Shift device

The integrated shift device with a guide member and detection unit on a common mounting body addresses the complexity of separate components by reducing parts and stabilizing light guidance and detection, improving assembly and illumination consistency.

JP7843661B2Active Publication Date: 2026-04-10KK TOKAI RIKA DENKI SEISAKUSHO
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
KK TOKAI RIKA DENKI SEISAKUSHO
Filing Date
2022-07-28
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing shift devices require multiple separate components for light emission and detection, leading to increased complexity and potential light fluctuation issues.

Method used

Integration of a shift body with a guide member for light guidance and a detection unit on a common mounting body, reducing the number of components and maintaining consistent light incidence during shifts.

Benefits of technology

Reduces the number of parts, suppresses light fluctuations, and separates light guidance and detection functions, enhancing assembly efficiency and illumination consistency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To reduce the number of components.SOLUTION: A shift device 10 includes: a magnetic sensor 34 that detects a turning position of a lever 14; a light guide located in a lower part of the lever 14 to guide light from an LED 28; and a circuit board 26 in which the LED 28 and the magnetic sensor 34 are installed, thereby reducing the number of components.SELECTED DRAWING: Figure 3
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Description

Technical Field

[0001] The present invention relates to a shift device in which a shift body is moved to change the shift position.

Background Art

[0002] In the shift device described in Patent Document 1 below, a paddle is moved to change the shift position of the paddle. Further, a light guide pillar is provided on the paddle, and an LED light emits light to the light guide pillar. Further, a sensor detects the movement position of the paddle.

[0003] Here, in this shift device, an LED light is provided on a circuit board, while a sensor is provided separately from the circuit board.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] In consideration of the above facts, an object of the present invention is to obtain a shift device capable of reducing the number of parts.

Means for Solving the Problems

[0006] The shift device according to the first aspect of the present invention includes a shift body that is moved to change the shift position, a guide member provided on the shift body for guiding light, a light emitting portion that emits light to the guide member, and an installation body provided with a detection portion for detecting the movement position of the shift body.

[0007] A shift device according to a second aspect of the present invention is a shift device according to a first aspect of the present invention, wherein the guide member is provided with an incident surface into which light emitted by the emission unit is incident, and the number of opposing emission units is maintained when the shift body is moved.

[0008] A third aspect of the present invention is a shift device according to the first or second aspect of the present invention, wherein the detection unit detects the movement position of the shift body on the side of the guide member.

[0009] A shift device according to a fourth aspect of the present invention is a shift device according to any one of the first to third aspects of the present invention, further comprising a biasing mechanism that biases the shift body toward the shift position on the side of the guide member.

[0010] A fifth aspect of the present invention is a shift device in which the side surface of the curved portion of the guide member is curved, in any one of the first to fourth aspects of the present invention.

[0011] A shift device according to the sixth aspect of the present invention is a shift device according to any one of the first to fifth aspects of the present invention, comprising a protruding portion provided that protrudes from the guide member and has a reducing hole that reduces the contact area with the guide member. [Effects of the Invention]

[0012] In the shift device according to the first aspect of the present invention, the shift body is moved to change the shift position. A guide member is provided on the shift body, and an emission unit emits light onto the guide member, while the guide member guides the light. Furthermore, a detection unit detects the movement position of the shift body.

[0013] Here, the discharge unit and the detection unit are provided on the mounting body. Therefore, unlike when the discharge unit and the detection unit are provided separately, the number of parts can be reduced.

[0014] In the shift device according to the second aspect of the present invention, the light emitted by the emission unit is incident on the incident surface of the guide member. Furthermore, the number of emission units facing the incident surface is maintained when the shift body is moved. Therefore, fluctuations in the amount of light incident on the incident surface can be suppressed, and fluctuations in the amount of light guided by the guide member can be suppressed.

[0015] In the shift device according to the third aspect of the present invention, a detection unit detects the movement position of the shift body on the side of the guide member. Therefore, the part that guides the light of the shift body and the part that detects the movement position can be separated.

[0016] In the shift device according to the fourth aspect of the present invention, a biasing mechanism biases the shift body toward the shift position on the side of the guide member. Therefore, the portion of the shift body that guides light and the portion that biases toward the shift position can be separated.

[0017] In the shift device according to the fifth aspect of the present invention, the side surface of the curved portion of the guide member is curved. This makes it possible to suppress the leakage of light guided by the guide member at the curved portion of the guide member.

[0018] In the shift device according to the sixth aspect of the present invention, a protrusion is provided on the guide member, and the reduced hole in the protrusion reduces the contact area between the protrusion and the guide member. Therefore, it is possible to suppress the entry of light guided by the guide member into the protrusion. [Brief explanation of the drawing]

[0019] [Figure 1] This is a perspective view from the left rear, showing a shift device according to an embodiment of the present invention. [Figure 2] This is a perspective view from the front left, showing the main part of the shift device according to an embodiment of the present invention. [Figure 3] This is a perspective view taken from the front left, showing an enlarged view of the main part of the shift device according to an embodiment of the present invention. [Figure 4] This is a perspective view from below showing the lever body of a shift device according to an embodiment of the present invention. [Figure 5](A) and (B) are diagrams showing the upper light guide of the shift device according to an embodiment of the present invention. (A) is a perspective view seen from the front obliquely leftward, and (B) is a front view seen from the front. [Figure 6] (A) to (C) are diagrams showing the lower light guide of the shift device according to an embodiment of the present invention. (A) is a perspective view seen from the front obliquely rightward, (B) is a side view seen from the left, and (C) is a rear view seen from the rear. [Figure 7] (A) to (C) are cross-sectional views of the shift device according to an embodiment of the present invention seen from the left. (A) shows when the lever is arranged at the H position, (B) shows when the lever is arranged at the R position, and (C) shows when the lever is arranged at the D position.

Mode for Carrying Out the Invention

[0020] In FIG. 1, a shift device 10 according to an embodiment of the present invention is shown in a perspective view seen from the left obliquely rearward. In the drawing, the front of the shift device 10 is indicated by an arrow FR, the right side of the shift device 10 is indicated by an arrow RH, and the upper side of the shift device 10 is indicated by an arrow UP.

[0021] The shift device 10 according to the present embodiment is installed in a console (not shown) of a vehicle (automobile), and the front, right, and upper sides of the shift device 10 are respectively directed toward the front, right, and upper sides of the vehicle.

[0022] As shown in FIG. 1, the shift device 10 is provided with a plate 12 in the shape of a substantially rectangular parallelepiped box as a support. The plate 12 is fixed in a console (not shown), and its upper wall is exposed from the console into the vehicle interior.

[0023] In the middle portion in the left-right direction within the plate 12, a lever 14 (see FIG. 7(A)) as a shift body is provided. The lever 14 is elongated in the vertical direction and the left-right direction.

[0024] The upper part of the lever 14 is a knob 16 that serves as a gripping part. The upper part of the knob 16 is shaped like a roughly rectangular box, and the inside of the upper part of the knob 16 is open to the bottom. A rectangular exposed hole 16A is formed through the upper wall of the knob 16 in the central part in the front-to-back and left-to-right directions. The exposed hole 16A opens the inside of the upper part of the knob 16 to the top and is elongated in the left-to-right direction. The lower part of the knob 16 is shaped like a roughly semi-cylindrical box, and the inside of the lower part of the knob 16 is in communication with the inside of the upper part of the knob 16 and is open to the bottom.

[0025] The lower part of the lever 14 forms the main body of the lever body 18 (see Figure 2). The upper part of the lever body 18 is roughly cylindrical, and the lower part of the lever body 18 is roughly rectangular. The upper part of the lever body 18 is fitted into the lower part of the knob 16, and a cylindrical support shaft 20 passes through the upper part of the lever body 18 and the lower part of the knob 16 at the central axis, and the support shaft 20 is supported within the plate 12. The lever body 18 is integrated with the knob 16 by the support shaft 20, and the lever 14 (knob 16 and lever body 18) is rotatable within a predetermined range in the front-rear direction around the support shaft 20.

[0026] The knob 16 is rotatably inserted through the upper wall of the plate 12, and the lever 14 is rotatably operated by the vehicle occupant (especially the driver) on the knob 16. The lever 14 is positioned in the H position (home position) as the shift position, and when the lever 14 is rotated forward from the H position, the lever 14 is positioned in the R position (reverse position) as the shift position (see Figure 7(B)). Also, when the lever 14 is rotated backward from the H position, the lever 14 is positioned in the D position (drive position) as the shift position (see Figure 7(C)). Furthermore, the rotation angle of the lever 14 between the H position and the R position is the same as the rotation angle of the lever 14 between the H position and the R position.

[0027] The lever body 18 has a roughly rectangular columnar insertion hole 18A (see Figures 2, 4, and 7(A)) formed therein. The insertion hole 18A penetrates the lever body 18 vertically, and a support shaft 20 is positioned at the front near the upper part. Rectangular press-fit grooves 18B are formed on the lower left and right sides of the insertion hole 18A. The press-fit grooves 18B extend vertically and are open downwards.

[0028] A roughly rectangular columnar lower light guide 22 (see Figures 6(A) to 6(C) and 7(A)) is provided inside the insertion hole 18A as a guide member (first guide member). The lower light guide 22 is made transparent to allow light to be guided inside. The lower end of the lower light guide 22 is rectangular columnar and is enlarged in the front-to-back and left-to-right directions compared to the portion above the lower end of the lower light guide 22. The lower end of the lower light guide 22 is press-fitted into the lower end of the insertion hole 18A. The lower surface of the lower light guide 22 is a rectangular incident surface 22A, which is positioned vertically in the vertical direction.

[0029] The front surface of the middle section (upper and lower middle section) of the lower light guide 22 is inclined in a direction toward the rear as it extends upward, and the front surface of the upper part of the lower light guide 22 is inclined in a direction toward the front as it extends upward, thereby limiting interference between the lower light guide 22 and the support shaft 20 in the insertion hole 18A. The rear surface of the upper part of the lower light guide 22 is inclined in a direction toward the front as it extends upward, and the upper part of the lower light guide 22 is curved in a direction toward the front as it extends upward relative to the middle section of the lower light guide 22, and the front and rear surfaces between the upper part and the middle section of the lower light guide 22 are curved surfaces 22B. The angle of inclination of the front surface of the upper part of the lower light guide 22 relative to the upward is larger than the angle of inclination of the rear surface of the upper part of the lower light guide 22 relative to the upward, and the width dimension of the upper part of the lower light guide 22 (approximately the dimension in the front-to-back direction) is larger as it extends upward. The upper surface of the lower light guide 22 is oriented forward as it extends upward, and the upper surface of the lower light guide 22 is exposed above the insertion hole 18A.

[0030] Rectangular upper press-fit plates 22C are integrally provided on the left and right surfaces of the upper end of the middle section of the lower light guide 22, and the upper press-fit plates 22C protrude outward in the left-right direction from the lower light guide 22. The pair of upper press-fit plates 22C are positioned opposite each other in the left-right direction with the lower light guide 22 in between, and the lower light guide 22 is press-fitted in the left-right direction into the insertion hole 18A at the portion of the pair of upper press-fit plates 22C, thereby positioning it in the left-right direction.

[0031] On the front and rear surfaces of the upper and lower intermediate portion of the lower light guide 22, a roughly rectangular parallelepiped-shaped intermediate press-fit column 22D and a rectangular plate-shaped intermediate press-fit plate 22E are integrally provided, respectively, and the intermediate press-fit column 22D and intermediate press-fit plate 22E protrude outward in the front-rear direction of the lower light guide 22. The intermediate press-fit column 22D and intermediate press-fit plate 22E face each other in the front-rear direction with the lower light guide 22 in between, and the lower light guide 22 is press-fitted in the front-rear direction into the insertion hole 18A at the portion of the intermediate press-fit column 22D and intermediate press-fit plate 22E, and is positioned in the front-rear direction.

[0032] On the left and right sides of the lower middle section of the lower light guide 22, approximately rectangular columnar lower press-fit columns 22F are integrally provided as protruding parts. The pair of lower press-fit columns 22F each protrude outward in the left-right direction from the lower light guide 22 and are positioned opposite each other in the left-right direction with the lower light guide 22 in between. The lower press-fit columns 22F extend in the vertical direction and are inserted into the press-fit groove 18B of the insertion hole 18A and press-fitted in the front-rear direction. As a result, the lower light guide 22 is positioned in the front-rear direction at the portion of the pair of lower press-fit columns 22F. A rectangular slit 22G is formed through the lower light guide 22 side end of the lower press-fit column 22F, except for the upper part. The slit 22G reduces the connection area between the lower press-fit column 22F and the lower light guide 22, and the side facing the lower light guide 22 is either the left or right side of the lower light guide 22.

[0033] A roughly rectangular plate-shaped upper light guide 24 (see Figures 5(A) and 5(B), and 7(A)) is fixed inside the upper part of the knob 16 as a second guide member. The upper light guide 24 is made transparent to allow light to be guided inside. The lower surface of the upper light guide 24 is exposed inside the lower part of the knob 16, and the upper surface of the lower light guide 22 faces the lower surface of the upper light guide 24. A roughly rectangular plate-shaped illumination plate 24A is integrally provided on the upper surface of the upper light guide 24 as an illumination part. The illumination plate 24A protrudes upward and is elongated in the left-right direction. The illumination plate 24A is fitted into the exposed hole 16A of the knob 16, and the illumination plate 24A is exposed on the upper side of the knob 16, with its upper surface flush with the upper surface of the knob 16.

[0034] A circuit board 26 (see Figures 3 and 7(A)) is provided on the lower side of the lever body 18 as a mounting element. The circuit board 26 is positioned vertically in the vertical direction and is fixed to the lower part of the plate 12.

[0035] Multiple LEDs 28 are provided on the upper surface of the circuit board 26, below the lower light guide 22, and these LEDs 28 are spaced apart in the front-to-back direction. The LEDs 28 are electrically connected to the vehicle's control device 30 via the circuit board 26, and the LEDs 28 emit light upwards under the control of the control device 30.

[0036] In this embodiment, four LEDs 28 are provided (designated as the first LED 28A, second LED 28B, third LED 28C, and fourth LED 28D, in order from front to rear). The front-to-back spacing between the first LED 28A and the second LED 28B, and the front-to-back spacing between the third LED 28C and the fourth LED 28D are the same, while the front-to-back spacing between the first LED 28A and the second LED 28B, and between the third LED 28C and the fourth LED 28D, is smaller than the front-to-back spacing between the second LED 28B and the third LED 28C. The second LED 28B and the third LED 28C are positioned vertically opposite the incident surface 22A of the lower light guide 22. When the lever 14 is rotated from position H, partial vertical opposition between the incident surface 22A and the first LED 28A or the fourth LED 28D begins, and at the same time, partial vertical opposition between the incident surface 22A and the third LED 28C or the second LED 28B begins. Therefore, even when the lever 14 is rotated, the number (area) of LEDs 28 that the incident surface 22A faces vertically is maintained.

[0037] A rectangular parallelepiped magnet 32 ​​(see Figures 3 and 4) is provided as a detection unit at the lower end of the lever body 18, to the left of the lower light guide 22. The magnet 32 ​​is fixed inside the lever body 18 and rotates integrally with the lever 14. A magnetic sensor 34 is provided on the upper surface of the circuit board 26 below the magnet 32, and the magnetic sensor 34 detects the direction of the magnetic field generated by the magnet 32 ​​and detects the rotational position of the magnet 32. The magnetic sensor 34 is electrically connected to the control device 30 via the circuit board 26, and the vehicle's transmission 36 (automatic transmission) is electrically connected to the control device 30.

[0038] A tensioning mechanism 38 (see Figures 2 and 4) is provided on the right side of the lever 14 as a biasing mechanism.

[0039] At the lower end of the lever body 18, a substantially bottomed cylindrical biasing cylinder 38A is integrally provided to the right of the lower light guide 22. The biasing cylinder 38A is oriented vertically and its interior is open downwards. The biasing cylinder 38A protrudes downwards from the lever body 18 and rotatably penetrates the circuit board 26. A substantially cylindrical biasing pin 40, which serves as a biasing part, is coaxially fitted inside the biasing cylinder 38A, and the tip surface (bottom surface) of the biasing pin 40 is curved in a convex shape. A coil spring (not shown) is coaxially arranged between the base end surface (top surface) of the biasing pin 40 and the bottom wall (top wall) of the biasing cylinder 38A, and the coil spring is compressed to bias the biasing pin 40 downwards. A block-shaped biasing body 42 is provided below the biasing pin 40, and the biasing body 42 is fixed to the lower end of the plate 12 (below the circuit board 26). The biasing body 42 has a biasing surface 42A (see Figure 7(A)) with a roughly V-shaped cross-section as the biased portion, and the biasing surface 42A is inclined upward from the center (center in the front-rear direction) to both ends (both ends in the front-rear direction).

[0040] The tip surface of the biasing pin 40 is in contact with the biasing surface 42A by the biasing force of the coil spring and is biased toward the center of the biasing surface 42A, thereby biasing the lever 14 toward position H and holding it in position H. When the lever 14 is rotated from position H, the tip surface of the biasing pin 40 moves from the center toward the end of the biasing surface 42A against the biasing force of the coil spring, and a rotational resistance force is applied to the lever 14. When the rotational force applied to the lever 14 is released when the lever 14 is rotated from position H, the tip surface of the biasing pin 40 moves from the end toward the center of the biasing surface 42A by the biasing force of the coil spring, and the lever 14 rotates (returns) to position H.

[0041] Next, the operation of this embodiment will be explained.

[0042] In the shift device 10 configured as described above, the lever 14 is rotated forward and backward from the H position to the R position and D position, respectively. The magnetic sensor 34 detects the rotational position of the magnet 32 ​​on the lever 14, thereby detecting the rotational position of the lever 14 and, consequently, the shift position. Therefore, when the lever 14 is positioned at the R position and the D position, the shift range of the transmission 36 is changed to the R range (reverse range) and the D range (drive range), respectively, by the control device 30. In addition, in the detent mechanism 38, the tip surface of the biasing pin 40 contacts the biasing surface 42A of the biasing body 42 due to the biasing force of the coil spring, thereby biasing the lever 14 toward the H position.

[0043] Incidentally, the lever 14 is equipped with a lower light guide 22 and an upper light guide 24. The LED 28 emits light upwards, and this light is incident on the incident surface 22A of the lower light guide 22. As a result, the lower light guide 22 guides the light upwards while reflecting it on its sides, and emits it from its upper surface. Furthermore, as light from the upper surface of the lower light guide 22 is incident on the lower surface of the upper light guide 24, the upper light guide 24 guides the light upwards while reflecting it on its sides, and illuminates the upper side of the lever 14 (the upper side of the knob 16) from the upper surface of the illumination plate 24A. This illuminates the upper surface of the lever 14 (the upper surface of the knob 16).

[0044] Here, the LED 28 and the magnetic sensor 34 are mounted on the same circuit board 26. Therefore, unlike when the LED 28 and the magnetic sensor 34 are mounted on separate circuit boards, the number of components can be reduced. Moreover, there is no need to provide the LED 28 on the lever 14 to illuminate its upper surface, and the need to wire a harness to the lever 14 can be reduced, improving ease of assembly.

[0045] Furthermore, when the lever 14 is rotated, the number of LEDs 28 facing the incident surface 22A of the lower light guide 22 in the vertical direction is maintained. As a result, fluctuations in the amount of light incident on the incident surface 22A can be suppressed, fluctuations in the amount of light guided by the lower light guide 22 and the upper light guide 24 can be suppressed, and fluctuations in the amount of light irradiated to the upper side of the lever 14 can be suppressed.

[0046] Furthermore, the section between the middle and upper parts of the lower light guide 22 is curved in the front-to-back direction, and the front and rear surfaces of the section between the middle and upper parts of the lower light guide 22 are curved surfaces 22B. As a result, the angle of incidence of the light guided by the lower light guide 22 onto the curved surface 22B can be increased, preventing light from leaking out at the curved section of the lower light guide 22, and preventing a decrease in the amount of light illuminating the upper side of the lever 14.

[0047] Furthermore, the slit 22G of the lower light guide 22 in the lower press-fit column 22F reduces the connection area between the lower press-fit column 22F and the lower light guide 22. As a result, it is possible to suppress the light guided by the lower light guide 22 from penetrating into the lower press-fit column 22F and leaking out, and to suppress the reduction in the amount of light irradiated to the upper side of the lever 14.

[0048] Furthermore, a magnet 32 ​​and a magnetic sensor 34 are positioned on the left side of the lower light guide 22. On the left side of the lower light guide 22, the magnetic sensor 34 detects the rotational position of the magnet 32, thereby detecting the rotational position of the lever 14. This allows the part of the lever 14 that guides light and the part that detects the rotational position to be separated, and the parts of the lever 14 that guide light and the part that detects the rotational position can be appropriately positioned.

[0049] Furthermore, a detent mechanism 38 is positioned to the right of the lower light guide 22, and on the right side of the lower light guide 22, the detent mechanism 38 biases the lever 14 toward the H position. This allows the part of the lever 14 that guides the light and the part that biases it toward the H position to be separated, and the part of the lever 14 that guides the light and the part that biases it toward the H position can be appropriately positioned.

[0050] In this embodiment, the lower press-fit column 22F (protruding portion) of the lower light guide 22 is press-fitted onto the lever 14 for positioning. However, the protruding portion of the lower light guide 22 may be made, for example, a locking claw, so that it is locked onto the lever 14 for attachment.

[0051] In this embodiment, the lever 14 is rotated. However, the lever 14 may also slide (move).

[0052] Furthermore, in this embodiment, the shift device 10 is installed on the vehicle's console. However, the shift device 10 may also be installed on other parts of the vehicle (such as the instrument panel or steering column). [Explanation of Symbols]

[0053] 10...Shift device, 14...Lever (shift body), 22...Lower light guide (guide member), 22A...Incident surface, 22F...Lower press-fit column (protruding part), 22G...Slit (detection part), 26...Circuit board (mounting body), 28...LED (emission part), 34...Magnetic sensor (detection part), 38...Motion mechanism (biasing mechanism)

Claims

1. A shift mechanism that is moved and changes the shift position, A guide member provided on the shift body for guiding light, An installation body is provided, which is located on the outside of the base end of the shift body and has an emission unit that emits light to the guide member and a detection unit that detects the movement position of the shift body on the side of the guide member, A shift device equipped with a shift mechanism.

2. The shift device according to claim 1, comprising an incident surface provided on the guide member, to which light emitted by the emission unit is incident and which maintains the number of opposing emission units when the shift body is moved.

3. The shift device according to claim 1, further comprising a biasing mechanism that biases the shift body toward the shift position on the side of the guide member.

4. The shift device according to claim 1, wherein the side surface of the curved portion of the guide member is curved.

5. The shift device according to claim 1, further comprising a protruding portion provided on the guide member and having a reducing hole that reduces the contact area with the guide member.

Citation Information

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