a universal joint 57 at the other end to the second dog-clutch gear 78. Thus, when the linear actuator is unpowered, the linkage shaft 54 due to the biasing means in the linear actuator extends the shaft 53 and rotates the bell crank 50 withdrawing the linkage shaft 54 forcing the disengagement of dog teeth on the first dog-clutch gear 75 and the second dog-clutch gear 78 enabling the manual opening of the door.
[0028] According to a preferred embodiment, the dog teeth on the dog-clutch gears have planar contact faces that taper radially toward the axis and also in the direction of the axis. The dog teeth thus narrow moving away from the face of the dog-clutch gears to facilitate disengagement. However, as the dog teeth on both dog-clutch gears meet on a plane inclined to the direction of motion, there exists a small axial force urging separation of the dog-clutch gears.
[0029] According to another preferred embodiment, the linkage shaft 54 and the linear actuator shaft 53 are pivotally connected to the bell crank 50 angularly spaced more than 90 degrees and less than 180 degrees about the axis of the bell crank 50 such that at one stop position as shown in
[0030] In the coupled position, an uncoupling force transmitted through the linkage shaft 54 thus can apply a very small, if any, moment force to rotate the bell crank 50. On the other hand, in the coupled position, the moment force exerted though the actuator shaft 53 to resist uncoupling is maximum.
[0031] Having thus described our invention with the detail and particularity required by the Patent Laws, what is desired protected by Letters Patent is set forth in the following claims.