Reaction force application device
The reaction force applying device addresses vibration issues in existing devices by using a resin abutment member with specially shaped portions to prevent contact and rotation, enhancing pedal feel through reduced vibration transmission.
Patent Information
- Application Number
- JP2022159059
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-30
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2042-09-30
AI Technical Summary
Existing reaction force imparting devices, such as those described in Patent Document 1, suffer from vibrations due to uneven surfaces on the rotating member, which can transmit vibrations to the driver via the pedal, deteriorating the pedal force feeling.
A reaction force applying device comprising an actuator, a lever, and an abutment member, where the abutment member is made of resin with specific shaped portions formed during molding to prevent contact with the pedal or arm, and is designed to be rotatable or fixed relative to the lever to avoid vibration transmission.
The device effectively suppresses vibration transmission to the driver, thereby improving the pedal force feeling by ensuring the specially shaped portions do not contact the pedal or arm, and reducing sliding torque between components.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a reaction force applying device. [Background technology]
[0002] 2. Description of the Related Art Conventionally, a reaction force applying device is known that can apply a reaction force to a pedal of an accelerator device that has a pedal that is depressed by a driver, in response to the depression force of the pedal by the driver.
[0003] For example, the reaction force applying device in Patent Document 1 includes a lever that applies a reaction force to an arm that rotates together with the pedal of an accelerator device against the driver's depressing force. A rotating member is provided at the tip of the lever that can come into contact with the arm and be separated from the arm, and that can rotate relatively to the lever. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 5491115 Summary of the Invention [Problem to be solved by the invention]
[0005] In a reaction force imparting device such as that described in Patent Document 1, the rotating member is generally made of a molded product such as resin, and has uneven surfaces such as gate marks left by molding or stepped surfaces due to parting. Therefore, in the reaction force imparting device described in Patent Document 1, if the uneven surface is formed at the position of the rotating member that abuts against the arm, there is a risk that the uneven surface will abut against the arm when the driver depresses the pedal, causing vibration. This may transmit vibration to the driver via the arm and pedal, worsening the driver's feeling of pedal force.
[0006] An object of the present invention is to provide a reaction force applying device that can suppress the occurrence of vibrations in members. [Means for solving the problem]
[0007] The present invention provides a reaction force applying device capable of applying a reaction force to an accelerator pedal (70) operated by a driver in response to the driver's depression force, the reaction force applying device comprising an actuator (20), a lever (40), and an abutment member (50). The actuator generates a driving force when energized. The lever rotates due to the driving force from the actuator, and is capable of applying the reaction force to the pedal or an arm (80) that rotates together with the pedal.
[0008] The abutment member is provided on the lever so as to be able to abut against the pedal or the arm or to be able to move away from the pedal or the arm. In the first aspect, the lever has a rod-shaped lever body (41), a lever one end (42) provided at one end of the lever body and to which driving force from the actuator is input, and a lever other end (43) provided at the other end of the lever body. The contact member is made of resin, Cylindrical Abutment member body (51), abutment member body A specific area on the outer surface of The abutment member has a contact surface portion (52) that is formed on the abutment member body and can contact the pedal or arm, and a specific shape portion (53) that is convex or concave and is formed on the abutment member body during molding. The lever is provided with the other end of the lever inserted into the inside of the contact member body. . The abutment member is arranged to be rotatable relative to the other end of the lever, and further has a sliding surface portion (54) formed in a specific range on the axial end face of the abutment member body and capable of sliding against other members, and the specific shape portion is formed at a position on the abutment member body other than the sliding surface portion. In the second aspect, the lever has a rod-shaped lever body (41), a lever one end (42) formed integrally with the lever body at one end thereof and receiving a driving force from the actuator, and a lever other end (43) formed integrally with the lever body at the other end thereof. The abutment member further has a fixing portion (58) capable of fixing the abutment member body to the lever other end so as not to rotate relative to the lever other end, and the fixing portion is provided at a position other than the abutment surface portion of the abutment member.
[0009] The specially shaped portion is formed at a position on the contact member body other than the contact surface portion, so that when the driver presses the pedal, the specially shaped portion does not come into contact with the pedal or the arm, thereby suppressing the generation of vibration. [Brief explanation of the drawings]
[0010] [Figure 1] 1 is a diagram showing a reaction force application device of a first embodiment and an accelerator device to which the reaction force application device is applied; [Figure 2] 1 is a perspective view showing a reaction force application device of a first embodiment and an accelerator device to which the reaction force application device is applied; [Figure 3] FIG. 3 is a cross-sectional view showing a contact member of the reaction force application device of the first embodiment. [Figure 4] Cross-sectional view taken along line IV-IV in Figure 3. [Figure 5] Cross-sectional view of line VV in Figure 3. [Figure 6]5A to 5C are cross-sectional views of the reaction force application device according to the first embodiment in a molding process of the contact member. [Figure 7] 10A and 10B are diagrams showing a reaction force application device of a second embodiment and an accelerator device to which the reaction force application device is applied; [Figure 8] FIG. 10 is a perspective view showing a reaction force application device of a second embodiment and an accelerator device to which the reaction force application device is applied. [Figure 9] FIG. 11 is a cross-sectional view showing a contact member of a reaction force application device according to a third embodiment. [Figure 10] Cross-sectional view taken along line XX in Figure 9. [Figure 11] Cross-sectional view taken along line XI-XI in Figure 9. [Figure 12] FIG. 10 is a cross-sectional view showing a contact member of a reaction force application device according to a fourth embodiment. [Figure 13] Cross-sectional view taken along line XIII-XIII in Figure 12. [Figure 14] Cross-sectional view taken along line XIV-XIV in Figure 12. [Figure 15] FIG. 13 is a cross-sectional view showing a contact member of a reaction force application device according to a fifth embodiment. [Figure 16] Cross-sectional view taken along line XVI-XVI in Figure 15. [Figure 17] Cross-sectional view taken along line XVII-XVII in Figure 15. [Figure 18] FIG. 13 is a view showing a contact member of a reaction force application device according to a sixth embodiment. [Figure 19] FIG. 13 is a view showing a contact member of a reaction force application device according to a sixth embodiment. [Figure 20] FIG. 13 is a cross-sectional view showing a contact member of a reaction force application device according to a seventh embodiment. [Figure 21] A view of Figure 20 from the direction of arrow XXI. [Figure 22] A view of Figure 20 from the direction of arrow XXII. [Figure 23] FIG. 13 is a cross-sectional view showing a contact member of a reaction force application device according to an eighth embodiment. [Figure 24] FIG. 13 is a cross-sectional view showing a contact member of a reaction force application device according to a ninth embodiment. [Figure 25] Cross-sectional view of line XXV-XXV in Figure 24. [Figure 26] FIG. 23 is a cross-sectional view showing a contact member of the reaction force application device according to the tenth embodiment. [Figure 27] A view of Figure 26 from the direction of arrow XXVII. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, a reaction force application device according to several embodiments and an accelerator device to which the same is applied will be described with reference to the drawings. Note that substantially the same components in several embodiments are given the same reference numerals and descriptions thereof will be omitted.
[0012] (First embodiment) A reaction force applying device according to a first embodiment and an accelerator device to which the reaction force applying device is applied are shown in FIGS.
[0013] The accelerator device 60 is mounted on the vehicle 1 and is used to detect the accelerator opening corresponding to the rotation angle of a pedal 70 depressed by the driver, and to control the driving state of the vehicle 1. The accelerator device 60 employs an accelerator-by-wire system and is not mechanically connected to the throttle device of the vehicle 1. The accelerator device 60 transmits information relating to the accelerator opening corresponding to the rotation angle of the pedal 70 to an electronic control unit (hereinafter referred to as "ECU"), not shown. The ECU controls the throttle device based on the accelerator opening transmitted from the accelerator device 60. In this way, the driving state of the vehicle 1 is controlled.
[0014] The reaction force applying device 10 is mounted on the vehicle 1 together with the accelerator device 60, and is capable of applying a reaction force F2 to the pedal 70 of the accelerator device 60 in response to a depression force F1 by the driver. By applying a reaction force to the pedal 70 of the accelerator device 60, the reaction force applying device 10 can provide the driver with notifications such as danger notices and fuel efficiency improvement notices. Furthermore, by restricting the rotation of the pedal 70, the reaction force applying device 10 can turn the pedal 70 into a footrest.
[0015] In Figure 1, the x-axis indicates the direction of travel of the vehicle 1, the y-axis indicates the vehicle width direction, and the z-axis indicates the vertically upward direction. Unless otherwise specified, the following describes the shape or configuration of the accelerator device 60 and the reaction force applying device 10 when attached to the vehicle 1. For example, "above" or "upper side" means the upper side or upper side when the accelerator device 60 or the reaction force applying device 10 is attached to the vehicle 1. In addition, in this embodiment, the floor panel 2 has a wall surface 7 that is parallel to the yz plane and a wall surface 8 that is inclined relative to the wall surface 7.
[0016] The accelerator device 60 includes a pedal housing 61, a pedal 70, etc. The pedal housing 61 is attached to the floor panel 2 by being fixed to the wall surface 8 of the floor panel 2 of the vehicle 1 with, for example, a mounting bolt (not shown).
[0017] The pedal 70 is rotatably supported by the pedal housing 61 so as to rotate around a rotation axis Ax1. The pedal 70 is provided with a pad 71 that is depressed by the driver. An accelerator opening sensor (not shown) is provided inside the pedal housing 61. The accelerator opening sensor detects the accelerator opening corresponding to the rotation angle of the pedal 70, which rotates when the driver depresses it, and transmits the detected accelerator opening to the ECU. The rotation axis Ax1 is set to be perpendicular to the z-axis and x-axis and parallel to the y-axis.
[0018] A pedal biasing member (not shown) is provided inside the pedal housing 61. The pedal 70 is biased in the accelerator closing direction by the pedal biasing member. The pedal housing 61 has a stopper that restricts rotation of the pedal 70 in the accelerator closing direction, and a stopper that restricts rotation in the accelerator opening direction. The pedal 70 is rotatable within a range in which it abuts against both stoppers. Figure 1 shows a state in which the pedal 70 abuts against the stopper in the accelerator closing direction, i.e., the accelerator is fully closed.
[0019] As shown in Figures 1-3, <1> The reaction force applying device 10 includes an actuator 20, a lever 40, and an abutment member 50. The actuator 20 generates a driving force when energized. The lever 40 rotates due to the driving force from the actuator 20, and can apply a reaction force to the pedal 70 in response to the driver's depression force.
[0020] The abutment member 50 is provided on the lever 40 so as to be able to abut against or separate from the pedal 70. The abutment member 50 is formed from resin and has an abutment member main body 51, an abutment surface portion 52 formed on the abutment member main body 51 and able to abut against the pedal 70, and a convex or concave specific shaped portion 53 formed on the abutment member main body 51 during molding. The specific shaped portion 53 is formed at a position on the abutment member main body 51 other than the abutment surface portion 52.
[0021] More specifically, the reaction force applying device 10 includes an actuator housing 11. The actuator housing 11 is attached to the floor panel 2 by being fixed to the wall surface 7 of the floor panel 2 of the vehicle 1 by, for example, mounting bolts (not shown).
[0022] The actuator 20 is, for example, an electric motor, and is accommodated in the actuator housing 11. The actuator 20 is capable of outputting torque as a driving force when energized. The ECU controls the energization of the actuator 20 and controls the operation of the actuator 20. The actuator housing 11 is provided with a reducer made up of a plurality of gears (not shown). The reducer is capable of reducing the torque of the actuator 20 and outputting it from a shaft member 36. The shaft member 36 is provided on a rotation axis Ax2 and is supported by the actuator housing 11 so as to be rotatable about the rotation axis Ax2.
[0023] The lever 40 has a lever main body 41, a lever one end 42, a lever other end 43, etc. The lever main body 41 is formed in a rod shape from, for example, metal, etc. The lever one end 42 is connected to one end of the lever main body 41 and is formed integrally with the lever main body 41. The lever other end 43 is connected to the other end of the lever main body 41 and is formed integrally with the lever main body 41. The lever other end 43 is formed to be approximately perpendicular to the lever main body 41. The lever other end 43 is provided to be parallel to the y-axis.
[0024] The lever 40 is provided such that one end 42 of the lever is connected to the shaft member 36. As a result, the lever 40 is rotatably supported by the actuator housing 11 so as to rotate around the rotation axis Ax2 together with the shaft member 36. The lever 40 rotates around the rotation axis Ax2 by the driving force from the actuator 20 output from the shaft member 36.
[0025] 1, reaction force applying device 10 is provided so that the outer peripheral wall of abutment member 50 can abut against the surface of pedal 70 of accelerator device 60 on the floor panel 2 side, and can be separated from the surface of pedal 70 on the floor panel 2 side. As a result, reaction force applying device 10 can apply reaction force F2 in response to driver's depression force F1 to pedal 70 from lever 40, which rotates by driving force from actuator 20, via abutment member 50.
[0026] Next, the contact member 50 will be described in more detail.
[0027] As shown in Figures 3-5, <2> The abutment member 50 is provided so as to be rotatable relative to the lever 40, and further has a sliding surface portion 54 formed on the abutment member main body 51 so as to be able to slide against other members. The specific shape portion 53 is formed at a position on the abutment member main body 51 other than the sliding surface portion 54.
[0028] More specifically, the abutment member 50 has a member recess 551, a member recess 552, a member recess 553, and a member recess 554. The abutment member main body 51 is formed in a substantially cylindrical shape. The member recess 551 is formed in an annular shape so as to be recessed in the axial direction from the end face of the abutment member main body 51 opposite the lever main body 41 (see FIGS. 3 and 4). The member recess 552 is formed in an annular shape so as to be recessed in the axial direction from the end face of the abutment member main body 51 facing the lever main body 41 (see FIGS. 3 and 5). The member recess 553 is formed in an annular shape so as to be recessed in the axial direction from the outer edge of the end face of the abutment member main body 51 opposite the lever main body 41 (see FIGS. 3 and 4). The member recess 554 is formed in an annular shape so as to be recessed in the axial direction from the inner edge of the end face of the abutment member main body 51 opposite the lever main body 41 (see FIGS. 3 and 4). The outer and inner edges of the end face of the contact member body 51 on the lever body 41 side are chamfered (see FIGS. 3 and 5).
[0029] The specially shaped portion 531 is a convex gate mark formed on the abutment member main body 51 during molding, and is formed on the bottom surface of the component recess 551 (see FIGS. 3 and 4). The specially shaped portion 532 is a ring-shaped, convex ejector pin mark formed on the abutment member main body 51 during molding, and is formed on the bottom surface of the component recess 552 (see FIGS. 3 and 5). Three specially shaped portions 532 are formed at equal intervals around the circumference of the component recess 552 (see FIG. 5). The specially shaped portion 533 is a ring-shaped, convex burr formed on the abutment member main body 51 during molding, and is formed so as to protrude from the outer edge of the component recess 553 toward the opposite side to the lever main body 41 (see FIGS. 3 and 4). The specially shaped portion 534 is a ring-shaped, convex burr formed on the abutment member main body 51 during molding, and is formed so as to protrude from the inner edge of the component recess 554 toward the opposite side to the lever main body 41 (see FIGS. 3 and 4).
[0030] The inner diameter of the abutment member body 51 is larger than the outer diameter of the lever other end 43. Therefore, the abutment member 50 is rotatable relative to the lever other end 43 and is also movable relative to the lever other end 43 in the axial direction.
[0031] The lever 40 has a retaining portion 46. The retaining portion 46 is formed in the shape of an annular plate made of, for example, metal. An engagement groove portion 431 is formed in the other end portion 43 of the lever. The engagement groove portion 431 is formed in an annular shape so as to be recessed radially inward from the outer circumferential wall of the other end portion 43 of the lever on the side opposite the lever main body 41 with respect to the abutment member 50.
[0032] The retaining portion 46 is provided on the other end 43 of the lever so that the inner edge fits into and engages with the engaging groove 431. This prevents the contact member 50 from falling off from the other end 43 of the lever.
[0033] In this embodiment, the contact surface 52, which is a surface that can contact the pedal 70, is formed on the entire outer peripheral wall of the contact member main body 51 (see FIGS. 3 and 4). The sliding surface 541, which is a surface that can slide against the retaining portion 46 (as another member), is formed in an annular shape on the radially outer side and the radially inner side of the member recess 551 (see FIGS. 3 and 4). The sliding surface 542, which is a surface that can slide against the lever main body 41 of the lever 40 (as another member), is formed in an annular shape on the radially outer side and the radially inner side of the member recess 552 (see FIGS. 3 and 5). The contact surface 52, the sliding surface 541, and the sliding surface 542 are formed in the shaded areas in the drawings (the same applies below).
[0034] In this way, the specific shape portion 53 is formed at a position other than the contact surface portion 52 of the contact member main body 51 and other than the sliding surface portion 541 and the sliding surface portion 542.
[0035] In this embodiment, the depth d1 of the component recess 551 is greater than the protruding height of the shaped portion 531. The depth d2 of the component recess 552 is greater than the protruding height of the shaped portion 532. The depth d3 of the component recess 553, 554 is greater than the protruding height of the shaped portion 533, 534 (see FIG. 3 ). Therefore, when the abutting member 50 rotates, the shaped portion 531, 533, 534 can be prevented from coming into contact with the retaining portion 46, and the shaped portion 532 can be prevented from coming into contact with the lever body 41.
[0036] Next, the molding process of the contact member 50 will be described with reference to FIG.
[0037] First, the movable main mold 140 is fitted into the fixed main mold 130, and a cavity 150 corresponding to the shape of the abutting member 50 is formed between the fixed main mold 130 and the movable main mold 140. Next, molten resin is filled into the cavity 150 through gates 141 formed in the movable main mold 140. After the resin filled in the cavity 150 cools and hardens, the movable main mold 140 is moved to the opposite side from the fixed main mold 130. Next, ejector pins 131 provided on the fixed main mold 130 are pressed, and the abutting member 50 is pushed out from the fixed main mold 130. This completes the molding of the abutting member 50.
[0038] Next, the process of forming the specific shape portion 53 when molding the contact member 50 will be described.
[0039] When the resin filled in the cavity 150 has cooled and solidified, the movable main mold 140 is moved to the opposite side of the fixed main mold 130, whereby the resin remaining in the gate 141 is torn off, forming a specific shape portion 531 as a convex gate mark.
[0040] When the fixed main mold 130 and the movable main mold 140 are fitted together, an annular inter-mold gap 151 is formed at the outer edge of the surface of the cylindrical cavity 150 facing the movable main mold 140, and an annular inter-mold gap 152 is formed at the inner edge. Therefore, when the abutting member 50 is molded, part of the resin filled in the cavity 150 enters the inter-mold gap 151 and the inter-mold gap 152, and when it cools and hardens, specific shaped portions 533 and 534 are formed as annular, convex burrs.
[0041] With the ejector pin 131 provided in the pin hole 132 of the fixed main mold 130, an annular pin-die gap 153 is formed between the pin hole 132 on the surface of the cavity 150 opposite the movable main mold 140 and the ejector pin 131. Therefore, when the abutting member 50 is molded, part of the resin filled in the cavity 150 enters the pin-die gap 153, and when it cools and hardens, a specific shape portion 532 is formed as an annular, convex ejector pin mark.
[0042] As explained above, <1> In this embodiment, the abutment member 50 is made of resin and has an abutment member main body 51, a contact surface portion 52 formed on the abutment member main body 51 and capable of contacting the pedal 70, and a convex or concave specific shaped portion 53 formed on the abutment member main body 51 during molding. The specific shaped portion 53 is formed at a position on the abutment member main body 51 other than the abutment surface portion 52.
[0043] The specially shaped portion 53 is formed at a position on the abutment member main body 51 other than the abutment surface portion 52. Therefore, when the driver depresses the pedal 70, the specially shaped portion 53 does not come into contact with the pedal 70, thereby suppressing the generation of vibration. This prevents vibration from being transmitted to the driver via the pedal 70, which can deteriorate the driver's pedal force feeling.
[0044] Also, <2> In this embodiment, the abutment member 50 is provided so as to be rotatable relative to the lever 40, and further has a sliding surface portion 54 formed on the abutment member body 51 and capable of sliding against other members. The specific shape portion 53 is formed at a position on the abutment member body 51 other than the sliding surface portion 54.
[0045] Therefore, when the abutting member 50 rotates, the specific shape portion 53 can be prevented from coming into contact with other members, thereby suppressing the generation of vibrations. This prevents the vibrations from being transmitted to the driver via other members and the pedal 70, thereby preventing the driver's pedal force feeling from being deteriorated.
[0046] (Second embodiment) A reaction force application device according to a second embodiment and an accelerator device to which the reaction force application device is applied are shown in Figures 7 and 8. The second embodiment differs from the first embodiment in the configurations of the reaction force application device 10 and the accelerator device 60.
[0047] In this embodiment, the pedal housing 61 of the accelerator device 60 is attached to the floor panel 2 by being fixed to the wall surface 7 of the floor panel 2 of the vehicle 1 by, for example, a mounting bolt (not shown).
[0048] The pedal 70 has a pad 71, a pedal base 72, and a pedal connection portion 73. The pedal connection portion 73 is formed of, for example, metal, and connects the pad 71 and the pedal base 72 such that one end is connected to the pad 71 and the other end is connected to the pedal base 72. The pedal base 72 is rotatably supported by the pedal housing 61 so as to rotate around the rotation axis Ax1. This allows the pedal 70 to rotate around the rotation axis Ax1.
[0049] In this embodiment, the accelerator device 60 further includes an arm 80. The arm 80 is formed, for example, by bending a long metal plate at a predetermined location (see FIG. 8). The arm 80 is attached to the pedal 70 with one end connected to the pedal base 72. This allows the arm 80 to rotate together with the pedal 70 around the rotation axis Ax1.
[0050] In this embodiment, the actuator housing 11 of the reaction force applying device 10 is attached to the floor panel 2 via the base 9 by being fixed to the base 9 provided on the wall surface 7 of the floor panel 2 of the vehicle 1, for example, by a mounting bolt not shown.
[0051] In this embodiment, the reaction force application device 10 has a lever body 41 of a lever 40 that is shorter than that of the first embodiment.
[0052] 7, reaction force applying device 10 is provided so that the outer peripheral wall of abutment member 50 can abut against the surface of arm 80 of accelerator device 60 on the side opposite floor panel 2, and can be separated from the surface of arm 80 on the side opposite floor panel 2. In this way, reaction force applying device 10 can apply reaction force F2 in response to driver's depression force F1 to pedal 70 from lever 40, which rotates by driving force from actuator 20, via abutment member 50 and arm 80.
[0053] Other than the above-mentioned configuration, this embodiment is the same as the first embodiment. Therefore, the same configuration as the first embodiment can achieve the same effects as the first embodiment (the same applies below).
[0054] (Third embodiment) A part of a reaction force applying device of the third embodiment is shown in Figures 9 to 11. The third embodiment differs from the first embodiment in the configuration of the contact member 50.
[0055] In this embodiment, the abutment member main body 51 has a main body shaft portion 56 and a main body flange portion 57. The main body shaft portion 56 is formed in a substantially cylindrical shape. The main body flange portion 57 is formed integrally with the main body shaft portion 56 so as to extend in an annular shape radially outward from the end of the main body shaft portion 56 on the retaining portion 46 side.
[0056] The specially shaped portion 531 is a convex gate mark formed on the contact member main body 51 during molding, and is formed on the outer edge of the end face of the main body flange portion 57 on the retaining portion 46 side (see FIGS. 9 and 10). The specially shaped portion 532 is an annular, convex ejector pin mark formed on the contact member main body 51 during molding, and is formed on the outer edge of the end face of the main body flange portion 57 on the retaining portion 46 side (see FIGS. 9 and 10). Three specially shaped portions 532 are formed at equal intervals around the circumferential direction of the main body flange portion 57 (see FIG. 10). The specially shaped portion 533 is an annular, convex burr formed on the contact member main body 51 during molding, and is formed so as to protrude radially outward from the end of the main body flange portion 57 on the opposite side from the retaining portion 46 (see FIGS. 9 to 11).
[0057] The specific shape portions 531 and 532 are formed radially outward of the retaining portion 46 (see FIG. 9).
[0058] In this embodiment, contact surface 52, which is a surface that can come into contact with pedal 70, is formed on the entire outer peripheral wall of main body shaft 56 on the side opposite retaining portion 46 with respect to main body flange 57 (see FIGS. 9 and 11). Sliding surface 541, which is a surface that can slide against retaining portion 46 (as another member), is formed in an annular shape on the inner edge of the end face of main body flange 57 on the retaining portion 46 side (see FIGS. 9 and 10). Sliding surface 542, which is a surface that can slide against lever body 41 of lever 40 (as another member), is formed in an annular shape on the end face of main body shaft 56 opposite to main body flange 57 (see FIGS. 9 and 11).
[0059] In this way, the specially shaped portion 53 is formed at a position on the abutment member main body 51 other than the abutment surface portion 52 and other than the sliding surface portion 541 and the sliding surface portion 542. Therefore, when the driver depresses the pedal 70, the specially shaped portion 53 does not come into contact with the pedal 70, thereby suppressing the generation of vibration. Furthermore, when the abutment member 50 rotates, the specially shaped portion 53 is prevented from coming into contact with other members, thereby suppressing the generation of vibration. As a result, as in the first embodiment, it is possible to suppress the transmission of vibration to the driver via the pedal 70 and the deterioration of the driver's pedal force feeling.
[0060] (Fourth embodiment) A part of a reaction force applying device of the fourth embodiment is shown in Figures 12 to 14. The fourth embodiment differs from the first embodiment in the configuration of the contact member 50.
[0061] In this embodiment, the abutment member 50 has a component recess 553, a component recess 554, and a component recess 555. The component recess 553 is formed in an annular shape so as to be recessed in the axial direction from the outer edge of the end face of the abutment member main body 51 opposite the lever main body 41 (see FIGS. 12 and 13). The depth of the component recess 553 is greater than the depth d3 of the component recess 553 of the first embodiment (see FIGS. 3 and 12). The inner diameter of the component recess 553 is smaller than the outer diameter of the retaining portion 46. Therefore, the radial width of the component recess 553 is approximately the same as the radial width of the abutment member main body 51. The component recess 554 is formed in an annular shape so as to be recessed in the axial direction from the inner edge of the end face of the abutment member main body 51 opposite the lever main body 41 (see FIGS. 12 and 13). The component recess 555 is formed in an annular shape so as to be recessed in the axial direction from the outer edge of the end face of the abutting member main body 51 on the lever main body 41 side (see FIGS. 12 and 14). The depth of the component recess 555 is greater than the depth d2 of the component recess 552 of the first embodiment (see FIGS. 3 and 12). The inner diameter of the component recess 555 is approximately the same as the inner diameter of the component recess 553. The inner edge of the end face of the abutting member main body 51 on the lever main body 41 side is chamfered (see FIGS. 12 and 14).
[0062] The specific shaped portion 531 is a convex gate mark formed on the abutting member main body 51 during molding, and is formed on the bottom surface of the component recess 553 (see FIGS. 12 and 13). The specific shaped portion 532 is an annular, convex ejector pin mark formed on the abutting member main body 51 during molding, and is formed on the bottom surface of the component recess 553 (see FIGS. 12 and 13). Three specific shaped portions 532 are formed at equal intervals around the circumferential direction of the component recess 553 (see FIG. 12). The specific shaped portion 533 is an annular, convex burr formed on the abutting member main body 51 during molding, and is formed so as to protrude from the outer edge of the component recess 553 to the opposite side from the lever main body 41 (see FIGS. 12 and 13).
[0063] In this embodiment, the contact surface portion 52, which is a surface that can contact the pedal 70, is formed on the entire outer peripheral wall of the contact member main body 51 between the member recess 553 and the member recess 555 (see FIGS. 12 and 13). The sliding surface portion 541, which is a surface that can slide against the retaining portion 46 (as another member), is formed in an annular shape between the member recess 553 and the member recess 554 (see FIGS. 12 and 13). The sliding surface portion 542, which is a surface that can slide against the lever main body 41 of the lever 40 (as another member), is formed in an annular shape on the radially inner side of the member recess 555 (see FIGS. 12 and 14).
[0064] In this way, the specific shape portion 53 is formed at a position other than the contact surface portion 52 of the contact member main body 51 and other than the sliding surface portion 541 and the sliding surface portion 542.
[0065] In this embodiment, the areas of the contact surface portion 52, the sliding surface portion 541, and the sliding surface portion 542 are smaller than those in the first embodiment (see FIGS. 3 to 5 and 12 to 14). Therefore, the sliding torque between the contact member 50 and another member can be reduced.
[0066] (Fifth embodiment) A part of a reaction force application device of the fifth embodiment is shown in Figures 15 to 17. The fifth embodiment differs from the first embodiment in the configuration of the abutting member 50.
[0067] <3> The abutting member 50 further has a fixing portion 58 that can fix the abutting member main body 51 to the lever 40. The fixing portion 58 is provided at a position on the abutting member 50 other than the abutting surface portion 52.
[0068] <4> The specific shape portion 53 is formed at a position where it does not come into contact with the fixed portion 58 .
[0069] More specifically, in this embodiment, the fixing portion 58 is provided on the inner peripheral wall of the abutment member main body 51. The inner diameter of the abutment member main body 51 is smaller than the outer diameter of the lever other end 43. The abutment member 50 is fixed by press-fitting or bonding so as to be unrotatable relative to the lever other end 43 and unmovable relative to the lever other end 43 in the axial direction.
[0070] In this embodiment, the abutment member 50 is provided so as to be unable to rotate relative to the lever other end 43, which prevents the abutment member 50 from sliding against the retaining portion 46, which serves as another member, and the lever body 41 of the lever 40. Therefore, the abutment member body 51 does not have the sliding surface portion 54 shown in the first embodiment (see FIGS. 15 to 17).
[0071] Furthermore, since the abutment member 50 is arranged so as not to be rotatable relative to the other end 43 of the lever, the abutment surface portion 52, which is a surface that can abut against the pedal 70, is set within a predetermined circumferential range R1 of the outer wall of the abutment member main body 51 (see Figures 15 to 17).
[0072] In this embodiment, when the driver depresses the pedal 70, the contact member 50 can slide relative to the pedal 70.
[0073] In this way, the specific shape portion 53 is formed in a position other than the contact surface portion 52 of the contact member main body 51 and at a position that does not come into contact with the fixed portion 58.
[0074] As explained above, <3> In this embodiment, the abutting member 50 further has a fixing portion 58 that can fix the abutting member main body 51 to the lever 40. The fixing portion 58 is provided at a position on the abutting member 50 other than the abutting surface portion 52.
[0075] Therefore, when the driver depresses the pedal 70, the fixed portion 58 does not come into contact with the pedal 70, thereby suppressing the generation of vibrations. This prevents vibrations from being transmitted to the driver via the pedal 70, which can worsen the driver's feeling of pedal force.
[0076] Also, <4> In this embodiment, the specific shape portion 53 is formed at a position where it does not come into contact with the fixed portion 58 .
[0077] Therefore, the fixed state between the contact member main body 51 and the lever 40 by the fixing portion 58 can be stabilized.
[0078] (Sixth embodiment) A part of a reaction force application device of the sixth embodiment is shown in Figures 18 and 19. The sixth embodiment differs from the fifth embodiment in the configuration of the contact member 50.
[0079] In this embodiment, the member recess 551 is not annular but is simply recessed in the axial direction from the end face of the contact member main body 51 opposite to the lever main body 41 (see FIG. 18). The specific shape portion 531 is formed on the bottom surface of the member recess 551.
[0080] In this embodiment, the member recess 552 is not annular but is simply recessed in the axial direction from the end face of the contact member main body 51 on the lever main body 41 side (see FIG. 19). Three member recesses 552 are formed at equal intervals in the circumferential direction of the contact member main body 51. The specific shape portion 532 is formed on the bottom surface of each of the three member recesses 552.
[0081] In this way, the member recesses 551 and 552 may be provided only around the specific shape portions 531 and 532 .
[0082] (Seventh embodiment) A part of a reaction force application device of the seventh embodiment is shown in Figures 20 to 22. The seventh embodiment differs from the first embodiment in the configuration of the contact member 50.
[0083] In this embodiment, the abutting member 50 does not have a member recess 551, a member recess 552, a member recess 553, or a member recess 554, but has a member flat portion 59. The member flat portion 59 is formed in a flat shape so as to be recessed from the outer peripheral wall at a portion of the circumferential direction of the abutting member main body 51.
[0084] The abutment member main body 51 is formed with a component through-hole 501 that connects the inner peripheral wall and the component flat portion 59. Two component through-holes 501 are formed with a predetermined gap in the axial direction of the abutment member main body 51. The lever other end 43 is formed with a lever hole 432 that is recessed radially inward from the outer peripheral wall. Similar to the component through-holes 501, two lever holes 432 are formed with a predetermined gap in the axial direction of the lever other end 43. In this embodiment, a retaining portion 46 is not provided.
[0085] <3> In this embodiment, the fixing portion 58 is, for example, a screw, and has a fixing portion head 581 and a fixing portion shank 582. The fixing portion head 581 is formed in a substantially circular plate shape. The fixing portion shank 582 is formed to extend axially from the center of the fixing portion head 581. The fixing portion 58 is provided so that the fixing portion shank 582 passes through the member through-hole 501 of the abutting member 50 and threadably engages with the lever hole 432 of the lever other end 43. As a result, the abutting member 50 is fixed to the lever other end 43 so as to be unable to rotate relative to the lever other end 43 and unable to move relative to the lever other end 43 in the axial direction.
[0086] <4> The specific shaped portion 531 is a convex gate mark formed on the abutment member body 51 during molding, and is formed on the end face of the abutment member body 51 on the lever body 41 side (see Figures 20 and 22). The specific shaped portion 533 is an annular convex burr formed on the abutment member body 51 during molding, and is formed so as to protrude from the outer edge of the end face of the abutment member body 51 on the lever body 41 side toward the lever body 41 side (see Figures 20 and 22).
[0087] In this embodiment, the abutting member 50 is provided so as to be immovable relative to the other end portion 43 of the lever in the axial direction, and therefore the specific shape portion 531 and the specific shape portion 533 do not come into contact with the lever main body 41.
[0088] In this way, the specific shape portion 53 is formed in a position other than the contact surface portion 52 of the contact member main body 51 and at a position that does not come into contact with the fixed portion 58.
[0089] (Eighth embodiment) A part of a reaction force application device of the eighth embodiment is shown in Fig. 23. The eighth embodiment differs from the fifth embodiment in the configuration of the contact member 50.
[0090] In this embodiment, the abutment member 50 does not have the member recess 551, the member recess 552, the member recess 553, or the member recess 554, and the abutment member main body 51 is formed in a simple cylindrical shape. In addition, the retaining portion 46 is not provided.
[0091] <4> The specific shaped portion 531 is a convex gate mark formed on the abutment member body 51 during molding, and is formed on the end face of the abutment member body 51 opposite the lever body 41 (see FIG. 23). The specific shaped portion 533 is an annular convex burr formed on the abutment member body 51 during molding, and is formed so as to protrude radially outward from the end of the abutment member body 51 opposite the lever body 41 (see FIG. 23).
[0092] In this embodiment, the fixing portion 58 prevents the abutment member 50 from moving axially relative to the other end portion 43 of the lever, and therefore the abutment surface portion 52, which is a surface that can abut against the pedal 70, is set in a predetermined range R2 on the lever main body 41 side in the axial direction of the outer wall of the abutment member main body 51 (see Figure 23).
[0093] In this way, the specific shape portion 53 is formed in a position other than the contact surface portion 52 of the contact member main body 51 and at a position that does not come into contact with the fixed portion 58.
[0094] (Ninth embodiment) A part of the reaction force applying device of the ninth embodiment is shown in Figures 24 and 25. The ninth embodiment differs from the fifth embodiment in the configurations of the contact member 50 and the retaining portion 46.
[0095] In this embodiment, the abutting member 50 does not have the member recess 552 but has a member recess 558 .
[0096] The component recess 551 is formed in an annular shape so as to be recessed in the axial direction from the end face of the abutting member main body 51 facing the lever main body 41 (see FIG. 24). The component recess 553 is formed in an annular shape so as to be recessed in the axial direction from the outer edge of the end face of the abutting member main body 51 facing the lever main body 41 (see FIG. 24). The component recess 554 is formed in an annular shape so as to be recessed in the axial direction from the inner edge of the end face of the abutting member main body 51 facing the lever main body 41 (see FIG. 24). The outer edge of the end face of the abutting member main body 51 opposite to the lever main body 41 is chamfered (see FIG. 24).
[0097] <4> The specific shaped portion 531 is a convex gate mark formed on the abutting member main body 51 during molding, and is formed on the bottom surface of the component recess 551 (see FIG. 24). The specific shaped portion 533 is an annular, convex burr formed on the abutting member main body 51 during molding, and is formed so as to protrude from the outer edge of the component recess 553 towards the lever main body 41 (see FIG. 24). The specific shaped portion 534 is an annular, convex burr formed on the abutting member main body 51 during molding, and is formed so as to protrude from the inner edge of the component recess 554 towards the lever main body 41 (see FIG. 24).
[0098] The member recesses 558 are formed so as to be recessed in the axial direction from the end face of the contact member main body 51 opposite to the lever main body 41 (see FIGS. 24 and 25). Four member recesses 558 are formed at equal intervals in the circumferential direction of the contact member main body 51 (see FIG. 25).
[0099] <4> The specific shaped portions 532 are annular, convex ejector pin marks formed on the contact member body 51 during molding, and are formed on the bottom surface of the member recess 558 (see FIGS. 24 and 25). Therefore, four specific shaped portions 532 are formed at equal intervals in the circumferential direction of the contact member body 51 (see FIG. 25).
[0100] In this embodiment, the retaining portion 46 has a retaining portion main body 461 and anti-rotation projections 462. The retaining portion main body 461 is formed in the shape of an annular plate. The anti-rotation projections 462 are formed to protrude in the axial direction from the inner edge of the retaining portion main body 461 (see FIG. 24). Four anti-rotation projections 462 are formed at equal intervals around the circumferential direction of the retaining portion main body 461 (see FIG. 25).
[0101] The retaining portion 46 is provided so as to be unable to rotate relative to the lever other end 43 and unable to move relative to the lever other end 43 in the axial direction, with the anti-rotation protrusion 462 fitting into the member recess 558 and the inner edge of the retaining portion main body 461 being press-fit into the lever other end 43. As a result, the abutting member 50 is sandwiched between the lever main body 41 and the retaining portion 46, with the end face of the abutting member main body 51 facing the lever main body 41 abutting against the lever main body 41 and the end face opposite the lever main body 41 abutting against the retaining portion main body 461. Furthermore, because the anti-rotation protrusion 462 fits into the member recess 558, relative rotation of the abutting member 50 with respect to the lever other end 43 can be reliably restricted.
[0102] The distance between the bottom surface of the component recess 558 and the anti-rotation protrusion 462 is greater than the protruding height of the specific shaped portion 532 (see FIG. 24).
[0103] In this way, the specific shape portion 53 is formed in a position other than the contact surface portion 52 of the contact member main body 51 and at a position that does not come into contact with the fixed portion 58.
[0104] (Tenth embodiment) A part of the reaction force applying device of the tenth embodiment is shown in Figures 26 and 27. The tenth embodiment differs from the ninth embodiment in the configurations of the contact member 50 and the retaining portion 46.
[0105] In this embodiment, the abutting member 50 does not have a member recess 558 .
[0106] In this embodiment, the retaining portion 46 is formed integrally with the lever other end 43 so as to extend radially outward in an annular shape from the end of the lever other end 43 opposite the lever body 41. The retaining portion 46 is formed, for example, by crimping. As a result, the abutting member 50 is sandwiched between the lever body 41 and the retaining portion 46 so that the end face of the abutting member body 51 facing the lever body 41 abuts against the lever body 41 and the end face opposite the lever body 41 abuts against the retaining portion 46.
[0107] <4> The specially shaped portions 532 are formed radially outward of the retaining portion 46 on the end face of the contact member body 51 opposite the lever body 41 (see FIGS. 26 and 27). Four specially shaped portions 532 are formed at equal intervals in the circumferential direction of the contact member body 51 (see FIG. 27).
[0108] In this way, the specific shape portion 53 is formed in a position other than the contact surface portion 52 of the contact member main body 51 and at a position that does not come into contact with the fixed portion 58.
[0109] (Other embodiments) In the above-described embodiment, the specific shaped portion is a convex gate mark, a circular convex ejector pin mark, or a circular convex burr formed on the contact member body during molding. In contrast, in other embodiments, the specific shaped portion may be a parting step, a concave portion, or the like formed on the contact member body during molding.
[0110] In other embodiments, the number of specifically shaped portions formed on the abutting member may be set depending on the size, shape, type of material, etc. of the abutting member. In the sixth embodiment, three component recesses 552 are formed in the bottom surface of which specifically shaped portions 532 as ejector pin marks are formed, and in the ninth embodiment, an example is shown in which four component recesses 558 are formed in which specifically shaped portions 532 are formed in the bottom surface and into which anti-rotation protrusions 462 can fit. In contrast to this, in other embodiments, the number of component recesses such as component recesses 552 and component recesses 558 may be formed depending on the number of specifically shaped portions, etc. to be formed.
[0111] In other embodiments, the wall surface of the floor panel of the vehicle to which the reaction force application device and the accelerator device are attached does not have to be formed parallel to the yz plane, that is, the wall surface of the floor panel may be formed at any angle relative to the vehicle.
[0112] Furthermore, the reaction force applying device and accelerator device according to the present invention can also be applied to vehicles other than automobiles.
[0113] As such, the present disclosure is not limited to the above-described embodiments, and can be implemented in various forms without departing from the spirit of the present disclosure. [Explanation of symbols]
[0114] 10 reaction force applying device, 20 actuator, 40 lever, 50 contact member, 51 contact member main body, 52 contact surface portion, 53 specific shape portion, 60 accelerator device, 70 pedal, 80 arm
Claims
1. A reaction force applying device capable of applying a reaction force to an accelerator pedal (70) operated by a driver against a depression force of the driver, the reaction force applying device comprising: an actuator (20) that generates a driving force when energized; a lever (40) that rotates by a driving force from the actuator and is capable of applying the reaction force to the pedal or an arm (80) that rotates together with the pedal; an abutment member (50) provided on the lever so as to be able to abut against the pedal or the arm or to be able to move away from the pedal or the arm; The lever has a rod-shaped lever body (41), a lever one end (42) provided at one end of the lever body to which a driving force from the actuator is input, and a lever other end (43) provided at the other end of the lever body, The abutment member is made of resin and has a cylindrical abutment member body (51), an abutment surface portion (52) formed in a specific range on the outer circumferential surface of the abutment member body and capable of abutting against the pedal or the arm, and a specific convex or concave shaped portion (53) formed on the abutment member body during molding, and is attached to the lever so that the other end of the lever is inserted inside the abutment member body, the specific shape portion is formed at a position other than the contact surface portion of the contact member main body, The abutment member is provided so as to be rotatable relative to the other end of the lever, and further has a sliding surface portion (54) formed in a specific range on the axial end surface of the abutment member body and capable of sliding against another member, The reaction force applying device, wherein the specific shape portion is formed at a position on the contact member main body other than the sliding surface portion.
2. A reaction force applying device capable of applying a reaction force to an accelerator pedal (70) operated by a driver against a depression force of the driver, the reaction force applying device comprising: an actuator (20) that generates a driving force when energized; a lever (40) that rotates by a driving force from the actuator and is capable of applying the reaction force to the pedal or an arm (80) that rotates together with the pedal; an abutment member (50) provided on the lever so as to be able to abut against the pedal or the arm or to be able to move away from the pedal or the arm; The lever has a rod-shaped lever body (41), a lever one end (42) formed integrally with the lever body at one end of the lever body and to which a driving force from the actuator is input, and a lever other end (43) formed integrally with the lever body at the other end of the lever body, The abutment member is made of resin and has a cylindrical abutment member body (51), an abutment surface portion (52) formed in a specific range on the outer circumferential surface of the abutment member body and capable of abutting against the pedal or the arm, and a specific convex or concave shaped portion (53) formed on the abutment member body during molding, and is attached to the lever so that the other end of the lever is inserted inside the abutment member body, the specific shape portion is formed at a position other than the contact surface portion of the contact member main body, The abutment member further has a fixing portion (58) that can fix the abutment member body to the other end of the lever so that the abutment member body cannot rotate relative to the other end of the lever, The fixing portion is a reaction force applying device provided at a position other than the contact surface portion of the contact member.
3. The reaction force applying device according to claim 2 , wherein the specific shape portion is formed at a position that does not contact the fixed portion.
4. The abutment member has a member recess (551, 552, 553, 554, 555, 558) formed to be recessed from the axial end face of the abutment member body, 4. The reaction force applying device according to claim 1, wherein at least a part of the specific shape portion is formed on a bottom surface of the member recess.
5. A reaction force imparting device as described in Claim 4, wherein the depth of the member recess is greater than the protruding height of the specific shape portion.
Citation Information
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