Worm gear reducer and its assembly method
The worm gear reducer design stabilizes worm tip movement using a holder and elastic member to minimize backlash, addressing noise issues and enhancing assembly efficiency in electric power steering systems.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-02-05
- Publication Date
- 2026-03-25
AI Technical Summary
Existing worm gear reducers in electric power steering devices suffer from backlash-induced noise due to dimensional and assembly errors, leading to rapid displacement of the worm tip during steering wheel rotation, which results in undesirable clicking sounds.
A worm gear reducer design incorporating a holder with guide portions and a pad with elastic pressing portions, along with an elastic member, to bias the worm tip towards the worm wheel, minimizing displacement and reducing backlash.
The design effectively suppresses abnormal noises and improves assembly workability by stabilizing the worm tip movement, ensuring smoother operation and reduced noise generation.
Smart Images

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Abstract
Description
Technical Field
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[0001] The present disclosure relates to, for example, a worm reducer incorporated in an electric power steering device and a method for assembling the same.
Background Art
[0002] When applying a steering angle to a steering wheel of an automobile, an electric power steering device that uses an electric motor as an auxiliary power source is widely used as a device for reducing the force required to operate the steering wheel.
[0003] The structure of the electric power steering device is roughly classified according to the mounting position of the electric motor. Specifically, there are a column assist type that applies auxiliary power to a steering shaft rotatably supported inside a steering column, a pinion assist type that applies auxiliary power to a pinion shaft that is an input shaft of a steering gear unit, and a dual pinion type in which the steering gear unit is provided with a pinion shaft different from the pinion shaft that is the input shaft and auxiliary power is applied to the pinion shaft. Various structures have been proposed.
[0004] In any structure, the auxiliary power of the electric motor is applied to a shaft member that rotates or linearly moves by operating the steering wheel via a reducer. As such a reducer, a worm reducer is widely used. The worm reducer that constitutes the electric power steering device includes a worm that is rotationally driven by an electric motor and a worm wheel that meshes with the worm.
[0005] FIG. 23 shows an example of a conventional structure of a worm reducer described in Japanese Patent No. 4381024. The worm reducer 100 includes a housing 101, a worm wheel 102, and a worm 103.
[0006] The housing 101 includes a wheel housing 104 and a worm housing 105 whose central axis is located at a twisted position relative to the central axis of the wheel housing 104, and whose axial intermediate portion opens into the wheel housing 104.
[0007] The worm wheel 102 has wheel teeth 106 on its outer circumference and is supported and fixed coaxially with the rotating shaft 107, which is rotatably supported inside the wheel housing 104.
[0008] The worm 103 has worm teeth 108 on its outer circumferential surface in the axial middle portion that mesh with the wheel teeth 106. The worm 103 is rotatably supported inside the worm housing 105 by two ball bearings 109a and 109b at two axial positions on either side of the worm teeth 108. Of the two ball bearings 109a and 109b, the outer ring of the ball bearing 109a on the tip side of the worm 103 (right side in Figure 23) is press-fitted into a holder 110 which is internally fitted and fixed to the inner end portion of the worm housing 105. The inner ring of the ball bearing 109a is fitted onto a large-diameter portion 111 located on the worm 103 towards the tip side of the worm teeth 108 via a gap fit through a synthetic resin bush 112. Specifically, the inner ring of the ball bearing 109a is fitted without play into the bush 112, which is fitted onto the large diameter portion 111 of the worm 103 with a clearance fit. The outer ring of the ball bearing 109b on the base end side of the worm 103 (left side in Figure 23) is fitted into the opening of the worm housing 105 with a clearance fit, and the inner ring of the ball bearing 109b is fitted onto the base end of the worm 103. The output shaft of the electric motor 113 is connected to the base end of the worm 103 to enable torque transmission. In other words, the worm 103 can be rotationally driven by the electric motor 113.
[0009] In the worm gear reducer 100, there is unavoidable backlash at the meshing portion between the wheel teeth 106 and the worm teeth 108, based on dimensional and assembly errors of the components that make up the worm gear reducer 100. Due to the presence of this backlash, an unpleasant clicking noise may occur at the meshing portion when changing the rotation direction of the steering wheel. In the illustrated example, in order to suppress the occurrence of such clicking noise, the tip of the worm 103 is elastically biased toward the worm wheel 102.
[0010] In other words, the base end of the worm 103 is supported by a ball bearing 109b having a radial clearance relative to the worm housing 105, allowing for slight oscillating displacement. An annular clearance exists around the entire circumference between the outer circumferential surface of the large-diameter portion 111 of the worm 103 and the inner circumferential surface of the bush 112. A pad 114 is fitted onto the tip of the worm 103, and a torsion coil spring 115 is installed between the pad 114 and the holder 110. The torsion coil spring 115 elastically presses the pad 114 toward the worm wheel 102 in a first direction (up and down direction in Figure 23), which is the direction in which the worm 103 moves toward and away from the worm wheel 102, thereby elastically biasing the tip of the worm 103 toward the worm wheel 102 (upper side in Figure 23) in that first direction. This reduces backlash between the wheel teeth 106 and the worm teeth 108, thereby suppressing the generation of tooth-clamping noise. [Prior art documents] [Patent Documents]
[0011] [Patent Document 1] Japanese Patent No. 4381024 [Overview of the Initiative] [Problems that the invention aims to solve]
[0012] In the structure described in Japanese Patent Publication No. 4381024, an annular gap exists around the entire circumference between the outer circumferential surface of the large-diameter portion 111 of the worm 103 and the inner circumferential surface of the bush 112, in order to allow the tip of the worm 103 to be pressed toward the worm wheel 102. In addition, although smaller than the annular gap between the outer circumferential surface of the large-diameter portion 111 of the worm 103 and the inner circumferential surface of the bush 112, an annular gap also exists around the entire circumference between the tip of the worm 103 and the through hole of the pad 114. Therefore, when changing the rotation direction of the steering wheel, that is, when changing the rotation direction of the worm 103, the direction of the component of the reaction force applied from the wheel teeth 106 to the worm teeth 108 that is perpendicular to both the first direction and the second direction (left-right direction in Figure 23), which is the axial direction of the worm housing 105, changes, and the tip of the worm 103 may be rapidly displaced in the third direction. Therefore, there is room for improvement in terms of suppressing the generation of abnormal noises such as teeth clicking sounds.
[0013] The present disclosure aims to provide a worm gear reducer and its assembly method that, when the rotation direction of the worm changes, makes it difficult for the tip of the worm to be displaced in a third direction perpendicular to both a first direction which is the biasing direction of the tip and a second direction which is the axial direction of the worm housing, and also improves the workability of the assembly work. [Means for solving the problem]
[0014] A worm gear reducer according to one aspect of the present disclosure comprises a housing, a worm wheel, a worm, a holder, a pad, and an elastic member.
[0015] The housing has a wheel housing and a worm housing which is positioned at a torsional angle to the wheel housing and whose axial intermediate portion opens into the wheel housing.
[0016] The worm wheel has wheel teeth on its outer circumference and is rotatably supported inside the wheel housing.
[0017] The worm has worm teeth that mesh with the wheel teeth on its outer peripheral surface and is rotatably supported inside the worm housing portion.
[0018] The holder has a protruding portion and two holder engaging portions, and is disposed between the tip of the worm and the worm housing portion.
[0019] The protruding portion includes two guide portions that are spaced apart in a third direction orthogonal to both the first direction, which is the direction of the proximal and distal movement of the tip of the worm with respect to the worm wheel, and the second direction, which is the axial direction of the worm housing portion.
[0020] The two holder engaging portions are provided on the inner surfaces of the two guide portions that face each other.
[0021] The pad has a pad base portion, two pad engaging portions, and a pad elastic pressing portion, and is externally fitted to the tip of the worm.
[0022] The pad base portion is disposed between the two guide portions.
[0023] The two pad engaging portions are provided on both side surfaces of the pad base portion in the third direction and are in contact with the two holder engaging portions.
[0024] The pad elastic pressing portion elastically presses a part of the holder in the second direction to apply a preload to the contact portion between the holder engaging portion and the pad engaging portion.
[0025] The elastic member is installed so as to span the protruding portion and the pad base portion, and elastically biases the tip of the worm toward the worm wheel side via the pad.
[0026] In particular, in the worm reducer according to one aspect of the present disclosure, the holder or the pad has a first grease supply portion for supplying grease to the contact portion between the elastic member and the pad base in the vicinity of the contact portion between the elastic member and the pad base, and the holder has a second grease supply portion for supplying grease to the contact portion between the elastic member and the protrusion in the vicinity of the contact portion between the elastic member and the protrusion.
[0027] In the worm reducer according to one aspect of the present disclosure, the holder can have a side plate portion bent radially outward from the base end portion of the protrusion. In this case, the first grease supply portion can be provided so as to penetrate in the second direction a portion of the side plate portion whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the pad base.
[0028] In the worm reducer according to one aspect of the present disclosure, the second grease supply portion can be provided so as to penetrate in the radial direction a portion of the protrusion whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the protrusion.
[0029] In the worm reducer according to one aspect of the present disclosure, the protrusion can have a connecting portion that connects the end portions of the two guide portions closer to the worm wheel in the first direction.
[0030] In the worm reducer according to one aspect of the present disclosure, the two holder engaging portions can be constituted by two holder inclined surfaces that incline in a direction approaching each other as they go toward one side in the second direction, and the two pad engaging portions can be constituted by two pad inclined surfaces that are in surface contact with the two holder inclined surfaces.
[0031] In a worm gear reducer according to one aspect of the present disclosure, the pad elastic pressing portion can be composed of two pad elastic pressing plates located on one side in the second direction from the two pad engagement portions, and each extending from the central portion of the pad in the third direction toward the side away from each other in the third direction, and each of the two guide portions can have a holder-pressed surface on one end face in the second direction, and preload can be applied to the contact portion between the holder engagement portion and the pad engagement portion by elastically pressing the holder-pressed surface toward the other side in the second direction with each of the two pad elastic pressing plates. In this case, each of the two pad elastic pressing plates may have a slit at its central end in the third direction that penetrates in the second direction and extends in the first direction.
[0032] In one embodiment of the worm gear reducer of this disclosure, the elastic member can be made of a leaf spring.
[0033] A method for assembling a worm gear reducer according to one aspect of the present disclosure is a method for assembling a worm gear reducer according to one aspect of the present disclosure, The process includes the steps of: assembling the holder, pad, and elastic member inside the worm housing, filling the inside of the worm housing with grease; supplying a portion of the grease to the contact area between the elastic member and the pad base through the first grease supply unit, and supplying it to the contact area between the elastic member and the protrusion through the second grease supply unit; and then fitting the tip of the worm into the pad and positioning it radially inward of the holder. [Effects of the Invention]
[0034] According to one aspect of the worm gear reducer and its assembly method, when the rotation direction of the worm changes, the tip of the worm is less likely to be displaced in a third direction that is perpendicular to both the first direction, which is the biasing direction of the tip, and the second direction, which is the axial direction of the worm housing, and the workability of the assembly work can be improved. [Brief explanation of the drawing]
[0035] [Figure 1] Figure 1 shows an electric power steering device incorporating a worm gear reducer, which is a first example of an embodiment of the present disclosure. [Figure 2] Figure 2 shows a part of an electric power steering system incorporating a worm gear reducer, which is a first example of an embodiment of the present disclosure. [Figure 3] Figure 3 is a cross-sectional view of AA in Figure 2. [Figure 4] Figure 4 is an enlarged view of the upper right portion of Figure 3, with the housing omitted. [Figure 5] Figure 5 is a perspective view showing the tip of the worm and the components arranged around it. [Figure 6] Figure 6 is a perspective view showing the worm's tip and the components arranged around it in an exploded view. [Figure 7] Figure 7 is a view of Figure 4 from the right side. [Figure 8] Figure 8 is a view of Figure 7 from the left side. [Figure 9] Figure 9 is a view of Figure 7 from above. [Figure 10] Figure 10 is a cross-sectional view of BB in Figure 7. [Figure 11] Figure 11 is a magnified view of a portion of Figure 10. [Figure 12] Figure 12(a) is a perspective view showing the holder removed, and Figure 12(b) is a perspective view from a different direction than Figure 12(a). [Figure 13] Figure 13(a) shows the holder removed and viewed from the right side of Figure 4, Figure 13(b) shows the holder viewed from the left side of Figure 13(a), Figure 13(c) shows the holder viewed from above Figure 13(a), and Figure 13(d) shows the holder viewed from the back side of Figure 13(a) (left side of Figure 4). [Figure 14] Figure 14(a) is a perspective view showing the pad removed, and Figure 14(b) is a perspective view from a different direction than Figure 14(a). [Figure 15] Figure 15(a) shows the pad removed and viewed from the right side of Figure 4, Figure 15(b) shows the pad viewed from the left side of Figure 15(a), Figure 15(c) shows the pad viewed from above Figure 15(a), and Figure 15(d) shows the pad viewed from the back side of Figure 15(a) (left side of Figure 4). [Figure 16] Figure 16 shows the holder and pad combined, viewed from the left side of Figure 4. [Figure 17] Figure 17 shows the elastic member removed and viewed from the right side of Figure 4. [Figure 18] Figure 18 is a partially enlarged cross-sectional view showing the process of filling the inside of the worm housing with grease. [Figure 19] Figures 19(a) to (d) show an elastic member removed from a second example of an embodiment of the present disclosure, where (a) is a view from one side in the third direction, (b) is a view from the second direction, (c) is a view from the other side in the third direction, and (d) is a view from the first direction. [Figure 20] Figures 20(a) to (c) show the state in which elastic members are stacked, with (a) being a perspective view, (b) being a view from the first direction, and (c) being a view from one side in the third direction. [Figure 21] Figure 21 is a similar diagram to Figure 19, showing a comparative example to the second example. [Figure 22] Figure 22 is a similar diagram to Figure 20, showing a comparative example to the second example. [Figure 23] Figure 23 is a cross-sectional view showing an example of a conventional worm gear reducer structure. [Modes for carrying out the invention]
[0036] [Example 1] A first example of an embodiment of the present disclosure will be described with reference to Figures 1 to 18. In this example, the case in which a worm gear reducer according to one aspect of the present disclosure is applied to a pinion-assisted electric power steering system will be described. However, all worm gear reducers according to one aspect of the present disclosure are broadly applicable to column-assisted electric power steering systems, dual-pinion electric power steering systems, and worm gear reducers incorporated into various mechanical devices other than electric power steering systems.
[0037] Figure 1 shows a pinion-assist type electric power steering system 1 incorporating the worm gear reducer 14 of this example. The electric power steering system 1 comprises a steering wheel 2, a steering shaft 3, a steering column 4, a pair of universal joints 5a and 5b, an intermediate shaft 6, a steering gear unit 7, and an electric assist device 8.
[0038] The steering wheel 2 is supported and fixed to the rear end of the steering shaft 3. The steering shaft 3 is rotatably supported inside the steering column 4, which is supported by the vehicle body. The front end of the steering shaft 3 is connected to the pinion shaft 9 of the steering gear unit 7 via a rear universal joint 5a, an intermediate shaft 6, and a front universal joint 5b. Therefore, when the driver rotates the steering wheel 2, the rotation of the steering wheel 2 is transmitted to the pinion shaft 9 via the steering shaft 3, a pair of universal joints 5a and 5b, and the intermediate shaft 6. The rotation of the pinion shaft 9 is converted into linear motion of the rack shaft 10 of the steering gear unit 7, which is meshed with the pinion shaft 9. As a result, a steering angle corresponding to the amount of rotation of the steering wheel 2 is applied to the pair of steering wheels. The electric assist device 8 applies auxiliary power generated by the electric motor 15 to the pinion shaft 9. As a result, the force required for the driver to rotate the steering wheel 2 is reduced.
[0039] The steering gear unit 7 comprises a housing 11 supported and fixed to the vehicle body, a rack shaft 10, and a pinion shaft 9. The housing 11 has a rack housing portion 12 extending in the vehicle width direction and a pinion housing portion 13 connected to one axial side (right side in Figure 1) of the rack housing portion 12. The central axis of the pinion housing portion 13 is in a twisted position with respect to the central axis of the rack housing portion 12. The internal space of the pinion housing portion 13 communicates with the internal space of the rack housing portion 12. The rack shaft 10 is supported inside the rack housing portion 12 so that it can move only in the axial direction (vehicle width direction). The pinion shaft 9 is supported inside the pinion housing portion 13 so that it can rotate only. The pinion shaft 9 has pinion teeth on the outer circumferential surface of a front half (lower half in Figure 2) which is located inside the pinion housing portion 13. The base end (upper end in Figure 2) of the pinion shaft 9 protrudes outside the housing 11 and is connected to the front universal joint 5b. The rack shaft 10 has rack teeth on a portion of the outer circumferential surface of one axial side portion (right side in Figure 1), which is located inside the rack housing portion 12 and meshes with the pinion teeth of the pinion shaft 9.
[0040] The electric assist device 8 comprises a worm gear reducer 14 and an electric motor 15. The electric assist device 8 is configured to transmit the rotation of the electric motor 15 to the pinion shaft 9 after it has been reduced by the worm gear reducer 14.
[0041] The worm gear reducer 14 comprises a housing 16, a worm wheel 17, a worm 18, a holder 19, a pad 20, and an elastic member 21.
[0042] The housing 16 has a wheel housing portion 22 and a worm housing portion 23 which is positioned at a torsional angle to the wheel housing portion 22 and whose axial intermediate portion opens into the wheel housing portion 22.
[0043] In other words, the central axis of the wheel housing 22 and the central axis of the worm housing 23 are positioned at a torsional angle to each other. Furthermore, the axial middle portion of the worm housing 23 is integrally connected to a single circumferential point on the radial outer end of the wheel housing 22, and the internal space of the worm housing 23 communicates with the internal space of the wheel housing 22 through this connected portion. In this example, the worm housing 23 is configured as a bottomed cylindrical shape, specifically, the axial tip (right end in Figure 3) is closed, and the axial base (left end in Figure 3) is open.
[0044] In this example, the wheel housing 22 is coaxially and integrally connected to the axial intermediate portion of the pinion housing 13, which constitutes the housing 11 of the steering gear unit 7. The internal space of the wheel housing 22 is in communication with the internal space of the pinion housing 13.
[0045] The worm wheel 17 has wheel teeth 24 on its outer circumference and is rotatably supported inside the wheel housing 22. In this example, the worm wheel 17 is externally fitted and fixed to the axial middle portion of the pinion shaft 9.
[0046] The worm 18 has worm teeth 25 on the axial middle portion of its outer surface that mesh with the wheel teeth 24, and is rotatably supported inside the worm housing 23.
[0047] In this example, the base end of the worm 18 (the left end in Figure 3) is supported by the worm housing 23, allowing for slight oscillation, and is connected to the output shaft 27 of the electric motor 15, enabling torque transmission.
[0048] For this purpose, in this example, the worm 18 has a female spline portion 26 on the inner circumferential surface of its base end. The electric motor 15 is coupled and fixed to the axial base end of the worm housing 23 by screws, with its output shaft 27 positioned coaxially with the worm housing 23. The female spline portion 26 of the worm 18 and the male spline portion 28 provided on the outer circumferential surface of the output shaft 27 of the electric motor 15 are spline-engaged. This connects the base end of the worm 18 and the output shaft 27 of the electric motor 15, enabling torque transmission and allowing slight oscillating displacement of the worm 18. Furthermore, the base end of the worm 18 is supported by a ball bearing 29 with a radial clearance relative to the worm housing 23, allowing slight oscillating displacement.
[0049] In this example, the outer circumferential surface of the tip of the worm 18 is formed by a stepped cylindrical surface. That is, the outer circumferential surface of the tip of the worm 18 has a small-diameter cylindrical surface portion 30 that constitutes the tip side and a large-diameter cylindrical surface portion 31 that constitutes the base side and has a larger diameter than the small-diameter cylindrical surface portion 30.
[0050] In this example, a support bearing 32 is positioned between the large-diameter cylindrical surface portion 31 of the worm 18 and the inner circumferential surface of the worm housing portion 23. In the illustrated example, the support bearing 32 is made of ball bearings. Specifically, the support bearing 32 has an inner ring 33 with an inner ring raceway on its outer circumference, an outer ring 34 with an outer ring raceway on its inner circumference, and a plurality of balls 35, each of which is a rolling element, positioned between these inner and outer ring raceways. However, a rolling bearing such as a cylindrical roller bearing (where the rolling elements are cylindrical rollers), a tapered roller bearing (where the rolling elements are tapered rollers), or a sliding bearing can also be used as the support bearing 32.
[0051] In this example, the inner ring 33 is fitted onto the large-diameter cylindrical surface portion 31 of the worm 18 with a radial gap in between. In this example, a cylindrical bush 36 is placed between the inner circumferential surface of the inner ring 33 and the large-diameter cylindrical surface portion 31. Specifically, the inner ring 33 is fitted onto the outer circumferential surface of the bush 36 by interference fit, and the bush 36 is fitted onto the large-diameter cylindrical surface portion 31 of the worm 18 by gap fit. The bush 36 is a component that ensures sliding and / or cushioning properties with respect to the outer circumferential surface of the tip of the worm 18. It is preferable that such a bush 36 be made of a material that has a low coefficient of friction with respect to the metal material constituting the worm 18, such as synthetic resin or a light alloy such as an aluminum alloy. However, the bush 36 can be omitted, or the bush fitted onto the outer ring 34 by interference fit can be fitted inside the worm housing portion 23 with a radial gap in between.
[0052] In this example, the outer ring 34 is fitted inside the worm housing 23 using a gap fit. This prevents the preload of the support bearing 32 from changing even if the housing 16 expands due to heat during use. However, if the thermal expansion of the housing is not a particular problem, the outer ring can also be press-fitted into the housing.
[0053] Furthermore, as will be described later, the outer ring 34 is axially sandwiched between a holder 19 positioned inside the worm housing 23 and a retainer 37 that is fitted and fixed inside the worm housing 23. The retainer 37 has a fitting cylinder portion 38 that is fitted and fixed inside the inner circumferential surface of the worm housing 23 by interference fit, and an inward-facing flange portion 39 that is bent radially inward along the entire circumference from one end of the fitting cylinder portion 38 on one axial side (right side in Figures 3 and 4). In this example, the outer ring 34 abuts the end face on one axial side of the holder 19 against the radially outer portion of the other axial side (left side in Figures 3 and 4) of the annular portion 42, and abuts the other axial side against the side of the inward-facing flange portion 39 on one axial side via a wave washer 40. This prevents axial displacement of the support bearing 32. However, the wave washer 40 can be omitted, or the wave washer can be placed between the outer ring 34 and the holder 19.
[0054] In this example, the tip of the worm 18 is capable of displacement in a first direction (vertical direction in Figures 3 and 4), which is the direction of biasing by the elastic member 21 and is the direction of near-far movement relative to the worm wheel 17, based on the radial gap between the inner circumferential surface of the inner ring 33 and the outer circumferential surface of the tip of the worm 18, specifically, the annular gap between the inner circumferential surface of the bush 36 and the large-diameter cylindrical surface portion 31.
[0055] In this example, the support bearing 32 is sandwiched axially between the holder 19 and the retainer 37. However, when implementing a worm gear reducer according to one aspect of this disclosure, the arrangement of the support bearing is not particularly limited, as long as it allows the tip of the worm to rotate relative to the worm housing and move toward and toward the worm wheel. For example, the holder can be fitted and fixed inside the worm housing, and the support bearing can be fitted and held inside the holder.
[0056] In this example, the worm gear reducer 14 has a central axis O17 of the worm wheel 17 and a central axis O18 of the worm 18 (central axis of the output shaft 27 of the electric motor 15) which are perpendicular to each other when viewed from the first direction. However, this disclosure can also be applied to an oblique-angle type worm gear reducer in which the central axis O17 of the worm wheel 17 and the central axis O18 of the worm 18 (central axis of the output shaft 27 of the electric motor 15) intersect at an oblique angle, i.e., form an acute angle, when viewed from the first direction.
[0057] In the worm gear reducer 14 of this example, as shown in Figures 3 to 10, a holder 19, a pad 20, and an elastic member 21 are arranged between the small-diameter cylindrical surface portion 30 of the worm 18 and the inner circumferential surface of the tip of the worm housing portion 23. The holder 19 is positioned between the tip of the worm 18 and the worm housing portion 23. In this example, the holder 19 is positioned around the tip of the worm 18, inside the worm housing portion 23, in a manner that prevents rotation. The pad 20 is fitted onto the tip of the worm 18. In this example, the pad 20 is fitted onto the tip of the worm 18 without radial play. The elastic member 21 is installed so as to span between the protrusion 44 of the holder 19 and the pad base 55 of the pad 20, and elastically biases the tip of the worm 18 toward the worm wheel 17 side (the lower side in Figures 3 and 4) via the pad 20. This suppresses backlash at the meshing point between the wheel teeth 24 and the worm teeth 25.
[0058] The holder 19 has a protruding portion 44 including two guide portions 49 that are spaced apart with respect to a third direction (front-back direction in Figures 3 and 4) that is perpendicular to both the first direction and the second direction (left-right direction in Figures 3 and 4), which is the axial direction of the worm housing portion 23, and two holder inclined surfaces 41, which are two holder engaging portions, provided on the mutually opposing inner surfaces 51 of the two guide portions 49. Each of the two holder inclined surfaces 41 extends in the first direction and is inclined in a direction that brings them closer to each other as they move toward one side of the second direction (in this example, the right side in Figures 3 and 4). It is preferable that the holder 19 be made of a material with sufficient strength and rigidity, such as a metal material or a high-performance resin material such as polyphenylene sulfide (PPS) mixed with glass fibers.
[0059] More specifically, in this example, the holder 19 comprises an annular portion 42, a substantially ring-shaped side plate portion 43 extending radially inward from one end of the annular portion 42 in the second direction, and a projection portion 44 extending radially inward from the radially inward end of the side plate portion 43 and having a substantially U-shaped end face when viewed from one side in the second direction.
[0060] The annular portion 42 has a segmental circular end face shape, when viewed from one side in the second direction, consisting of one straight section and one arc section. That is, the annular portion 42 has a flat section 45 at one circumferential position on its outer surface (in this example, the end closer to the worm wheel 17 with respect to the first direction). In this example, the holder 19 is held inside the worm housing 23 in a state where rotation is prevented by fitting the annular portion 42 non-circularly inside the worm housing 23.
[0061] In this example, as shown in Figure 13(d), the inner circumferential surface 46 of the side plate portion 43 has recesses 47 on both sides with respect to the third direction that are recessed toward both sides in the third direction. The bottom surface of the recesses 47 is formed by a plane perpendicular to the third direction. Of the inner circumferential surface 46 of the side plate portion 43, the portions that are not adjacent to the two recesses 47, i.e., the portions on both sides with respect to the first direction, are formed by a cylindrical surface centered on the central axis of the holder 19.
[0062] In this example, the displacement of the holder 19 to one side in the second direction is prevented by abutting the side surface of one radially outer end of the side plate portion 43 against a stepped portion 48 (see Figure 3) provided on the inner circumferential surface of the worm housing portion 23, which faces the other side in the second direction.
[0063] In this example, the protrusion 44 protrudes toward one side in the second direction from the radially inner end of the side plate portion 43, excluding the end furthest from the worm wheel 17 in the first direction. The protrusion 44 comprises two guide portions 49 and a connecting portion 50. The two guide portions 49 constitute the ends of the protrusion 44 in the third direction. That is, as shown in Figures 6, 12(a), 13(a), and 13(d), the two guide portions 49 extend toward one side in the second direction from two locations separated in the third direction from the radially inner end of the side plate portion 43, specifically from the same circumferential locations as the two recesses 47. The two guide portions 49 have a shape that extends toward the first direction.
[0064] In this example, the end of each guide portion 49 furthest from the worm wheel 17 is located closer to the worm wheel 17 in the first direction than the end of the recess 47 furthest from the worm wheel 17. In other words, when the holder 19 is viewed from one side in the second direction, the end of each recess 47 furthest from the worm wheel 17 is not covered by the guide portion 49 and is exposed in the second direction.
[0065] The connecting portion 50 constitutes the end of the protruding portion 44 that is closer to the worm wheel 17 in the first direction. That is, the connecting portion 50 extends from the radially inner end of the side plate portion 43 that is closer to the worm wheel 17 in the first direction toward one side in the second direction, and connects the ends of the two guide portions 49 that are closer to the worm wheel 17 in the first direction. The connecting portion 50 has a partially cylindrical shape centered on the central axis of the holder 19. Note that the connecting portion can be omitted if the holder has sufficient strength to adequately prevent deformation of the two guide portions.
[0066] The two holder inclined surfaces 41 constituting the holder 19 are provided on the inner surfaces 51 of the two guide portions 49, which are sides facing each other in the third direction. In this example, each of the inner surfaces 51 of the two guide portions 49 has a crank shape with a stepped surface (holder inclined surface 41) in the intermediate part in the second direction, as seen from the first direction, as shown in Figure 13(c). That is, the two holder inclined surfaces 41 are provided on the intermediate part of the inner surfaces 51 of the two guide portions 49 in the second direction, more specifically, on one side of the intermediate part in the second direction. The two holder inclined surfaces 41 are inclined in a direction that brings them closer to each other as they move toward one side in the second direction. Of the inner surfaces 51 of the two guide portions 49, the portion located on one side in the second direction relative to the two holder inclined surfaces 41, and the portion located on the other side in the second direction relative to the two holder inclined surfaces 41, are each composed of a plane perpendicular to the third direction. Therefore, the distance between the inner surfaces 51 of the two guide portions 49 is narrower in the portion located on one side of the second direction relative to the two holder inclined surfaces 41 than in the portion located on the other side of the second direction relative to the two holder inclined surfaces 41.
[0067] When implementing a worm gear reducer according to one embodiment of the present disclosure, the inclination angle φ of the holder inclined surface 41 with respect to the second direction can be set to any size in the range of 0° < φ < 90°, but it is preferably 20° or more and 80° or less, and more preferably 30° or more and 70° or less. In this example, the inclination angle φ is set to 30°.
[0068] Furthermore, the two holder press surfaces 52 constituting the holder 19 are provided on the tip surfaces, which are the end faces of one of the two guide portions 49 in the second direction. In this example, the two holder press surfaces 52 and the tip surfaces, which are the end faces of one of the connecting portions 50 in the second direction, are continuous with each other and exist in the same virtual plane perpendicular to the second direction.
[0069] Furthermore, the holder 19 has a first grease supply unit 74 near the contact area P1 between the elastic member 21 and the pad base 55 constituting the pad 20 for supplying grease to the contact area P1, and a second grease supply unit 75 near the contact area P2 between the elastic member 21 and the protruding portion 44 for supplying grease to the contact area P2.
[0070] In this example, the first grease supply unit 74 is provided so as to penetrate in the second direction a portion of the side plate portion 43 constituting the holder 19, where the phase in the circumferential direction substantially coincides with the contact portion P1 between the elastic member 21 and the pad base portion 55, more specifically, the contact portion P1 between the arm portion 68 of the elastic member 21 and the pressed portion 62 provided on the pad base portion 55, and which is located radially inward from the contact portion P1. Specifically, in this example, the first grease supply unit 74 is formed from the end portion of the recess 47 provided in the side plate portion 43 that is furthest from the worm wheel 17 in the first direction.
[0071] As shown in Figures 13(c) and (d), the first grease supply section 74 is formed by a first wall surface 74a extending parallel to the first and second directions, and a pair of second wall surfaces 74b, 74b extending parallel to the second and third directions. The pair of second wall surfaces 74b, 74b face each other in the first direction. The outer ends of the pair of second wall surfaces 74b, 74b in the third direction are connected by the first wall surface 74a. The first wall surface 74a and the pair of second wall surfaces 74b, 74b are perpendicular to each other and have a roughly U-shape when viewed from the second direction. As shown in Figures 13(c) and (d), when viewed from the second direction, the pair of second grease supply sections 75, 75 each have a roughly rectangular cross-section that is recessed outward in the third direction. Also, as shown in Figures 12(a) and (b), the first grease supply section 74 penetrates the holder 19 in the second direction. Preferably, the pair of first grease supply sections 74, 74 have substantially the same cross-sectional area when viewed from the second direction. In this case, the grease has excellent fluidity and contributes to improving uneven application.
[0072] It should be noted that the phase of the first grease supply unit 74 in the circumferential direction and the phase of the contact portion P1 between the elastic member 21 and the pressed portion 62 in the circumferential direction do not need to be perfectly aligned. That is, as shown in Figure 18, which will be described later, when filling the inside of the worm housing 23 with grease from the base end side (the other side of the second direction) with grease assembled inside the worm housing 23 with the holder 19, pad 20 and elastic member 21, it is acceptable for there to be some misalignment, as long as grease can be supplied to the contact portion P1 between the elastic member 21 and the pressed portion 62 through the first grease supply unit 74, for example by pressurization. Specifically, for example, in a cross-section with respect to a virtual plane perpendicular to the second direction, the angle between the straight line connecting the circumferential center position of the first grease supply unit 74 and the central axis O18 of the worm 18 and the straight line connecting the contact portion P1 and the central axis O18 of the worm 18 can be within ±10 degrees, preferably within ±5 degrees.
[0073] In implementing a worm gear reducer according to one aspect of the present disclosure, a first grease supply unit for supplying grease to the contact area between the elastic member and the pressed portion can also be provided on the pad. Specifically, for example, the first grease supply unit can be formed so as to penetrate radially through the portion between the two pressed portions and the base surface and the inner circumferential surface of the through hole, and open to the side surface of the base body on the other side in the second direction, at the end of the base body that is furthest from the worm wheel in the first direction.
[0074] In this example, the second grease supply section 75 is provided so as to penetrate radially through the portion of the protrusion 44 whose circumferential phase substantially coincides with the contact portion P2 between the elastic member 21 and the protrusion 44, or more specifically, the contact portion P2 between the arm portion 68 of the elastic member 21 and the side surface of the connecting portion 50 that constitutes the protrusion 44, with respect to the first direction, that is closer to the worm wheel 17. Specifically, in this example, the second grease supply section 75 is provided so as to penetrate radially through the connection portion between the end of the guide portion 49 that is closer to the worm wheel 17 with respect to the first direction and the circumferential end of the connecting portion 50. In addition, in this example, the second grease supply section 75 opens to the inner and outer circumferential surfaces of the protrusion 44 and to one end surface in the second direction. That is, the second grease supply section 75 is composed of a groove formed radially across the protrusion 44.
[0075] As shown in Figures 13(c) and (d), the second grease supply section 75 is formed by a third wall surface 75a extending parallel to the circumferential and second directions, and a pair of fourth wall surfaces 75b, 75b extending parallel to the radial and third directions. The pair of fourth wall surfaces 75b, 75b face each other in the circumferential direction when viewed from the second direction, as shown in Figures 13(c) and (d). The radial outer ends of the pair of fourth wall surfaces 75b, 75b are connected by the third wall surface 75a. The third wall surface 75a and the pair of fourth wall surfaces 75b, 75b are perpendicular to each other and form a roughly U-shape when viewed from the second direction. As shown in Figures 13(c) and (d), when viewed from the second direction, the pair of second grease supply sections 75, 75 each have a roughly rectangular cross-section that is recessed radially outward. Furthermore, as shown in Figures 13(a) and (b), the second grease supply unit 75 has a bottomed shape with a bottom surface 75c on the other side in the second direction. Preferably, the pair of second grease supply units 75, 75 have substantially the same cross-sectional area when viewed from the second direction. In this case, the grease has excellent fluidity and contributes to improving uneven application.
[0076] Furthermore, it is even more preferable that the cross-sectional area of the first grease supply unit 74 and the second grease supply unit 75, as viewed from the second direction, be substantially the same. In this case, the fluidity of the grease can be further improved.
[0077] It should be noted that the circumferential phase of the second grease supply unit 75 and the circumferential phase of the contact portion P2 between the elastic member 21 and the protrusion 44 do not need to be perfectly aligned. That is, as shown in Figure 18, which will be described later, when filling the inside of the worm housing 23 with grease from the base end side (the other side of the second direction) with grease, the contact portion P2 between the elastic member 21 and the protrusion 44 can be supplied through the second grease supply unit 75, as long as there is some misalignment. Specifically, for example, in a cross-section with respect to a virtual plane perpendicular to the second direction, the angle between the straight line connecting the circumferential center position of the second grease supply unit 75 and the central axis O18 of the worm 18 and the straight line connecting the contact portion P1 and the central axis O18 of the worm 18 can be within ±10 degrees, preferably within ±5 degrees.
[0078] As shown in Figures 6, 10, 11, and 14(a) to 15(d), the pad 20 has two pad inclined surfaces 53, which are two pad engagement portions that contact the two holder inclined surfaces 41 and are provided on both sides in the third direction, and a pad elastic pressing portion 76 that applies preload to the contact portion between the two holder inclined surfaces 41 and the two pad inclined surfaces 53 by elastically pressing a part of the holder 19 toward the other side in the second direction. In this embodiment, the part of the holder 19 that is pressed by the pad elastic pressing portion 76 is the protruding portion 44 of the holder 19.
[0079] In this example, the two pad inclined surfaces 53 are in surface contact with the two holder inclined surfaces 41, specifically, they are inclined in the same direction and at the same angle as the two holder inclined surfaces 41 (see Figure 11).
[0080] Furthermore, the pad elastic pressing portion 76 is located on one side in the second direction from the two pad inclined surfaces 53 and is composed of two pad elastic pressing plates 54, each extending from the central part of the pad 20 in the third direction toward the side away from each other in the third direction. The two pad elastic pressing plates 54 elastically press the two holder pressing surfaces 52 that constitute the holder 19 toward the other side in the second direction.
[0081] The pad 20 is preferably made of a material that has a low coefficient of friction with respect to the metal material constituting the worm 18, such as synthetic resin or a light alloy such as an aluminum alloy.
[0082] In this example, the pad 20 comprises a pad base 55 positioned between two guide portions 49, a through hole 56 that penetrates the pad base 55 in a second direction and through which the tip of the worm 18 is inserted, and two pad inclined surfaces 53 on both sides of the pad base 55 in a third direction, and a flat plate portion 57 including two pad elastic pressing plates 54 is connected to the portion of the pad base 55 that protrudes from between the two guide portions 49 to one side in the second direction.
[0083] The pad base 55 comprises a base body 58 and two base protrusions 59.
[0084] The base body 58 extends in a first direction and has a substantially rectangular end face shape. The through hole 56 penetrates the base body 58 in a second direction through the half of the base body 58 that is closer to the worm wheel 17 in the first direction. In this example, the through hole 56 is made up of a stepped hole having an oval hole portion 60 on one side in the second direction and a circular hole portion 61 on the other side in the second direction. Of these, the circular hole portion 61 has an inner diameter that is slightly larger than the outer diameter of the small diameter cylindrical surface portion 30 of the worm 18.
[0085] Furthermore, the base body 58 has two pressable portions 62 at the end furthest from the worm wheel 17 in the first direction, and at the other end in the second direction, at both ends in the third direction. Each of the two pressable portions 62 is formed by a partial cylindrical surface centered on the central axis of the through hole 56. However, when implementing a worm gear reducer according to one embodiment of the present disclosure, the base body may also be configured to have one pressable portion at one location on the end furthest from the worm wheel in the first direction. In this example, the base body 58 has a base surface portion 63 formed by a flat surface perpendicular to the first direction at the end furthest from the worm wheel 17 in the first direction, in the portion between the two pressable portions 62 in the third direction.
[0086] The two base protrusions 59 project from the other half of the base body 58 in the second direction, from the portion closer to the worm wheel 17 in the first direction, toward the side away from each other in the third direction. Each of the two base protrusions 59 extends in the first direction.
[0087] In this example, the two pad inclined surfaces 53 constituting the pad 20 are provided on one side of the two base protrusions 59 with respect to the second direction. The two pad inclined surfaces 53 are inclined in a direction that brings them closer to each other as they move toward one side in the second direction. The inclination angle φ of the pad inclined surfaces 53 with respect to the second direction is the same as the inclination angle φ of the holder inclined surface 41 with respect to the second direction.
[0088] Furthermore, in this example, as shown in Figure 16, the pad base 55 is inserted between the two guide portions 49, so that when the holder 19 and pad 20 are assembled, the first grease supply portion 74 provided on the holder 19 is not blocked by the two base protrusions 59, the dimensions of each base protrusion 59 in the first direction are adjusted. In other words, when the holder 19 and pad 20 are assembled, the first grease supply portion 74 is positioned further from the worm wheel 17 than the base protrusions 59 in the first direction.
[0089] The flat plate portion 57 is integrally connected to one end of the base body 58 in the second direction and has a circular outer circumference when viewed from one side in the second direction. The through hole 56 penetrates the radial center of the flat plate portion 57 in the second direction. Therefore, the flat plate portion 57 is configured as a ring-shaped flat plate centered on the central axis of the through hole 56. The outer diameter dimension of the flat plate portion 57 is larger than the width dimension of the base body 58 in the third direction. Both ends of the flat plate portion 57 in the third direction protrude further than the base body 58 in the third direction. The end of the flat plate portion 57 closer to the worm wheel 17 in the first direction protrudes further than the base body 58 in the first direction. The end of the base body 58 further from the worm wheel 17 in the first direction protrudes further than the flat plate portion 57 in the first direction.
[0090] In this example, the two pad elastic pressing plates 54 constituting the pad 20 are connected to portions of the pad base 55 that protrude from between the two guide portions 49 to one side in the second direction. Specifically, the two pad elastic pressing plates 54 are formed by the ends of the flat plate portion 57 in the third direction.
[0091] In this example, each of the two pad elastic pressing plates 54 is provided with at least one projection 64a, 64b extending in the first direction on the other side surface with respect to the second direction, as shown in Figures 10, 11, 14(b), and 15(b) to 15(d). In the free state before the two pad elastic pressing plates 54 undergo elastic deformation, in other words, in the free state before the pad 20 is assembled to the projection 44 of the holder 19, at least one projection 64a, 64 The height of b in the second direction increases continuously or stepwise as it moves away from the worm 18 in the third direction.
[0092] In this example, at least one rib 64a, 64b is composed of two ribs 64a, 64b spaced apart in the third direction. As shown in Figure 15(a), in the free state, the height of the rib 64a furthest from the worm 18 in the third direction is greater in the second direction than the height of the rib 64b closer to the worm 18 in the third direction. In this example, in the free state, the cross-sectional shape of the tip of each of the two ribs 64a, 64b is a straight line perpendicular to the second direction. More specifically, in the free state, the tip of each of the two ribs 64a, 64b is composed of a flat surface perpendicular to the second direction.
[0093] In addition, the extent to which the height of the protrusion 64a on the side furthest from the worm 18 in the third direction is made higher than the height of the protrusion 64b on the side closer to the worm 18 in the third direction in the second direction is not particularly limited, as long as the respective tips of the protrusions 64a and 64b can both be brought into contact with the holder's pressed surface 52 when the pad 20 is assembled to the protrusion 44 of the holder 19. However, in the worm reducer 14 incorporated into the electric power steering device 1, it can be, for example, 0.05 mm or more and 0.30 mm or less, preferably 0.10 mm or more and 0.15 mm or less.
[0094] In this example, each of the two pad elastic pressing plates 54 has a slit 65 at its base end, which is the central end of the pad 20 in the third direction, that penetrates in the second direction and extends in the first direction. In this example, the bending stiffness in the second direction of the portions of the base end of the pad elastic pressing plate 54 adjacent to both sides of the slit 65 in the longitudinal direction is adjusted based on appropriately controlling the width and length of the slit 65 and the thickness of the pad elastic pressing plate 54. However, the slit can be omitted when implementing a worm gear reducer according to one embodiment of this disclosure.
[0095] As shown in Figures 3 to 5 and Figures 7 to 10, the pad 20 is assembled to the protrusion 44 of the holder 19 and is fitted onto the tip of the worm 18.
[0096] Specifically, the portion of the pad base 55 of the pad 20 closest to the worm wheel 17 in the first direction is positioned between the two guide portions 49 that constitute the protrusion 44 of the holder 19, and the two pad inclined surfaces 53 are in surface contact with the two holder inclined surfaces 41. In addition, the tips of the protrusions 64a and 64b of the two pad elastic pressing plates 54 elastically press the two holder pressed surfaces 52 toward the other side in the second direction. As a result, preload is applied to the contact area between the two holder inclined surfaces 41 and the two pad inclined surfaces 53.
[0097] With the pad 20 assembled to the protruding part of the holder 19, the inclination angle α of each of the two pad elastic pressing plates 54 with respect to a virtual plane perpendicular to the second direction is not particularly limited, but can be, for example, 0 degrees or more and 15 degrees or less.
[0098] Furthermore, the small-diameter cylindrical surface portion 30 at the tip of the worm 18 is fitted into the circular hole portion 61 of the through hole 56 of the pad 20 without radial play and in a manner that allows relative rotation.
[0099] In this state, a gap exists in the first direction between the side of the pad base 55 of the pad 20 that is closer to the worm wheel 17 in the first direction and the side of the connecting portion 50 that constitutes the protruding portion 44 of the holder 19 that is further away from the worm wheel 17 in the first direction. In this example, the pad 20 can be displaced in the first direction relative to the holder 19 based on this gap in the first direction.
[0100] Furthermore, in this state, as shown in Figures 10 and 11, a gap in a third direction exists between the inner surface 51 of the two guide portions 49, specifically the portion located on one side in the second direction relative to the two holder inclined surfaces 41, and the portion located on the other side in the second direction relative to the two holder inclined surfaces 41, and the pad base 55 of the pad 20. In this example, the pad 20 is able to be displaced in the third direction relative to the holder 19 based on this gap in the third direction.
[0101] In this example, the elastic member 21 is made of a leaf spring. More specifically, in this example, the elastic member 21 is made of a cylindrical leaf spring having a discontinuity 66 at one location in the circumferential direction, as shown in Figures 6 and 17. Specifically, the elastic member 21 has a base portion 67 located on the side farther from the worm 18 with respect to the first direction, and two arm portions 68 extending circumferentially from the ends on both sides of the base portion 67.
[0102] In this example, the base 67 is composed of a flat plate perpendicular to the first direction.
[0103] Each of the two arm portions 68 is configured in a partially cylindrical shape. Each of the two arm portions 68 has a bent portion 69 that is bent radially outward from its tip.
[0104] However, when implementing a worm gear reducer according to one aspect of this disclosure, the elastic member can have any configuration as long as it can elastically bias the pad toward the worm wheel 17 with respect to the first direction. For example, if the elastic member is made of a leaf spring, it can have a shape other than a cylindrical notch. The elastic member can also be made of a torsion coil spring.
[0105] The elastic member 21 is assembled to the holder 19 by fitting onto the pad base 55 of the pad 20 and the protruding portion 44 of the holder 19. In this example, with the pad base 55 of the pad 20 and the protruding portion 44 of the holder 19 inserted radially inward into the elastic member 21, the base portion 67 of the elastic member 21 is brought into contact with the base surface portion 63 of the pad 20, the inner circumferential surfaces of the base end portions of the two arm portions 68 are elastically pressed against the two pressure-receiving portions 62 provided on the pad base 55, and the inner circumferential surfaces of the tip portions of the two arm portions 68 are elastically pressed against the side surface of the connecting portion 50 constituting the protruding portion 44 of the holder 19 that is closer to the worm wheel 17 in the first direction. As a result, the tip portion of the worm 18 is elastically biased toward the worm wheel 17 side, i.e., toward the side closer to the worm wheel 17 in the first direction, via the pad 20. This suppresses backlash at the meshing point between the wheel teeth 24 and the worm teeth 25.
[0106] Furthermore, the contact portion P1 between the elastic member 21 and the pad base 55 (pressed portion 62), and the contact portion P2 between the elastic member 21 and the protruding portion 44 are lubricated with grease.
[0107] When assembling the worm gear reducer 14 in this example, first, the pad base 55 of the pad 20 is attached to the protrusion 44 of the holder 19, and the elastic member 21 is attached to the holder 19 so as to fit the pad base 55 and the protrusion 44 externally, thereby obtaining an assembly of the holder 19, pad 20 and elastic member 21. Next, this assembly is placed in a predetermined position inside the worm housing 23. Furthermore, the support bearing 32, bush 36, wave washer 40, and retainer 37 are placed in predetermined positions inside the worm housing 23.
[0108] Next, as shown in Figure 18, grease G is filled into the inside of the worm housing 23 from the base end side (the other side in the second direction) of the worm housing 23. Once the grease G is filled into the radially inner side of the holder 19, a portion of the grease G is supplied through the first grease supply unit 74 to the contact area P1 between the elastic member 21 and the pad base 55, and through the second grease supply unit 75 to the contact area P2 between the elastic member 21 and the protruding part 44.
[0109] Subsequently, the worm 18 is inserted into the worm housing 23 from the base end side of the worm housing 23, the small diameter cylindrical surface portion 30 is fitted into the circular hole portion 61 of the pad 20, and the large diameter cylindrical surface portion 31 is fitted into the bush 36, while the worm teeth 25 are engaged with the wheel teeth 24 of the worm wheel 17, which is rotatably supported inside the wheel housing 22.
[0110] Furthermore, the procedure for assembling the worm gear reducer 14 can be rearranged or performed simultaneously as appropriate, as long as it does not create any inconsistencies.
[0111] The worm gear reducer 14 in this example can achieve the following effects.
[0112] The two inclined pad surfaces 53 that make up the pad 20 are in surface contact with the two inclined holder surfaces 41 that make up the holder 19. In addition, the tips of the protrusions 64a and 64b of the two elastic pad pressing plates 54 that make up the pad 20 elastically press the two holder pressed surfaces 52 that make up the holder 19 toward the other side in the second direction. As a result, preload is applied to the contact area between the two inclined holder surfaces 41 and the two inclined pad surfaces 53. Therefore, based on the contact between the two inclined holder surfaces 41 and the two inclined pad surfaces 53, the displacement of the pad 20 in the third direction relative to the holder 19 is restricted, and the pad 20 is prevented from rattling freely in the third direction relative to the holder 19.
[0113] Specifically, in this example, as shown in Figures 10 and 11, the tips of the respective protrusions 64a and 64b of the pad elastic pressing plate 54 elastically press the holder pressing surface 52 toward the other side in the second direction, resulting in an elastic force (pre-pressure) Fp acting from the pad inclined surface 53 to the holder inclined surface 41, directed toward one side in the second direction. This elastic force Fp is then converted into an elastic force (pre-pressure) Fx acting from the pad inclined surface 53 to the holder inclined surface 41, directed toward the outward side in the third direction. In this example's structure, this elastic force Fx prevents the pad 20 from rattling freely in the third direction relative to the holder 19.
[0114] Therefore, when the rotation direction of the worm 18 changes, and the direction of the component of the reaction force applied from the wheel teeth 24 to the worm teeth 25 in the third direction changes, the tip of the worm 18 is less likely to be displaced in the third direction. As a result, it is possible to prevent the generation of abnormal noises such as tooth-clapping noises at the meshing portion between the wheel teeth 24 and the worm teeth 25, and abnormal noises such as collision noises between the pad 20 and the holder 19.
[0115] When implementing a worm gear reducer according to one embodiment of this disclosure, the bending stiffness in the second direction of the portion of the base end of the pad elastic pressing plate 54 adjacent to both sides in the longitudinal direction of the slit 65 can be changed by changing the width and length of the slit 65, the thickness of the pad elastic pressing plate 54, the second-direction height of the protrusions 64a and 64b, etc. This makes it possible to change the magnitude of the force that the tips of each protrusion 64a and 64b of the pad elastic pressing plate 54 elastically press against the holder pressed surface 52 toward the other side in the second direction. Accordingly, the magnitude of the elastic force Fp can be arbitrarily changed.
[0116] The pad elastic pressing plate 54 locally presses the holder's pressed surface 52 with the tips of the protrusions 64a and 64b. Therefore, the pressing force can be stabilized compared to when the pad elastic pressing plate presses the holder's pressed surface over a wide area.
[0117] The relationship between elastic force Fx and elastic force Fp is given by "Fx = Fp / tanφ". In this example, since the inclination angle φ = 30°, Fx = Fp / tan30° = 1.7Fp. In other words, the elastic force Fx is greater than the elastic force Fp. When implementing a worm gear reducer according to one embodiment of this disclosure, the magnitude of the elastic force Fx can be arbitrarily changed not only by changing the magnitude of Fp but also by changing the magnitude of the inclination angle φ. For example, if φ = 45°, then Fx = Fp, and if 45° < φ < 90°, then Fx <Fpとすることができ、0゜<φ<45゜とすれば、Fx> It can be set to Fp. Furthermore, the magnitude of the elastic force Fx can be adjusted by changing the inclination angle φ without changing the material of the pad 20 (elastic force based on the material). Therefore, the magnitude of the elastic force Fx can be easily adjusted during the design phase.
[0118] When implementing a worm gear reducer according to one embodiment of this disclosure, the inclination angle of the holder inclined surface 41 with respect to the second direction and the inclination angle of the pad inclined surface 53 with respect to the second direction do not need to be exactly the same and may differ within the range of manufacturing tolerances. Furthermore, the inclination angle of the holder inclined surface 41 with respect to the second direction can be made slightly smaller (for example, by about 0.5°) than the inclination angle of the pad inclined surface 53 with respect to the second direction. In this way, at the contact area between the holder inclined surface 41 and the pad inclined surface 53, the tip of the pad inclined surface 53 (the right end in the third direction in Figure 11, and the other end in the second direction in Figure 11) will make particularly strong surface contact with the holder inclined surface 41. As a result, the posture of the pad 20 relative to the holder 19 becomes stable.
[0119] Now, let's consider the case where, from a neutral state where the central axis of the holder 19 and the central axis of the pad 20 coincide when viewed from the first direction, as shown in Figures 10 and 11, the pad 20 is displaced to one side of the holder 19 in the third direction, for example, to the right in Figures 10 and 11. In this case, as the right pad inclined surface 53 slides along the right holder inclined surface 41, the pad base 55 of the pad 20 is displaced toward the other side in the second direction, and at the same time, the right pad elastic pressing plate 54 elastically deforms so as to tilt to one side in the second direction. Then, the elastic pressing force acting from the right pad elastic pressing plate 54 on the right holder pressed surface 52 increases by an amount corresponding to this elastic deformation, and the elastic forces Fp and Fx increase. As a result, the pad 20 becomes less likely to be displaced toward the right. The same applies when the pad 20 is displaced to the left in Figures 10 and 11 relative to the holder 19 from a neutral position.
[0120] The inner surface of the circumferential center of the elastic member 21 is elastically pressed against two pressure-bearing portions 62 provided at both ends of the base body 58 constituting the pad 20 in the third direction. As a result, the two pressure-bearing portions 62 are subjected to forces that have a component in the direction approaching the worm wheel 17 with respect to the first direction, as well as components in opposite directions with respect to the third direction. From this perspective as well, when the rotation direction of the worm 18 changes, it is possible to prevent the tip of the worm 18 from being displaced in the third direction.
[0121] In this example, the holder 19 has a first grease supply unit 74 near the contact area P1 between the elastic member 21 and the pad base 55 constituting the pad 20 for supplying grease to the contact area P1, and a second grease supply unit 75 near the contact area P2 between the elastic member 21 and the protruding portion 44 for supplying grease to the contact area P2.
[0122] Therefore, when assembling the worm gear reducer 14 in this example, even if the holder 19, pad 20, and elastic member 21 are assembled inside the worm housing 23 as shown in Figure 18, and then grease G is filled into the inside of the worm housing 23 from the base end side (the other side in the second direction), a sufficient amount of grease G can be supplied to the contact area P1 between the elastic member 21 and the pad base 55 (pressed portion 62), and to the contact area P2 between the elastic member 21 and the protruding portion 44.
[0123] In other words, the grease G filled from the base end side inside the worm housing 23 can be supplied to the contact area P1 between the elastic member 21 and the pad base 55 through the first grease supply unit 74, and to the contact area P2 between the elastic member 21 and the protruding part 44 through the second grease supply unit 75. This improves the lubrication of the contact area P1 between the elastic member 21 and the pad base 55, and the contact area P2 between the elastic member 21 and the protruding part 44, thereby preventing wear at these contact areas P1 and P2.
[0124] Furthermore, when assembling a worm gear reducer, it is also possible to apply grease to the contact points between the elastic member and the pad base and between the elastic member and the protrusion before placing the holder, pad, and elastic member inside the worm housing, and then place the holder, pad, and elastic member inside the worm housing. However, in this case, since sticky grease is applied to the surface of the assembly formed by combining the holder, pad, and elastic member before it is assembled inside the worm housing, the handling of the assembly may deteriorate, and foreign matter such as dust may adhere to it more easily, potentially making maintenance more difficult.
[0125] In contrast, the worm gear reducer 14 in this example has a first grease supply unit 74 and a second grease supply unit 75. Therefore, even when the holder 19, pad 20, and elastic member 21 are assembled inside the worm housing 23 and then grease is filled into the worm housing 23, a sufficient amount of grease G can be supplied to the contact area P1 between the elastic member 21 and the pad base 55, and the contact area P2 between the elastic member 21 and the protrusion 44. In other words, when assembling the worm gear reducer 14, it is not necessary to apply grease to the contact areas P1 and P2 before placing the holder 19, pad 20, and elastic member 21 inside the worm housing. This prevents the assembly of the holder 19, pad 20, and elastic member 21 from becoming difficult to handle or to manage, thus improving the workability of the worm gear reducer 14 assembly.
[0126] In this example, of the two first grease supply units 74, the first grease supply unit 74 on one side with respect to the third direction (left side in Figure 13(a), right side in Figure 13(c)) and of the two second grease supply units 75, the second grease supply unit 75 on the other side with respect to the third direction (right side in Figure 13(a), left side in Figure 13(c)) are located radially opposite (diagonally) to the central axis of the holder 19. Also, of the two first grease supply units 74, the first grease supply unit 74 on the other side with respect to the third direction and of the two second grease supply units 75, the second grease supply unit 75 on one side with respect to the third direction are located radially opposite (diagonally) to the central axis of the holder 19. Therefore, the worm gear reducer 14 in this example, compared to a structure in which a grease supply unit for supplying grease to the contact area between the holder and the elastic member is provided only on one side of the holder, either the side closer to the worm wheel or the side further away from the worm wheel in the first direction, allows for stable grease flow when supplying grease from the other side to the one side of the holder 19 in the second direction through the first grease supply unit 74 and the second grease supply unit 75. As a result, the productivity of the worm gear reducer 14 can be improved, making mass production easier.
[0127] When implementing a worm gear reducer according to one embodiment of this disclosure, the formation positions of the first grease supply section and the second grease supply section are not limited to the configuration of this example, and can be appropriately changed as long as a sufficient amount of grease G can be supplied to the contact portion between the elastic member and the pad base, and the contact portion between the elastic member and the protrusion. For example, the second grease supply section can be formed so as to penetrate the side plate portion constituting the holder in the second direction.
[0128] Furthermore, in this example, in the free state before the two pad elastic pressing plates 54 undergo elastic deformation, the height of at least one ridge 64a, 64b provided on each of the two pad elastic pressing plates 54 in the second direction increases continuously or stepwise as it moves away from the worm 18 in the third direction. Specifically, of the two ridges 64a, 64b, the height of the ridge 64a on the side furthest from the worm 18 in the third direction is higher in the second direction than the height of the ridge 64b on the side closer to the worm 18 in the third direction. As a result, displacement of the tip of the worm 18 in the third direction can be stably prevented when the rotation direction of the worm 18 changes.
[0129] When the pad 20 is assembled to the protrusion 44 of the holder 19, the tips of the protrusions 64a and 64b of the two pad elastic pressing plates 54 are elastically brought into contact with the two holder pressing surfaces 52 of the holder 19. As a result, the two pad elastic pressing plates 54 elastically deform around their respective base ends, tilting in a direction toward one side in the second direction as they move away from the worm 18 in the third direction.
[0130] If the heights of the two protrusions on each of the two pad elastic pressure plates are the same in the second direction, when the pad is assembled to the holder's protrusion, only the tip of the protrusion closer to the worm in the third direction may contact the holder's pressed surface, while the tip of the protrusion further from the worm in the third direction may not contact the holder's pressed surface. As a result, it may become difficult to stabilize the elastic deformation of the pad elastic pressure plate, or the surface pressure at the contact point between the tip of the protrusion closer to the worm in the third direction and the holder's pressed surface may become excessive, potentially causing wear at that contact point. Consequently, it may become difficult to stabilize the elastic forces Fx and Fp based on the elastic pressure applied by the tip of the protrusion toward the other side in the second direction to the holder's pressed surface.
[0131] In contrast, in this example, the height of the protrusion 64a on the side furthest from the worm 18 in the third direction is set to be greater in the second direction than the height of the protrusion 64b on the side closer to the worm 18 in the third direction. Therefore, when the pad 20 is assembled to the protrusion 44 of the holder 19, the tips of the two protrusions 64a and 64b can be reliably brought into contact with the holder's pressed surface 52. As a result, the elastic deformation of the pad's elastic pressing plate 54 can be stabilized, and the surface pressure at the contact point between the tips of the protrusions 64a and 64b and the holder's pressed surface 52 can be prevented from becoming excessive, thereby preventing wear at the contact point. As a result, the elastic forces Fx and Fp, which are based on the elastic pressure exerted by the tips of the protrusions 64a and 64b on the holder's pressed surface 52 toward the other side in the second direction, can be stabilized, and the displacement of the tip of the worm 18 toward the third direction when the rotation direction of the worm 18 changes can be stably prevented.
[0132] Furthermore, according to the worm gear reducer 14 of this example, grease for lubricating the contact area between the tips of the protrusions 64a and 64b and the holder's pressed surface 52 can be held between the two protrusions 64a and 64b provided on each of the two pad elastic pressing plates 54. As a result, the lubrication state of the contact area between the tips of the protrusions 64a and 64b and the holder's pressed surface 52 can be maintained well for a long period of time. From this perspective as well, wear can be prevented at the contact area between the tips of the protrusions 64a and 64b and the holder's pressed surface 52.
[0133] In this example, the number of protrusions 64a and 64b provided on each of the two pad elastic pressing plates 54 is set to two. However, when implementing a worm gear reducer according to one embodiment of this disclosure, the number of protrusions provided on each of the two pad elastic pressing plates can be three or more, or it can be set to one. When the number of protrusions provided on each of the two pad elastic pressing plates is set to one, the tip of the protrusion is configured with an inclined surface that slopes toward the other side in the second direction as it moves away from the worm in the third direction. This increases the contact area between the tip of the protrusion and the holder pressing surface, preventing the elastic deformation of the pad elastic pressing plate from becoming unstable and preventing wear on the tip of the protrusion.
[0134] [Example 2] A second example of the embodiments of this disclosure will be described with reference to Figures 19(a) to 20(c). The worm gear reducer in this example differs from the worm gear reducer 14 of the first example in the configuration of the elastic member 21a. The configuration and effects of the other parts are the same as those of the worm gear reducer 14 of the first example, so their description will be omitted.
[0135] As shown in Figures 19(a) to 19(d), the elastic member 21a is composed of a leaf spring with a discontinuity 66 at one location in the circumferential direction (approximately C-shaped). In this example, the elastic member 21a has a base portion 67a located on the side furthest from the worm 18 with respect to the first direction, and two arm portions 68a extending circumferentially from the ends on both sides of the base portion 67a.
[0136] In this example, the base portion 67a is made up of a flat plate perpendicular to the first direction. The base portion 67a has a constricted portion 70 in the middle part with respect to the third direction, in which the width dimension in the second direction is smaller than that of the portions on both sides with respect to the third direction. However, the constricted portion 70 may be omitted.
[0137] Each of the two arm portions 68a is configured in a partially cylindrical shape. In this example, each of the two arm portions 68a has, in order from the side closer to the base portion 67a with respect to the circumferential direction, a base-side wide portion 71, a narrow portion 72, and a tip-side wide portion 73. In this example, the width dimension W71 of the base-side wide portion 71 with respect to the second direction and the width dimension W73 of the tip-side wide portion 73 with respect to the second direction are the same, and the width dimension W72 of the narrow portion 72 with respect to the second direction is smaller than the width dimension W71 of the base-side wide portion 71 and the width dimension W73 of the tip-side wide portion 73 with respect to the second direction (W72 <W71=W73)。
[0138] In this example, each of the two arm portions 68a has a bent portion 69 that is bent radially outward from the tip of the wide end portion 73. The width dimension of the bent portion 69 in the second direction is the same as the width dimension W73 of the wide end portion 73 in the second direction. However, the bent portion 69 may be omitted.
[0139] The elasticity of the elastic member 21a can be adjusted by adjusting the width dimension W68 of the narrower portion 72 of the two arm portions 68a in the second direction. In other words, in the worm gear reducer of this example, by adjusting the width dimension W72 of the narrower portion 72 in the second direction, the force with which the elastic member 21a elastically biases the tip of the worm 18 toward the worm wheel 17 via the pad 20 can be appropriately adjusted. As a result, backlash at the meshing portion between the wheel teeth 24 and the worm teeth 25 can be suppressed, reducing the generation of abnormal noise and preventing an unnecessary increase in friction at the meshing portion.
[0140] Furthermore, this example allows for better handling of the elastic member 21a. The reason for this will be explained with reference to Figures 19(a) to 20(c), as well as Figures 21(a) to 22(c).
[0141] Figures 21(a) to 22(c) show comparative examples to the second example. In the comparative example, each of the two arm portions 68z constituting the elastic member 21z has only a base-side wide portion 71 and a narrow portion 72z, starting from the side closer to the base portion 67a in the circumferential direction, and does not have a tip-side wide portion 73. The elasticity of the elastic member 21z of the comparative example can also be adjusted by adjusting the width dimension of the narrow portion 72z in the second direction.
[0142] In the comparative example, the elastic member 21z has a width dimension of the narrow portion 72z in the second direction that is smaller than the width dimension of the wide portion 71 on the base side in the second direction. Therefore, when attempting to stack multiple elastic members 21z in the axial direction, they tilt towards the discontinuous portion 66, as shown in Figures 22(a) to 22(c), making them difficult to handle.
[0143] In contrast, in this example, each of the two arm portions 68a constituting the elastic member 21a has a base-side wide portion 71 and a tip-side wide portion 73 adjacent to the circumferential side of the narrow portion 72, where the width dimensions W71 and W72 in the second direction are the same. Therefore, as shown in Figures 20(a) to 20(c), even when multiple elastic members 21a are stacked in the axial direction, tilting can be prevented, thus ensuring good handling of the elastic members 21a. For this reason, for example, it is easy to perform so-called rod-wound packaging, where multiple elastic members 21a are wrapped around a stacked axially. And / or, it is easy to set them in a fixed distribution device while they are stacked in the axial direction.
[0144] In this example, the elastic member 21a has a base portion 67a made of a flat plate, and the base portion 67a has a constricted portion 70 in the middle part with respect to the third direction. This makes it easy to align the circumferential phase of the elastic member 21a with respect to the protrusion 44 of the holder 19. However, the phase alignment of the elastic member with respect to the holder can be performed by any method, such as displaying a mark. In this case, the base portion can be made partially cylindrical, and / or the constricted portion can be omitted.
[0145] As described above, the following is disclosed in this specification. (1) A housing having a wheel housing and a worm housing positioned at a twisted position relative to the wheel housing and having an axial intermediate portion that opens into the wheel housing, A worm wheel having wheel teeth on its outer circumference and being rotatably supported inside the wheel housing, A worm having worm teeth on its outer circumferential surface that mesh with the wheel teeth, and being rotatably supported inside the worm housing, A protruding portion including two guide portions arranged spaced apart with respect to a third direction perpendicular to both a first direction which is the direction of near-far movement of the tip of the worm relative to the worm wheel and a second direction which is the axial direction of the worm housing, and a holder having two holder engaging portions provided on the mutually opposing inner surfaces of the two guide portions, and positioned between the tip of the worm and the worm housing, A pad fitted onto the tip of the worm, having a pad base positioned between the two guide portions, two pad engagement portions provided on both sides of the pad base in the third direction and in contact with the two holder engagement portions, and a pad elastic pressing portion that elastically presses a part of the holder toward the second direction to apply preload to the contact portion between the holder engagement portion and the pad engagement portion, The device comprises an elastic member that is installed so as to span across the protruding portion and the pad base, and elastically biases the tip of the worm toward the worm wheel via the pad, The holder or the pad has a first grease supply unit near the contact area between the elastic member and the pad base for supplying grease to the contact area between the elastic member and the pad base. The holder has a second grease supply section near the contact area between the elastic member and the protrusion for supplying grease to the contact area between the elastic member and the protrusion. Worm gear reducer. (2) The holder has a side plate portion that is bent radially outward from the base end of the protrusion, The worm gear reducer according to (1), wherein the first grease supply unit is provided so as to penetrate the second direction a portion of the side plate whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the pad base. (3) The worm gear reducer according to (1) or (2), wherein the second grease supply unit is provided so as to penetrate radially through the portion of the protrusion whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the protrusion. (4) The worm gear reducer according to any one of (1) to (3), wherein the protruding portion has a connecting portion that connects the end of the two guide portions that is closer to the worm wheel with respect to the first direction. (5) The two holder engagement portions are composed of two holder inclined surfaces that are inclined in a direction that brings them closer to each other as they are directed toward one side in the second direction, The worm gear reducer according to any one of (1) to (4), wherein the two pad engagement portions are composed of two pad inclined surfaces that make surface contact with the two holder inclined surfaces. (6) The pad elastic pressing portion is located on one side in the second direction from the two pad engagement portions and is composed of two pad elastic pressing plates, each extending from the central portion of the pad in the third direction toward the side away from each other in the third direction, Each of the two guide portions has a holder-pressed surface on one end face in the second direction, Each of the two pad elastic pressing plates elastically presses the holder's pressed surface toward the other side in the second direction, thereby applying preload to the contact area between the holder engagement portion and the pad engagement portion. A worm gear reducer as described in any one of (1) to (5). (7) Each of the two pad elastic pressing plates has a slit at the central end of the pad in the third direction that penetrates in the second direction and extends in the first direction, (6) The worm gear reducer described in (6). (8) The worm gear reducer according to any one of (1) to (7), wherein the elastic member is composed of a leaf spring. (9) A method for assembling a worm gear reducer as described in any one of (1) to (8), The process includes the steps of: assembling the holder, pad, and elastic member inside the worm housing, filling the inside of the worm housing with grease; supplying a portion of the grease to the contact area between the elastic member and the pad base through the first grease supply unit, and supplying it to the contact area between the elastic member and the protrusion through the second grease supply unit; and then fitting the tip of the worm into the pad and positioning it radially inward of the holder. Assembly method for a worm gear reducer.
[0146] This application is based on Japanese Patent Application No. 2023-016521 filed on February 7, 2023, and its contents are incorporated herein by reference. [Explanation of symbols]
[0147] 1. Electric power steering system 2 Steering Wheel 3. Steering shaft 4. Steering column 5a, 5b Flexible joint 6 Intermediate shaft 7. Steering Gear Unit 8. Electric assist device 9 Pinion shaft 10 rack axes 11 Housing 12 Rack storage section 13 Pinion housing 14 Worm gear reducer 15 Electric motor 16 Housing 17 Worm Wheel 18 Warm 19 holder 20, 20z pads 21, 21a, 21z Elastic members 22 Wheel housing 23. Worm containment section 24 Wheel Teeth 25 Warm teeth 26 Female spline section 27 Output shaft 28 Male spline section 29 Ball bearings 30 Small diameter cylindrical surface section 31 Large diameter cylindrical surface 32 Support bearings 33 Inner circle 34 Outer ring 35 balls 36 Bush 37 Retainer 38 Fitting cylinder 39 Inward-facing flange 40 Wave Washers 41 Holder inclined surface 42 Ring section 43 Side plate part 44 Protrusion 45 Flat area 46 Inner surface 47 Recess 48 Stepped section 49 Guide section 50 Connection part 51 Inner surface 52, 52a Holder pressed surface 53, 53a Pad inclined surface 54, 54z pad elastic pressure plate 55 Pad base 56 Through hole 57 Flat plate part 58 Base body 59 Base overhang 60 Oval-shaped hole 61 Circular hole 62 Pressed part 63 Base surface 64a, 64b, 64c, 64d, 64e, 64f, 64z1, 64z2 protrusions 65 slits 66 Discontinuity 67, 67a base 68, 68a, 68z arm 69. Bent section 70 Constriction 71 Wider part on the base side 72, 72z narrow part 73 Wider part at the tip 74. First grease supply unit 75 Second grease supply unit 76 Pad elastic pressing part 100 Worm Gear Reducer 101 Housing 102 Worm Wheel 103 Warm 104 Wheel housing 105 Worm containment section 106 Wheel Teeth 107 Rotation axis 108 Warm teeth 109a, 109b ball bearing 110 Holder 111 Large diameter section 112 Bush 113 Electric motor 114 pads 115 Torsion coil spring
Claims
1. A housing having a wheel housing and a worm housing positioned at a twisted position relative to the wheel housing and having an axial intermediate portion that opens into the wheel housing, A worm wheel having wheel teeth on its outer circumference and being rotatably supported inside the wheel housing, A worm having worm teeth on its outer circumferential surface that mesh with the wheel teeth, and being rotatably supported inside the worm housing, A holder having a projection including two guide portions arranged spaced apart with respect to a third direction perpendicular to both a first direction which is the direction of near-far movement of the tip of the worm relative to the worm wheel and a second direction which is the axial direction of the worm housing, and two holder engaging portions provided on the mutually opposing inner surfaces of the two guide portions, and positioned between the tip of the worm and the worm housing, A pad fitted onto the tip of the worm, having a pad base positioned between the two guide portions, two pad engagement portions provided on both sides of the pad base in the third direction and in contact with the two holder engagement portions, and a pad elastic pressing portion that elastically presses a part of the holder toward the second direction to apply preload to the contact portion between the holder engagement portion and the pad engagement portion, The device comprises an elastic member that is installed so as to span across the protruding portion and the pad base, and elastically biases the tip of the worm toward the worm wheel via the pad, The holder or the pad has a first grease supply unit near the contact area between the elastic member and the pad base for supplying grease to the contact area between the elastic member and the pad base. The holder has a second grease supply section near the contact area between the elastic member and the protrusion for supplying grease to the contact area between the elastic member and the protrusion. Worm gear reducer.
2. The holder has a side plate portion that is bent radially outward from the base end of the protrusion, The worm gear reducer according to claim 1, wherein the first grease supply unit is provided so as to penetrate the second direction a portion of the side plate whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the pad base.
3. The worm gear reducer according to claim 1, wherein the second grease supply unit is provided so as to penetrate radially through the portion of the protrusion whose phase in the circumferential direction substantially coincides with the contact portion between the elastic member and the protrusion.
4. The worm gear reducer according to claim 1, wherein the protruding portion has a connecting portion that connects the end of the two guide portions that is closer to the worm wheel with respect to the first direction.
5. The two holder engagement portions are composed of two holder inclined surfaces that are inclined in a direction that brings them closer to each other as they are directed toward one side of the second direction. The worm gear reducer according to claim 1, wherein the two pad engagement portions are composed of two pad inclined surfaces that make surface contact with the two holder inclined surfaces.
6. The pad elastic pressing portion is located on one side in the second direction from the two pad engaging portions and is composed of two pad elastic pressing plates, each extending from the central portion of the pad in the third direction toward the side away from each other in the third direction. Each of the two guide portions has a holder-pressed surface on one end face in the second direction, Each of the two pad elastic pressing plates elastically presses the holder's pressed surface toward the other side in the second direction, thereby applying preload to the contact area between the holder engagement portion and the pad engagement portion. The worm gear reducer according to claim 1.
7. Each of the two pad elastic pressing plates has a slit at its central end in the third direction that penetrates in the second direction and extends in the first direction. The worm gear reducer according to claim 6.
8. The worm gear reducer according to claim 1, wherein the elastic member is composed of a leaf spring.
9. A method for assembling a worm gear reducer according to any one of claims 1 to 8, The process includes the steps of: assembling the holder, pad, and elastic member inside the worm housing, filling the inside of the worm housing with grease; supplying a portion of the grease to the contact area between the elastic member and the pad base through the first grease supply unit, and supplying it to the contact area between the elastic member and the protrusion through the second grease supply unit; and then fitting the tip of the worm into the pad and positioning it radially inward of the holder. Assembly method for a worm gear reducer.
Citation Information
Patent Citations
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