Operating device
The operating device simplifies assembly by using a buffer and support mechanism to hold the stabilizer in place, eliminating the need for jigs and reducing costs.
Patent Information
- Application Number
- JP2022040799
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-15
- Publication Date
- 2025-09-22
- Estimated Expiration
- 2042-03-15
AI Technical Summary
Existing push button stabilizers require the use of a jig to counteract elastic force during assembly, making the process time-consuming.
An operating device design that includes a buffer member, support member, and mounting member to hold the stabilizer in place during assembly, eliminating the need for a jig.
Facilitates easy assembly of the operating device by allowing the stabilizer to be set on the base without a jig, reducing manufacturing costs and assembly time.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an operating device. [Background technology]
[0002] A known prior art push button switch includes a push button, an escutcheon with a hole for inserting the push button, a substrate attached to the back side of the escutcheon and provided with upper and lower elastic biasing portions and an electrical switch portion that elastically press the push button from the back side to the front side, and a stabilizer attached between the push button and the escutcheon so that it can swing (see, for example, Patent Document 1).
[0003] This stabilizer is U-shaped with a linear locking portion and two arms bent 90 degrees from both ends of the linear locking portion, and has two engaging portions bent 90 degrees from the tips of the arms, extending parallel to the locking portion and away from each other. The stabilizer supports the push button from both sides while maintaining the position of both engaging portions so that they are always in a straight line, thereby preventing the push button from tilting. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-11746 Summary of the Invention [Problem to be solved by the invention]
[0005] Such stabilizers, for example, use elastic force to prevent the push button from moving when tilted, so when installing them, a jig is required to hold the stabilizer against this elastic force, which makes assembly time-consuming.
[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide an operating device that is easy to assemble. [Means for solving the problem]
[0007] One aspect of the present invention provides an operating device that includes an operating unit that accepts a pushing operation, a buffer member that buffers tilting movement of the operating unit that accompanies the pushing operation, a support member that supports the buffer member, a base on which the support member is provided, and at least one mounting member that is provided on the base and has a mounting surface on which an end of the buffer member is placed, and that holds the buffer member on the base by the mounting surface and the support member during the preparation stage of assembling the operating unit to the base. [Effects of the Invention]
[0008] According to the present invention, assembly is easy. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1(a) is a diagram showing an example of the interior of a vehicle, FIG. 1(b) is an example of a top view of an operating device, and FIG. 1(c) is an example of a side view of the operating device. [Figure 2] FIG. 2(a) is an example of a block diagram of an operating device, and FIG. 2(b) and FIG. 2(c) are diagrams for explaining an example of the damping operation of the stabilizer. [Figure 3] FIG. 3(a) is a diagram showing an example of a stabilizer, and FIG. 3(b) is a diagram showing an example of a guide portion. [Figure 4] FIG. 4(a) is a diagram showing an example of a support portion, and FIGS. 4(b) and 4(c) are diagrams showing examples of modified support portions. [Figure 5] FIG. 5(a) is a diagram showing an example of a mounting portion, FIG. 5(b) is a diagram for explaining an example of a mounting surface, and FIG. 5(c) is a diagram for explaining an example of a mounting surface of a modified example. [Figure 6] FIG. 6(a) is a diagram showing an example of a preparation stage, and FIG. 6(b) is a diagram showing an example of an assembled state. [Figure 7] 7(a) to 7(f) are diagrams illustrating an example of the movement of the stabilizer when the operating section is attached to the support section. DETAILED DESCRIPTION OF THE INVENTION
[0010] (Summary of the embodiment) The operating device according to the embodiment is generally configured to include an operating unit that accepts a pushing operation, a buffer member that buffers tilting movement of the operating unit due to the pushing operation, a support member that supports the buffer member, a base on which the support member is provided, and at least one loading member that is provided on the base and has a loading surface on which the terminal end of the buffer member is placed, and that holds the buffer member on the base by the loading surface and the support member during the preparation stage of assembling the operating unit to the base.
[0011] This operating device can hold the mitigation member to the base using the mounting surface and support part of at least one mounting part without having to hold the mitigation member with a jig before assembly, making assembly easier than when using a jig.
[0012] [Embodiment Mode] (Overview of operation device 1) FIG. 1(a) is a diagram showing an example of the interior of a vehicle equipped with an operating device according to an embodiment, FIG. 1(b) is an example of a top view of the operating device, and FIG. 1(c) is an example of a side view of the operating device. FIG. 2(a) is an example of a block diagram of the operating device according to an embodiment, and FIGS. 2(b) and 2(c) are diagrams for explaining an example of an operation of a stabilizer to mitigate tilted movement of the operating unit. FIG. 3(a) is a diagram showing an example of a stabilizer of the operating device according to an embodiment, and FIG. 3(b) is a diagram showing an example of a guide unit. FIG. 4(a) is a diagram showing an example of a support unit of the operating device according to an embodiment, and FIGS. 4(b) and 4(c) are diagrams showing an example of a support unit according to a modified example. FIG. 5(a) is a diagram showing an example of a mounting unit of the operating device according to an embodiment, and FIG. 5(b) is a diagram for explaining an example of a mounting surface, and FIG. 5(c) is a diagram for explaining an example of a mounting surface according to a modified example.
[0013] In the drawings relating to the embodiments described below, the ratios and shapes of the figures may differ from the actual ratios and shapes. Also, in Figure 2(a), arrows indicate the flow of main signals and information.
[0014] As an example, as shown in FIG. 1( a), the operation device 1 of this embodiment is disposed on a floor console 80 located between the driver's seat and the passenger seat of a vehicle 8. The operation device 1 is configured to operate, for example, an in-vehicle device 83 mounted on the vehicle 8. Examples of the in-vehicle device 83 include a vehicle control device that performs overall vehicle settings and controls automatic driving functions, an air conditioning device that adjusts the temperature inside the vehicle, a navigation device that displays a map of the current location and provides guidance to the destination, a display device that displays images, a seat device that controls the position and tilt of the seat, and a music and video playback device that plays music and videos. The operation device 1 can also operate, for example, a mobile terminal connected to the in-vehicle device 83 by wire or wirelessly.
[0015] As shown in Figures 1(b) to 4(a), the operating device 1 is generally configured to include an operating unit 2 that accepts a pushing operation, a stabilizer 3 as a buffer member that buffers tilting movement of the operating unit 2 that accompanies the pushing operation, a support unit 4 that supports the stabilizer 3, a base 12 on which the support unit 4 is provided, and at least one mounting unit 5 that is provided on the base 12 and has a mounting surface 52 on which an end portion of the stabilizer 3, which will be described later, is placed, and that holds the stabilizer 3 to the base 12 by the mounting surface 52 and the support unit 4 during the preparation stage of assembling the operating unit 2 to the base 12.
[0016] As shown in Figure 3(b), when assembling the operating unit 2 to the base 12, the operating device 1 guides the end of the inserted stabilizer 3 from the assembly direction (direction of arrow A) to a direction intersecting the assembly direction (direction of arrow B), thereby rotating the stabilizer 3 in the intersecting direction, and is provided with guide portions 6 on the operating unit 2 corresponding to the left and right end portions of the stabilizer 3 so as to hold the stabilizer 3 together with the support portion 4 after the operating unit 2 is assembled to the base 12.
[0017] As shown in Figures 1(c) and 2(a), the operating device 1 of this embodiment includes a touch sensor 22 that detects a detection object that has come into contact with or approached the operating surface 20, a push switch 23 that detects a pressing operation of the operating unit 2, and a control unit 14 that outputs operation information S3 to the in-vehicle device 83 in response to the detection of the touch sensor 22 and the push switch 23.
[0018] The touch sensor 22 detects the operation position of the detection target using a capacitance method, generates detection information S1, and outputs it to the control unit 14. This detection information S1 includes, for example, information on the position coordinates of the operation surface 20 where the detection target is detected. Note that, for example, the detection target is the user's operating finger.
[0019] The push switch 23 detects a push operation on the operation unit 2, i.e., a push operation performed on the operation surface 20, and generates a switch signal S2 and outputs it to the control unit 14. The push switch 23 is, for example, a microswitch. This push switch 23 is provided, for example, on the base 12 below at least one of the guide units 6, and is configured to turn on as the guide unit 6 moves due to a push operation.
[0020] The control unit 14 is a microcomputer that includes, for example, a CPU (Central Processing Unit) that performs calculations, processing, etc. on acquired data according to stored programs, and semiconductor memories such as RAM (Random Access Memory) and ROM (Read Only Memory).
[0021] The operation device 1 can, for example, move a cursor displayed on the display screen of the in-vehicle device 83 or change a setting value based on a touch operation or a tracing operation performed on the operation surface 20. Furthermore, the operation device 1 can, for example, control the in-vehicle device 83 to execute a selected function by a push operation performed on the operation surface 20.
[0022] That is, the operating device 1 of this embodiment is configured to detect a touch operation performed on the operating surface 20 by the touch sensor 22 and also detect a push operation performed on the operating surface 20 .
[0023] As a modified example, the operation device 1 may be configured as a switch that only accepts a push operation, such as a switch 81 or a start switch 82, as shown in Fig. 1(a). The switch 81 is assigned, for example, a function of an in-vehicle device 83, and executes that function in response to a received push operation. The start switch 82 can, for example, start a drive device of the vehicle 8 or stop a drive device that has been running, based on the received push operation.
[0024] (Configuration of operation unit 2) As shown in Figures 1(b) and 1(c), the operation unit 2 has a plate shape, and guide units 6 are provided on both longitudinal ends of its rear surface 21. The operation unit 2 is configured to accept touch operations, tracing operations, etc. on the operation surface 20, as well as to accept push operations on the operation surface 20. The operation surface 20 has a rectangular shape that is long in the horizontal direction of the paper in Figure 1(b), so that opposing sides 201 in the short direction are longer than opposing sides 202 in the long direction.
[0025] As described above, the longitudinal direction is the left-right direction on the paper surface of FIG. 1(b). The short-side direction is the up-down direction on the paper surface of FIG. 1(b). The longitudinal ends are the ends near the opposing sides 202. The operation surface 20 may be square-shaped. In this case, the stabilizers 3 are arranged in the up-down and left-right directions, for example.
[0026] The operation unit 2 has a touch sensor 22 provided on the top thereof. The surface of the operation unit 2 serves as an operation surface 20 of the touch sensor 22.
[0027] The operation unit 2 is attached to a housing 10. As shown in Fig. 1(c), for example, the housing 10 is composed of an upper housing 11 and a base 12. The upper housing 11 has an opening 110, and the operation surface 20 is exposed through this opening 110.
[0028] As an example, the base 12 has two support portions 4 and two mounting portions 5 provided on the installation surface 120. Note that only one of the mounting portions 5 may be provided. The upper housing 11 is attached to the base 12 with screws or the like. The upper housing 11 and the base 12 are formed using, for example, a resin material.
[0029] (Configuration of stabilizer 3) 3(a), the stabilizer 3 is formed in a long, thin rod shape using a metal material. The stabilizer 3 includes a supported portion 30 supported by a support portion 4, a first bent portion 31 and a second bent portion 32 formed by bending both ends of the supported portion 30 in opposing directions, and a first terminal end portion 33 and a second terminal end portion 34 formed by bending the ends of the first bent portion 31 and the second bent portion 32 in directions away from each other.
[0030] 3(a), the supported portion 30 has a linear shape. When attached to the base 12, the supported portion 30 contacts the lower surface 42 of a protruding portion 41 (described later) of the support portion 4.
[0031] 3(a) is formed by bending upward from the supported portion 30. As an example, the angle between the first bent portion 31 and the supported portion 30 is 90°, but is not limited to this.
[0032] 3(a) is formed by bending upward from the supported portion 30. As an example, the second bent portion 32 is formed so as to face the first bent portion 31 and is bent at the same angle as the first bent portion 31.
[0033] 3(a) is formed by bending leftward from the first bent portion 31. As an example, the first end portion 33 forms an angle of 90° with the first bent portion 31 and is parallel to the supported portion 30, but is not limited to this.
[0034] 3(a) is formed by bending in the opposite direction to the first terminal end 33, that is, bending rightward from the second bent portion 32. As an example, the second terminal end 34 forms an angle of 90° with the second bent portion 32 and is parallel to the supported portion 30, but is not limited to this.
[0035] As shown in Figure 5(b), when the stabilizer 3 rotates in a first direction 35 with the center 300 of the short cross section of the supported portion 30 as the center of rotation, the terminal portion placed on the mounting surface 52 in the preparation stage is supported at a position moved from the 12 o'clock position based on the center of rotation to a second direction 36 opposite to the first direction 35.
[0036] Specifically, when the placing portion 5 is disposed toward the first terminal end portion 33 of the stabilizer 3 and viewed from the supported portion 30 side, as shown in Fig. 5(b), the first terminal end portion 33 is supported at a preparation position 72 rotated in the second direction 36 from a reference line 71 indicating the 12 o'clock position when placed on the placing surface 52 in the preparation stage. The two-dot chain line shown in Fig. 5(b) is a straight line connecting the center of the supported portion 30 and the center of the first terminal end portion 33.
[0037] When the placing portion 5 is disposed toward the second terminal end 34 of the stabilizer 3 and viewed from the supported portion 30 side, the second terminal end 34, when placed on the placing surface 52 in the preparation stage, is supported at a preparation position 72 rotated in the second direction 36 from a reference line 71 indicating the 12 o'clock position. Furthermore, when the placing portion 5 is disposed toward the first terminal end 33 and the second terminal end 34 of the stabilizer 3, it is similarly supported at the preparation position 72 rotated in the second direction 36.
[0038] 4(b), when the operating unit 2 is set on the base 12, the stabilizer 3 rotates in the first direction 35 to an assembly position 73 where the first terminal end 33 and the second terminal end 34 are approximately horizontal with the supported unit 30. At this time, the supported unit 30 rotates in the first direction 35 while in contact with the support unit 4. In other words, the rotation of the first terminal end 33 and the second terminal end 34 causes the entire stabilizer 3 to rotate in the first direction 35 around the center 300.
[0039] (Configuration of support part 4) As shown in Figure 4(a), the support part 4 has a support base part 40 that rises from the base part 12, and a protrusion part 41 that protrudes in the opposite direction to the intersecting direction (intersecting direction B) in which the stabilizer 3 rotates when the operating part 2 is assembled to the base part 12.
[0040] The support base 40 is formed in a plate shape using, for example, a resin material. The protruding portion 41 protrudes from a side surface 400 of the support base 40 and suppresses upward movement of the supported portion 30. The stabilizer 3 rotates in a first direction 35 and a second direction 36 while maintaining contact with the side surface 400 and a bottom surface 42. As a modified example, the bottom surface 42 of the protruding portion 41 may be a concave surface corresponding to the shape of the supported portion 30.
[0041] 2(b) and 2(c), the support parts 4 are provided on the left and right sides of the base 12 in the longitudinal direction in accordance with the guide parts 6 of the operating unit 2. In addition, the support parts 4 support the rotation of the stabilizer 3, and therefore are arranged near the first bending part 31 and the second bending part 32.
[0042] As a modified example, the support part 4 may be provided with a recess in the lower surface 42 into which the stabilizer 3 is rotatably fitted. Also, instead of providing multiple support parts 4, one support part 4 may be provided to support the center of the supported part 30.
[0043] 4(b), the support part 4 may further include a protruding part 43 that protrudes from the side surface 400 below the protruding part 41, and a recessed part 44 that is provided between the protruding part 41 and the protruding part 43. The recessed part 44 supports the supported part 30 of the inserted stabilizer 3 and suppresses vertical movement of the supported part 30. The support part 4 may also be configured such that the recessed part 44 is provided on the side surface 400 of the support base 40.
[0044] As another modification, the support portion 4 may be configured to include a first support portion 4a and a second support portion 4b, as shown in Fig. 4(c). The first support portion 4a is the same support portion 4 as in the embodiment. The second support portion 4b has an upper surface 45 that supports the supported portion 30 of the stabilizer 3 and suppresses downward movement. The stabilizer 3 is held by the first support portion 4a and the second support portion 4b.
[0045] (Configuration of placement unit 5) As shown in FIGS. 2(b) and 2(c), for example, two mounting portions 5 are arranged on the installation surface 120 of the base 12 between the support portion 4 and the guide portion 6. The mounting portion 5 is formed in a plate shape using, for example, a resin material. In this mounting portion 5, the upper surface of the mounting base 50 serves as the mounting surface 52. The mounting surface 52 has a concave surface on the side of the convex portion 53 (described later) that corresponds to the shape of the stabilizer 3.
[0046] As shown in Fig. 5(a), the mounting portion 5 has a protrusion 53 at the end of the mounting surface 52 so as to inhibit rotation of the stabilizer 3 in the second direction 36 when the stabilizer 3 is placed on the mounting surface 52. As shown in Fig. 5(b), when the stabilizer 3 is placed on the mounting surface 52, the protrusion 53 acts as a wall against rotation of the first end portion 33 in the second direction 36, thereby inhibiting rotation.
[0047] 5(a) and 5(b), the mounting portion 5 has a curved surface so that the corner 54 on the first direction 35 side does not hinder the rotation of the stabilizer 3. If the corner 54 were not curved, the trajectory 350 of the rotation of the lower point 332 of the stabilizer 3 in the first direction 35 may intersect with the non-curved corner 54, making it difficult to assemble the operating unit 2 to the base 12. The lower point 332 is the point of the first terminal end portion 33 that comes into contact with the mounting surface 52.
[0048] The distance H1 from the apex 301 of the supported portion 30 of the stabilizer 3 to the lower point 332 of the first terminal end 33 is equal to or greater than the distance H3 from the lower surface 42 of the protruding portion 41 with which the stabilizer 3 comes into contact to the mounting surface 52. Similarly, the distance H2 from the apex 301 of the supported portion 30 of the stabilizer 3 to the lower point 341 of the second terminal end 34 is equal to or greater than the distance H3 from the lower surface 42 of the protruding portion 41 with which the stabilizer 3 comes into contact to the mounting surface 52. Note that the distance H1 is equal to the distance H2.
[0049] In this embodiment, the distance H1 from the apex 301 of the supported portion 30 to the lower point 332 of the terminal end portion is equal to the distance H3. In other words, when the stabilizer 3 is placed on the mounting surface 52, the distance L from the center 300 of the supported portion 30 to the center 331 of the first terminal end portion 33 remains unchanged and the stabilizer 3 does not elastically deform, so that the stabilizer 3 can easily rotate in the first direction 35 and the second direction 36.
[0050] 5(c), the placement surface 52 may have a concave shape corresponding to the shape of the stabilizer 3. In this case, the placement surface 52 is positioned higher than the locus 350 of the lower point 332 of the first terminal end 33, and therefore, after the stabilizer 3 is elastically deformed when placed on the placement surface 52, the stabilizer 3 is supported and stabilized.
[0051] As yet another modification, the corners 54 of the mounting portion 5 do not have to be curved as long as the end portion does not come into contact with the corners 54 .
[0052] 2(b) and 2(c), when the first terminal end 33 and the second terminal end 34 of the stabilizer 3 are placed on the placement surface 52, the extreme end 330 of the first terminal end 33 and the extreme end 340 of the second terminal end 34 are exposed outside the placement surface 52. The extreme end 330 and the extreme end 340 are inserted into the guide portion 6.
[0053] (Configuration of guide unit 6) As shown in Figures 2(b) and 2(c), the guide portions 6 are arranged facing each other along the longitudinal direction of the operating unit 2. The guide portions 6 are formed in a plate shape using, for example, a resin material. The guide portions 6 may be formed integrally with the operating unit 2 or may be attached by screws or the like. Note that the configuration of the guide portions 6 is the same on the left and right sides, so only the guide portion 6 to which the first terminal end portion 33 of the stabilizer 3 is attached will be described.
[0054] 3(b), the guide portion 6 has an insertion groove 60 into which the end portion of the stabilizer 3 is inserted when assembling the operating portion 2 to the base portion 12, an inclined groove 61 having an inclined surface 610 inclined from the insertion groove 60, and an intersecting groove 62 that extends in a direction intersecting the insertion groove 60 (intersecting direction B) and is connected to the inclined groove 61. Note that the insertion groove 60, the inclined groove 61, and the intersecting groove 62 are not limited to a groove shape and may be configured as a through hole.
[0055] The insertion groove 60 is a linear groove provided in the vertical direction on the paper surface of FIG. 3(b), and when the operation unit 2 is attached to the base 12, the extreme end 330 of the stabilizer 3 is inserted into the insertion groove 60.
[0056] The inclined groove 61 is inclined with respect to the assembly direction A on the paper surface of Figure 3(b) and is configured to contact the end portion 330 of the inserted stabilizer 3 to move the stabilizer 3 in the intersecting direction B, i.e., rotate it in the first direction 35.
[0057] The intersecting groove 62 is a groove extending in the left-right direction on the plane of FIG. 3(b). The outermost end 330 of the stabilizer 3 is held by this intersecting groove 62. The outermost end 340 is held by the intersecting groove 62 of the guide part 6 on the second terminal end part 34 side.
[0058] (Reducing tilted movement of the operation unit 2) 1(b), the operation device 1 has an operation surface 20 that is rectangular in shape and is longer in the left-right direction than in the up-down direction. When the operation unit 2 is pushed near the center 200 of the operation surface 20 at a position that is offset from the center in the up, down, left, or right directions, the tilting movement of the operation unit 2 is small.
[0059] However, as an example, when a push operation is performed on the left end of the operation surface 20 in the plane of the paper in Figure 2(b), the end of the operation unit 2 moves downward and tilts relative to the initial position line 70. When the operation unit 2 moves while tilting, if the push switch 23 is located below the guide unit 6 located at the end opposite the end of the operation unit 2, it becomes difficult to detect the push operation.
[0060] When a push operation is performed on the end, the first terminal end 33 of the stabilizer 3 is pushed against the upper surface 620 of the intersecting groove 62 of the guide unit 6 by the load F1 generated by the push operation of the operating finger 9, causing the stabilizer 3 to move downward, as shown in FIG. 2(b). This movement causes a twist in the stabilizer 3, and the second terminal end 34 moves downward to follow the first terminal end 33 due to the elastic force F2 generated by this twist. In other words, the stabilizer 3 rotates in the first direction 35, following the first terminal end 33. Therefore, the tilting movement of the operating unit 2 is eliminated, as shown in FIG. 2(c).
[0061] (About assembly) Fig. 6(a) is a diagram showing an example of a preparation stage of the operating device according to the embodiment, and Fig. 6(b) is a diagram showing an example after the operating unit has been assembled to the support unit. Figs. 7(a) to 7(f) are diagrams for explaining an example of the movement of the stabilizer when the operating unit of the operating device according to the embodiment is assembled to the support unit.
[0062] In the preparation stage, as shown in Figure 6(a), the stabilizer 3 is set on the base 12 by contacting the supported portion 30 of the stabilizer 3 with the underside 42 and side surface 400 of the protrusion 41 of the support portion 4 and rotating the stabilizer 3 in the second direction 36 to place the first terminal end 33 and the second terminal end 34 on the mounting surfaces 52 of the left and right mounting portions 5.
[0063] Next, to assemble the operating unit 2 to the base 12, the first terminal end 33 is aligned with the insertion groove 60 of the left guide part 6, and the second terminal end 34 is aligned with the insertion groove 60 of the right guide part 6, and the operating unit 2 is moved in the assembly direction A. The following mainly describes the movement of the outermost end 330 of the left first terminal end 33.
[0064] As shown in FIG. 7( a ), the outermost end 330 comes into contact with the inclined surface 610 of the inclined groove 61 after being inserted into the insertion groove 60 .
[0065] 7(b), when the operating unit 2 further moves in the assembly direction A, the extreme end 330 is pushed by the inclined surface 610, causing the supported portion 30 and the first terminal end portion 33 to rotate in the first direction 35. In other words, the stabilizer 3 rotates in the first direction 35. Due to this rotation, the first terminal end portion 33 and the second terminal end portion 34 move away from the placement surface 52.
[0066] 7(c), when the operating unit 2 further moves in the assembly direction A, the end portion 330 is pushed by the inclined surface 610 and moves so as to come into contact with the inclined surface 610 and the upper surface 620 of the intersecting groove 62. The stabilizer 3 further rotates in the first direction 35.
[0067] 7(d), when the operating unit 2 further moves in the assembly direction A, the end portion 330 is pushed by the upper surface 620 and moves in the intersecting groove 62 to the right, that is, in the intersecting direction B. The stabilizer 3 further rotates in the first direction 35.
[0068] 7(e), when the operating unit 2 further moves in the assembly direction A, the end portion 330 is further pushed by the upper surface 620 and moves in the intersecting groove 62 in the intersecting direction B. The stabilizer 3 further rotates in the first direction 35.
[0069] Next, as shown in Figure 7(f), when the operating part 2 moves further in the assembly direction A, the end part 330 is further pushed by the upper surface 620 and moves in the intersecting groove 62 in the intersecting direction B, reaching the assembly position 73, thereby completing the assembly.
[0070] (Effects of the embodiment) The operating device 1 according to this embodiment is easy to assemble. Specifically, the operating device 1 can set the stabilizer 3 on the base 12 using the mounting surface 52 of the mounting portion 5 and the support portion 4 without having to hold the stabilizer 3 with a jig before assembly, making assembly easier than when a jig is used.
[0071] In the operating device 1, the stabilizer 3 can be set on the support part 4 by rotating the stabilizer 3 in the second direction 36 while contacting the lower surface 42 and the side surface 400 of the support part 4, so that the first terminal end 33 and the second terminal end 34 are placed on the mounting surface 52, eliminating the need for a jig and reducing manufacturing costs. Furthermore, in the operating device 1, the stabilizer 3 can be easily set on the base part 12, making it easy to assemble by hand.
[0072] In the operating device 1, after the stabilizer 3 is set on the base 12, the operating part 2 is moved in the assembly direction A relative to the base 12, whereby the stabilizer 3 is guided by the guide part 6 and set at the assembly position 73, making assembly easier than when this configuration is not adopted.
[0073] In the operating device 1, the stabilizer 3 can be easily set on the base 12, and the operating unit 2 can be easily assembled to the base 12, so that the use of tools such as jigs and machines can be reduced, thereby reducing manufacturing costs. Furthermore, in the operating device 1, the stabilizer 3 can be easily set on the base 12, and the operating unit 2 can be easily assembled to the base 12, so that automatic assembly by machine can be easily performed without using a jig.
[0074] In the operating device 1, the preparation position 72 of the first terminal end 33 of the stabilizer 3 is located at a position rotated in the second direction 36 from the reference line 71, so compared to when this configuration is not adopted, the stabilizer 3 is less likely to come off the base 12 without adding an elastic force for retention, and the stabilizer 3 can be easily rotated in the second direction 36, making assembly easier.
[0075] In the operating device 1, the distance H1 from the vertex 301 of the supported portion 30 of the stabilizer 3 to the lower point 332 of the first terminal end 33 is equal to or greater than the distance H3 from the lower surface 42 of the protruding portion 41 to the mounting surface 52, making it easier to set up the stabilizer 3 than if this configuration were not adopted.
[0076] The operating device 1 does not require a jig to support the stabilizer 3 from below, and therefore does not require an opening for a jig in the base 12, improving the degree of freedom in design.
[0077] Although several embodiments and modifications of the present invention have been described above, these embodiments and modifications are merely examples and do not limit the scope of the invention as claimed. These novel embodiments and modifications may be embodied in various other forms, and various omissions, substitutions, modifications, etc. may be made without departing from the spirit of the present invention. Furthermore, not all combinations of features described in these embodiments and modifications are necessarily essential to solving the problems of the invention. Furthermore, these embodiments and modifications are included within the scope and spirit of the invention, and are also included in the scope of the invention and its equivalents as defined in the claims. [Explanation of symbols]
[0078] 1...operating device, 2...operating portion, 3...stabilizer, 4...support portion, 5...placing portion, 6...guiding portion, 12...base portion, 30...supported portion, 31...first bent portion, 32...second bent portion, 33...first terminal portion, 34...second terminal portion, 35...first direction, 36...second direction, 40...support base portion, 41...protruding portion, 42...underside, 52...placing surface, 53...convex portion, 54...corner portion, 60...insertion groove, 61...inclined groove, 62...intersecting groove, 610...inclined surface
Claims
1. an operation unit that accepts a pressing operation; a buffer member that buffers tilted movement of the operating unit caused by the pressing operation; a support portion that supports the relaxation member; a base provided with the support portion; at least one placing section provided on the base, the placing section having a placing surface on which an end portion of the buffer member is placed, the placing surface and the supporting section holding the buffer member on the base in a preparation stage for assembling the operation unit to the base; guide portions provided on the operation unit corresponding to the left and right end portions of the relaxation member so that, when the operation unit is assembled to the base, the end portions of the inserted relaxation member are guided from an assembly direction to a direction intersecting the assembly direction, thereby rotating the relaxation member in the intersecting direction, and the relaxation member is held together with the support portion after the operation unit is assembled to the base; An operating device comprising:
2. The guide portion includes an insertion groove into which the terminal end of the buffer member is inserted when the operation unit is assembled to the base portion, an inclined groove having an inclined surface inclined from the insertion groove, and an intersecting groove extending in a direction intersecting the insertion groove and connecting to the inclined groove. The operating device according to claim 1 .
3. The relaxation member has an elongated rod shape, a supported portion supported by the supporting portion; a first bent portion and a second bent portion formed by bending both ends of the supported portion in opposite directions; and a first end portion and a second end portion as the end portions bent from the ends of the first bent portion and the second bent portion in directions away from each other, The operating device according to claim 1 or 2.
4. When the operation unit is assembled to the base, the relaxation member rotates in a first direction, which is the intersecting direction, around a center of a cross section of the supported unit having an elongated linear shape when cut along a short direction intersecting with a longitudinal direction of the supported unit, and The terminal end portion placed on the placement surface in the preparation stage is supported at a position moved in a second direction opposite to the first direction from directly above the supported portion when the cross section is viewed as a front surface. The operating device according to claim 3 .
5. the mounting portion has a convex portion at an end of the mounting surface so as to inhibit the rotation of the buffer member in the second direction from a state in which the buffer member is placed on the mounting surface. The operating device according to claim 4 .
6. the support portion has a support base portion rising from the base portion, and a protruding portion protruding in a direction opposite to the intersecting direction in which the relaxation member rotates when the operation portion is assembled to the base, a distance from the apex of the supported portion of the buffer member to the lower point of the terminal end portion is equal to or greater than a distance from a lower surface of the protruding portion with which the buffer member contacts to the placement surface; The operating device according to claim 5 .
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