Vehicle-mounted display and operation device

The in-vehicle display and operation device uses a detection member with strain gauges to accurately detect pressing, sliding, and rotational operations on the operation knob, addressing the issue of low force detection in existing devices.

JP7769550B2Active Publication Date: 2025-11-13MINEBEAMITSUMI INC
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Patent Information

Application Number
JP2022004934
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-17
Publication Date
2025-11-13
Estimated Expiration
2042-01-17

AI Technical Summary

Technical Problem

Existing in-vehicle display and operation devices struggle to accurately detect operations on an operation knob due to relatively small strain detection when the knob is rotated with a low operating force, leading to potential misinterpretation of the knob's movement.

Method used

The device incorporates a detection member with a shaft portion and an operation knob connected via a shaft, featuring first, second, and third strain gauges to detect axial pressing, radial sliding, and circumferential rotational forces, respectively, ensuring precise strain measurement.

Benefits of technology

The solution allows for effective detection of pressing, sliding, and rotational operations on the operation knob, minimizing erroneous readings and enhancing detection accuracy.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide an on-vehicle display operation device, in which operations on a control knob can be detected well.SOLUTION: In an on-vehicle display operation device 10, a control knob 50 is provided at an upper end of an axial part 40 in a relatively immovable manner, and a detection member 30 is connected to a lower end of the axial part 40 in a relatively immovable manner. Rotary strain gauges 80A-80D are provided on the control knob 50, and pressure strain gauges 60A-60D and slide strain gauges 70A-70D are provided on the detection member 30. In other words, the rotary strain gauges 80A-80D, and the pressure strain gauges 60A-60D and slide strain gauges 70A-70D are provided on separate members spaced apart in an axial direction by the axial part 40. Thus, operations on the control knob 50 can be detected well.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an in-vehicle display and operation device. [Background technology]

[0002] In the seat switch structure (vehicle-mounted display / operation device) described in Patent Document 1 below, a knob is provided at the tip of a shaft, and a plate-shaped portion of a detection plate is provided at the base end of the shaft. Four strain gauges are provided on one side of the plate-shaped portion. The outer periphery of the plate-shaped portion of the detection plate is fixed by a frame. The strain gauges detect strain on the detection plate when the knob is operated, thereby making it possible to detect each of the knob rotation, tilt, and push-in operations. As a result, the seat switch structure can detect operations in multiple directions using the strain gauges. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-82034 Summary of the Invention [Problem to be solved by the invention]

[0004] However, the above-described sheet switch structure leaves room for improvement in the following respects. Specifically, in the above-described sheet switch structure, the plate-shaped portion of the detection plate is formed in a disk shape with the axial direction of the shaft portion as the plate thickness direction, and the shaft portion extends from the center of the plate-shaped portion to one side in the plate thickness direction. Four strain gauges for detecting the rotation, tilt, and push-in operations of the knob are provided on the same surface of the detection plate. Therefore, for example, when the knob is rotated, the strain of the detection plate detected by the strain gauges tends to be relatively small. As a result, for example, when the knob is rotated with a relatively low operating force, the knob operation may not be detected properly by the strain gauges.

[0005] SUMMARY OF THE INVENTION In consideration of the above, an object of the present invention is to provide an in-vehicle display / operation device that can effectively detect operations on an operation knob. [Means for solving the problem]

[0006] One or more embodiments of the present invention are an in-vehicle display and operation device including: a base; a detection member fixed to the base; an operation knob provided on the opposite side of the detection member from the base; a shaft portion provided between the detection member and the operation knob, the operation knob being provided at one axial end thereof so as to be immovable relative to the detection member, and the detection member being connected to the other axial end thereof so as to be immovable relative to the detection member; a first strain gauge provided on the detection member and detecting strain of the detection member when an axial pressing force of the shaft portion acts on the operation knob; a second strain gauge provided on the detection member and detecting strain of the detection member when a radial sliding force of the shaft portion acts on the operation knob; and a third strain gauge provided on the operation knob and detecting strain of the operation knob when a circumferential rotational force of the shaft portion acts on the operation knob. [Effects of the Invention]

[0007] According to one or more embodiments of the present invention, operations on the operation knob can be detected well. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a perspective view showing an in-vehicle display operation device according to a first embodiment. [Figure 2] 2 is a plan view of the in-vehicle display / operation device shown in FIG. 1, seen from above with the base removed. [Figure 3] 3 is a bottom view of the in-vehicle display operation device shown in FIG. 2 as seen from below. [Figure 4] 4 is a vertical cross-sectional view (cross-sectional view taken along line 4-4 in FIG. 1) of the in-vehicle display operation device shown in FIG. 1 as seen from a second direction. [Figure 5]FIG. 10 is a perspective view showing an in-vehicle display operation device according to a second embodiment with the base removed. [Figure 6] 10 is a vertical cross-sectional view of an in-vehicle display / operation device according to a second embodiment, seen from a first direction. FIG. [Figure 7] FIG. 10 is a perspective view showing an in-vehicle display / operation device according to a third embodiment with the base removed. [Figure 8] 8 is a bottom view of the in-vehicle display operation device shown in FIG. 7 as seen from below. DETAILED DESCRIPTION OF THE INVENTION

[0009] (First embodiment) An in-vehicle display and operation device 10 according to a first embodiment will be described below with reference to FIGS. 1 to 4. The in-vehicle display and operation device 10 constitutes part of an in-vehicle display device (not shown) mounted on a vehicle (automobile), and is configured as a device that detects an operation performed by an operator on the in-vehicle display and operation device 10 and outputs a detection signal to the in-vehicle display device. Arrow A, as appropriately shown in the drawings, indicates the upper side of the in-vehicle display and operation device 10, and in the following description, when the up and down directions are used, they will refer to the up and down directions of the in-vehicle display and operation device 10 unless otherwise specified. In the following description, a direction perpendicular to the up and down direction is defined as a first direction (see arrows B and C in FIGS. 1 to 3), and a direction perpendicular to the first direction as viewed from above is defined as a second direction (see arrows D and E in FIGS. 1 to 3).

[0010] As shown in FIGS. 1 to 4, the in-vehicle display / operation device 10 includes a base 20, a detection member 30, a shaft 40, and an operation knob 50. The in-vehicle display / operation device 10 also includes a plurality of (four in this embodiment) first strain gauges, namely, pressure operation strain gauges 60A, 60B, 60C, and 60D (hereinafter simply referred to as pressure strain gauges 60A to 60D), a plurality of (four in this embodiment) second strain gauges, namely, slide operation strain gauges 70A, 70B, 70C, and 70D (hereinafter simply referred to as slide strain gauges 70A to 70D), and a plurality of (four in this embodiment) third strain gauges, namely, rotation operation strain gauges 80A, 80B, 80C, and 80D (hereinafter simply referred to as rotation strain gauges 80A to 80D). Each component of the in-vehicle display / operation device 10 will be described below.

[0011] (About Base 20) The base 20 constitutes the base of the in-vehicle display and operation device 10 and also constitutes the lower end of the in-vehicle display and operation device 10. The base 20 is formed in a generally rectangular plate shape with its thickness direction in the up-down direction. A base fixing portion 22 for fixing a detection member 30 (described later) is formed in the approximate center of the base 20. The base fixing portion 22 is formed in a generally cross-shaped block shape with its thickness direction in the up-down direction, and protrudes upward from the base 20. More specifically, the base fixing portion 22 is formed in a cross shape extending in the first and second directions in a plan view seen from above. A fixing screw portion 22A (see FIG. 4) that opens upward is formed at the tip of the base fixing portion 22, and a female thread is formed on the inner circumferential surface of the fixing screw portion 22A.

[0012] (Regarding the detection member 30) The detection member 30 is formed as a generally cross-shaped plate with its thickness extending in the vertical direction. Specifically, the detection member 30 includes a connecting shaft 32 serving as a detection-side connecting portion that forms the center of the detection member 30, and four arm portions 34 extending from the connecting shaft 32 to both sides in the first direction and both sides in the second direction. The connecting shaft 32 is formed as a generally stepped rectangular tube. The arm portions 34 extend from the lower end portion of the connecting shaft 32. In addition, in a plan view, the outer shape of the detection member 30 generally matches the outer shape of the base fixing portion 22 of the base 20. The arm portions 34 are formed as a rectangular plate with their thickness extending in the vertical direction, and the thickness of the arm portions 34 is set to be significantly smaller than the width of the arm portions 34.

[0013] An arm fixing portion 34A is formed at the tip of the arm portion 34 as a fixing portion that protrudes downward, and a fixing hole 34B is formed through the arm fixing portion 34A. The detection member 30 is arranged above the base fixing portion 22 of the base 20, and a fixing bolt BL is inserted into the fixing hole 34B from above and screwed into the fixing screw portion 22A of the base fixing portion 22, whereby the arm portion 34 (detection member 30) is fixed to the base fixing portion 22 in a state spaced apart above the base fixing portion 22.

[0014] A stopper portion 32C is formed on the outer periphery of the lower surface of the connecting shaft portion 32. The stopper portion 32C is formed in the shape of a rib that protrudes downward and is formed in the shape of a rectangular frame when viewed from below. A predetermined gap is formed between the stopper portion 32C and the base 20, and when a downward operating force equal to or greater than a predetermined value is input to the operating knob 50 (described later), the arm portion 34 elastically deforms, causing the stopper portion 32C to abut against the base 20.

[0015] (Regarding the shaft portion 40) The shaft portion 40 is formed in a generally stepped cylindrical shape with its axis extending vertically. Specifically, the diameter of the upper end of the shaft portion 40 is set smaller than the diameter of the remaining portions, and the upper end of the shaft portion 40 is stepped radially inward. A connecting recess 40A that opens downward is formed in the center of the lower surface of the shaft portion 40. When viewed from below, the connecting recess 40A is formed in a rectangular shape corresponding to the outer shape of the connecting shaft portion 32 of the detection member 30. A female thread is formed on the inner peripheral surface of the upper portion of the shaft portion 40. The connecting shaft portion 32 of the detection member 30 is fitted into the connecting recess 40A of the shaft portion 40. A fixing screw SC is inserted into the connecting shaft portion 32 from below and threaded into the female thread of the shaft portion 40, connecting the shaft portion 40 and the detection member 30 so that they cannot move relative to each other.

[0016] (Regarding the operation knob 50) The operation knob 50 constitutes the upper end portion of the in-vehicle display / operation device 10. The operation knob 50 includes a knob connecting portion 52 connected to the upper end portion (one axial end portion) of the shaft portion 40, an operation portion 56 that constitutes the outer periphery of the operation knob 50, and a plurality of spoke portions 54 (four in this embodiment) that connect the knob connecting portion 52 and the operation portion 56.

[0017] Knob connecting portion 52 is formed in a generally cylindrical shape with its axial direction extending in the vertical direction, and the diameter of knob connecting portion 52 matches the diameter of shaft portion 40. A fitting recess 52A that is open downward is formed in the center of the underside of knob connecting portion 52. The upper end of shaft portion 40 is fitted into fitting recess 52A from below, and knob connecting portion 52 (i.e., operating knob 50) is connected to shaft portion 40 so as to be immovable relative to it.

[0018] The spoke portions 54 are formed in a generally elongated plate shape and extend radially outward from the upper end of the knob connecting portion 52. Specifically, the spoke portions 54 are formed in a generally elongated plate shape with the circumferential direction of the knob connecting portion 52 being the plate thickness direction and the up-down direction being the width direction, and extend from the upper end of the knob connecting portion 52 to both sides in the first direction and to both sides in the second direction. The four spoke portions 54 are arranged parallel to the four arm portions 34, respectively, and are positioned in the same circumferential direction so as to face each other in the axial direction.

[0019] The operating part 56 is formed in a generally cylindrical (ring-like) shape with a relatively low height and an axial direction extending in the vertical direction. The operating part 56 is disposed radially outward of the knob connecting part 52 and connected to the tip end of the spoke part 54. As a result, the operating part 56 is connected to the shaft part 40 by the spoke part 54 and the knob connecting part 52 so as to be immovable relative to the shaft part 40.

[0020] (For pressure strain gauges 60A to 60D) The pressure strain gauges 60A to 60D are formed in a substantially rectangular sheet shape and are respectively attached to the upper surface of the tip side (arm fixing portion 34A side) of the arm portion 34 of the detection member 30. More specifically, the pressure strain gauges 60A to 60D are attached to the arm portion 34 with their longitudinal direction aligned with the longitudinal direction of the arm portion 34. The pressure strain gauges 60A to 60D are configured as strain gauges that detect strain in the arm portion 34 based on tensile strain or compressive strain acting in their own longitudinal direction. As will be described in detail later, the pressure strain gauges 60A to 60D are configured as strain gauges that detect strain in the arm portion 34 caused by bending deformation in the plate thickness direction (vertical direction) of the arm portion 34 when a downward operating force (pressure force) is input to the operation knob 50.

[0021] (For slide strain gauges 70A to 70D) Like the pressure strain gauges 60A-60D, the slide strain gauges 70A-70D are formed in a substantially rectangular sheet shape and are respectively attached to the underside of the base end side (connecting shaft 32 side) of the arm portion 34 of the detection member 30. More specifically, the slide strain gauges 70A-70D are attached to the arm portion 34 with their longitudinal directions aligned with the longitudinal direction of the arm portion 34. Like the pressure strain gauges 60A-60D, the slide strain gauges 70A-70D are configured as strain gauges that detect strain in the arm portion 34 based on tensile strain or compressive strain acting in the longitudinal direction of the slide strain gauges 70A-70D. As will be described in detail later, the slide strain gauges 70A-70D are configured as strain gauges that detect strain in the arm portion 34 caused by bending deformation in the plate thickness direction (up and down direction) of the arm portion 34 when an operating force (sliding force) is input to the operation knob 50 in a first direction or a second direction.

[0022] (For rotary strain gauges 80A to 80D) Like the pressure strain gauges 60A-60D, the rotary strain gauges 80A-80D are formed in a substantially rectangular sheet shape. The rotary strain gauges 80A-80D are attached to both sides in the thickness direction of a pair of spokes 54 that are point-symmetrical with respect to the central axis of the operation knob 50 in a plan view. Specifically, the rotary strain gauges 80A-80D are attached to both sides in the thickness direction of the spokes 54 that extend in the first direction, with their longitudinal directions aligned with the longitudinal direction of the spokes 54. The rotary strain gauges 80A-80D are positioned closer to the base end (the knob connecting portion 52 side) of the spokes 54 than to the longitudinal center of the spokes 54. Like the pressure strain gauges 60A-60D, the rotary strain gauges 80A-80D are configured as strain gauges that detect strain in the spokes 54 based on tensile strain or compressive strain acting in the longitudinal direction of the spokes 54. Details will be described later, but the rotary strain gauges 80A to 80D are configured as strain gauges for detecting strain in the spoke portion 54 caused by bending deformation in the thickness direction of the spoke portion 54 (circumferential direction of the operating portion 56) when a circumferential operating force (rotational force) is input to the operating portion 56 of the operating knob 50.

[0023] The pressure strain gauges 60A-60D, the slide strain gauges 70A-70D, and the rotary strain gauges 80A-80D each form a Wheatstone bridge circuit (not shown), and the Wheatstone bridge circuit is electrically connected to a control unit (not shown). When the control unit applies a voltage to each Wheatstone bridge circuit, an output voltage proportional to the applied voltage and proportional to the change in electrical resistance of the pressure strain gauges 60A-60D, the slide strain gauges 70A-70D, and the rotary strain gauges 80A-80D is output to the control unit.

[0024] Furthermore, when compressive strain acts on the pressure strain gauges 60A-60D (slide strain gauges 70A-70D, rotary strain gauges 80A-80D), the control unit detects a negative strain value, and when tensile strain acts on the pressure strain gauges 60A-60D (slide strain gauges 70A-70D, rotary strain gauges 80A-80D), the control unit detects a positive strain value. Furthermore, as will be described in detail later, the control unit detects the pressing, sliding, and rotating operations of the operation knob 50 based on the pattern of strain values ​​detected from the four pressure strain gauges 60A-60D, slide strain gauges 70A-70D, and rotary strain gauges 80A-80D, and outputs a detection signal to the in-vehicle display device.

[0025] (Action and effect) Next, the operation and effect of the present embodiment will be described while explaining the pressing operation, sliding operation, and rotation operation of the operator on the in-vehicle display operation device 10.

[0026] When the operator presses the in-vehicle display / operation device 10, the operator presses the operation knob 50 downward. This inputs a downward pressing force to the operation knob 50 and transmits it to the connecting shaft 32 of the detection member 30. In the detection member 30, the arm fixing portion 34A of the detection member 30 is fixed to the base 20. Therefore, in the detection member 30, the arm portions 34 at four locations are bent and deformed so that the connecting shaft 32 is displaced downward. As a result, tensile strain acts on the pressure strain gauges 60A to 60D, and the control unit detects positive strain values ​​in all of the pressure strain gauges 60A to 60D. Therefore, the control unit detects the operator's pressing operation on the in-vehicle display / operation device 10 based on the detection results from the pressure strain gauges 60A to 60D.

[0027] Next, a sliding operation of the in-vehicle display and operation device 10 will be described using a sliding operation of the in-vehicle display and operation device 10 by the operator toward one side in the first direction (the direction of arrow B in FIG. 4). When the operator slides the in-vehicle display and operation device 10 toward one side in the first direction, a sliding force toward one side in the first direction is input to the operation knob 50. As a result, the sliding force toward one side in the first direction is input to the upper end of the shaft 40. The lower end of the shaft 40 is connected to the connecting shaft 32 of the detection member 30 so as not to move relative to the shaft 40, and the arm fixing portion 34A of the detection member 30 is fixed to the base 20. As a result, the shaft 40 and the connecting shaft 32 tilt toward one side in the first direction, starting from the lower end of the connecting shaft 32. As a result, the arm portion 34 on one side in the first direction is deformed so that the base end of the arm portion 34 on one side in the first direction is displaced downward (toward the direction of arrow a in Figure 4), and the arm portion 34 on the other side in the first direction is deformed so that the base end of the arm portion 34 on the other side in the first direction is displaced upward (toward the direction of arrow b in Figure 4).

[0028] As a result, tensile strain acts on slide strain gauge 70A provided on arm portion 34 on one side in the first direction, and the control unit detects a positive strain value. Meanwhile, compressive strain acts on slide strain gauge 70C provided on arm portion 34 on the other side in the first direction, and the control unit detects a negative strain value. Note that no tensile or compressive strain acts on slide strain gauges 70B, 70D provided on arm portions 34 on both sides in the second direction, and therefore the control unit does not detect strain in arm portions 34 on both sides in the second direction. As described above, the control unit detects the operator's sliding operation to one side in the first direction based on the detection results from slide strain gauges 70A to 70D in four locations.

[0029] Next, a rotation operation of the in-vehicle display and operation device 10 will be described using a rotation operation of the in-vehicle display and operation device 10 by the operator in one rotation direction (the direction of arrow F in FIG. 2). When the operator rotates the in-vehicle display and operation device 10 in one rotation direction, a rotational force in one rotation direction is input to the operation unit 56 of the operation knob 50. In the operation knob 50, the knob connecting portion 52 is connected to the shaft portion 40 so as not to move relative to it, and the spoke portions 54 extend radially outward from the knob connecting portion 52 and are connected to the operation unit 56. Therefore, in the operation knob 50, the spoke portions 54 at four locations are bent and deformed so that the tip ends of the spoke portions 54 are displaced in one rotation direction.

[0030] As a result, compressive strain acts on rotary strain gauge 80A provided on spoke 54 on one side in the first direction and rotary strain gauge 80D provided on spoke 54 on the other side in the first direction, and the control unit detects a negative strain value. Meanwhile, tensile strain acts on rotary strain gauge 80B provided on arm 34 on one side in the first direction and rotary strain gauge 80C provided on spoke 54 on the other side in the first direction, and the control unit detects a positive strain value. As described above, the control unit detects the operator's rotation operation in one direction of rotation based on the detection results from rotary strain gauges 80A to 80D in four locations.

[0031] As described above, in the in-vehicle display / operation device 10, the operation knob 50 is immovably attached to the upper end of the shaft 40, and the detection member 30 is immovably connected to the lower end of the shaft 40. Furthermore, the rotary strain gauges 80A-80D are attached to the operation knob 50, and the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D are attached to the detection member 30. That is, the rotary strain gauges 80A-80D, the pressure strain gauges 60A-60D, and the slide strain gauges 70A-70D are attached to separate members separated in the axial direction by the shaft 40. This allows operation of the operation knob 50 to be detected satisfactorily.

[0032] That is, when the in-vehicle display and operation device 10 is rotated, a rotational force is directly input to the operation knob 50, and therefore the rotation strain gauges 80A-80D can detect a relatively large strain of the operation knob 50 during the rotation operation. Furthermore, the detection member 30 and the operation knob 50 are not a single member, but are members connected by the shaft portion 40 and spaced apart in the axial direction, so that the structure makes it difficult for rotational torque to be transmitted during the rotation operation of the in-vehicle display and operation device 10. This makes it possible to suppress erroneous detection by the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D during the rotation operation of the in-vehicle display and operation device 10. Therefore, the operation of the operation knob 50 can be detected well.

[0033] The operation knob 50 includes a knob connector 52 connected to the shaft 40 so as not to move relative to the shaft 40, elongated spokes 54 extending radially outward from the knob connector 52, and a ring-shaped operation unit 56 connected to the tip of the spoke 54. Rotational strain gauges 80A-80D are provided on the spokes 54. Therefore, during a rotational operation of the in-vehicle display and operation device 10, the spokes are bent and deformed in the circumferential direction of the shaft 40 from the knob connector 52 as a starting point. This causes strain in the spokes 54 to be detected by the rotational strain gauges 80A-80D, thereby enabling detection of the rotational operation of the in-vehicle display and operation device 10. Furthermore, the spokes 54 are formed in an elongated shape extending radially from the shaft 40. Therefore, compared to, for example, a case in which the spokes 54 are formed in a disk shape, strain in the spokes 54 during a rotational operation can be made larger. Therefore, the rotational operation of the in-vehicle display and operation device 10 can be detected effectively.

[0034] Furthermore, the rotary strain gauges 80A to 80D are arranged closer to the base end (knob connecting portion 52 side) of the spoke portion 54 relative to the longitudinal center. Therefore, the rotary strain gauges 80A to 80D can be provided on the base end side of the spoke portion 54, where the circumferential strain of the operation portion 56 is large during a rotation operation of the in-vehicle display and operation device 10. Therefore, the rotation operation of the in-vehicle display and operation device 10 can be effectively detected by the rotary strain gauges 80A to 80D.

[0035] Furthermore, the spoke portion 54 is formed in a plate shape with the thickness direction being the circumferential direction of the shaft portion 40, and rotary strain gauges 80A, 80B (rotary strain gauges 80C, 80D) are provided on both sides of the spoke portion 54 in the plate thickness direction. This allows the strain occurring in the plate thickness direction of one spoke portion 54 to be detected by the two strain gauges. Therefore, the rotation operation of the in-vehicle display operation device 10 can be detected even better.

[0036] In the detection member 30, the connecting shaft 32 is connected to the lower end of the shaft 40 so as not to move relative to the connecting shaft 32, and the arm 34 extends radially outward from the connecting shaft 32. An arm fixing portion 34A is provided at the tip of the arm 34, and the arm fixing portion 34A is fixed to the base 20. The pressure strain gauges 60A-60D and the slide strain gauges 70A-70D are provided on the arm 34. Therefore, when the in-vehicle display and operation device 10 is pressed or slid, the arm 34 is bent in the up-down direction, and the strain of the arm 34 is detected by the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D, thereby detecting the pressing or sliding operation of the in-vehicle display and operation device 10. In addition, the arm 34 is formed in an elongated shape extending radially from the connecting shaft 32. Therefore, for example, compared to when the detection member 30 is formed in a disk shape, the distortion of the arm portion 34 during pressing and sliding operations can be increased, and therefore pressing and sliding operations on the in-vehicle display and operation device 10 can be detected well.

[0037] Furthermore, the pressure strain gauges 60A-60D are provided on the upper surface of the arm portion 34, and the slide strain gauges 70A-70D are provided on the lower surface of the arm portion 34. This increases the degree of freedom in arranging the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D on the arm portion 34.

[0038] Furthermore, the arm portion 34 is formed in a long plate shape with its thickness extending in the vertical direction. Therefore, when the in-vehicle display / operation device 10 is pressed or slid, the arm portion 34 is bent and deformed in the plate thickness direction, and the strain of the arm portion 34 due to the bending deformation can be detected by the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D. This allows for more accurate detection of the strain of the arm portion 34. Furthermore, since the arm portion 34 is formed in a plate shape, the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D can be attached to the flat surface of the arm portion 34. This allows for improved detection accuracy of the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D.

[0039] Furthermore, the slide strain gauges 70A to 70D are disposed at the base end of the arm portion 34. Therefore, the slide strain gauges 70A to 70D can be provided at the base end of the arm portion 34, which experiences a large amount of displacement in the up and down direction when the in-vehicle display and operation device 10 is slid. Therefore, the slide operation of the in-vehicle display and operation device 10 can be effectively detected by the slide strain gauges 70A to 70D.

[0040] Furthermore, the pressure strain gauges 60A to 60D are disposed on the tip side of the arm portion 34. Therefore, the pressure strain gauges 60A to 60D can be provided on the tip side of the arm portion 34, where the amount of vertical displacement is large when the in-vehicle display operation device 10 is pressed. Therefore, the pressure operation of the in-vehicle display operation device 10 can be effectively detected by the pressure strain gauges 60A to 60D.

[0041] Furthermore, a stopper portion 32C protruding downward is formed on the underside of the connecting shaft portion 32 of the detection member 30, and the stopper portion 32C is configured to be able to abut against the base 20. Specifically, when a downward operating force of a predetermined value or greater is input to the operation knob 50, the arm portion 34 elastically deforms, and the stopper portion 32C abuts against the base 20. When an excessive operating force is input to the operation knob 50 during a pressing operation, a sliding operation, or a rotating operation on the in-vehicle display operation device 10, causing the connecting shaft portion 32 to be displaced downward, the stopper portion 32C can limit the downward displacement of the connecting shaft portion 32. This can suppress, for example, plastic deformation of the arm portion 34. Therefore, damage to the in-vehicle display operation device 10 can be suppressed.

[0042] Furthermore, by aligning the circumferential positions of the spoke portion 54 and the arm portion 34 and aligning the longitudinal orientation of the arrangement of the rotary strain gauges 80A-80D with that of the pressure strain gauges 60A-60D and the sliding strain gauges 70A-70D, it becomes easier to correct the detection sensitivity of each strain gauge, thereby improving detection accuracy. Moreover, the spokes 54 may be arranged so that their orientation matches the operation direction, and the spokes 54 may be exposed so as to be visible from the outside and used as marks indicating the operation direction.

[0043] (Second embodiment) Next, an in-vehicle display and operation device 100 according to a second embodiment will be described with reference to Figures 5 and 6. The in-vehicle display and operation device 100 according to the second embodiment is configured similarly to the in-vehicle display and operation device 10 according to the first embodiment, except for the following points. In Figures 5 and 6, the same reference numerals are used to designate components that are configured similarly to the in-vehicle display and operation device 10 according to the first embodiment.

[0044] In the in-vehicle display and operation device 100, compared to the first embodiment, rotary strain gauges 80C and 80D are omitted, and the in-vehicle display and operation device 100 has two rotary strain gauges 80A and 80B. The rotary strain gauges 80A and 80B are affixed to the outer peripheral surface of the shaft portion 40 at a vertically intermediate portion and are arranged 180 degrees apart in the circumferential direction of the shaft portion 40. Specifically, the rotary strain gauge 80A is arranged on one side of the outer peripheral surface of the shaft portion 40 in the second direction (the side indicated by the arrow D in FIGS. 5 and 6), and the rotary strain gauge 80B is arranged on the other side of the outer peripheral surface of the shaft portion 40 in the second direction (the side indicated by the arrow E in FIGS. 5 and 6). The rotary strain gauges 80A and 80B are affixed to the outer peripheral surface of the shaft portion 40 with their longitudinal directions aligned with the axial direction of the shaft portion 40. Rotary strain gauges 80A, 80B are strain gauges for measuring torque, with metallic resistive films arranged in an arrow feather shape, and are configured as strain gauges that detect strain in shaft portion 40 based on tensile strain or compressive strain acting in a torsional direction about the longitudinal direction of the gauges themselves. As a result, when a circumferential operating force (rotational force) is input to operating portion 56 of operation knob 50, the strain in shaft portion 40 that occurs as a result of torsional deformation of shaft portion 40 is detected by rotary strain gauges 80A, 80B.

[0045] Furthermore, in the in-vehicle display and operation device 100, the plate thickness dimension of the arm portion 34 of the detection member 30 is set to be constant. Specifically, the plate thickness dimension of the arm portion 34 is the same as the thickness dimension of the arm fixing portion 34A. Note that the arm portion 34 may be configured to have the same shape as that of the in-vehicle display and operation device 10 of the first embodiment. Furthermore, in the in-vehicle display and operation device 100, a recess 22B that is open upward is formed in the base fixing portion 22, and the arm portion 34 is configured to be separated from the base fixing portion 22 in the up-down direction.

[0046] Also in the in-vehicle display and operation device 100 of the second embodiment, the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D are provided on the elongated arm portion 34. As a result, when the in-vehicle display and operation device 100 is pressed or slid, the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D detect strain of the arm portion 34 caused by bending deformation of the arm portion 34 in the up and down direction, thereby making it possible to detect the pressing operation and the slide operation on the in-vehicle display and operation device 100. Therefore, as in the first embodiment, the pressing operation and the slide operation on the in-vehicle display and operation device 100 can be detected well.

[0047] Furthermore, in the in-vehicle display and operation device 100, a pair of rotary strain gauges 80A and 80B are provided on the outer peripheral surface of the shaft portion 40. Therefore, when the operator rotates the in-vehicle display and operation device 100, the pair of rotary strain gauges 80A and 80B detect strain in the shaft portion 40 caused by torsional deformation, thereby making it possible to detect the rotation of the in-vehicle display and operation device 100. Specifically, the operation knob 50 is connected to the upper end of the shaft portion 40 so as not to move relative to the operation knob 50, and the lower end of the shaft portion 40 is connected to the detection member 30 so as to be able to move relative to the operation knob 50. Therefore, when a rotational force is applied to the operation knob 50, the shaft portion 40 twists so that the upper end of the shaft portion 40 is displaced in the circumferential direction. Therefore, the pair of rotary strain gauges 80A and 80B detect strain in the shaft portion 40 caused by torsional deformation, thereby making it possible to detect the rotation of the in-vehicle display and operation device 100.

[0048] Furthermore, since the operation knob 50 is connected to the upper end of the shaft 40 so as not to be relatively movable, the pair of rotation strain gauges 80A, 80B can detect the strain of the shaft 40 while suppressing the transmission loss of the rotational force input to the operation knob 50 to the shaft 40. Therefore, the rotation operation of the in-vehicle display / operation device 100 can be detected well.

[0049] (Third embodiment) Next, an in-vehicle display and operation device 200 according to a third embodiment will be described with reference to Figures 7 and 8. The in-vehicle display and operation device 200 according to the third embodiment is configured similarly to the in-vehicle display and operation device 10 according to the first embodiment, except for the following points. In Figures 7 and 8, the same reference numerals are used to designate components that are configured similarly to the in-vehicle display and operation device 10 according to the first embodiment.

[0050] In the in-vehicle display and operation device 200, similarly to the in-vehicle display and operation device 100 of the second embodiment, the plate thickness dimension of the arm portion 34 of the detection member 30 is set to be constant. Specifically, the plate thickness dimension of the arm portion 34 is the same as the thickness dimension of the arm fixing portion 34A. Also, in the in-vehicle display and operation device 200, similarly to the second embodiment, a recess 22B that is open upward is formed in the base fixing portion 22, and the arm portion 34 is configured to be spaced apart from the base fixing portion 22 in the up-down direction.

[0051] Furthermore, in the in-vehicle display / operation device 200, the rotary strain gauges 80A-80D are respectively attached to the side surface of the arm portion 34 on one circumferential side of the shaft portion 40 (the side in the direction of arrow F in FIG. 8), and are also arranged in the longitudinal middle portion of the arm portion 34. The rotary strain gauges 80A-80D are attached to the side surface of the arm portion 34 with their longitudinal directions aligned with the longitudinal direction of the arm portion 34. The rotary strain gauges 80A-80D are configured as strain gauges for detecting strain in the arm portion 34 resulting from bending deformation of the arm portion 34 when a circumferential operating force (rotational force) is input to the operating portion 56 of the operation knob 50.

[0052] Also in the in-vehicle display and operation device 200 of the third embodiment, the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D are provided on the elongated arm portion 34. As a result, when the in-vehicle display and operation device 200 is pressed or slid, the pressure strain gauges 60A-60D and the slide strain gauges 70A-70D detect strain of the arm portion 34 caused by bending deformation of the arm portion 34 in the up and down direction, thereby making it possible to detect the pressing operation and the sliding operation on the in-vehicle display and operation device 200. Therefore, as in the first embodiment, the pressing operation and the sliding operation on the in-vehicle display and operation device 200 can be detected satisfactorily.

[0053] Furthermore, in the in-vehicle display and operation device 200, rotary strain gauges 80A to 80D are provided on the side surface of the arm portion 34. Therefore, when the operator rotates the in-vehicle display and operation device 200, the strain of the arm portion 34 caused by bending deformation can be detected by the rotary strain gauges 80A to 80D, and the rotation of the in-vehicle display and operation device 200 can be detected. Specifically, in the detection member 30, the connecting shaft portion 32 is connected to the shaft portion 40 so as not to move relative to the shaft portion 40, and the arm fixing portion 34A is fixed to the base 20. Therefore, when the in-vehicle display and operation device 200 is rotated, the base end of the arm portion 34 is bent and deformed so as to be displaced in the circumferential direction of the shaft portion 40. Therefore, the strain of the arm portion 34 caused by bending deformation can be detected by the rotary strain gauges 80A to 80D, and the rotation of the in-vehicle display and operation device 200 can be detected.

[0054] Furthermore, because the rotary strain gauges 80A-80D are provided on the arm portion 34, the pressure strain gauges 60A-60D, the sliding strain gauges 70A-70D, and the rotary strain gauges 80A-80D can be concentrated and arranged on the arm portion 34. This makes it easy to perform wiring processes, etc., for connecting the pressure strain gauges 60A-60D, the sliding strain gauges 70A-70D, and the rotary strain gauges 80A-80D to the control unit, for example.

[0055] In the first to third embodiments, the arm portion 34 of the detection member 30 is formed in a long plate shape with the thickness direction in the up-down direction, but the arm portion 34 may also be formed in a long rod shape. In this case, the cross-sectional shape of the arm portion 34 can be set arbitrarily.

[0056] Furthermore, in the first to third embodiments, the spokes 54 of the operation knob 50 are formed in the shape of long plates with the plate thickness direction being the circumferential direction of the shaft portion 40, but the spokes 54 may also be formed in the shape of long rods. In this case, the cross-sectional shape of the spokes 54 can be set arbitrarily.

[0057] In the second and third embodiments, a disc-shaped connecting plate may be provided in place of the spokes 54 of the operation knob 50, and the operation portion 56 and the knob connecting portion 52 may be connected by the connecting plate.

[0058] In the first to third embodiments, the shaft portion 40 and the detection member 30 are configured as separate members, and the connecting shaft portion 32 of the detection member 30 is fastened and fixed to the shaft portion 40, and is connected to the shaft portion 40 so as not to be able to move relative to it. Alternatively, the detection member 30 and the shaft portion 40 may be integrally molded, and the detection member 30 and the shaft portion 40 may be configured as a single member.

[0059] Furthermore, in the first to third embodiments, the shaft 40 and the operation knob 50 are configured as separate members, and the upper end of the shaft 40 is fitted into the knob connecting portion 52 of the operation knob 50, so that the operation knob 50 is connected to the shaft 40 so as not to be able to move relative to it. Alternatively, the operation knob 50 and the shaft 40 may be integrally molded, so that the operation knob 50 and the shaft 40 are configured as a single member.

[0060] In the first to third embodiments, the pressure strain gauges 60A to 60D are each attached to the upper surface of the arm portion 34 of the detection member 30. Alternatively, for example, the pressure strain gauges 60A to 60D may be attached to the lower surface of the arm portion 34. In this case, when the operator presses the operation knob 50 downward, the arm portion 34 deforms, causing compressive strain to act on the pressure strain gauges 60A to 60D, and each pressure strain gauge 60A to 60D detects a negative strain value. The control unit may then be configured to detect the operator's pressing operation on the in-vehicle display operation device 10 based on the detection results from the pressure strain gauges 60A to 60D. Alternatively, the pressure strain gauges 60A to 60D may be arranged on different surfaces, such as by attaching the pressure strain gauge 60A to the upper surface of the arm portion 34 and the pressure strain gauge 60B to the lower surface of the arm portion 34.

[0061] Furthermore, in the first embodiment, the rotary strain gauges 80A-80D are attached to both thickness-wise sides of the spokes 54 extending in the first direction. Alternatively, for example, the rotary strain gauges 80A, 80D may be attached to the side surfaces of the spokes 54 extending in the second direction, with the four rotary strain gauges 80A-80D being arranged on different spokes 54. In this case, it is possible to arbitrarily select whether to provide each of the rotary strain gauges 80A-80D on one or the other thickness-wise side of the spokes 54.

[0062] Furthermore, in the third embodiment, the rotary strain gauges 80A to 80D are each attached to a side surface of the arm portion 34 on one circumferential side (the side in the direction of arrow F in FIG. 8) of the shaft portion 40. Alternatively, for example, the rotary strain gauges 80A to 80D may be attached to a side surface of the arm portion 34 on the other circumferential side (the side opposite to the direction of arrow F in FIG. 8). Furthermore, the rotary strain gauges 80A, 80B and the rotary strain gauges 80C, 80D may each be attached to both circumferential side surfaces of the arm portion 34 facing each other.

[0063] Furthermore, in the first to third embodiments, the detection member 30 is formed in a generally cross-shaped plate shape with the plate thickness direction in the up-down direction, but the shape of the detection member 30 is not limited to this. For example, the detection member 30 may be formed in a circular plate shape with the plate thickness direction in the up-down direction, and radial slits may be formed through the detection member 30.

[0064] In addition, in the first embodiment, four spoke portions 54 are provided, but two or three may be arranged at equal intervals in the circumferential direction, or four or more, for example, eight, may be provided. [Explanation of symbols]

[0065] 10 In-vehicle display and operation device 20 base 30 Detection member 32 Connecting shaft (detection side connecting part) 32C Stopper part 34 Arm section 34A Arm fixing part (fixing part) 40 Shaft 50 Operation knob 52 Knob connection part 54 spokes 56 Operation section 60A strain gauge for pressing operation (first strain gauge) 60B Pressing operation strain gauge (first strain gauge) 60C Pressing operation strain gauge (first strain gauge) 60D Pressing operation strain gauge (first strain gauge) 70A Strain gauge for slide operation (second strain gauge) 70B Strain gauge for slide operation (second strain gauge) 70C Strain gauge for slide operation (second strain gauge) 70D Strain gauge for slide operation (second strain gauge) 80A Rotational Operation Strain Gauge (3rd Strain Gauge) 80B Rotational operation strain gauge (third strain gauge) 80C Strain gauge for rotation operation (third strain gauge) 80D Rotational operation strain gauge (third strain gauge) 100 Vehicle-mounted display and operation device 200 Vehicle-mounted display and operation device

Claims

1. With the base, a detection member fixed to the base; an operation knob provided on the opposite side of the base with respect to the detection member; a shaft portion provided between the detection member and the operation knob, the operation knob being attached to one axial end portion thereof so as to be immovable relative to the detection member, and the detection member being connected to the other axial end portion thereof so as to be immovable relative to the operation knob; a first strain gauge provided on the detection member and configured to detect strain of the detection member when a pressing force in the axial direction of the shaft portion acts on the operation knob; a second strain gauge provided on the detection member and configured to detect strain of the detection member when a sliding force in a radial direction of the shaft portion acts on the operation knob; a third strain gauge provided on the operation knob and configured to detect a strain of the operation knob when a rotational force in a circumferential direction of the shaft portion is applied to the operation knob; An in-vehicle display and operation device comprising:

2. The operation knob is a knob connecting portion connected to the shaft portion so as not to be movable relative to the shaft portion; a long spoke portion extending radially outward from the knob connecting portion of the shaft portion; a ring-shaped operating unit provided radially outward of the shaft portion and connected to the tip end of the spoke portion; The invention comprises:

2. The in-vehicle display / operation device according to claim 1, wherein the third strain gauge is provided on the spoke portion.

3. 3. The in-vehicle display / operation device according to claim 2, wherein the third strain gauge is disposed closer to the knob connecting portion than the longitudinal center of the spoke portion.

4. The detection member is a detection-side connecting portion connected to the shaft portion so as to be immovable relative to the shaft portion; a long arm portion extending from the detection side connecting portion to the radially outer side of the shaft portion; a fixed portion provided at a tip end of the arm portion and fixed to the base; The invention comprises:

4. The in-vehicle display / operation device according to claim 1, wherein the first strain gauge and the second strain gauge are provided on the arm portion.

5. 5. The in-vehicle display / operation device according to claim 4, wherein the first strain gauge is provided on an outer peripheral surface of the arm portion on one side in the axial direction, and the second strain gauge is provided on an outer peripheral surface of the arm portion on the other side in the axial direction.

6. 6. The in-vehicle display / operation device according to claim 4, wherein the arm portion is formed in a plate shape with the axial direction being a plate thickness direction.

7. 7. The in-vehicle display / operation device according to claim 4, wherein the second strain gauge is disposed at a base end of the arm portion.

8. 8. The in-vehicle display / operation device according to claim 1, wherein the detection member is provided with a stopper portion that protrudes toward the base and is configured to be able to abut against the base.

Citation Information

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