GEAR TRANSMISSION DEVICE
20180238421 ยท 2018-08-23
Assignee
Inventors
Cpc classification
F16H27/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gear transmission mechanism includes a second gear, a first gear forming tooth portions at an outer circumference of a sector-like gear body for meshing with the second gear, and a rotation restricting mechanism for setting a rotation limit of the first gear. The rotation restricting mechanism includes an abutment portion provided in the first gear and a stopper provided in the housing. At least one of an abutment face in which the abutment portion comes into abutment against the stopper and a stopper face in which the stopper comes into abutment against the abutment face includes an inclination portion for creating a component force from rotational force of the sector gear at the time of mutual abutment.
Claims
1. A gear transmission device, comprising: a first gear including a sector-like gear body having tooth portions in an outer circumference of the sector-like gear body; a second gear meshing with the first gear; and a rotation restricting mechanism for setting a rotation limit of the first gear, the first gear, the second gear and the rotation restricting mechanism being accommodated in a housing, the rotation restricting mechanism including a stopper provided in the housing and an abutment portion provided in the first gear and configured to come into abutment against the stopper, at least one of the stopper and the abutment portion including an inclination portion for inclining a direction of a reaction force which occurs at the time of mutual abutment of the stopper and the abutment portion relative to a rotational circumferential direction of the first gear.
2. The gear transmission device of claim 1, wherein the inclination portion is formed as a curved face.
3. The gear transmission device of claim 1, wherein: the second gear is a pinion gear; the first gear is a face gear that has tooth portions protruding from one face of the gear body at its outer circumferential portion and that meshes with the pinion gear; and posture of the inclination portion is set such that the first gear is detached from the second gear at the time of the abutment between the stopper and the abutment portion.
4. The gear transmission device of claim 1, wherein at least one of the stopper and the abutment portion includes a roller which is rotatable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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EMBODIMENTS
[0038] Next, embodiments of the present invention will be explained with reference to the drawings.
Basic Configuration of Gear Transmission Device
[0039] As shown in
[0040] This gear transmission device is to be incorporated in a transmission system configured such that as the pinion gear G2 is rotatably driven by an actuator such as an electric motor or the like, the sector gear G1 is driven at a reduced speed.
[0041] The sector gear G1 (first gear) is configured as a face gear type and in an outer circumferential portion of a sector-like gear body 1 centering about the first axis X1, a plurality of tooth portions 2 protrude therefrom. This sector gear G1 is supported to be rotatable relative to the housing H as an output shaft 4 is connected and inserted into a drive hole 3 coaxial with the first axis X1 and this output shaft 4 is rotatably supported to the housing H.
[0042] The sector gear G1 is assumed to be made by hammered work or pressing work. Alternatively, the plurality of tooth portions 2 may be formed by cutting of a material or by resin molding using a mold.
[0043] The pinion gear G2 (second gear) is configured as a helical gear comprised of a shaft 12 and two grooves of gear portion 11 (a tooth portion of the pinion gear G2) in the form of threads formed integrally therein, and the pinion gear G2 is supported to the housing H to be rotatable about the second axis X2 via bearings 13 disposed at an inner end position and an intermediate position.
[0044] The housing H has an arrangement of a lid-like case 16 being superposed on a main case 15 in a sealed manner and accommodates the sector gear G1, the pinion gear G2 and a rotation restricting mechanism. Incidentally, the main case 15 and the lid-like case 16 are assumed to be made of metal such as an aluminum alloy. Instead, these may be formed of resin.
Rotation Restricting Mechanism
[0045] With the transmission device configured as above, since the sector gear G1 rotates within a set angular range, there is provided the rotation restricting mechanism configured to determine a rotation limit of the sector gear G1 by coming into abutment against this sector gear G1 when it has reached the rotation limit. This rotation restricting mechanism is constituted essentially of a pair of abutment portions 6 formed in the sector gear G1 and a single stopper 18 supported to the housing H.
[0046] The rotation restricting mechanism is configured such that simultaneously with the determination of the rotation limit of the sector gear G1 through the abutment between the abutment portions 6 and the stopper 18, a direction of a reaction force generated from this abutment is inclined relative to the rotational circumferential direction of the first gear. With this configuration, upon arrival of the sector gear G1 at its rotation limit, a force is generated (a component force is generated) in a direction for detaching the tooth portion 2 of the sector gear G1 from the gear portion 11 of the pinion gear G2, thus suppressing a shock at the time of the abutment and suppressing also rise of the surface pressure between the tooth portion 2 and the gear portion 11.
[0047] In the instant embodiment, such rotation limits are set at opposed ends of the rotatable range of the sector gear G1. Alternatively, such rotation limit may be set at one position at one end of the above rotatable range.
[0048] As an exemplary specific arrangement of the above, the rotation restricting mechanism consists essentially of the abutment portions 6 that are formed as protrusions at areas forming respective extensions from the outer ends of the arcuate region where the tooth portions 2 are formed in the gear body 1 of the sector gear G1 and the stopper 18 integrally formed in the main case 15 so as to come into abutment against the abutment portions 6. Incidentally, the stopper 18 may be formed alternatively in the lid-like case 16. Further, the abutment portions 6 may be formed integral with the gear body 1 or may be attached to this gear body 1.
[0049] In each abutment portion 6, as shown in
Operation by Rotation Restricting Mechanism
[0050] For instance, as viewed in the direction shown in
[0051] On the other hand, according to the rotation restricting mechanism of the instant embodiment, as illustrated in
[0052] Further, although
Modified Examples of Rotation Restricting Mechanism
[0053] As described above, the arrangement that the component force generated from the abutment between the abutment face 6a and the stopper face 18a is caused to be applied in the direction of detaching the sector gear G1 from the pinion gear G2 is effective for a sector gear G1 having a relatively small radius. However, in the case of a sector gear G1 having a large radius, such component force will be applied in a direction of inclining the first axis X1. Namely, the sector gear G1 will be slightly inclined with the center portion of the drive hole 3 of the sector gear G1 serving as the center of this inclination.
[0054] Then, with utilization of such inclining phenomenon of the sector gear G1 as above, in order to detach the sector gear G1 from the pinion gear G2, as shown in
[0055] With the rotation restricting mechanism configured as above, it becomes possible to determine mechanically the rotation limit of the sector gear G1 via the abutment as the abutment face 6a comes into abutment against the stopper face 18a as illustrated in
Further Embodiments
[0056] The present invention can be embodied differently as follows from the foregoing embodiment (in the following, components having same functions as those of the foregoing embodiment will be denoted with same or like reference numerals/marks as those used in the foregoing embodiment).
[0057] (a) As shown in
[0058] In this configuration, in each abutment portion 6, an abutment face 6a having a curved face is formed as the inclination portion T. And, a cylindrical pin is employed as the stopper 18. Incidentally, of the outer circumference of the stopper 18, a portion thereof coming into abutment against the abutment face 6a serves as a stopper face 18a. Especially, in this configuration, the inclination direction of the abutment face 6a is set such that when the sector gear G1 reaches its rotation limit and the stopper face 18a comes into abutment against the abutment face 6a, a component force may be applied to displace this abutment portion outwards (the direction away from the first axis X1).
[0059] Namely, in the configuration of this further embodiment (a), when the sector gear G1 reaches its rotation limit and the abutment face 6a comes into abutment against the stopper face 18a as illustrated in
[0060] Further, at the time of this abutment, the component force generated from the rotation of the sector gear G1 is caused to be applied in the direction of detaching the sector gear G1 from the pinion gear G2. Under the effect of this component force, the tooth portion 2 of the sector gear G2 is slightly displaced in the direction away from the gear portion 11 of the pinion gear G2, As a result of this displacement, the pressure applied between the tooth portion 2 of the sector gear G1 and the gear portion 11 of the pinion gear G2 is reduced, thus suppressing deformation or damage of the tooth portion 2. Moreover, there is realized solution of inconvenience of the sector gear G1 and the pinion gear G2 becoming locked to each other.
[0061] Incidentally, in the further embodiment shown in
[0062] (b) As shown in
[0063] According to the above-described configuration, in the respective abutment portion 6, the abutment face 6a is formed as an inclination portion T and in the stopper 18, a stopper face 18a under an inclined posture is formed as an inclination portion T for coming into abutment against the abutment face 6a. Especially, in this configuration, the stoppers 18 are fixedly provided in the inner face of the main housing 15 disposed adjacent the pinion gear G2. And, the inclinations of the abutment faces 6a and the stopper faces 18a are set such that when the sector gear G1 reaches its rotation limit and the stopper face 18a of the stopper 18 comes into abutment against the abutment face 6a of the abutment portion 6, a component force is applied in the direction for detaching the sector gear G1 from the pinion gear G2 in the direction along the first axis X1.
[0064] With the above, upon arrival at the rotation limit, the abutment face 6a comes into abutment against the stopper face 18a of the stopper 18 and a slight slippage occurs at this abutment face. Thus, momentary consumption of rotational energy of the sector gear G1 is suppressed, thus easing the shock. And, due to the effect of the component force, the sector gear G1 as a whole is slightly displaced in the direction away from the pinion gear G2, thus reducing the pressure applied between the tooth portion 2 of the sector gear G1 and the gear portion 11 of the pinon gear G2, thereby suppressing damage and/or deformation of the tooth portion 2. Moreover, solution of the inconvenience of mutual locking between the sector gear G1 and the pinion gear G2 is realized.
[0065] (c) As shown in
[0066] In the configuration of this further embodiment (c), the inclination portion T of the abutment face 6a is formed as a gently receded curved face. Instead, it may be formed as a gently protruding curved face. Further, the inclination portion T of the stopper face 18a is formed as a gently protruding curved face. Instead, it may be formed as a gently receded curved face. Further alternatively, one of the inclination portion T of the abutment face 6a and the inclination portion T of the stopper face 18a may be formed flat.
[0067] (d) As shown in
[0068] In the case of the mechanism of this further embodiment (d), the abutment face 6a of the abutment portion 6 functions as an inclination portion T and the outer circumference of the roller 18 functions as an inclination portion T at the same time. In particular, when the sector gear G1 reaches its rotation limit and the abutment face 6a of the abutment portion 6 comes into abutment against the outer circumference of the roller-like stopper 18 as the inclination portion T, rotation of the stopper 18 around the support shaft 21 is allowed, so the inconvenience of the mutual locking of the respective parts will not be invited. Incidentally, in this further embodiment, there is provided the rotatable roller as the stopper 18. Instead of this, a roller can be provided in the abutment portion 6.
[0069] (e) The abutment face 6a of the abutment portion 6 and the stopper face 18a of the stopper 18 shown as the rotation restricting mechanism in the foregoing embodiment, its modified example and the respective further embodiments can be formed as flat inclined faces, gently protruding curved faces or gently receded curved faces. Further, in case the recess or the protrusion is provided in the form of a curve, its curvature can be made variable.
INDUSTRIAL APPLICABILITY
[0070] The present invention is applicable to a gear transmission device having a rotation restricting mechanism for setting a rotation limit of a gear.
Description of Reference Marks/Numerals
[0071] 1: gear body
[0072] 2: tooth portion
[0073] 6: abutment portion
[0074] 6a: abutment face
[0075] 18: stopper
[0076] 18a: stopper face
[0077] 20: roller
[0078] G1: first gear (sector gear, face gear)
[0079] G2: second gear (pinion gear)
[0080] H: housing
[0081] T: inclination portion
[0082] X: rotational axis (first axis)