Control pedal device
The control pedal device addresses accuracy issues by integrating targets and sensor elements on a rotating shaft within sealed chambers, enhancing precision and reducing interference from component variations and foreign matter.
Patent Information
- Application Number
- JP2024518070
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-12-07
- Filing Date
- 2023-04-28
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2043-04-28
AI Technical Summary
Existing control pedal devices suffer from reduced displacement detection accuracy due to dimensional and assembly variations in components connected to the pedal arm, affecting the precision of the second stroke sensor.
A control pedal device with a rotating shaft integrated to multiple targets and sensor elements that directly detect the shaft's rotation, minimizing interference from dimensional and assembly variations, and incorporating sealed sensor chambers to prevent foreign matter from affecting detection accuracy.
Enhances pedal displacement detection accuracy by reducing the impact of component variations and foreign matter, ensuring precise operation of the brake-by-wire system.
Smart Images

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Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on Japanese Patent Application No. 2022-075559 filed on April 29, 2022, Japanese Patent Application No. 2022-075558 filed on April 29, 2022, and International Application No. PCT / JP2022 / 045140 filed on December 7, 2022, the contents of which are incorporated herein by reference. [Technical Field]
[0002] The present disclosure relates to a control pedal device. [Background technology]
[0003] Patent Document 1 describes a control pedal device equipped with two displacement sensors that detect pedal displacement. Specifically, it describes a first stroke sensor provided at the fulcrum of the brake pedal and a second stroke sensor provided on a stroke simulator. The second stroke sensor is connected to the pedal arm via multiple components, including the stroke simulator and an operation rod. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 6747282 Summary of the Invention
[0005] According to the inventors' investigations, the second stroke sensor of Patent Document 1 detects pedal displacement using a stroke simulator connected to the pedal arm via multiple components, which can result in insufficient displacement detection accuracy. In other words, the output signal of the second stroke sensor may deviate from the actual pedal pad operation amount depressed by the driver. This is because the second stroke sensor is affected by dimensional variations and assembly variations of these multiple components. The present disclosure aims to reduce the possibility of a decrease in pedal displacement detection accuracy due to dimensional variations and assembly variations of the multiple components in a control pedal device.
[0006] According to one aspect of the present disclosure, a control pedal apparatus for a vehicle includes: A pedal to receive the operation; a pedal arm attached to the pedal and moving with the pedal; 、 a rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism that applies a reaction force to the pedal against the operation of the pedal; a plurality of targets attached to the rotation shaft and rotating together with the rotation shaft; and a plurality of sensor elements for detecting rotation of the plurality of targets.
[0007] In this way, multiple targets are attached to the rotating shaft and rotate together with the rotating shaft, and multiple sensor elements detect the rotation of these targets. Because detection is performed using multiple targets that directly reflect the rotation of the rotating shaft, the possibility that factors such as dimensional variations and assembly variations of multiple parts will interfere with the detection process of the rotation of the rotating shaft is reduced. Therefore, the possibility of a decrease in the detection accuracy of the pedal displacement is reduced.
[0008] According to another aspect of the present disclosure, there is provided a control pedal device for a vehicle, comprising: A pedal to receive the operation; a pedal arm attached to the pedal and moving with the pedal; 、 a rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism that applies a reaction force against the operation of the pedal, A structure is formed to which a member having a plurality of targets attached to the rotary shaft and rotating together with the rotary shaft, and a plurality of sensor elements for detecting the rotation of the plurality of targets can be attached.
[0009] In this way, a structure is formed in which multiple targets that are attached to the rotating shaft and rotate with the rotating shaft, and multiple sensor elements that detect the rotation of those targets, can be attached. Therefore, in the control pedal device after these are attached, the possibility that factors such as dimensional variations and assembly variations of multiple parts will interfere with the process of detecting the rotation of the rotating shaft is reduced, thereby reducing the possibility of a decrease in the detection accuracy of the pedal displacement.
[0010] The reference symbols in parentheses attached to each component indicate an example of the correspondence between the component and the specific components described in the embodiments described below. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a side view of a brake pedal device according to a first embodiment. [Figure 2] FIG. 2 is a view of the brake pedal device taken along an arrow II. [Figure 3] FIG. 3 is a cross-sectional view taken along the line III-III in FIG. [Figure 4] FIG. 4 is a cross-sectional view taken along line IV-IV of FIG. 2. [Figure 5] FIG. 4 is a cross-sectional view taken along the same cross section as FIG. 3 according to the second embodiment. [Figure 6] FIG. 4 is a cross-sectional view taken along the same cross section as FIG. 3 according to a third embodiment. [Figure 7] FIG. 10 is a cross-sectional view taken along the same cross section as FIG. 3 according to a fourth embodiment. [Figure 8] FIG. 10 is a cross-sectional view taken along the same cross section as FIG. 3 according to the fifth embodiment. [Figure 9] FIG. 10 is a cross-sectional view taken along the same cross section as FIG. 3 according to the sixth embodiment. [Figure 10] FIG. 11 is a cross-sectional view taken along the same cross section as FIG. 3 according to the seventh embodiment. [Figure 11] FIG. 13 is a cross-sectional view taken along the same cross section as FIG. 3 according to the eighth embodiment. [Figure 12] FIG. 13 is a cross-sectional view taken along the same cross section as FIG. 4 according to the ninth embodiment. [Figure 13] 13 is a cross-sectional view taken along the line XIII-XIII in FIG. 12. [Figure 14] FIG. 13 is a cross-sectional view taken along the same cross section as FIG. 4 according to the tenth embodiment. [Figure 15] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 4 according to the eleventh embodiment. [Figure 16] FIG. 23 is a side view of a brake pedal device according to a twelfth embodiment. [Figure 17] 17 is a cross-sectional view taken along the line XVII-XVII in FIG. 16. [Figure 18] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the thirteenth embodiment. [Figure 19] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the fourteenth embodiment. [Figure 20] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the fifteenth embodiment. [Figure 21] FIG. 20 is a cross-sectional view taken along the same cross section as FIG. 3 according to the sixteenth embodiment. [Figure 22] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the seventeenth embodiment. [Figure 23] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the eighteenth embodiment. [Figure 24] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to a modified example of the eighteenth embodiment. [Figure 25] FIG. 22 is a cross-sectional view taken along the same cross section as FIG. 3 according to the 19th embodiment. [Figure 26] FIG. 4 is a cross-sectional view taken along the same cross section as in FIG. 3 in a state where the first sensing unit and the second sensing unit are not attached. [Figure 27]FIG. 20 is a partial cross-sectional view of the same cross section as FIG. 3 according to the twentieth embodiment. [Figure 28] 28 is an enlarged view of a portion XXVIII of FIG. 27, which is a cross-sectional view parallel to the axis of the rotation shaft in the inductive sensor. [Figure 29] 29 is a cross-sectional view taken along line XXIX-XXIX in FIG. 28. [Figure 30] FIG. 19 is a diagram showing a state in which the first target has fallen off in the inductive sensor according to the twentieth embodiment. [Figure 31] FIG. 10 is a cross-sectional view parallel to the axis of a rotation shaft in an inductive sensor of a comparative example. [Figure 32] 28 is a cross-sectional view showing a portion corresponding to FIG. 27 in a brake pedal device equipped with an inductive sensor according to a twenty-first embodiment. [Figure 33] 33 is an enlarged view of a portion XXXIII of FIG. 32, and is a cross-sectional view parallel to the axis of the rotation shaft in the inductive sensor according to the twenty-first embodiment. [Figure 34] FIG. 22 is a cross-sectional view parallel to the axis of the rotation shaft in the inductive sensor according to the twenty-second embodiment. [Figure 35] 35 is a cross-sectional view taken along line XXXV-XXXV in FIG. 34. [Figure 36] 36 is a cross-sectional view taken along line XXXVI-XXXVI in FIG. 34. [Figure 37] FIG. 23 is a cross-sectional view parallel to the axis of the rotation shaft in the inductive sensor according to the twenty-third embodiment. [Figure 38] 38 is a cross-sectional view taken along line XXXVIII-XXXVIII in FIG. 37. [Figure 39] 38 is a cross-sectional view taken along line XXXIX-XXXIX in FIG. 37. [Figure 40] 28 is a cross-sectional view showing a portion corresponding to FIG. 27 in a brake pedal device provided with an inductive sensor according to a twenty-fourth embodiment. FIG. [Figure 41] FIG. 41 is an enlarged view of the LIX portion of FIG. 40. [Figure 42] 42 is a cross-sectional view taken along line LX-LX in FIG. 41. [Figure 43]43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device provided with an inductive sensor according to a 25th embodiment. FIG. [Figure 44] 43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device provided with an inductive sensor according to a 26th embodiment. FIG. [Figure 45] 42 is a cross-sectional view showing a portion corresponding to FIG. 41 in a brake pedal device provided with an inductive sensor according to a 27th embodiment. FIG. [Figure 46] FIG. 43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device equipped with an inductive sensor according to the 28th embodiment, illustrating the state of the inductive sensor when the brake pedal is in its initial position. [Figure 47] FIG. 43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device equipped with an inductive sensor according to the 28th embodiment, illustrating the state of the inductive sensor when the brake pedal is in the maximum depression position. [Figure 48] 44 is a cross-sectional view showing a portion corresponding to FIG. 43 in a brake pedal device equipped with an inductive sensor of a second comparative example, showing the state of the inductive sensor when the brake pedal is in its initial position. FIG. [Figure 49] FIG. 43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device equipped with an inductive sensor of a second comparative example, showing a state in which the rotation shaft is eccentric when the brake pedal is in the initial position. [Figure 50] FIG. 43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device equipped with an inductive sensor according to a 29th embodiment, illustrating the state of the inductive sensor when the brake pedal is in its initial position. [Figure 51] FIG. 29 is a cross-sectional view showing a portion corresponding to FIG. 28 in a brake pedal device provided with an inductive sensor according to a 29th embodiment. [Figure 52]43 is a cross-sectional view showing a portion corresponding to FIG. 42 in a brake pedal device equipped with an inductive sensor of a third comparative example, showing the state of the inductive sensor when the brake pedal is in its initial position. FIG. [Figure 53] FIG. 53 is a cross-sectional view showing a portion corresponding to FIG. 52 in a brake pedal device equipped with an inductive sensor of a third comparative example, illustrating a state in which the rotation shaft is eccentric when the brake pedal is in the initial position. [Figure 54] FIG. 30 is a partial cross-sectional view of the same cross section as FIG. 3 according to the 30th embodiment. [Figure 55] FIG. 55 is a cross-sectional view taken along the line LV-LV in FIG. 54. [Figure 56] FIG. 31 is a partial cross-sectional view taken along the same cross section as FIG. 3 according to the thirty-first embodiment. [Figure 57] FIG. 57 is a cross-sectional view of the position detecting device taken along line LVII-LVII in FIG. 56. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present disclosure will be described. In the following embodiments, parts that are the same as or equivalent to those described in the preceding embodiments will be given the same reference numerals, and their description may be omitted. Furthermore, in the embodiments, when only some of the components are described, the components described in the preceding embodiments can be applied to the remaining components. The following embodiments can be partially combined with each other, as long as there is no particular problem with the combination, even if not specifically stated.
[0013] (First embodiment) First, a first embodiment will be described. FIGS. 1 to 4 show a pendant-type brake pedal device 1 for a vehicle according to this embodiment. A vehicle is a vehicle that runs on wheels. Examples of vehicles include passenger cars, commercial vehicles, agricultural and construction machinery, and small mobility vehicles. This brake pedal device 1 is mounted on the vehicle and receives a brake operation (e.g., a foot depression operation or a foot release operation) for braking the vehicle by the driver of the vehicle. The brake pedal device 1 then outputs an operation amount signal corresponding to the amount of the received brake operation to a brake control circuit (not shown). The brake control circuit controls a brake actuator (not shown) (e.g., an electric pump that adjusts hydraulic pressure in a hydraulic brake circuit) according to this operation amount signal. In this way, the brake pedal device 1 is a device for realizing a brake-by-wire system.
[0014] As shown in FIGS. 1 to 4, the brake pedal device 1 includes a housing 10, a pedal 11, a pedal arm 12, a rotary shaft 13, a reaction force generating mechanism 15, a first sensing unit 20, and a second sensing unit 30.
[0015] The housing 10 is a casing that accommodates the rotating shaft 13 and the reaction force generating mechanism 15. The brake pedal device 1 is installed in the vehicle by fixing the housing 10 to a dash panel or the like, which is a partition separating the interior and exterior of the vehicle compartment, with fastening members such as bolts (not shown). The vehicle up-and-down direction DR1, the vehicle fore-and-aft direction DR2, and the vehicle width direction DR3 when the brake pedal device 1 is installed in the vehicle are as shown in Figures 1 and 2. The housing 10 also has surrounding portions 10a and 10b that rotatably surround the rotating shaft 13. The surrounding portions 10a and 10b rotatably support the rotating shaft 13. Therefore, the surrounding portions 10a and 10b are bearing portions.
[0016] The pedal 11 is a plate-shaped member that receives the brake operation by the vehicle driver. The pedal 11 is fixed to a pedal arm 12. The pedal arm 12 is made of a member such as a highly rigid resin, and is fixed to the pedal 11 at one end in the longitudinal direction and to a rotating shaft 13 at the other end. The pedal 11 and the pedal arm 12 may be formed separately and then fixed to each other, or may be formed integrally.
[0017] The rotating shaft 13 is a rod-shaped member extending along the axis CL, and is journaled at both longitudinal ends by the surrounding portions 10a, 10b of the housing 10, thereby enabling the rotating shaft 13 to rotate about the axis CL relative to the housing 10. The axis CL extends generally along the vehicle width direction DR3.
[0018] With this structure, when the driver performs a braking operation such as pressing down on the pedal 11 and then releasing the pedal, the pedal 11, pedal arm 12, and rotating shaft 13 swing together around the axis CL according to the type of braking operation.
[0019] The reaction force generating mechanism 15 is a mechanism that generates a force (i.e., a reaction force) that resists the braking operation of depressing the pedal 11. As described above, since the brake pedal device 1 is used in a brake-by-wire system, the pedal 11 does not receive a reaction force from the master cylinder of the brake hydraulic circuit. The reaction force generating mechanism 15 generates a reaction force that replaces the reaction force from the master cylinder. The reaction force generating mechanism 15 has one end attached to the bottom wall of the housing 10 and the other end attached to the pedal arm 12, and is disposed between the bottom wall of the housing 10 and the pedal arm 12, generating a reaction force when compressed. The reaction force generating mechanism 15 may include a metal elastic member (e.g., a spring such as a coil spring) for generating a reaction force. Alternatively, the reaction force generating mechanism 15 may include a rubber elastic member for generating a reaction force. Alternatively, the reaction force generating mechanism 15 may include a fluid damper when generating a reaction force. The fluid damper includes a cylinder filled with a viscous fluid, a piston that slides relative to the cylinder under the pressure of the viscous fluid, and a rod connected to the piston and the pedal arm 12. Alternatively, the reaction force generating mechanism 15 may include a friction hysteresis mechanism, i.e., multiple components that slide against each other to achieve friction hysteresis when a reaction force is generated. When the reaction force generating mechanism 15 generates a reaction force, sliding occurs in the reaction force generating mechanism 15. For example, one portion of a metallic elastic member slides against another portion of the elastic member. Sliding as described above also occurs in fluid dampers and friction hysteresis mechanisms. Such sliding may generate foreign matter, such as metal wear powder or rubber wear powder. In this way, the reaction force generating mechanism 15 generates both a reaction force and sliding.
[0020] The first sensing unit 20 is a unit that constitutes an inductive sensor. The first sensing unit 20 has a target 21 that rotates relative to the housing 10, and a fixed member 22 that is fixed to the housing 10. The fixed member 22 is disposed on the opposite side of the surrounding unit 10a with respect to the target 21.
[0021] The target 21 is a plate-shaped member made of a conductor such as metal. The target 21 is fixed to one longitudinal end of the rotation shaft 13 so that the plate surface of the target 21 intersects (for example, is perpendicular to) the axis CL. This allows the target 21 to rotate together with the rotation shaft 13.
[0022] The outer edge of the target 21 is asymmetrical about the axis CL. For example, the outer edge of the target 21 may have a shape in which a plurality of convex portions protruding radially outward about the axis CL and a plurality of concave portions recessed radially inward are alternately arranged in the circumferential direction about the axis CL.
[0023] The fixed member 22 is a member fixed to the housing 10, and includes a base portion 22a, a sensor element 22b, and a transmitting / receiving circuit (not shown).
[0024] The base portion 22a is a plate-shaped member. The base portion 22a is made of, for example, resin. The opposing surface of the base portion 22a, which is the plate surface on the side closer to the target 21, is disposed opposite the target 21.
[0025] The sensor element 22b is a coil for detecting magnetic fluctuations in a direction along the axis CL. Specifically, the sensor element 22b is a planar coil fixed to the inside or the opposing surface of the base portion 22a. The sensor element 22b is disposed opposite the target 21. For example, the sensor element 22b extends in a circumferential direction around the axis CL in a shape exhibiting a sine wave so as to surround the axis CL.
[0026] The transmitter-receiver circuit is an electronic circuit (e.g., an integrated circuit) connected to the sensor element 22b. The transmitter-receiver circuit may be fixed to the base portion 22a, or may be located at a position separate from the base portion 22a and connected to the sensor element 22b via a wire harness. The transmitter-receiver circuit detects a change in inductance of the sensor element 22b when an AC current is applied to the sensor element 22b, and outputs a signal corresponding to the change.
[0027] In the first sensing unit 20 configured as described above, the rotational position of the target 21 changes in accordance with the change in the rotational position of the rotating shaft 13. This change in the rotational position of the target 21 causes mutual induction between the sensor element 22b and the target 21, which changes the inductance of the sensor element 22b. The receiver-transmitter circuit outputs a signal corresponding to this change to the outside of the first sensing unit 20. Then, the rotational position of the rotating shaft 13 is identified based on this output signal.
[0028] The second sensing unit 30 is a unit that constitutes a Hall sensor. The second sensing unit 30 has a rotating member 31 that rotates relative to the housing 10 and a fixed member 32 that is fixed to the housing 10. The fixed member 32 is disposed on the opposite side of the surrounding portion 10b with respect to the rotating member 31. The rotating member 31 has a base portion 31a and a target 31b.
[0029] The base portion 31a is a plate-shaped (e.g., disc-shaped) member made of resin or the like. The base portion 31a is fixed to the other longitudinal end of the rotating shaft 13 so that the plate surface of the base portion 31a intersects (e.g., is perpendicular to) the axis CL. This allows the base portion 31a to rotate together with the rotating shaft 13.
[0030] The target 31b is fixed to the interior or surface of the base 31a and rotates integrally with the base 31a. The target 31b is made of a permanent magnet or the like that generates a magnetic field around it. This magnetic field varies as the target 31b rotates around the axis CL.
[0031] The fixed member 32 is a member fixed to the housing 10, and has a base portion 32a and a sensor element 32b. Note that "fixed" in this specification also includes a state in which the member is attached so that displacement is restricted, but there is still some play.
[0032] The base portion 32a is a plate-shaped member and is made of, for example, resin. The opposing surface of the base portion 32a, which is the plate surface closer to the target 31b, is disposed opposite the target 31b.
[0033] The sensor element 32b is a Hall element and is disposed inside or on the surface of the base portion 31a. The position and orientation of the sensor element 32b are determined so that the magnetic field generated by the target 31b penetrates the magnetically sensitive surface of the sensor element 32b. When the target 31b rotates, the magnetic flux penetrating the magnetically sensitive surface of the sensor element 32b changes. A voltage or current is applied as an input to the sensor element 32b, and when the magnetic flux penetrating the magnetically sensitive surface of the sensor element 32b changes in this state, the electromotive force generated as an output by the sensor element 32b changes. The rotational position of the rotating shaft 13 is determined based on this change in output.
[0034] In the brake pedal device 1 configured as described above, when the driver performs a braking operation such as depressing and releasing the pedal 11, the rotating shaft 13 rotates about the axis line CL as the pedal 11 displaces. Then, signals corresponding to the rotation of the rotating shaft 13 are output from the sensor element 22b of the first sensing unit 20 and the sensor element 32b of the second sensing unit 30. The output signals are input to a brake ECU (not shown), and the brake ECU controls the brake actuator based on the input signals so that a braking force corresponding to the rotational position of the rotating shaft 13 is applied to the vehicle wheels.
[0035] When the brake pedal device 1 is braked, the reaction force generating mechanism 15 expands and contracts. Specifically, when the brake pedal is depressed, it contracts, generating a stronger reaction force, and when the brake pedal is released, it expands, reducing the reaction force. This movement of the reaction force generating mechanism 15 causes sliding in the reaction force generating mechanism 15 as described above, which may result in the generation of foreign matter. If many metallic foreign matter reach the vicinity of the sensor elements 22b and 32b and the targets 21 and 31b, the detection accuracy of the rotational position of the rotating shaft 13 may deteriorate. In particular, if many metallic foreign matter reach the gap between the sensor element 22b and the target 21 and the gap between the sensor element 32b and the target 31b, the detection accuracy of the rotational position of the rotating shaft 13 may deteriorate significantly. Furthermore, even tiny rubber or resin foreign matter that is not made of metal but is emitted from the reaction force generating mechanism 15 may adversely affect the sensor element 22b and the target 21. Furthermore, foreign matter (for example, fine particles of metal, water, salt, sand, etc.) entering the inside of the housing 10 through an opening in the housing 10, which will be described later, may also adversely affect the sensor element 22b and the target 21.
[0036] Therefore, as described below, the brake pedal device 1 is configured to reduce the amount of foreign matter generated by the movement of the reaction force generating mechanism 15 that reaches the gap between the sensor element 22b and the target 21, and the gap between the sensor element 32b and the target 31b.
[0037] Here, we will explain the arrangement of each part inside the housing 10. As shown in Figures 2 to 4, a first sensor chamber R1, a second sensor chamber R2, and a mechanism chamber R3 are formed inside the housing 10. In other words, the first sensor chamber R1, the second sensor chamber R2, and the mechanism chamber R3 are separated from each other by the housing 10.
[0038] The first sensor chamber R1 has the first sensing unit 20 and the end of the rotating shaft 13 facing the first sensing unit 20 disposed therein. The entire first sensing unit 20 may be housed in the first sensor chamber R1, or only a portion of the first sensing unit 20 may be disposed in the sensor chamber R1. In the first sensor chamber R1, the base portion 22a of the fixing member 22 serves as a lid, separating the space within the first sensor chamber R1 from the outside of the housing 10.
[0039] Base portion 22a may be fixed to housing 10 with a fastening member such as a bolt, or may be fixed by press-fitting. In the latter case, base portion 22a may airtightly separate the space within first sensor chamber R1 from the outside of housing 10. When airtightly separated, the possibility of foreign matter from outside housing 10 (for example, metal, liquid such as water, or fine particles such as salt or sand) entering first sensor chamber R1 is reduced.
[0040] The second sensor chamber R2 is provided with the second sensing unit 30 and the end of the rotating shaft 13 facing the second sensing unit 30. The entire second sensing unit 30 may be housed in the second sensor chamber R2, or only a portion of the second sensing unit 30 may be disposed in the sensor chamber R2. In the second sensor chamber R2, the base portion 32a of the fixing member 32 serves as a lid, separating the space within the second sensor chamber R2 from the outside of the housing 10.
[0041] Base portion 32a may be fixed to housing 10 with a fastening member such as a bolt, or may be fixed by press-fitting. In the latter case, base portion 32a may airtightly separate the space within second sensor chamber R2 from the outside of housing 10. When airtightly separated, the possibility of foreign matter from outside housing 10 entering second sensor chamber R2 is reduced.
[0042] The mechanism compartment R3 accommodates the rotating shaft 13, the pedal arm 12, and the reaction force generating mechanism 15. The portion of the rotating shaft 13 located between the surrounding portions 10a and 10b is located in the mechanism compartment R3. The portion of the pedal arm 12 including the end on the rotating shaft 13 side is located in the mechanism compartment R3, and the portion including the end on the pedal 11 side is located outside the mechanism compartment R3. The mechanism compartment R3 opens to the outside of the housing 10. The pedal arm 12 rotates about the axis CL while protruding from the inside of the mechanism compartment R3 through this opening to the outside. Therefore, the opening in the housing 10 is wide enough to allow displacement due to rotation of the pedal arm 12. The reaction force generating mechanism 15 is located entirely in the mechanism compartment R3, but as an alternative example, only a portion of the mechanism may be located in the mechanism compartment R3.
[0043] The first sensor chamber R1 and the second sensor chamber R2 are respectively arranged on one side and the other side of the mechanism chamber R3 in the vehicle width direction DR3.
[0044] The first sensor chamber R1 and the mechanism chamber R3 are separated from each other by the surrounding portion 10a. Similarly, the second sensor chamber R2 and the mechanism chamber R3 are separated from each other by the surrounding portion 10b.
[0045] Furthermore, the gap inside the first sensor chamber R1 and the gap inside the mechanism chamber R3 are connected via a gap formed between the surrounding part 10a and the rotating shaft 13. Specifically, the gap between the target 21 and the sensor element 22b, which separates the target 21 and the sensor element 22b, is connected to the mechanism chamber R3 via a gap formed between the surrounding part 10a and the rotating shaft 13.
[0046] Similarly, the gap inside the second sensor chamber R2 and the gap inside the mechanism chamber R3 are connected via a gap formed between the surrounding part 10b and the rotating shaft 13. Specifically, the gap between the target 31b and the sensor element 32b, which separates the target 31b and the sensor element 32b, is connected to the mechanism chamber R3 via a gap formed between the surrounding part 10b and the rotating shaft 13.
[0047] In this way, the first sensing unit 20 and the second sensing unit 30 are attached to the rotary shaft 13, so that the sensor chambers R1 and R2 communicate with the mechanism chamber R3 via the surrounding portions 10a and 10b, respectively.
[0048] However, the gap cross-sectional area at the end of the first sensor chamber R1 on the encircled portion 10a side is much larger (for example, 10 times or more) than the maximum gap cross-sectional area in the encircled portion 10a. Furthermore, the gap cross-sectional area at the end of the mechanism chamber R3 on the encircled portion 10a side is much larger (for example, 10 times or more) than the maximum gap cross-sectional area in the encircled portion 10a. Here, the gap cross-sectional area refers to the area of the gap in a cross section perpendicular to the axis CL (i.e., the gap passage cross-sectional area). In this way, the encircled portion 10a narrows the gap between the mechanism chamber R3 and the first sensor chamber R1 relative to the mechanism chamber R3 and the first sensor chamber R1.
[0049] Similarly, the cross-sectional area of the gap at the end of the second sensor chamber R2 on the surrounding portion 10b side is much larger (for example, 10 times or more) than the maximum cross-sectional area of the gap in the surrounding portion 10b. Furthermore, the cross-sectional area of the gap at the end of the mechanism chamber R3 on the surrounding portion 10b side is much larger (for example, 10 times or more) than the maximum cross-sectional area of the gap in the surrounding portion 10b. In this way, the surrounding portion 10b narrows the gap between the mechanism chamber R3 and the second sensor chamber R2.
[0050] In this way, the gap between the surrounding portions 10a and 10b is sufficiently narrower than the gap between the adjacent chambers, so that each of the sensor chambers R1 and R2 is a substantially closed space. Therefore, foreign matter generated in the reaction force generating mechanism 15 is less likely to reach the first sensor chamber R1 or the second sensor chamber R2. More specifically, foreign matter generated in the reaction force generating mechanism 15 is less likely to reach the gap separating the target 21 and the sensor element 22b, and the gap separating the target 31b and the sensor element 32b.
[0051] As described above, the brake pedal device 1 of this embodiment includes a plurality of sensor elements 22b, 32b that detect the displacement of the targets 21, 31b attached to the rotary shaft 13 and that rotate together with the rotary shaft 13, respectively.
[0052] In this way, the multiple targets 21, 31b are attached to the rotating shaft 13 and rotate together with the rotating shaft 13, and the multiple sensor elements 22b, 32b detect the rotation of the targets 21, 31b, respectively. In this way, detection is performed using the multiple targets 21, 31b that directly reflect the rotation of the rotating shaft 13, which reduces the possibility that factors such as dimensional variations and assembly variations of multiple parts will intervene in the detection process of the rotation of the rotating shaft 13. Therefore, the possibility of a decrease in the detection accuracy of the displacement of the pedal 11 is reduced.
[0053] (2) Furthermore, as shown in Figures 2 and 3, when the brake pedal device 1 is attached to a vehicle, the targets 21, 31b and the sensor elements 22b, 32b are located higher up the vehicle than the portion of the reaction force generating mechanism 15 where sliding occurs. In addition, the surrounding portions 10a, 10b are also located higher up the vehicle than the portion of the reaction force generating mechanism 15 where sliding occurs. This makes it difficult for foreign matter generated in the reaction force generating mechanism 15 to reach the targets 21, 31b and the sensor elements 22b, 32b.
[0054] (3) Furthermore, the mechanism compartment R3 and the sensor compartments R1 and R2 are separated by the surrounding portions 10a and 10b, and the gaps inside the mechanism compartment R3 and the gaps inside the sensor compartments R1 and R2 are connected via the gaps between the surrounding portions 10a and 10b and the rotating shaft 13, respectively.
[0055] The gap between the surrounding portions 10a, 10b and the rotating shaft 13 is often set smaller than the gap between the adjacent chambers. This is actually the case in this embodiment. That is, the gap between the surrounding portion 10a and the rotating shaft 13 is narrower than the gap in the mechanism chamber R3 and the gap in the first sensor chamber R1. Also, the gap between the surrounding portion 10b and the rotating shaft 13 is narrower than the gap in the mechanism chamber R3 and the gap in the second sensor chamber R2. This configuration makes it more difficult for foreign matter generated by the reaction force generating mechanism 15 to reach the sensor chambers R1, R2.
[0056] (4) Furthermore, the sensor elements 22b, 32b include a sensor element 32b in a Hall sensor and a sensor element 22b in an inductive sensor. In this way, the two sensor elements 22b, 32b detect the rotation of the targets 21, 31b using different detection principles: one using the physical phenomenon known as the Hall effect, and the other using the physical phenomenon known as mutual induction. This reduces the possibility of the first sensing unit 20 and the second sensing unit 30 failing due to a common cause.
[0057] (Second embodiment) Next, a second embodiment will be described with reference to Fig. 5. The brake pedal device 1 of this embodiment is different from the brake pedal device 1 of the first embodiment in that O-rings 71a, 71b and dust seals 72a, 72b are added. The rest of the configuration is the same as that of the first embodiment.
[0058] The O-ring 71a is an annular sealing member that is disposed at a position sandwiched between the base portion 22a of the first sensing unit 20 and the housing 10, and airtightly seals the gap between the base portion 22a and the housing 10. The O-ring 71b is an annular sealing member that is disposed at a position sandwiched between the base portion 32a of the second sensing unit 30 and the housing 10, and airtightly seals the gap between the base portion 32a and the housing 10.
[0059] O-rings 71a and 71b are made of, for example, rubber, resin, silicone, etc. O-rings 71a and 71b reduce the possibility of foreign matter entering sensor chambers R1 and R2 from outside housing 10, respectively.
[0060] The dust seal 72a is an annular sealing member that airtightly seals the space between the surrounding portion 10a and the rotating shaft 13. As shown in Fig. 5, the dust seal 72a may seal the space between the surrounding portion 10a and the rotating shaft 13 at the end of the surrounding portion 10a on the first sensing portion 20 side, or may seal the space between the surrounding portion 10a and the rotating shaft 13 at another position in the longitudinal direction of the surrounding portion 10a.
[0061] The dust seal 72b is an annular sealing member that airtightly seals the space between the surrounding portion 10b and the rotating shaft 13. As shown in Fig. 5, the dust seal 72b may seal the space between the surrounding portion 10b and the rotating shaft 13 at the end of the surrounding portion 10b on the second sensing portion 30 side, or may seal the space between the surrounding portion 10b and the rotating shaft 13 at another position in the longitudinal direction of the surrounding portion 10b.
[0062] Dust seals 72a and 72b are made of, for example, rubber, resin, silicone, etc. Dust seals 72a and 72b reduce the possibility of foreign matter from reaction force generating mechanism 15 entering sensor chambers R1 and R2 from mechanism chamber R3. O-rings 71a and 71b and dust seals 72a and 72b form closed spaces in first sensor chamber R1 and second sensor chamber R2.
[0063] (1) As described above, the gap between the surrounding portions 10a, 10b and the rotating shaft 13 is sealed. This reduces the possibility of foreign matter from the reaction force generating mechanism 15 entering the sensor chambers R1, R2 from the mechanism chamber R3. This in turn reduces the possibility of the detection accuracy of the first sensing unit 20 and the second sensing unit 30 deteriorating. In addition, the gap between the outside of the housing 10 and the sensor chambers R1, R2 (i.e., the gap between the base portions 22a, 32a and the housing 10) is sealed. This reduces the possibility of foreign matter entering the sensor chambers R1, R2 from the outside of the housing 10. This in turn reduces the possibility of the detection accuracy of the first sensing unit 20 and the second sensing unit 30 deteriorating. In addition, the same effects can be obtained from the same configuration of this embodiment as in the first embodiment.
[0064] (Third embodiment) Next, a third embodiment will be described with reference to Fig. 6. In this embodiment, labyrinth projections 13x, 22x, and 32x are further added to the first embodiment.
[0065] The labyrinth projection 13x protrudes from the side surface of the rotating shaft 13 in a direction away from the axis CL at a portion of the rotating shaft 13 that is journaled by the surrounding portion 10b. The labyrinth projection 13x has a flange shape that annularly surrounds the axis CL. The portion of the surrounding portion 10b that faces the labyrinth projection 13x is recessed to receive the labyrinth projection 13x.
[0066] In this way, a labyrinth structure is formed by the labyrinth protrusion 13x and the portion of the surrounding portion 10b that faces the labyrinth protrusion 13x. The path from the mechanism compartment R3 to the second sensor chamber R2 that passes through the gap between the rotating shaft 13 and the surrounding portion 10b bends three or more times (specifically, four times) to pass through this labyrinth structure. This reduces the possibility of foreign matter from the reaction force generating mechanism 15 entering the second sensor chamber R2 from the mechanism compartment R3.
[0067] The labyrinth projection 22x protrudes from the surface of the base portion 22a on the side of the rotary shaft 13. The labyrinth projection 22x has a collar shape that annularly surrounds the first sensor chamber R1. The portion of the housing 10 that faces the labyrinth projection 22x is recessed to receive the labyrinth projection 22x.
[0068] In this way, a labyrinth structure is formed by labyrinth protrusion 22x and the portion of housing 10 that faces labyrinth protrusion 22x. The path from the outside of housing 10 to first sensor chamber R1 through the gap between base portion 22a and housing 10 bends three or more times (specifically, four times) to pass through this labyrinth structure. This reduces the possibility of foreign matter entering first sensor chamber R1 from the outside of housing 10.
[0069] The labyrinth projection 32x protrudes from the surface of the base portion 32a facing the rotary shaft 13. The labyrinth projection 32x has a collar shape that annularly surrounds the second sensor chamber R2. The portion of the housing 10 that faces the labyrinth projection 32x is recessed to receive the labyrinth projection 32x.
[0070] In this way, a labyrinth structure is formed by the labyrinth protrusion 32x and the portion of the housing 10 that faces the labyrinth protrusion 32x. The path from the outside of the housing 10 to the second sensor chamber R2 through the gap between the base portion 32a and the housing 10 bends three or more times (specifically, five times) to pass through this labyrinth structure. This reduces the possibility of foreign matter entering the first sensor chamber R1 from the outside of the housing 10. The other configurations are the same as those of the first embodiment.
[0071] (1) As described above, a labyrinth structure is formed by the rotating shaft 13 and the surrounding portion 10b in the path from the mechanism compartment R3 to the second sensor compartment R2 through the gap between the rotating shaft 13 and the surrounding portion 10b. This reduces the possibility of foreign matter from the reaction force generating mechanism 15 entering the second sensor compartment R2 from the mechanism compartment R3. This in turn reduces the possibility of a deterioration in the detection accuracy of the second sensing unit 30. Furthermore, a labyrinth structure is formed in the gap from the outside of the housing 10 to the first sensor compartment R1 and the second sensor compartment R2. This reduces the possibility of foreign matter from outside the housing 10 entering the first sensor compartment R1 and the second sensor compartment R2 from the outside of the housing 10.
[0072] Note that a protrusion with a structure similar to the labyrinth protrusion 13x may also be formed on the rotating shaft 13 at a location that is supported by the surrounding portion 10a. In this case, the portion of the surrounding portion 10a that faces the protrusion may be recessed to accommodate the protrusion. This allows the rotating shaft 13 and the surrounding portion 10a to form a labyrinth structure. Therefore, in this case, the possibility of foreign matter originating from the reaction force generating mechanism 15 entering the first sensor chamber R1 from the mechanism chamber R3 is reduced. This in turn reduces the possibility of a deterioration in the detection accuracy of the first sensing unit 20.
[0073] Note that the modifications made to the first embodiment as in this embodiment can also be applied to the second embodiment. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first and second embodiments.
[0074] (Fourth embodiment) Next, a fourth embodiment will be described with reference to Fig. 7. The brake pedal device 1 of this embodiment differs from the brake pedal device 1 of the first embodiment in the configuration of the housing 10. Specifically, the housing 10 of this embodiment has a main body portion 10f and a cover portion 10g that is separate from the main body portion 10f. The other configurations are the same as those of the first embodiment.
[0075] The second sensor chamber R2 and the mechanism chamber R3 are formed in the main body 10f, and the first sensor chamber R1 is formed in the cover 10g. The main body 10f and the cover 10g may be assembled with fastening members such as bolts, or may be assembled in other ways.
[0076] The modifications made to the first embodiment as in this embodiment are also applicable to the second and third embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to third embodiments.
[0077] (Fifth embodiment) Next, a fifth embodiment will be described with reference to Fig. 8. The brake pedal device 1 of this embodiment is provided with collars 14a and 14b in comparison with the brake pedal device 1 of the first embodiment. The other configurations are the same as those of the first embodiment.
[0078] Collar 14a is a cylindrical member and is accommodated in surrounding portion 10a of housing 10. Collar 14b is a cylindrical member and is accommodated in surrounding portion 10b of housing 10. Collars 14a and 14b are fixed to housing 10 by adhesive bonding, press fitting, or the like. Collar 14a may be made of resin or metal. Rotating shaft 13 passes through a through hole formed by the inner circumferential surfaces of collars 14a and 14b. As a result, collars 14a and 14b annularly surround the periphery (e.g., the entire circumference, or approximately the entire circumference) of rotating shaft 13 and rotatably support rotating shaft 13. Therefore, in this embodiment, collars 14a and 14b correspond to bearings instead of surrounding portions 10a and 10b. Note that a member having a structure in which a portion is missing in the annular extension direction, such as a split bushing, also corresponds to a cylindrical member.
[0079] The mechanism compartment R3 and the first sensor compartment R1 communicate with each other through a gap between the collar 14a and the rotating shaft 13. The mechanism compartment R3 and the second sensor compartment R2 communicate with each other through a gap between the collar 14b and the rotating shaft 13. By providing such collars 14a and 14b, it is easy to adjust the gap around the rotating shaft 13 in the surrounding portion 10a to be narrower. This in turn reduces the possibility of foreign matter from the reaction force generating mechanism 15 entering the sensor compartments R1 and R2 from the mechanism compartment R3.
[0080] The modifications made to the first embodiment as in this embodiment are also applicable to the second to fourth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to fourth embodiments.
[0081] (Sixth embodiment) Next, a sixth embodiment will be described with reference to FIG. 9. The brake pedal device 1 of this embodiment differs from the brake pedal device 1 of the first embodiment in the position of the second sensing unit 30. That is, the second sensor chamber R2 is eliminated, and both the first sensing unit 20 and the second sensing unit 30 are disposed in the first sensor chamber R1. Therefore, the first sensor chamber R1 is larger than in the first embodiment. The rest of the configuration is the same as in the first embodiment.
[0082] In this embodiment, the second sensing unit 30 is disposed on the same side as the first sensing unit 20 in the direction along the axis CL with respect to the pedal arm 12. The second sensing unit 30 is located on the opposite side of the surrounding portion 10a from the first sensing unit 20.
[0083] The rotating member 31 of the second sensing unit 30 is disposed in the first sensor chamber R1 on the opposite side of the surrounding portion 10a with respect to the fixed member 22, and is fixed to the rotating shaft 13. The fixed member 32 of the second sensing unit 30 is disposed on the opposite side of the surrounding portion 10a with respect to the rotating member 31, and is fixed to the housing 10 (for example, by press-fitting or bolting).
[0084] To achieve this configuration, a through hole is formed in the center of the base portion 22a of this embodiment, and the base portion 31a and the rotation shaft 13 are connected by passing through this through hole.
[0085] The modifications made to the first embodiment as in this embodiment are also applicable to the second to fifth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to fifth embodiments.
[0086] Seventh embodiment Next, a seventh embodiment will be described with reference to FIG. 10. The brake pedal device 1 of this embodiment is different from the brake pedal device 1 of the first embodiment in that a third sensing unit 50 is added. This third sensing unit 50 is disposed in the first sensor chamber R1 together with the first sensing unit 20. Therefore, the first sensor chamber R1 is larger than that of the first embodiment. The rest of the configuration is the same as that of the first embodiment.
[0087] Similar to the second sensing section 30, the third sensing section 50 is a unit that constitutes a Hall sensor, and has a rotating member 51 that rotates relative to the housing 10 and a fixed member 52 that is fixed to the housing 10.
[0088] The rotating member 51 is disposed in the first sensor chamber R1 on the opposite side of the surrounding portion 10a with respect to the fixed member 22, is fixed to the rotating shaft 13, and has a base portion 51a and a target 51b. The fixed member 52 is disposed on the opposite side of the surrounding portion 10a with respect to the rotating member 51, and is fixed (for example, by press-fitting or bolting) to the housing 10, and has a base portion 52a and a sensor element 52b.
[0089] The base portion 51a, the target 51b, the base portion 52a, and the sensor element 52b have the same shape, structure, relative arrangement, and function as the base portion 31a, the target 31b, the base portion 32a, and the sensor element 32b of the second sensing unit 30, respectively.
[0090] To achieve this configuration, a through hole is formed in the center of the base portion 22a of this embodiment, and the base portion 51a and the rotation shaft 13 are connected by passing through this through hole.
[0091] As described above, the brake pedal device 1 of this embodiment has three sensor elements 22b, 32b, and 52b that respectively detect the rotation of the three targets 21, 31b, and 51b that rotate together with the rotary shaft 13. The sensor elements 32b and 52b detect the rotation of the targets 31b and 51b using the same detection principle, i.e., a detection principle that utilizes a physical phenomenon called the Hall effect. However, the sensor element 22b detects the rotation of the target 21 using a detection principle that utilizes a physical phenomenon called mutual induction. In other words, any two of the three sensor elements 22b, 32b, and 52b (e.g., the sensor element 22b and the sensor element 32b) detect the rotation of the targets using different detection principles. This reduces the possibility of all sensing units failing due to a common cause.
[0092] The modifications made to the first embodiment as in this embodiment are also applicable to the second to fifth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to fifth embodiments.
[0093] (Eighth embodiment) Next, an eighth embodiment will be described with reference to Figure 11. The brake pedal device 1 of this embodiment is different from the brake pedal device 1 of the seventh embodiment in that an additional sensing unit 40 is added. This additional sensing unit 40 is arranged in the second sensor chamber R2 together with the second sensing unit 30. Therefore, the second sensor chamber R2 is larger than in the seventh embodiment. The rest of the configuration is the same as in the seventh embodiment.
[0094] Similar to the first sensing section 20, the additional sensing section 40 is a unit that constitutes an inductive sensor, and has a target 41 that rotates relative to the housing 10 and a fixed member 42 that is fixed to the housing 10.
[0095] The target 41 is disposed in the second sensor chamber R2 on the same side as the surrounding portion 10b with respect to the rotating member 31, and is fixed to the rotating shaft 13. The fixed member 42 is disposed between the rotating member 31 and the target 41, and is fixed to the housing 10, and has a base portion 42a and a sensor element 42b.
[0096] The target 41, the base portion 42a, and the sensor element 42b have the same shape, structure, relative arrangement, and function as the target 21, the base portion 22a, and the sensor element 22b of the first sensing unit 20. However, in this embodiment, a through hole is formed in the center of the base portion 42a, and the rotating shaft 13 passes through this through hole, connecting the rotating member 31 and the rotating shaft 13.
[0097] As described above, the brake pedal device 1 of this embodiment has four sensor elements 22b, 32b, 42b, and 52b that respectively detect the rotation of the four targets 21, 31b, 41, and 51b that rotate together with the rotary shaft 13. The sensor elements 32b and 52b detect the rotation of the targets 31b and 51b using the same detection principle, i.e., a detection principle utilizing the physical phenomenon known as the Hall effect. The sensor elements 22b and 42b also detect the rotation of the targets 21 and 41 using the same detection principle, i.e., a detection principle utilizing the physical phenomenon known as mutual induction. In other words, any two of the four sensor elements 22b, 32b, 42b, and 52b (e.g., sensor element 22b and sensor element 32b) detect the rotation of the targets using different detection principles. This configuration reduces the possibility of all sensing units failing due to a common cause. Note that the same effects can be obtained from the same configuration as the seventh embodiment of this embodiment.
[0098] (Ninth embodiment) Next, a ninth embodiment will be described with reference to Figures 12 and 13. The brake pedal device 1 of this embodiment is different from the brake pedal device 1 of the first embodiment in that a partition wall 10x and a rod 16 are added. The other configurations are the same as those of the first embodiment.
[0099] The partition wall 10x is a flat plate-shaped member provided in the mechanism compartment R3 so as to protrude from the housing 10 toward the pedal arm 12. The partition wall 10x may be formed integrally with the housing 10, or may be formed separately and then fixed to the housing 10.
[0100] The partition wall 10x is formed between the reaction force generating mechanism 15 and the surrounding portions 10a and 10b in the mechanism room R3. That is, the partition wall 10x is a partition member that separates the reaction force generating mechanism 15 from the surrounding portions 10a and 10b.
[0101] The partition wall 10x is disposed at a position separated from the pedal arm 12 even when the pedal 11 is depressed to a maximum extent. Therefore, a gap always exists between the partition wall 10x and the pedal arm 12.
[0102] The rod 16 is a non-metallic member made of, for example, resin, and is connected at one end to the pedal arm 12 and at the other end to the reaction force generating mechanism 15. As a result, the rod 16 is disposed between the reaction force generating mechanism 15 and the pedal arm 12. The reaction force generated by the reaction force generating mechanism 15 is transmitted to the pedal arm 12 via the rod 16. In addition, the force of the brake operation by the driver is transmitted from the pedal arm 12 to the reaction force generating mechanism 15 via the rod 16.
[0103] Furthermore, when the depression amount of the pedal 11 is at its maximum, an imaginary straight line forming the shortest distance from the end of the reaction force generating mechanism 15 on the pedal arm 12 side to the surrounding portion 10a may pass through the inside of the partition wall 10x. In other words, the surrounding portion 10a may be hidden by the partition wall 10x from the end of the reaction force generating mechanism 15 on the pedal arm 12 side. Furthermore, when the depression amount of the pedal 11 is at its maximum, the surrounding portion 10b may be hidden by the partition wall 10x from the end of the reaction force generating mechanism 15 on the pedal arm 12 side. These may be true not only when the depression amount of the pedal 11 is at its maximum, but also when the depression amount of the pedal 11 is zero.
[0104] (1) As described above, the partition wall 10x is formed in the mechanism chamber R3 between the reaction force generating mechanism 15 and the surrounding portions 10a, 10b. As a result, foreign matter such as metal powder generated by the reaction force generating mechanism 15 is blocked by the partition wall 10x, reducing the possibility that foreign matter from the reaction force generating mechanism 15 will enter the sensor chambers R1, R2 via the surrounding portions 10a, 10b. Consequently, a decrease in the detection accuracy of the first sensing unit 20 and the second sensing unit 30 can be suppressed.
[0105] (2) Furthermore, the rod 16 is disposed between the reaction force generating mechanism 15 and the pedal arm 12 and transmits the reaction force generated by the reaction force generating mechanism 15 to the pedal arm 12. The presence of this rod 16 distances the reaction force generating mechanism 15 from the gap between the partition wall 10x and the pedal arm 12. This reduces the possibility that foreign matter from the reaction force generating mechanism 15 will pass through the gap between the partition wall 10x and the pedal arm 12 and enter the sensor chambers R1 and R2 via the surrounding portions 10a and 10b. This in turn reduces a decrease in the detection accuracy of the first sensing unit 20 and the second sensing unit 30.
[0106] The modifications made to the first embodiment as in this embodiment are also applicable to the second to eighth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to eighth embodiments.
[0107] (Tenth embodiment) Next, a tenth embodiment will be described with reference to Fig. 14. The brake pedal device 1 of this embodiment is configured similarly to the first embodiment, except that a cover 17 is added to the brake pedal device 1 of the first embodiment.
[0108] The cover 17 is a cylindrical member that extends from the housing 10 to the pedal arm 12 inside the mechanism compartment R3 and surrounds the periphery (for example, the entire circumference) of the reaction force generating mechanism 15. One end of the cover 17 is connected to the housing 10, and the other end is connected to the pedal arm 12.
[0109] Therefore, a part of the cover 17 is formed between the reaction force generating mechanism 15 and the surrounding portions 10a, 10b in the mechanism room R3. In other words, the cover 17 is a partition member that separates the reaction force generating mechanism 15 from the surrounding portions 10a, 10b.
[0110] The cover 17 is a member that expands and contracts in response to the displacement of the pedal arm 12, and may be an elastic member (e.g., a rubber member) or a bellows-shaped member (e.g., a resin member). In this way, the cover 17 covers and hides the entire reaction force generating mechanism 15 from the surrounding portions 10a and 10b, regardless of the position of the pedal arm 12.
[0111] As a result, foreign matter such as metal powder generated by reaction force generating mechanism 15 is blocked by cover 17, reducing the possibility that foreign matter from reaction force generating mechanism 15 will enter sensor chambers R1, R2 via surrounding portions 10a, 10b. Consequently, a decrease in the detection accuracy of first sensing unit 20 and second sensing unit 30 can be suppressed.
[0112] (1) In this way, the cover 17 extends from the housing 10 to the pedal arm 12 within the mechanism compartment R3, and expands and contracts in response to the displacement of the pedal arm 12. This configuration allows foreign matter originating from the reaction force generating mechanism 15 to be blocked over the entire length from the housing 10 to the pedal arm 12, regardless of the position of the pedal arm 12.
[0113] The modifications made to the first embodiment as in this embodiment are also applicable to the second to eighth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to eighth embodiments.
[0114] (Eleventh embodiment) Next, an eleventh embodiment will be described with reference to Fig. 15. The brake pedal device 1 of this embodiment is different from the brake pedal device 1 of the first embodiment in that a surrounding wall 18 and a rod 16 are added. Other configurations are the same as those of the first embodiment.
[0115] The surrounding wall 18 is provided in the mechanism compartment R3 so as to protrude from the housing 10 toward the pedal arm 12, and is a cylindrical rigid cover that annularly surrounds (for example, the entire periphery of) the reaction force generating mechanism 15. The surrounding wall 18 may be formed integrally with the housing 10, or may be formed separately and then fixed to the housing 10.
[0116] Therefore, a part of the surrounding wall 18 is formed between the reaction force generating mechanism 15 and the surrounding portions 10a, 10b in the mechanism room R3. In other words, the surrounding wall 18 is a partition member that separates the reaction force generating mechanism 15 from the surrounding portions 10a, 10b.
[0117] The surrounding wall 18 is disposed at a position separated from the pedal arm 12 even when the pedal 11 is depressed to a maximum extent. Therefore, a gap always exists between the surrounding wall 18 and the pedal arm 12.
[0118] The rod 16 is a non-metallic member, for example, made of resin, and has one end that slidably contacts the pedal arm 12 and the other end that is connected to the reaction force generating mechanism 15. In this embodiment, the reaction force generating mechanism 15 and the rod 16 can also be considered to constitute one reaction force generating mechanism. As a result, the rod 16 is disposed between the reaction force generating mechanism 15 and the pedal arm 12. The reaction force generated by the reaction force generating mechanism 15 is transmitted to the pedal arm 12 via the rod 16. The force of the brake operation by the driver is transmitted from the pedal arm 12 to the reaction force generating mechanism 15 via the rod 16. When the brake is applied to the pedal 11, the rod 16 slides against the pedal arm 12, and the surrounding wall 18 slides against the reaction force generating mechanism 15. Therefore, the sliding points between the rod 16 and the pedal arm 12 and the sliding points between the surrounding wall 18 and the reaction force generating mechanism 15 can be considered to be sliding points in the reaction force generating mechanism. These are located lower than the surrounding portions 10a and 10b, the first sensing portion 20, and the second sensing portion 30 in the vehicle top-bottom direction DR1.
[0119] Furthermore, when the depression amount of the pedal 11 is at its maximum, an imaginary straight line forming the shortest distance from the end of the reaction force generating mechanism 15 on the pedal arm 12 side to the encircling portion 10a may pass through the inside of the encircling wall 18. In other words, the encircling portion 10a may be hidden by the encircling wall 18 from the end of the reaction force generating mechanism 15 on the pedal arm 12 side. Furthermore, when the depression amount of the pedal 11 is at its maximum, the encircling portion 10b may be hidden by the encircling wall 18 from the end of the reaction force generating mechanism 15 on the pedal arm 12 side. These may be true not only when the depression amount of the pedal 11 is at its maximum, but also when the depression amount of the pedal 11 is zero.
[0120] Furthermore, when the depression of the pedal 11 is at its maximum, the tip of the rod 16 is within the space enclosed by the surrounding wall 18. That is, a line segment connecting any two of the annular ends of the surrounding wall 18 on the pedal arm 12 side passes through the rod 16. This configuration makes it difficult for foreign matter from the reaction force generating mechanism 15 to escape from the surrounding wall 18. This may be true not only when the depression of the pedal 11 is at its maximum, but also when the depression of the pedal 11 is zero.
[0121] As described above, the surrounding wall 18 is formed in the mechanism chamber R3 between the reaction force generating mechanism 15 and the surrounding portions 10a, 10b. As a result, foreign matter such as metal powder generated by the reaction force generating mechanism 15 is blocked by the surrounding wall 18, reducing the possibility that foreign matter from the reaction force generating mechanism 15 will enter the sensor chambers R1, R2 via the surrounding portions 10a, 10b. Consequently, a decrease in the detection accuracy of the first sensing unit 20 and the second sensing unit 30 can be suppressed.
[0122] Furthermore, the rod 16 is disposed between the reaction force generating mechanism 15 and the pedal arm 12 and transmits the reaction force generated by the reaction force generating mechanism 15 to the pedal arm 12. The presence of this rod 16 distances the reaction force generating mechanism 15 from the gap between the partition wall 10x and the pedal arm 12. This reduces the possibility that foreign matter originating from the reaction force generating mechanism 15 will pass through the gap between the surrounding wall 18 and the pedal arm 12 and enter the sensor chambers R1 and R2 via the surrounding portions 10a and 10b. This in turn reduces a decrease in the detection accuracy of the first sensing unit 20 and the second sensing unit 30. Furthermore, because the surrounding wall 18 surrounds the reaction force generating mechanism 15 in an annular shape, foreign matter originating from the reaction force generating mechanism 15 is less likely to escape outside the surrounding wall 18.
[0123] The modifications made to the first embodiment as in this embodiment are also applicable to the second to eighth embodiments. Furthermore, the same effects can be obtained from the same configurations of this embodiment as those of the first to eighth embodiments.
[0124] (Twelfth embodiment) Next, a twelfth embodiment will be described with reference to Figs. 16 and 17. The brake pedal device 1 of this embodiment is an organ-type brake pedal device 1 for a vehicle. The brake pedal device 1 is attached to the floor or the like of the vehicle. Like the first embodiment, this brake pedal device 1 is a device for realizing a brake-by-wire system.
[0125] Similar to the first embodiment, the brake pedal device 1 has a housing 10, a pedal 11, a pedal arm 12, a rotating shaft 13, a reaction force generating mechanism 15, a first sensing unit 20, and a second sensing unit 30. The structures, functions, and interconnection forms of these components of the brake pedal device 1 are basically the same as those of the first embodiment.
[0126] However, whereas in the first embodiment, the rotating shaft 13 is disposed on the toe side of the foot that presses the pedal 11, in this embodiment, the rotating shaft 13 is disposed on the heel side of the foot that presses the pedal 11. The brake pedal device 1 of this embodiment also has a rod 16. The rod 16 is a bar-shaped member that is connected at one end to the pedal arm 12 and at the other end to the reaction force generating mechanism 15. As a result, the rod 16 is disposed between the reaction force generating mechanism 15 and the pedal arm 12. The reaction force generated by the reaction force generating mechanism 15 is transmitted to the pedal arm 12 via the rod 16. Furthermore, the force of the brake operation by the driver is transmitted from the pedal arm 12 to the reaction force generating mechanism 15 via the rod 16.
[0127] Therefore, in this embodiment as well, when the driver applies a brake operation such as depressing or releasing the pedal 11, the pedal 11 and the pedal arm 12 rotate together with the rotating shaft 13 about the axis line CL. At this time, the rotating shaft 13 rotates while being journaled to the surrounding portions 10a and 10b of the housing 10. In addition, the reaction force generating mechanism 15 applies a reaction force against the depressing operation of the pedal 11 to the pedal arm 12 via the rod 16.
[0128] The configurations and arrangements of the first sensing unit 20 constituting the inductive sensor and the second sensing unit 30 constituting the Hall sensor are also the same as those in the first embodiment. Therefore, the targets 21 and 31b are attached to the rotary shaft 13 and rotate together with the rotary shaft 13. The sensor elements 22b and 32b detect the rotation of the targets 21 and 31b, respectively, thereby detecting the displacement of the pedal 11.
[0129] The second embodiment differs from the first embodiment in that the first sensing unit 20 and the second sensing unit 30 are positioned lower than the reaction force generating mechanism 15 in the vehicle vertical direction.
[0130] Also in this embodiment, a first sensor chamber R1, a second sensor chamber R2, and a mechanism chamber R3 are formed within the housing 10. The arrangement of the components in the first sensor chamber R1, the second sensor chamber R2, and the mechanism chamber R3 is also the same as in the first embodiment.
[0131] Therefore, the first sensor chamber R1 is provided with the first sensing unit 20 and the end of the rotating shaft 13 facing the first sensing unit 20. The second sensor chamber R2 is provided with the second sensing unit 30 and the end of the rotating shaft 13 facing the second sensing unit 30. The mechanism chamber R3 is provided with the rotating shaft 13, pedal arm 12, and reaction force generating mechanism 15. However, the rod 16 is also provided in the mechanism chamber R3.
[0132] The first sensor chamber R1 and the second sensor chamber R2 are located on one side and the other side of the mechanism chamber R3 in the vehicle width direction DR3, respectively. The first sensor chamber R1 and the mechanism chamber R3 are separated from each other by the surrounding portion 10a. Similarly, the second sensor chamber R2 and the mechanism chamber R3 are separated from each other by the surrounding portion 10b.
[0133] Furthermore, the gap inside the first sensor chamber R1 and the gap inside the mechanism chamber R3 are connected via a gap formed between the surrounding portion 10a and the rotating shaft 13. Similarly, the gap inside the second sensor chamber R2 and the gap inside the mechanism chamber R3 are connected via a gap formed between the surrounding portion 10b and the rotating shaft 13. The relationship between the cross-sectional areas of the gaps between the first sensor chamber R1, the second sensor chamber R2, the mechanism chamber R3, and the surrounding portions 10a and 10b is also the same as in the first embodiment.
[0134] It is possible to apply the modifications of the first embodiment, such as those of the second to eleventh embodiments, to this embodiment. As a result, in the brake pedal device 1 of this embodiment, the same effects as those of the first to eleventh embodiments can be obtained from the same configurations.
[0135] (Thirteenth embodiment) Next, a thirteenth embodiment will be described with reference to Fig. 18. In this embodiment, a labyrinth projection 31x is further added to the third embodiment.
[0136] The labyrinth projection 31x is a collar member that protrudes from the plate surface of the base portion 31a on the surrounding portion 10b side and annularly surrounds the rotation shaft 13. The labyrinth projection 31x may surround the entire circumference of the rotation shaft 13, or may surround almost the entire circumference.
[0137] The labyrinth protrusion 31x is fixed to the base portion 31a and rotates integrally with the base portion 31a. The labyrinth protrusion 31x may be formed integrally with the base portion 31a, or may be formed separately from the base portion 31a and then attached to the base portion 31a. Furthermore, the portion of the housing 10 facing the labyrinth protrusion 31x is recessed to receive the labyrinth protrusion 31x.
[0138] In this way, a labyrinth structure is formed by the labyrinth protrusion 31x and the portion of the housing 10 that faces the labyrinth protrusion 31x. As a result, after entering the second sensor chamber R2 from the surrounding portion 10b, the path leading to the gap between the target 31b and the sensor element 32b that separates the target 31b and the sensor element 32b bends three or more times (specifically, four times) to cross this labyrinth structure. This reduces the possibility that foreign matter from the reaction force generating mechanism 15 will enter the gap between the target 31b and the sensor element 32b that separates the target 31b and the sensor element 32b.
[0139] The other configurations are the same as those of the first embodiment. Note that the labyrinth structure formed by the labyrinth protrusions 31x and the corresponding recesses in the housing 10 may be formed on the surface of the target 21 on the surrounding portion 10a side. Furthermore, similar effects can be obtained from similar configurations in this embodiment and the third embodiment.
[0140] (Fourteenth embodiment) Next, a fourteenth embodiment will be described with reference to Fig. 19. This embodiment differs from the fifth embodiment in the structure of the collar 14b. Specifically, the collar 14b has a collar 14ba and a collar 14bb.
[0141] The collars 14ba and 14bb are each a cylindrical member housed within the surrounding portion 10b of the housing 10. The collars 14ba and 14bb are fixed to the surrounding portion 10b by adhesive, press-fitting, or the like. The collars 14ba and 14bb may be made of resin or metal. The rotating shaft 13 passes through a through hole formed by the inner circumferential surfaces of the collars 14ba and 14bb. As a result, the collars 14ba and 14bb annularly surround the periphery (e.g., the entire circumference, or substantially the entire circumference) of the rotating shaft 13 and rotatably support the rotating shaft 13. Therefore, in this embodiment, the collars 14ba and 14bb also correspond to bearing portions.
[0142] In this way, the collars 14ba and 14bb are interposed between the surrounding portion 10b and the rotary shaft 13 to rotatably support the rotary shaft 13. The collar 14ba corresponds to the first sub-bearing portion, and the collar 14bb corresponds to the second sub-bearing portion.
[0143] Furthermore, collar 14ba and collar 14bb are arranged side by side with a gap between them along the axis CL of the rotating shaft 13. That is, a gap is formed between collar 14ba and collar 14bb that is wider than the gap between collars 14ba and 14bb and the rotating shaft 13. Collar 14ba is located closer to mechanism room R3 than collar 14bb.
[0144] (1) As a result of the formation of a relatively wide gap between collar 14ba and collar 14bb, foreign matter that has passed through the gap between collar 14ba and collar 14ba from mechanism compartment R3 is more likely to accumulate in the gap between collar 14ba and collar 14bb. This reduces the possibility that foreign matter will enter the gap between collar 14ba and collar 14bb and then enter second sensor compartment R2.
[0145] Note that, like collar 14b, collar 14a may also be configured with two collars spaced apart from each other. The other configurations are the same as those of the fifth embodiment. Note that similar effects can be obtained from similar configurations in this embodiment and the fifth embodiment.
[0146] (Fifteenth embodiment) Next, a fifteenth embodiment will be described with reference to Fig. 20. In this embodiment, the shapes of the rotation shaft 13, the target 21, and the base portion 22a in the first sensor chamber R1 are changed compared to the first embodiment, and a bearing portion 91 is further added. The rest of the configuration is the same as the first embodiment.
[0147] A through-hole is formed in the center of the target 21, and the rotation shaft 13 passes through this through-hole. The target 21 and the rotation shaft 13 are fixed to each other via the through-hole by, for example, press-fitting. This allows the target 21 to rotate integrally with the rotation shaft 13.
[0148] A hole is formed in the center of the base portion 22a, and the rotation shaft 13 that penetrates the target 21 is inserted into the hole. A bearing portion 91 is interposed between the rotation shaft 13 and the base portion 22a in the hole. The bearing portion 91 is attached to the base portion 22a in the hole of the base portion 22a, and surrounds the rotation shaft 13 to rotatably support it. In this embodiment, the surrounding portions 10a and 10b may or may not function as bearings.
[0149] In addition, in the housing 10, the gap between the surrounding portion 10a and the rotating shaft 13 is narrower than the gap in the mechanism chamber R3 and the gap in the first sensor chamber R1, as in the first embodiment. This makes it difficult for foreign matter generated by the reaction force generating mechanism 15 to reach the first sensor chamber R1.
[0150] Note that the same modifications as those made to the rotating shaft 13, target 21, and base portion 22a in the first sensor chamber R1 may be made to the rotating shaft 13, base portion 31a, and base portion 32a in the second sensor chamber R2. In this case, a bearing similar to bearing portion 91 is provided between the rotating shaft 13 and the hole formed in base portion 32a. Furthermore, the position of sensor element 32b is moved to a position that avoids the hole formed in base portion 32a.
[0151] Furthermore, the same modifications as in this embodiment to the first embodiment can be made to the second to fourteenth embodiments. Furthermore, the same effects can be obtained from the same configurations as in the first to fourteenth embodiments in this embodiment.
[0152] (16th embodiment) Next, a sixteenth embodiment will be described with reference to Fig. 21. In this embodiment, the shapes of the rotation shaft 13, the target 21, and the base portion 22a are changed from those of the first embodiment, and a cover 92 and a bearing portion 93 are added. The other configurations are the same as those of the first embodiment.
[0153] A through-hole is formed in the center of the target 21, and the rotation shaft 13 passes through this through-hole. The target 21 and the rotation shaft 13 are fixed to each other via the through-hole by, for example, press-fitting. This allows the target 21 to rotate integrally with the rotation shaft 13.
[0154] Furthermore, a through hole is formed in the center of the base portion 22a, and the rotation shaft 13, which penetrates the target 21, passes through the through hole. A gap exists between the rotation shaft 13 and the base portion 22a in the through hole. Therefore, the rotation shaft 13 is rotatable relative to the base portion 22a, which is fixed to the housing 10.
[0155] Furthermore, a cover 92 is provided on the opposite side of the target 21 with respect to the base portion 22a. The cover 92 has a main body portion 92a and a lid portion 92b. The main body portion 92a is a plate-shaped member. The main body portion 92a is fixed to the housing 10 by fastening with bolts, adhesive, or the like so that the plate surface facing the housing 10 is in contact with the housing 10.
[0156] A through hole is formed in the main body portion 92a, and the rotating shaft 13 that penetrates the base portion 22a is inserted into the through hole. A bearing portion 93 is interposed between the rotating shaft 13 and the main body portion 92a in the through hole of the main body portion 92a. The bearing portion 93 is attached to the main body portion 92a in the through hole of the main body portion 92a, and surrounds and rotatably supports the rotating shaft 13. In this embodiment, the surrounding portions 10a, 10b may or may not function as bearings.
[0157] The through hole of the main body 92a is closed by a lid 92b at the end of the main body 92a opposite to the first sensor chamber R1 side. The lid 92b is inserted into the through hole of the main body 92a and fixed to the main body 92a by press-fitting, adhesive, or the like. In this manner, the cover 92 covers the first sensor chamber R1.
[0158] In addition, in the housing 10, the gap between the surrounding portion 10a and the rotating shaft 13 is narrower than the gap in the mechanism chamber R3 and the gap in the first sensor chamber R1, as in the first embodiment. This makes it difficult for foreign matter generated by the reaction force generating mechanism 15 to reach the first sensor chamber R1.
[0159] Note that the same modifications made to the rotating shaft 13, target 21, and base portion 22a in the first sensor chamber R1 may also be made to the rotating shaft 13, base portion 31a, and base portion 32a in the second sensor chamber R2. In this case, members having the same configuration as the main body portion 92a and lid portion 92b are arranged to cover the second sensor chamber R2. Furthermore, a bearing portion similar to the bearing portion 93 is provided between the rotating shaft 13 and a through-hole formed in a member having the same configuration as the main body portion 92a. Furthermore, the position of the sensor element 32b is moved to a position that avoids the hole formed in the base portion 32a.
[0160] Note that modifications such as those in this embodiment to the first embodiment can be made to the second to fourteenth embodiments. Also, the same effects can be obtained from the same configurations in this embodiment as in the first to fourteenth embodiments. Also, in this embodiment, the lid portion 92b may be formed integrally with the main body portion 92a. That is, the cover 92 may be a single component.
[0161] (17th embodiment) Next, a sixteenth embodiment will be described with reference to Fig. 22. This embodiment differs from the first embodiment in that the base portion 22a of the fixing member 22 of the first sensing unit 20 is eliminated, the sensor element 22b is disposed differently, and a cover 94 is further provided. The other configurations are the same as those of the first embodiment.
[0162] In this embodiment, sensor element 22b is embedded inside housing 10. This may be achieved by various methods such as insert molding. More specifically, sensor element 22b is disposed facing target 21 at a position surrounding surrounding portion 10a in the circumferential direction centered on axis CL. This also allows sensor element 22b to detect the rotation of target 21. Furthermore, in place of base portion 22a, which served as a lid for first sensor chamber R1, a plate-shaped cover 94 is fixed to housing 10 so as to cover first sensor chamber R1.
[0163] In this case, of the target 21 and the sensor element 22b, only the target 21 is placed in the first sensor chamber R1. However, the gap separating the target 21 and the sensor element 22b is formed in the first sensor chamber R1. Even in this case, the possibility of erroneous detection by the first sensing unit 20 can be reduced by preventing foreign matter from entering the first sensor chamber R1.
[0164] As another example, in the second sensor chamber R2, of the target 31b and the sensor element 32b, only the target 31b may be disposed in the first sensor chamber R1, and the sensor element 32b may be embedded in the housing .
[0165] As another example, the target 21 and the sensor element 22b may be arranged in different chambers within the housing 10. Similarly, the target 31b and the sensor element 32b may be arranged in different chambers within the housing 10. That is, there may be a chamber in which only the sensor element 22b is arranged, or there may be a chamber in which the sensor element 32b is arranged.
[0166] Note that the same modifications as in this embodiment to the first embodiment can be made to the second to sixteenth embodiments. Furthermore, in this embodiment, the same effects can be obtained from the same configurations as in the first to sixteenth embodiments.
[0167] (18th embodiment) Next, a seventeenth embodiment will be described with reference to Fig. 23. This embodiment differs from the seventeenth embodiment in that it is provided with an additional sensing unit 40 and a bearing unit 95, and an additional sensor chamber R4 is formed in the housing 10. The other configurations are the same as those of the first embodiment.
[0168] Similar to the first sensing section 20, the additional sensing section 40 is a unit that constitutes an inductive sensor, and has a target 41 that rotates relative to the housing 10 and a sensor element 42b that is fixed relative to the housing 10.
[0169] The target 41 is disposed in the additional sensor chamber R4 and fixed to the rotating shaft 13. The additional sensor chamber R4 is a chamber through which the rotating shaft 13 passes, and is disposed between the mechanism chamber R3 and the first sensor chamber R1 in the direction along the axis CL. The mechanism chamber R3 and the additional sensor chamber R4 are in communication with each other via a gap between the surrounding portion 10a and the rotating shaft 13.
[0170] Between the additional sensor chamber R4 and the first sensor chamber R1, a bearing 95 is interposed between the surrounding portion 10a and the rotating shaft 13. The bearing 95 is attached to the surrounding portion 10a and surrounds and rotatably supports the rotating shaft 13. In this embodiment, the surrounding portions 10a and 10b may or may not function as bearings. The additional sensor chamber R4 and the first sensor chamber R1 are communicated with each other by a gap between the bearing 95 and the rotating shaft 13.
[0171] Similar to the sensor element 22b, the sensor element 42b is disposed between the target 41 and the sensor element 22b and is embedded in the housing 10. The sensor elements 22b and 42b surround the bearing portion 95 in the circumferential direction centered on the axis CL.
[0172] Furthermore, the gap between the enclosure 10a and the rotating shaft 13 between the mechanism chamber R3 and the additional sensor chamber R4 is narrower than the gaps in the mechanism chamber R3 and the additional sensor chamber R4. This configuration makes it difficult for foreign matter generated in the reaction force generating mechanism 15 to reach the additional sensor chamber R4. Furthermore, a bearing 95 is formed between the additional sensor chamber R4 and the first sensor chamber R1, making it difficult for foreign matter generated in the reaction force generating mechanism 15 to reach the first sensor chamber R1. As a modified example, as shown in FIG. 24, the portion of the enclosure 10a between the mechanism chamber R3 and the additional sensor chamber R4 in FIG. 23 may be eliminated, and the additional sensor chamber R4 may be integrated into the mechanism chamber R3. In this case, the target 41 is disposed within the mechanism chamber R3. Even in this case, the gap between the enclosure 10a and the rotating shaft 13 between the mechanism chamber R3 and the first sensor chamber R1 is narrower than the gaps in the mechanism chamber R3 and the first sensor chamber R1. Furthermore, since a bearing portion 95 is formed between the mechanism compartment R3 and the first sensor compartment R1, foreign matter generated in the reaction force generating mechanism 15 is less likely to reach the first sensor compartment R1. Note that the same effects can be obtained in this embodiment from the same configuration as in the seventeenth embodiment.
[0173] (19th embodiment) Next, a nineteenth embodiment will be described with reference to Figures 25 and 26. This embodiment differs from the first embodiment in the structures of the first sensing unit 20 and the second sensing unit 30, and the structures of the housing 10 and the rotating shaft 13 to which the first sensing unit 20 and the second sensing unit 30 can be attached. The other configurations are the same as those of the first embodiment.
[0174] The first sensing unit 20 is composed of one sub-unit. Specifically, the first sensing unit 20 includes a target 21, a fixed member 22, and an attachment shaft 25. The fixed member 22 has a base portion 22a and a sensor element 22b.
[0175] The base portion 22a is a casing made of a material such as resin, and serves as the outer shell of the subunit. The base portion 22a is fixed to the housing 10. The target 21 and the mounting shaft 25 are housed in the internal space surrounded by the base portion 22a. This internal space is the first sensor chamber R1. A through hole that opens to the rotating shaft 13 is formed in the wall of the base portion 22a on the rotating shaft 13 side.
[0176] The shape, material and function of the sensor element 22b are the same as those in the first embodiment. The sensor element 22b faces the target 21 and is attached inside the base part 22a or on the surface of the base part 22a facing the target 21.
[0177] The shape, material, and function of the target 21 are the same as those in the first embodiment. The target 21 is disposed in the internal space of the base portion 22a so as to intersect (for example, perpendicular to) the axis CL and is disposed so as to be rotatable relative to the base portion 22a about the axis CL. For example, the target 21 may be rotatably supported by a bearing portion (for example, a thrust bearing or a radial bearing) (not shown) attached to the inner surface of the base portion 22a.
[0178] The mounting shaft 25 is a rod-shaped member extending along the axis CL, one end of which is fixed to the target 21, passes through the through-hole formed in the base portion 22a, and the other end of which is attached to the end of the rotating shaft on the side of the first sensing unit 20. This allows the mounting shaft 25 and the target 21 to rotate together with the rotating shaft 13.
[0179] The second sensing unit 30 is composed of one sub-unit. Specifically, the second sensing unit 30 includes a rotating member 31, a fixed member 32, and a mounting shaft 35. The rotating member 31 includes a base portion 31a and a target 31b. The fixed member 32 includes a base portion 32a and a sensor element 32b.
[0180] The base portion 32a is a casing made of a material such as resin, and serves as the outer shell of the subunit. The base portion 32a is fixed to the housing 10. The rotating member 31 and the mounting shaft 35 are housed in the internal space surrounded by the base portion 32a. This internal space is the second sensor chamber R2. A through hole that opens to the rotating shaft 13 is formed in the wall of the base portion 32a on the rotating shaft 13 side.
[0181] The shape, material, and function of the sensor element 32b are the same as those in the first embodiment. The sensor element 32b is attached to the inside of the base part 32a or to the surface of the base part 32a facing the rotating member 31 so that the magnetic sensitive surface faces the rotating member 31.
[0182] The shapes, materials, functions, and relative arrangements of the base portion 31a and the target 31b are the same as those in the first embodiment. The base portion 31a is disposed in the internal space of the base portion 32a so as to intersect (e.g., perpendicular to) the axis CL and is disposed rotatable relative to the base portion 32a about the axis CL. For example, the base portion 31a may be rotatably supported by a bearing portion (e.g., a thrust bearing or a radial bearing) (not shown) attached to the inner surface of the base portion 32a.
[0183] The mounting shaft 35 is a rod-shaped member extending along the axis CL, one end of which is fixed to the base portion 31a, passes through the through-hole formed in the base portion 32a, and the other end of which is attached to the end of the rotating shaft on the side of the second sensing unit 30. This allows the mounting shaft 35 and the rotating member 31 to rotate together with the rotating shaft 13.
[0184] The rotating shaft 13 is different from the first embodiment only in the structure of the portions where it is connected to the first sensing unit 20 and the second sensing unit 30 at both ends, but otherwise is the same as the first embodiment. The end of the rotating shaft 13 on the first sensing unit 20 side is formed with a structure that allows a mounting shaft 25 to be attached. For example, as shown in Fig. 26, this end of the rotating shaft 13 may be formed with a receiving hole 13a into which the mounting shaft 25 can be press-fitted, or may be formed with any of various other structures that allow the mounting shaft 25 to be attached.
[0185] The end of the rotating shaft 13 on the second sensing unit 30 side has a structure that allows attachment of the mounting shaft 35. For example, as shown in Fig. 26, the end of the rotating shaft 13 may have a receiving hole 13b into which the mounting shaft 35 can be press-fitted, or may have any of various other structures that allow attachment of the mounting shaft 35.
[0186] In the brake pedal device 1 of this embodiment, first, the components other than the first sensing portion 20 and the second sensing portion 30 are assembled to form the brake pedal device 1 as shown in Fig. 26. In this state, the housing 10 is formed with a recessed portion 70 shaped to receive the first sensing portion 20 and a recessed portion 80 shaped to receive the second sensing portion 30.
[0187] The recessed portion 70 has a structure that allows attachment of the first sensing unit 20. For example, the recessed portion 70 may have a size that allows the base portion 22a of the first sensing unit 20 to be press-fitted therein, or may have a bolt hole formed therein so that the base portion 22a can be fastened with a bolt.
[0188] The recessed portion 80 has a structure that allows attachment of the second sensing unit 30. For example, the recessed portion 80 may have a size that allows the base portion 32a of the second sensing unit 30 to be press-fitted therein, or may have a bolt hole formed therein so that the base portion 32a can be fastened with a bolt.
[0189] The first sensing unit 20 is attached to the recessed portion 70, and the second sensing unit 30 is attached to the recessed portion 80, thereby forming the brake pedal device 1 as shown in Fig. 24. In this manner, the brake pedal device 1 is formed with the recessed portions 70, 80, receiving holes 13a, 13b, etc. as a structure that allows the first sensing unit 20 and the second sensing unit 30 to be attached as sub-units.
[0190] As shown in FIG. 25 , the first sensing unit 20 may include an O-ring 26 as a component for reducing play between the mounting shaft 25 and the rotating shaft 13. The O-ring 26 is attached to the end of the mounting shaft 25 on the rotating shaft 13 side and surrounds the mounting shaft 25 in the circumferential direction around the axis CL. The mounting shaft 25 and the O-ring 26 are inserted into the receiving hole 13a of the rotating shaft 13, thereby interposing the O-ring 26 between the mounting shaft 25 and the rotating shaft 13. This reduces play between the mounting shaft 25 and the rotating shaft 13. This also reduces axial misalignment between the rotating shaft 13 and the mounting shaft 25, maintaining them substantially coaxial. The receiving hole 13a may have a tapered shape that widens toward the target 21 to facilitate the reception of the O-ring 26. The end of the receiving hole 13a on the target 21 side may also have a rounded shape. As another example, such an O-ring may be attached to the second sensing unit 30. Further, the reduction of rattle between the mounting shaft 25 and the rotating shaft 13 can also be achieved, for example, by press-fitting the mounting shaft 25 into the receiving hole 13a of the rotating shaft 13. Further, the reduction of rattle between the mounting shaft 25 and the rotating shaft 13 can also be achieved, for example, by making the cross-sectional shapes of the mounting shaft 25 and the receiving hole 13a perpendicular to the axis CL non-circular (for example, polygonal).
[0191] The second sensing unit 30 may also include a coil spring 38 as a member for reducing rattle between the base portion 32a and the base portion 31a. The coil spring 38 is disposed between the base portion 32a and the base portion 31a in the sensor chamber R2, wound around the axis CL. One end of the coil spring 38 is engaged with the base portion 32a, and the other end is engaged with the base portion 31a. This allows the elastic force of the coil spring 38 in the torsion direction (i.e., the circumferential direction about the axis CL) to suppress rattle between the base portion 32a and the base portion 31a, thereby positioning the base portion 31a relative to the base portion 32a. This reduces axial misalignment between the rotating shaft 13 and the mounting shaft 35, maintaining them substantially coaxial. As another example, such a coil spring may be attached to the first sensing unit 20.
[0192] A labyrinth protrusion 22y may be formed on the base portion 22a of the first sensing unit 20. The labyrinth protrusion 22y protrudes from the surface of the housing 10 facing the mechanism compartment R3. This surface intersects (e.g., perpendicular to) the axis CL of the base portion 22a. The labyrinth protrusion 22y has a collar shape that annularly surrounds the first sensor chamber R1. A portion of the housing 10 facing the labyrinth protrusion 22y has a recessed shape to receive the labyrinth protrusion 22y.
[0193] In this way, a labyrinth structure is formed by labyrinth protrusion 22y and a portion of housing 10 facing labyrinth protrusion 22y. The path from the outside of housing 10 to first sensor chamber R1 through the gap between base portion 22a and housing 10 bends three or more times (specifically, four times) to pass through this labyrinth structure. This reduces the possibility of foreign matter entering first sensor chamber R1 from the outside of housing 10. Note that, as another example, such a labyrinth structure may be attached to the second sensing unit 30 side.
[0194] An O-ring 37 may be sandwiched between the housing 10 and the surface of the base portion 32a of the second sensing unit 30 that faces the mechanism chamber R3. The O-ring 37 is an annular sealing member that airtightly seals the gap between the base portion 32a and the housing 10. This reduces the possibility of foreign matter entering the second sensor chamber R2 from outside the housing 10. As another example, such an O-ring may be attached to the first sensing unit 20 side.
[0195] As described above, the mounting shaft 25 and the mounting shaft 35 may be components that constitute the first sensing unit 20 and the second sensing unit 30, respectively. Alternatively, as another example, the mounting shaft 25 and the mounting shaft 35 may be components that constitute the brake pedal device 1 before the first sensing unit 20 and the second sensing unit 30 are attached. For example, the mounting shaft 25 and the mounting shaft 35 may be formed integrally with the rotating shaft 13, and then fixed by press-fitting or the like into holes formed in the target 21 and the base portion 31a, respectively.
[0196] As described above, the brake pedal device 1 is provided with a structure that allows the attachment of targets 21, 31b that are attached to the rotating shaft 13 and rotate together with the rotating shaft 13, and multiple sensor elements 22b, 32b that detect their rotation. Therefore, in the brake pedal device 1 after these are attached, the possibility that factors such as dimensional variations and assembly variations of multiple parts will intervene in the process of detecting the rotation of the rotating shaft 13 is reduced. Therefore, the possibility that the detection accuracy of the displacement of the pedal 11 will be reduced is reduced.
[0197] Note that the modifications made to the first embodiment as in this embodiment can also be applied to the second to eighteenth embodiments. Furthermore, the same effects can be obtained from the same configurations in this embodiment as in the first to eighteenth embodiments. Of course, the brake pedal devices 1 in the first to eighteenth embodiments are equipped with the first sensing unit 20 and the second sensing unit 30. Therefore, the brake pedal devices 1 in the first to eighteenth embodiments naturally have a structure to which the first sensing unit 20 and the second sensing unit 30 can be attached.
[0198] (Twentyth embodiment) Next, a twentieth embodiment will be described with reference to FIGS. 27 to 31. In this embodiment, the configuration of the first sensing unit 20 constituting the inductive sensor in the first embodiment is modified. The brake pedal device p2 of this embodiment includes a housing p6, a rotating shaft p7, a brake pedal p8, a reaction force generating mechanism p9, and an inductive sensor p1. The housing p6 is directly fixed to the vehicle body with bolts (not shown) or indirectly fixed to the vehicle body via a base member (not shown). Specifically, the housing 6 is fixed to the dash panel or floor inside the vehicle cabin. The housing p6 corresponds to an example of a fixed body. A bearing p61 for rotatably supporting the rotating shaft 7 is provided inside the housing p6.
[0199] The brake pedal device p2, housing p6, rotating shaft p7, reaction force generating mechanism p9, and bearing p61 are the same components as the brake pedal device 1, housing 10, rotating shaft 13, reaction force generating mechanism 15, and surrounding portion 10b of the first embodiment, respectively. The brake pedal p8 is the same component as the pedal 11 and pedal arm 12 of the first embodiment. That is, the pedal pad p82 and pedal arm p81 are the same components as the pedal 11 and pedal arm 12 of the first embodiment, respectively.
[0200] Other configurations of this embodiment are the same as those of the first embodiment, except that the first sensing unit 20 of the first embodiment is constituted by an inductive sensor p1, and the positions of the inductive sensor p1 and the second sensing unit 30 constituting the first sensing unit 20 are interchanged.
[0201] Next, we will explain the inductive sensor p1. The inductive sensor 1 is a sensor that utilizes the principle of mutual induction. More specifically, when a target having a conductor approaches the transmitting coil, the magnetic field of the transmitting coil is canceled, and the amount of magnetic flux penetrating the receiving coil changes. The inductive sensor 1 reads this change as an output (i.e., a detection value corresponding to the angular position of the detection target around the axis line CL). The transmitting coil is also called an exciting coil.
[0202] As shown in FIGS. 27 to 29, the inductive sensor p1 of this embodiment includes a circuit board p10 and a plurality of targets p20.
[0203] The circuit board p10 is fixed to a housing p6, which serves as a fixed body. A transmitting coil (not shown), a receiving coil (not shown), and a transmitting / receiving circuit (not shown) are mounted on the circuit board p10. In the following description, the transmitting coil and receiving coil are collectively referred to as the "transmitting / receiving coil p30." Figure 27 shows the area on the circuit board p10 where the transmitting / receiving coil p30 is mounted. The transmitting / receiving circuit is composed of an integrated circuit such as an ASIC. The transmitting / receiving circuit supplies high frequency waves to the transmitting coil and outputs a signal corresponding to changes in the inductance of the receiving coil.
[0204] The multiple targets p20 include a first target p21 and a second target p22. In the twentieth embodiment and thereafter, the target p20 arranged on the circuit board p10 side among the multiple targets p20 will be referred to as the first target p21, and the target arranged on the opposite side of the first target p21 from the circuit board p10 will be referred to as the second target p22. The inductive sensor p1 is not limited to two targets p20 (i.e., the first target p21 and the second target p22), and may have three or more targets p20. This also applies to each embodiment described later.
[0205] Each of the multiple targets p20 includes a conductor. The target p20 may be entirely made of a conductor, or may include a conductor in part. The multiple targets p20 are fixed independently to the rotation axis p7, which is the detection object. Therefore, the multiple targets p20 move in synchronization with the rotation axis p7. The method of fixing the targets p20 to the rotation axis p7 can be one or more of press fitting, snap fitting, caulking, and welding, for example.
[0206] 29, the first target p21 has a cylindrical portion p211 that surrounds the outer wall on the radially outer side of the rotation shaft p7, and a plurality of blade portions p212 that extend radially outward from the cylindrical portion p211. In this embodiment, the first target p21 has four blade portions p212. The second target p22 also has a cylindrical portion p221 that surrounds the outer wall on the radially outer side of the rotation shaft p7, and a plurality of blade portions p222 that extend radially outward from the cylindrical portion p221. The second target p22 also has four blade portions p222. The four blade portions p212 and p222 that the first target p21 and the second target p22 respectively have are provided at predetermined intervals in an area around the entire circumferential direction of the cylindrical portions p211 and p221. By providing the four blade portions p212, p222 in the entire peripheral area of the cylindrical portions p211, p221, it is possible to increase the output of the inductive sensor p1.
[0207] As shown in Fig. 28, the first target p21 and the second target p22 are arranged so as to overlap in the plate thickness direction. The distance (i.e., detection gap) pD1 between the first target p21 and the transmitting / receiving coil p30 is set to a distance at which mutual induction occurs. The distance (i.e., detection gap) pD2 between the second target p22 and the transmitting / receiving coil p30 is also set to a distance at which mutual induction occurs. In Fig. 28, arrows pM1 and pM2 schematically indicate that mutual induction occurs in the detection gap between the target p20 and the transmitting / receiving coil p30.
[0208] Note that, when viewed from the direction in which the axis CL of the rotation axis p7 extends (hereinafter referred to as the "axial direction"), the shape of the first target p21 and the shape of the second target p22 may or may not overlap. Fig. 29 shows a state in which, when viewed from the axial direction, the shape of the first target p21 and the shape of the second target p22 are arranged with a slight deviation around the axis (i.e., a state in which they do not partially overlap).
[0209] Incidentally, the brake pedal device 2p mounted on a vehicle may be subjected to vibrations from the vehicle while the vehicle is running. In addition, the brake pedal device p2 may be used in high or low temperature and high humidity environments. Therefore, the target p20 attached to the brake pedal device p2 may fall off for some reason (for example, vehicle vibration, loss of fixing force due to rust, etc.).
[0210] Fig. 30 shows a state in which the first target p21 has fallen off the rotation axis p7 for some reason in the inductive sensor 1 of the first embodiment. As shown in Fig. 30, even if the first target p21 has fallen off, the inductive sensor p1 of the first embodiment can still detect the positions of the rotation axis p7 and the brake pedal p8 by using the second target p22.
[0211] Here, for comparison with the inductive sensor p1 of this embodiment, an inductive sensor p100 of a comparative example will be described. As shown in Fig. 31, the inductive sensor p100 of the comparative example includes one target p20 and a circuit board 10 on which a transmitting / receiving coil p30 and the like are mounted.
[0212] In the inductive sensor p100 of this comparative example, if the target p20 falls off the rotation axis p7 for some reason, an output abnormality occurs. Furthermore, even if the inductive sensor p100 of the comparative example is configured to be able to output multiple detection values from the circuit board p10, if the target p20 falls off, all of the detection values will become output abnormal.
[0213] In contrast to such comparative examples, the inductive sensor p1 and the brake pedal device p2 of this embodiment have the following configuration and provide the following effects.
[0214] (1) The inductive sensor p1 has a plurality of targets p20 that are fixed independently of the object to be detected (for example, a rotating shaft p7 or a brake pedal p8) so as to move in synchronization with the movement of the object to be detected.
[0215] With this, even if one of the multiple targets p20 falls off or is deformed, the position of the detection target can be correctly detected by the other targets p20 and the transmitting / receiving coil p30. Therefore, the inductive sensor p1 can ensure redundancy in detecting the position of the detection target even if the target 20 falls off or is deformed.
[0216] (2) The brake pedal device p2 detects the positions (specifically, the rotation angle) of the rotation shaft p7 and the brake pedal p8 as detection targets using an inductive sensor p1 equipped with multiple targets p20. In this brake-by-wire system, if the inductive sensor p1, which detects the positions of the rotation shaft p7 and the brake pedal p8 of the brake pedal device p2, malfunctions, this could interfere with vehicle braking. In contrast, the brake pedal device p2 of this embodiment has an inductive sensor p1 equipped with multiple targets p20, ensuring redundancy in detecting the positions of the rotation shaft p7 and the brake pedal p8 even if the targets p20 fall off or become deformed. Therefore, this brake pedal device p2 can improve the safety of vehicle braking using a brake-by-wire system.
[0217] In this embodiment, the transmission / reception coil p30 corresponds to the sensor element 22b, and the multiple targets p20 correspond to the targets 31. Furthermore, the modifications made to the first embodiment as in this embodiment can be similarly applied to the inductive sensors of the second to nineteenth embodiments.
[0218] (21st embodiment) The 21st embodiment will be described. The 21st embodiment is the same as the 20th embodiment except for the configuration of the inductive sensor p1, and therefore only the differences from the 20th embodiment will be described.
[0219] As shown in FIGS. 32 and 33 , in the twenty-first embodiment, the inductive sensor p1 has a plurality of transmission / reception coils p30 mounted on a single circuit board p10 and is configured to output a plurality of detection values. Of the plurality of transmission / reception coils p30, a first transmission / reception coil p31 is mounted on one surface of the circuit board p10. Of the plurality of transmission / reception coils p30, a second transmission / reception coil p32 is mounted on the other surface of the circuit board p10. The single circuit board p10 and the plurality of transmission / reception coils p30 mounted thereon are housed in a sensor casing p40 and fixed to a housing p6 serving as a fixed body. Specifically, the plurality of transmission / reception coils p30 are the first transmission / reception coil p31 and the second transmission / reception coil p32.
[0220] The multiple targets p20 include a first target p21 and a second target p22. The first target p21 is disposed on one side of the circuit board p10 in the thickness direction, and the second target p22 is disposed on the other side of the circuit board p10 in the thickness direction. The first target p21 and the second target p22 are each fixed independently with respect to a rotation axis p7 that serves as a detection object. Therefore, the first target p21 and the second target p22 move in synchronization with the rotation axis p7.
[0221] Although not shown, the first target p21 and the second target p22 have, similar to the twentieth embodiment shown in Fig. 29, cylindrical portions p211 and p221 surrounding the outer wall of the rotating shaft 7 on the radially outer side, and a plurality of blade portions p212 and p222 extending radially outward from the cylindrical portions p211 and p221. The plurality of blade portions p212 and p222 of the first target p21 and the second target p22, respectively, are provided at predetermined intervals over the entire circumferential range of the cylindrical portions p211 and p221. By providing the plurality of blade portions p212 and p222 over the entire circumferential range of the cylindrical portions p211 and p221, it is possible to increase the output of the inductive sensor p1.
[0222] 33, the distance pD3 between the first target p21 and the first transmitting / receiving coil p31 is set to a distance at which mutual induction occurs. Therefore, the first transmitting / receiving coil p31 can output a signal corresponding to the position of the first target p21. Furthermore, the distance pD4 between the second target p22 and the second transmitting / receiving coil p32 is also set to a distance at which mutual induction occurs. Therefore, the second transmitting / receiving coil p32 can output a signal corresponding to the position of the second target p22.
[0223] In the twenty-first embodiment, the distance pD3 between the first target p21 and the first transmitting / receiving coil p31 and the distance pD4 between the second target p22 and the second transmitting / receiving coil p32 are the same. In this specification, "the distances pD3 and pD4 are the same" means that these distances are completely the same, and also includes a state in which they are slightly different due to manufacturing tolerances. By making pD3 and pD4 the same, it becomes possible to easily compare the detection values output from the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 without or with simple signal post-processing in the ECU.
[0224] The inductive sensor p1 and the brake pedal device p2 of the twenty-first embodiment described above have the following configuration and the resulting functions and effects in addition to the functions and effects described in the twentieth embodiment.
[0225] (1) The multiple targets p20 include at least a first target p21 and a second target p22. The transmission / reception coil p30 includes at least a first transmission / reception coil p31 that outputs a detection value corresponding to the position of the first target p21 and a second transmission / reception coil p32 that outputs a detection value corresponding to the position of the second target p22.
[0226] According to this, the inductive sensor p1 includes a first sub-sensor unit composed of the first target p21 and the first transmitting / receiving coil p31, and a second sub-sensor unit composed of the second target p22 and the second transmitting / receiving coil p32. Therefore, even if one of the first and second sub-sensor units malfunctions or falls off, the other sub-sensor unit can correctly detect the position of the detection target. Therefore, the inductive sensor 1 can ensure redundancy in detecting the position of the detection target even if the target p20 falls off or is deformed.
[0227] (2) The distance pD3 between the first target p21 and the first transmitting / receiving coil p31 is the same as the distance pD4 between the second target p22 and the second transmitting / receiving coil p32. This makes it possible to make the detection values of the first sub-sensor unit and the second sub-sensor unit substantially the same with respect to the position detection of the detection target. Therefore, in the ECU to which the detection value of the inductive sensor p1 is transmitted, it becomes possible to easily compare the detection values of the first sub-sensor unit and the second sub-sensor unit without or with simple signal post-processing.
[0228] Furthermore, even if either the first target p21 or the second target p22 p20 falls off the rotation axis p7 for some reason and the position of the detection object is detected using the other target p20, the signal amplitude of the sensor output will not decrease. If the signal amplitude is large, the SN ratio (i.e., signal-to-noise ratio) will increase and the effect of noise in transmission will be reduced, allowing the position of the detection object to be detected with high accuracy.
[0229] (3) A first transmitting / receiving coil p31 is mounted on one surface of one circuit board p10, and a second transmitting / receiving coil p32 is mounted on the other surface. A first target p21 is disposed on one side of the circuit board p10 in the thickness direction, and a second target p22 is disposed on the other side of the circuit board p10 in the thickness direction. This configuration allows the distance pD3 between the first target p21 and the first transmitting / receiving coil p31 to be the same as the distance pD4 between the second target p22 and the second transmitting / receiving coil p32.
[0230] (Twenty-second embodiment) The 22nd embodiment will be described. The 22nd embodiment is different from the 20th embodiment in that the configuration of the inductive sensor p1 is changed, but the rest is the same as the 20th embodiment, so only the parts that are different from the 20th embodiment will be described.
[0231] As shown in FIGS. 34 to 36, in the twenty-second embodiment, an inductive sensor p1 also includes a circuit board p10 and a plurality of targets p20.
[0232] As shown in Figures 34 and 35, the multiple targets p20 include a first target p21 and a second target p22. As shown in Figure 35, the first target p21 and the second target p22 each include a cylindrical portion p211, p221 that surrounds the outer wall of the rotation shaft p7 on the radially outer side, and a plurality of blade portions p212, p222 that extend radially outward from the cylindrical portion p211, p221. As shown in Figure 34, the cylindrical portion p211 of the first target p21 and the cylindrical portion p221 of the second target p22 are each independently fixed to the rotation shaft p7.
[0233] As shown in Fig. 35, the blades p212 of the first target p21 and the blades p222 of the second target p22 are arranged at positions offset in the circumferential direction, in other words, at positions that do not overlap in the axial direction. Furthermore, as shown in Fig. 34, a surface p210 of the blades p212 of the first target p21 that faces the first transmitting / receiving coil p31 and a surface p220 of the blades p222 of the second target p22 that faces the second transmitting / receiving coil p32 are arranged on a first imaginary plane pVS1.
[0234] 36, the inductive sensor p1 of the 22nd embodiment has multiple transmission / reception coils p30 mounted on a single circuit board p10, and is configured to be able to output multiple detection values. Of the multiple transmission / reception coils p30, a first transmission / reception coil p31 and a second transmission / reception coil p32 are mounted in an electrically independent state. The first transmission / reception coil p31 and the second transmission / reception coil p32 are mounted in a superimposed state on one surface of the circuit board p10.
[0235] 36, the area on the circuit board p10 where the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are mounted is shown hatched with dashed lines, although it is not a cross section. The coils that make up the transmitting / receiving coil p30 may have a variety of shapes (for example, a sinusoidal wave). As shown in FIG. 34, the circuit board p10 on which the multiple transmitting / receiving coils p30 and the receiving / transmitting circuit p35 are mounted is fixed to a housing p6, which serves as a fixed body.
[0236] 34, the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged on a second imaginary plane pVS2 that is parallel to the first imaginary plane pVS1 on the circuit board p10. In this specification, "the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged on the imaginary plane p2" not only means that the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 exactly coincide with the second imaginary plane, but also means that they are slightly misaligned, for example, by the thickness of the coil wire and the thickness of the layer of the circuit board p10.
[0237] The inductive sensor p1 and the brake pedal device p2 of the twenty-second embodiment described above have the following configuration and the resulting effects in addition to the effects described in the twentieth embodiment and the like.
[0238] In the twenty-second embodiment, a surface p210 of the first target p21 facing the first transmitting / receiving coil p31 and a surface p220 of the second target p22 facing the second transmitting / receiving coil p32 are arranged on a first imaginary plane pVS1. Furthermore, a surface p310 of the first transmitting / receiving coil p31 facing the first target p21 and a surface p320 of the second transmitting / receiving coil p32 facing the second target p22 are arranged on a second imaginary plane pVS2 parallel to the first imaginary plane pVS1.
[0239] With this arrangement, even in the 22nd embodiment, it is possible to make the distance pD3 between the first target p21 and the first transmitting / receiving coil p31 the same as the distance pD4 between the second target p22 and the second transmitting / receiving coil p32. Therefore, even if either the first target p21 or the second target p22, p20, falls off the rotation axis p7 for some reason and the position of the detection object is detected using the other target p20, the signal amplitude of the sensor output will not decrease. If the signal amplitude is large, the S / N ratio (i.e., signal-to-noise ratio) will increase and the influence of noise in transmission will be reduced, allowing the position of the detection object to be detected with high accuracy.
[0240] Furthermore, according to the configuration of the 22nd embodiment, there is only one detection gap between the multiple targets p20 and the transmitting / receiving coil p30, so the size of the inductive sensor p1 in the axial direction of the rotation axis p7 can be made smaller than in the second and third embodiments.
[0241] Furthermore, in this embodiment, both the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged around the entire circumferential direction of the rotation shaft p7, centered on the axis line CL. Let's assume that the rotation shaft p7 is misaligned due to rattle caused by clearance between the bearings p61 and p62 of the housing p6 (i.e., the surrounding portion 10a) and the rotation shaft p7. In this case, the positions of the blades p212 and p222 will be shifted. However, because the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged over a wide angular range of 360° around the axis line CL, the sensitivity of the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 to the misalignment of the blades p212 and p222 is reduced, and as a result, the position of the detection target can be detected with high accuracy.
[0242] Furthermore, the two blades p212 are arranged in opposite directions relative to the axis CL. Specifically, a virtual plane (not shown) including the axis CL passes through both blades p212. The first transmitting / receiving coil p31 is arranged 360° around the axis CL, allowing simultaneous detection of the two blades p212. This configuration ensures that even if the rotation axis p7 is misaligned as described above, the directions of the circumferential positional shifts of the two blades p212 around the axis CL are opposite. Therefore, the effects of the positional shifts of the two blades p212 are canceled out by the first transmitting / receiving coil p31. As a result, the position of the detection target can be detected with even higher accuracy. The same holds true for the relationship between the two blades p222 and the second transmitting / receiving coil p32.
[0243] (Twenty-third embodiment) The 23rd embodiment will be described. The 23rd embodiment is similar to the 20th embodiment, except that the configuration of the inductive sensor p1 is changed. Therefore, only the differences from the 20th embodiment will be described.
[0244] 37 to 39, the inductive sensor p1 in the 23rd embodiment also includes a circuit board p10 and multiple targets p20. The multiple targets p20 are the same as those described in the 22nd embodiment. That is, as shown in Fig. 37, a surface p210 of the multiple blade portions p212 of the first target p21 that faces the first transmitting / receiving coil p31 and a surface p220 of the multiple blade portions p222 of the second target p22 that faces the second transmitting / receiving coil p32 are arranged on a first imaginary plane pVS1.
[0245] As shown in Fig. 39, the inductive sensor 1 of the 23rd embodiment also has multiple transmission / reception coils p30 mounted on a single circuit board p10, and is configured to be able to output multiple detection values. Of the multiple transmission / reception coils p30, a first transmission / reception coil p31 and a second transmission / reception coil p32 are mounted in an electrically independent state. In Fig. 39, the area on the circuit board p10 where the first transmission / reception coil p31 is mounted is shown hatched with dashed lines, although it is not a cross-section. Furthermore, the area on the circuit board p10 where the second transmission / reception coil p32 is mounted is shown hatched with dashed lines, although it is not a cross-section.
[0246] The first transmission / reception coil p31 and the second transmission / reception coil p32 are mounted in different regions on one surface of the circuit board p10. Mounting the first transmission / reception coil p31 and the second transmission / reception coil p32 in different regions makes it possible to prevent the first transmission / reception coil p31 and the second transmission / reception coil p32 from being affected by each other's magnetic fields. Therefore, even if either the first transmission / reception coil p31 or the second transmission / reception coil p32 fails for some reason and the position of the detection target is detected using the other transmission / reception coil p30, this prevents the output signal of the sensor from being affected.
[0247] The coils constituting the transmission / reception coil p30 may have various shapes (for example, a sinusoidal shape). As shown in FIG. 37, a circuit board p10 on which multiple transmission / reception coils p30 and a reception / transmission circuit p35 are mounted is fixed to a housing p6 serving as a fixed body. In the twenty-third embodiment, the first transmission / reception coil p31 and the second transmission / reception coil p32 are also arranged on the circuit board p10 on a second imaginary plane pVS2 that is parallel to the first imaginary plane pVS1. Therefore, the distance pD3 between the first target p21 and the first transmission / reception coil p31 is the same as the distance pD4 between the second target p22 and the second transmission / reception coil p32.
[0248] The inductive sensor p1 and the brake pedal device p2 of the twenty-third embodiment described above have the following configuration and the resulting functions and effects in addition to the functions and effects described in the twentieth embodiment and the like.
[0249] In the twenty-third embodiment, the first transmission / reception coil p31 and the second transmission / reception coil p32 are mounted in different regions on one surface of the circuit board p10. This makes it possible to prevent the first transmission / reception coil p31 and the second transmission / reception coil p32 from being affected by each other's magnetic fields. Therefore, even if either the first transmission / reception coil p31 or the second transmission / reception coil p32 fails for some reason and the position of the detection target is detected using the other transmission / reception coil p30, it is possible to prevent the sensor output signal from being affected.
[0250] Furthermore, in the 23rd embodiment, there is only one detection gap between multiple targets p20 and the transmitting / receiving coil p30, so the size of the inductive sensor p1 can be made smaller in the axial direction of the rotation axis p7 compared to the 21st and 22nd embodiments.
[0251] In this embodiment, the first transmitting / receiving coil p31 is disposed at two locations spaced apart in the circumferential direction around the axis CL. More specifically, the first transmitting / receiving coil p31 is disposed at two locations on opposite sides of the axis CL. That is, an imaginary plane (not shown) including the axis CL passes through both of the two locations where the first transmitting / receiving coil p31 is disposed. The same is true for the second transmitting / receiving coil p32. In this way, the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are disposed over a wide angular range around the axis CL, which reduces the sensitivity of the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 to misalignment of the blade portions p212 and p222. This in turn enables the position of the detection target to be detected with high accuracy.
[0252] Furthermore, the two blades p212 are arranged in positions opposite to each other with respect to the axis CL. Specifically, a virtual plane (not shown) including the axis CL passes through both blades p212. The first transmitting / receiving coil p31 is arranged in two positions that allow simultaneous detection of the two blades p212. This configuration ensures that even if the rotation axis p7 is misaligned as described above, the directions of the circumferential positional shifts of the two blades p212 about the axis CL are opposite. Therefore, the effects of the positional shifts of the two blades p212 are canceled out by the first transmitting / receiving coil p31. As a result, the position of the detection target can be detected with even higher accuracy. The same is true between the two blades p222 and the second transmitting / receiving coil p32.
[0253] (Twenty-fourth embodiment) The 24th embodiment will be described. The 24th embodiment also describes an example of a method for fixing a plurality of targets p20, in contrast to the 20th embodiment and the like.
[0254] As shown in FIGS. 40 to 42, in the 24th embodiment, the multiple targets p20 include a first target p21 and a second target p22. The first target p21 and the second target p22 each include a cylindrical portion p211, p221, arm portions p213, p223, and multiple blade portions p212, p222. The cylindrical portions p211, p221 are portions that surround the outer wall of the rotation shaft p7 in the radial direction. The arm portions p213, p223 are portions that extend from the outer edges of the cylindrical portions p211, p221 toward the circuit board p10 in the axial direction. The multiple blade portions p212, p222 are portions that extend radially outward from the portions of the arm portions p213, p223 that are on the circuit board p10 side.
[0255] As shown in Fig. 41, both the first target p21 and the second target p22 are fixed to a rotating shaft p7, which serves as a rotating body, with the same bolt p75. Specifically, the axial end p71 of the rotating shaft p7 is inserted into a first hole p214 of the first target p21 and a second hole p224 of the second target p22. A threaded hole p72 is provided in the axial direction of the end p71 of the rotating shaft p7. A bolt p75 is threaded into the threaded hole p72 of the rotating shaft p7. The first target p21 and the second target p22 are fixed in a state where they are pressed against a step p74 provided on the rotating shaft p7 by the axial force of the bolt p75.
[0256] 42, the first target p21 and the second target p22 are both prevented from rotating relative to the rotation shaft p7 by a rotation prevention structure. Specifically, the rotation prevention structure is composed of two second-target-side flat surfaces p225 and p226 formed on the inner wall of the second hole p224 of the second target p22, and two rotation-shaft-side flat surfaces p77 and p78 provided on the outer wall of the rotation shaft p7. In this way, the rotation prevention structure prevents the relative rotation between the second target p22 and the rotation shaft p7.
[0257] Although not shown, the anti-rotation structure also includes two first-target-side flat surfaces formed on the inner wall of the first hole p214 of the first target p21 and two rotation-shaft-side flat surfaces p77, p78 provided on the outer wall of the rotation shaft p7. This prevents relative rotation between the first target p21 and the rotation shaft p7. Therefore, even if the bolt p75 loosens, the anti-rotation structure can prevent relative rotation between the first target p21, the second target p22, and the rotation shaft p7.
[0258] The plurality of blades p212 of the first target p21 and the plurality of blades p222 of the second target p22 are arranged at positions offset in the circumferential direction, in other words, at positions that do not overlap in the axial direction. As shown in Fig. 40, the surfaces p210 of the plurality of blades p212 of the first target p21 that face the first transmitting / receiving coil p31 are arranged on the first imaginary plane pVS1. The surfaces p220 of the plurality of blades p222 of the second target p22 that face the second transmitting / receiving coil p32 are also arranged on the first imaginary plane pVS1.
[0259] On the other hand, the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged on a second imaginary plane pVS2 that is parallel to the first imaginary plane pVS1 on the circuit board p10. In this specification, "the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are arranged on the second imaginary plane" means that the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are exactly aligned with the second imaginary plane, as well as that the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are slightly misaligned with the second imaginary plane. An example of such a slight misalignment is that the first transmitting / receiving coil p31 and the second transmitting / receiving coil p32 are slightly misaligned with the second imaginary plane by the thickness of the coil wires and the thickness of the layers of the circuit board p10.
[0260] The inductive sensor p1 and the brake pedal device p2 of the twenty-fourth embodiment described above have the following configuration and the resulting functions and effects in addition to the functions and effects described in the twentieth embodiment and the like.
[0261] In the 24th embodiment, the first target p21 and the second target p22 are both fixed to the rotation shaft p7, which serves as a rotating body, by the same bolt. This allows the first target p21 and the second target p22 to be easily fixed to the rotation shaft p7 without requiring any special equipment.
[0262] In the twenty-fourth embodiment, the inductive sensor p1 has a rotation prevention structure that restricts the relative rotation between the first target p21 and the rotation shaft p7 and restricts the relative rotation between the second target p22 and the rotation shaft p7. This prevents the first target p21 and the second target p22 from rotating relative to the rotating shaft p7 even if the bolt p75 loosens. Therefore, the inductive sensor p1 can continue to correctly detect the positions of the rotating shaft p7 and the brake pedal p8 as detection targets, ensuring redundancy in detecting the positions of the detection targets.
[0263] (Twenty-fifth embodiment) The 25th embodiment will be described. The 25th embodiment describes another specific example of the anti-rotation structure in contrast to the 24th embodiment.
[0264] As shown in FIG. 43 , in the 25th embodiment, the rotation of both the first target p21 and the second target p22 relative to the rotation shaft p7 is restricted by a rotation-preventing structure. Specifically, the rotation-preventing structure is composed of a second-target-side flat surface p225 formed on the inner wall of the second hole p224 of the second target p22 and a rotation-shaft-side flat surface p77 provided on the outer wall of the rotation shaft p7. This restricts the relative rotation between the second target p22 and the rotation shaft p7. Although not shown, the rotation-preventing structure also includes a first-target-side flat surface formed on the inner wall of the first hole p214 of the first target p21 and a rotation-shaft-side flat surface p77 provided on the outer wall of the rotation shaft p7. This restricts the relative rotation between the first target p21 and the rotation shaft p7. Therefore, similar to the twenty-fourth embodiment, even if the bolt p75 loosens, the twenty-fifth embodiment can prevent the first target p21, the second target p22, and the rotation axis p7 from rotating relative to each other.
[0265] (Twenty-sixth embodiment) The 26th embodiment will be described. The 26th embodiment also describes another specific example of the anti-rotation structure in contrast to the 24th embodiment.
[0266] 44, in the 26th embodiment, the rotation of both the first target p21 and the second target p22 relative to the rotation shaft p7 is restricted by a rotation-preventing structure. Specifically, the rotation-preventing structure is composed of a protrusion p227 protruding radially inward from the inner wall of the second hole p224 of the second target p22, and a recess p79 provided in the outer wall of the rotation shaft p7. The protrusion p227 of the second target p22 is fitted into the recess p79 of the shaft p7. This restricts the relative rotation between the second target p22 and the rotation shaft p7.
[0267] Although not shown, the anti-rotation structure also includes a protrusion protruding radially inward from the inner wall of the first hole p214 of the first target p21 and a recess p79 provided on the outer wall of the rotation shaft p7. The protrusion of the first target p21 fits into the recess p79 of the shaft p7. This prevents relative rotation between the first target p21 and the rotation shaft p7. Therefore, similar to the 24th and 25th embodiments, the 26th embodiment can prevent relative rotation between the first target p21, the second target p22, and the rotation shaft p7, even if the bolt p75 loosens.
[0268] (Twenty-seventh embodiment) The 27th embodiment will be described below. The 27th embodiment is different from the 24th to 26th embodiments in that the method of fixing the multiple targets p20 is changed.
[0269] As shown in FIG. 45 , in the 27th embodiment, both the first target p21 and the second target p22 are fixed to a rotating shaft p7, which serves as a rotating body, by crimping p701. Specifically, the axial end p71 of the rotating shaft p7 has a shape indicated by the dashed line p702 before crimping. The portion indicated by the dashed line p702 is inserted into the first hole p214 of the first target p21 and the second hole p224 of the second target p22. Then, the portion indicated by the dashed line p702 is pressurized from the axial direction and crushed, thereby performing crimping. This allows the axial end p71 of the rotating shaft p7 to fix the first target p21 and the second target p22 by the crimping p701.
[0270] The twenty-seventh embodiment may also be provided with the anti-rotation structures described in the twenty-fourth to twenty-sixth embodiments.
[0271] The inductive sensor p1 and the brake pedal device p2 of the twenty-seventh embodiment described above have the following configuration and the resulting effects in addition to the effects described in the twentieth embodiment and the like.
[0272] In the 27th embodiment, both the first target p21 and the second target p22 are fixed to the rotation shaft 7 by the crimping member p701. This reduces the component cost of the bolt p75 compared to a configuration in which the first target p21 and the second target p22 are fixed to the rotation shaft p7 by the bolt p75. Furthermore, since the height of the head of the crimping member p701 is generally lower than the height of the head of the bolt p75, the amount of bending of the target p20 (i.e., the length of the arm portions p223, p223) required to position the detection surface of the target p20 on the first imaginary plane pVS1 shown in FIG. 40 can be reduced. Therefore, the axial size of the inductive sensor p1 can be reduced. The detection surface of the target p20 is the surface p210 of the multiple blade portions p212 of the first target p21 that faces the first transmission / reception coil p31, and the surface p220 of the multiple blade portions p222 of the second target p22 that faces the second transmission / reception coil p32.
[0273] (Twenty-eighth embodiment) The 28th embodiment will be described below. The 28th embodiment is different from the 23rd to 27th embodiments in that the size of the transmission and reception coil p30 is changed.
[0274] 46 shows the state of the inductive sensor p1 when the centers of the bearings p61 and p62 of the housing p6 are aligned with the axis CL of the rotation shaft p7 and the driver is not applying a pedal force to the brake pedal p8, i.e., when the brake pedal p8 is in its initial position. In this state, the angle of the target p20 with respect to the circuit board p10 is set to, for example, 0°.
[0275] 47 shows the state of the inductive sensor p1 when the centers of the bearings p61 and p62 of the housing p6 and the axis CL of the rotation shaft p7 are aligned and the brake pedal p8 is fully depressed, i.e., when the brake pedal p8 is at its maximum depression position. In this state, the angle of the target p20 relative to the circuit board p10 is, for example, X°. Therefore, when the brake pedal p8 rotates from its initial position to its maximum depression position, the target p20 rotates within a range from 0° to X°.
[0276] In the following description, when the driver's pedal force on the brake pedal p8 increases, the direction in which the target p20 rotates relative to the circuit board p10 together with the depression of the brake pedal p8 is referred to as "one rotation direction." On the other hand, when the driver's pedal force on the brake pedal p8 decreases or is released, the direction in which the target 20 rotates relative to the circuit board p10 together with the return movement of the brake pedal p8 is referred to as "the other rotation direction."
[0277] 46 and 47, the area on the circuit board p10 where the first transmitting / receiving coil p31 is mounted is shown hatched with dashed lines, although it is not a cross-section, and the area on the circuit board p10 where the second transmitting / receiving coil p32 is mounted is shown hatched with dashed lines, although it is not a cross-section. Note that the dashed and dashed hatching is not used where the transmitting / receiving coil p30 and the target p20 overlap in the axial direction. This also applies to the 29th embodiment and the second and third comparative examples, which will be described later.
[0278] 46 and 47, in the twenty-eighth embodiment, the range over which the first transmission / reception coil p31 is mounted on the circuit board p10 is larger on one side and the other side of the rotation direction of the first target p21 than the rotation range of the first target p21 (i.e., 0° to X°). Similarly, the range over which the second transmission / reception coil p32 is mounted on the circuit board p10 is larger on one side and the other side of the rotation direction of the second target 22 than the rotation range of the second target 22 (i.e., 0° to X°).
[0279] 47, when the first target p21 is at 0°, the distance pA between the end p218 of the first target p21 on the other side in the rotational direction and the end p315 of the first transmission / reception coil p31 on the other side in the rotational direction is greater than a predetermined distance pD1. The predetermined distance pD1 is the distance by which the first target p21 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotational shaft p7. When the second target p22 is at 0°, the distance pB between the end p228 of the second target p22 on the other side in the rotational direction and the end p325 of the second transmission / reception coil p32 on the other side in the rotational direction is greater than a predetermined distance pD2. The predetermined distance pD2 is the distance by which the second target p22 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotational shaft p7.
[0280] 47, when the first target p21 is at X°, the distance pC between the end p219 of the first target p21 on one side in the rotational direction and the end p316 of the first transmission / reception coil p31 on one side in the rotational direction is greater than a predetermined distance pD3. The predetermined distance pD3 is the distance that the first target p21 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotational shaft p7. When the second target p22 is at X°, the distance pD between the end p229 of the second target p22 on one side in the rotational direction and the end p326 of the second transmission / reception coil p32 on one side in the rotational direction is greater than a predetermined distance pD4. The predetermined distance pD4 is the distance that the second target p22 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotational shaft p7.
[0281] Here, for comparison with the configuration described in the 28th embodiment, an inductive sensor and a brake pedal device of a second comparative example will be described.
[0282] Fig. 48 shows the state of the inductive sensor when the centers of the bearings p61 and p62 of the housing p6 and the axis CL of the rotation shaft p7 are aligned and the brake pedal p8 is in its initial position. As shown in Fig. 48, in the second comparative example, when the first target p21 is at 0°, the end p218 of the first target p21 on the other side in the rotation direction and the end p315 of the first transmission / reception coil p31 on the other side in the rotation direction overlap with each other when viewed from the axial direction. When the second target p22 is at 0°, the end p228 of the second target p22 on the other side in the rotation direction and the end p325 of the second transmission / reception coil p32 on the other side in the rotation direction overlap with each other when viewed from the axial direction.
[0283] In the second comparative example, the case where the centers of the bearings 61, 62 of the housing 6 and the axis CL of the shaft 7 are aligned and the first target 21 and the second target 22 are at X° is not shown. In this case, in the second comparative example, the end p219 of the first target p21 on one side in the rotation direction and the end p316 of the first transmission / reception coil p31 on one side in the rotation direction overlap when viewed from the axial direction. In addition, in this case, in the second comparative example, the end p229 of the second target p22 on one side in the rotation direction and the end p326 of the second transmission / reception coil p32 on one side in the rotation direction overlap when viewed from the axial direction.
[0284] Fig. 49 shows a state in the second comparative example in which, when the brake pedal p8 is in the initial position, rattle between the bearings p61 and p62 of the housing p6 and the rotating shaft p7 causes the rotating shaft p7 to become eccentric, causing the target p20 to move in the direction indicated by the arrow pE relative to the circuit board p10. In the second comparative example, a portion pP of the first target p21 at the upper left in Fig. 49 is outside the mounting range of the first transmitting / receiving coil p31. Furthermore, a portion pQ of the second target p22 at the upper right in Fig. 49 is also outside the mounting range of the second transmitting / receiving coil p32.
[0285] Therefore, in the second comparative example, if the rotation shaft p7 becomes eccentric when the brake pedal p8 is in the initial position, the area where the first target p21 and the first transmitting / receiving coil p31 overlap in the axial direction changes significantly. The area where the second target p22 and the second transmitting / receiving coil p32 overlap in the axial direction also changes significantly. This results in a significant change in the amplitude of the signal output from the inductive sensor.
[0286] Although not shown, in the second comparative example, if the rotation shaft p7 becomes eccentric when the brake pedal p8 is at its maximum depression position, the area where the first target p21 and the first transmitting / receiving coil p31 overlap in the axial direction also changes significantly. The area where the second target p22 and the second transmitting / receiving coil p32 overlap in the axial direction also changes significantly. This significantly changes the amplitude of the signal output from the inductive sensor.
[0287] Compared to the second comparative example, the inductive sensor p1 and the brake pedal device p2 of the 28th embodiment have the following configuration and the resulting effects in addition to the effects described in the 20th embodiment and the like.
[0288] In the twenty-eighth embodiment, the range over which the first transmission / reception coil p31 is mounted on the circuit board p10 is larger than the movable range of the first target p21 on one side and the other side in the rotation direction of the first target p21. Also, the range over which the second transmission / reception coil p32 is mounted on the circuit board p10 is larger than the movable range of the second target p22 on one side and the other side in the rotation direction of the second target p22.
[0289] With this, even if the first target p21 and the second target p22 become eccentric with respect to the circuit board p10 due to, for example, play between the bearings p61 and p62 of the housing p6 and the rotating shaft p7, the first target p21 is always located within the range of the first transmitting / receiving coil p31. Also, the second target p22 is always located within the range of the second transmitting / receiving coil p32. Therefore, the eccentricity of the first target p21 and the second target p22 does not significantly change the area over which the first transmitting / receiving coil p31 and the first target p21 overlap in the axial direction. The area over which the second transmitting / receiving coil p32 and the second target p22 overlap in the axial direction does not significantly change. Therefore, the amplitude of the signal output from the inductive sensor p1 does not change significantly.
[0290] (Twenty-ninth embodiment) The 29th embodiment will be described below. The 29th embodiment is different from the 23rd to 28th embodiments in the size of the target p20.
[0291] Fig. 50 shows the state of the inductive sensor p1 when the centers of the bearings p61 and p62 of the housing p6 and the axis CL of the rotation shaft p7 are aligned and the brake pedal p8 is in its initial position. As shown in Fig. 50, in the twenty-ninth embodiment, the first target p21 is larger radially outward than the area where the first transmitting / receiving coil p31 is mounted on the circuit board p10. Furthermore, the second target p22 is larger radially outward than the area where the second transmitting / receiving coil p32 is mounted on the circuit board p10.
[0292] Specifically, the distance pF between the radially outer end p21a of the first target p21 and the radially outer end p31a of the first transmission / reception coil p31 is greater than a predetermined distance pD7. The predetermined distance pD7 is the distance by which the first target p21 may move relative to the circuit board p10 due to play between the bearings p61 and p62 of the housing p6 and the rotation shaft p7. Furthermore, the distance pG between the radially outer end p22a of the second target p22 and the radially outer end p32a of the second transmission / reception coil p32 is greater than a predetermined distance. The predetermined distance is the distance by which the second target p22 may move relative to the circuit board p10 due to play between the bearings p61 and p62 of the housing p6 and the rotation shaft p7.
[0293] 51, in the twenty-ninth embodiment, the blades p212 of the first target p21 are larger radially inward than the area where the first transmission / reception coil p31 is mounted on the circuit board p10. Also, the blades p222 of the second target are larger radially inward than the area where the second transmission / reception coil p32 is mounted on the circuit board p10.
[0294] Specifically, the distance pH between the radially inner end p21b of the blade portion p212 of the first target p21 and the radially inner end p31b of the first transmitting / receiving coil p31 is greater than a predetermined distance pD8. The predetermined distance pD8 is the distance by which the first target p21 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotating shaft p7. Furthermore, the distance pI between the radially inner end p22b of the blade portion p222 of the second target p22 and the radially inner end p32b of the second transmitting / receiving coil p32 is greater than a predetermined distance pD9. The predetermined distance pD9 is the distance by which the second target p22 may move relative to the circuit board p10 due to wobble between the bearings p61 and p62 of the housing p6 and the rotating shaft p7.
[0295] Here, for comparison with the configuration described in the twenty-ninth embodiment, an inductive sensor and a brake pedal device of a third comparative example will be described.
[0296] Fig. 52 shows the state of the inductive sensor when the centers of the bearings p61 and p62 of the housing p6 and the axis CL of the rotation shaft p7 are aligned and the brake pedal p8 is in its initial position. As shown in Fig. 52, in the third comparative example, the radially outer end p21a of the first target p21 and the radially outer end p31a of the first transmission / reception coil p31 overlap with each other when viewed from the axial direction. Furthermore, the radially outer end p22a of the second target p22 and the radially outer end p32a of the second transmission / reception coil p32 overlap with each other when viewed from the axial direction.
[0297] FIG. 53 shows a state in which the rotation shaft p7 becomes eccentric due to play between the bearings p61 and p62 of the housing p6 and the rotation shaft p7, causing the target p20 to move in the direction indicated by the arrow pJ relative to the circuit board p10. In the third comparative example, the upper left portion pR of the first target p21 in FIG. 53 is outside the mounting range of the first transmission / reception coil p31. Similarly, the lower left portion pS of the second target p22 in FIG. 53 is also outside the mounting range of the second transmission / reception coil p32. Therefore, in the third comparative example, when the rotation shaft p7 becomes eccentric, the area over which the first target p21 and the first transmission / reception coil p31 overlap in the axial direction changes significantly. Furthermore, the area over which the second target p22 and the second transmission / reception coil p32 overlap in the axial direction also changes significantly. This significantly changes the amplitude of the signal output from the inductive sensor.
[0298] Compared to the third comparative example, the inductive sensor p1 and the brake pedal device p2 of the twenty-ninth embodiment have the following configuration and the resulting effects in addition to the effects described in the twentieth embodiment and the like.
[0299] In the twenty-ninth embodiment, the first target p21 is larger radially outward and radially inward than the area where the first transmission / reception coil p31 is mounted on the circuit board p10, and the second target p22 is larger radially outward and radially inward than the area where the second transmission / reception coil p32 is mounted on the circuit board p10.
[0300] With this, even if the first target p21 and the second target p22 become eccentric with respect to the circuit board p10 due to, for example, play between the bearings p61 and p62 of the housing p6 and the rotating shaft p7, the first target p21 is always located within the range of the first transmitting / receiving coil p31. Also, the second target p22 is always located within the range of the second transmitting / receiving coil p32. Therefore, the eccentricity of the first target p21 and the second target p22 does not significantly change the area over which the first transmitting / receiving coil p31 and the first target p21 overlap in the axial direction. Also, the area over which the second transmitting / receiving coil p32 and the second target p22 overlap in the axial direction does not significantly change. Therefore, the amplitude of the signal output from the inductive sensor p1 does not change significantly.
[0301] (Thirtieth embodiment) Next, a 30th embodiment will be described. In this embodiment, the configuration of the second sensing unit 30, which corresponds to the Hall sensor in the first embodiment, is modified. As shown in FIGS. 54 and 55, one magnetic sensor q40 has a magnetic circuit unit q401 fixed to the end of the rotating shaft 13 that moves together with the pedal arm 12, and a magnetic detection unit q402 that detects changes in the magnetic field generated by the magnetic circuit unit q401. The magnetic sensor q40 also detects the rotation angle of the pedal arm 12 relative to the housing 10. As described above, the rotation angle of the pedal arm 12 is included in the pedal operation amount. Note that FIG. 54 is a view tilted 90° around an axis perpendicular to the plane of the paper from FIG. 3.
[0302] Specifically, the magnetic circuit unit q401 is formed into a cylindrical shape by two permanent magnets q401a, q401b and two arc-shaped yokes q401c, q401d, and is disposed around the axis CL of the rotating shaft 13. The magnetic circuit unit q401 forms a closed magnetic circuit, in which the permanent magnets q401a, q401b and the yokes q401c, q401d are in contact with each other, and the loop through which magnetic flux flows is closed.
[0303] The two permanent magnets q401a, q401b are arranged on one side of the axis CL in the radial direction and the other side. In the following explanation, the magnet arranged on one side of the axis CL in the radial direction is referred to as the first magnet q401a, and the magnet arranged on the other side in the radial direction is referred to as the second magnet q401b. Furthermore, one of the two yokes q401c, q401d is referred to as the first yoke q401c, and the other yoke is referred to as the second yoke q401d.
[0304] One circumferential end of the first yoke q401c is connected to the N pole of the first magnet q401a, and the other circumferential end is connected to the N pole of the second magnet q401b. One circumferential end of the second yoke q401d is connected to the S pole of the first magnet q401a, and the other circumferential end is connected to the S pole of the second magnet q401b. Therefore, as shown by the dashed arrow qM in Figure 55, a magnetic field is formed in the radially inner region of the magnetic circuit unit q401, with magnetic flux flying from the first yoke q401c to the second yoke q401d in a direction intersecting the axis CL.
[0305] The magnetic circuit unit q401 is insert-molded inside the resin unit q403. The resin unit q403 is fixed to one end of the rotating shaft 13 with bolts q404 or the like. In this state, the center of the magnetic circuit unit q401 coincides with the axis CL. The magnetic circuit unit q401 rotates around the axis CL together with the rotating shaft 13. When the magnetic circuit unit q401 rotates around the axis CL together with the rotating shaft 13, the direction of the magnetic field formed in the radially inner region of the magnetic circuit unit q401 changes. The magnetic detection unit q402 is provided in the radially inner region of the magnetic circuit unit q401.
[0306] The magnetic detection unit q402 is integrally formed with the resin that constitutes the sensor holder q405 by insert molding. The sensor holder q405 is fixed to the housing 10. The positioning of the sensor holder q405 and the housing 10 is achieved by fitting a protrusion q406 on the outer periphery of the sensor holder q405 into the inner wall surface q407 of an opening in the housing 10. In this state, misalignment between the magnetic detection unit q402 provided on the sensor holder q405 and the axis CL can be prevented.
[0307] The magnetic detection unit q402 is composed of a magnetoresistance element (i.e., MR element) or a Hall element that outputs a signal corresponding to the magnetic field of the magnetic circuit unit q401. The MR element is an element whose electrical resistance value changes according to the angle of the magnetic field horizontal to the magnetic sensing surface. The Hall element is an element that outputs a Hall voltage corresponding to the strength of the magnetic field perpendicular to the magnetic sensing surface.
[0308] When the driver depresses the pedal 11, the pedal 11, pedal arm 12, rotating shaft 13, and magnetic circuit unit q401 all rotate around the axis CL. The magnetic detection unit q402 outputs a signal corresponding to the rotation angle of the magnetic circuit unit q401. The rotation angle of the magnetic circuit unit q401 is the same as the swing angle of the pedal arm 12. Therefore, the magnetic sensor q40 outputs a signal corresponding to the rotation angle of the pedal arm 12 relative to the housing 10 as the amount of operation of the pedal arm 12.
[0309] In this embodiment, the magnetic detection unit q402 corresponds to the sensor element 32b, and the magnetic circuit unit q401 corresponds to the target 31b. The modifications made to the first embodiment by this embodiment can also be applied to the Hall sensors of the second to nineteenth embodiments.
[0310] (31st embodiment) Next, a thirty-first embodiment will be described. In this embodiment, the configuration of the second sensing unit 30, which corresponds to the Hall sensor in the first embodiment, is modified. As shown in Figs. 56 and 57, the position detection device r20 constituting the second sensing unit 30 in this embodiment is configured as a magnet-type rotation angle sensor having a cylindrical magnetic circuit unit r60 fixed to the end of the rotating shaft 13 and a magnetic detection unit r70 provided radially inside the cylindrical magnetic circuit unit r60. Note that Fig. 56 is a view tilted 90° around an axis perpendicular to the paper surface with respect to Fig. 3.
[0311] The magnetic circuit unit r60 is formed into a cylindrical shape by two permanent magnets r61 and r62 and two arc-shaped yokes r63 and r64, and is disposed around the axis CL of the rotating shaft 13. The magnetic circuit unit r60 forms a closed magnetic circuit, in which the permanent magnets r61 and r62 and the yokes r63 and r64 are in contact with each other, forming a closed loop through which magnetic flux flows.
[0312] The two permanent magnets r61, r62 are arranged on one side of the axis CL in the radial direction. In the following description, the magnet arranged on one side of the axis CL in the radial direction is referred to as the first magnet r61, and the magnet arranged on the other side in the radial direction is referred to as the second magnet r62. Furthermore, one of the two yokes r63, r64 is referred to as the first yoke r63, and the other yoke is referred to as the second yoke r64.
[0313] One circumferential end of the first yoke r63 is connected to the N pole of the first magnet r61, and the other circumferential end is connected to the N pole of the second magnet r62. One circumferential end of the second yoke r64 is connected to the S pole of the first magnet r61, and the other circumferential end is connected to the S pole of the second magnet r62. Therefore, as shown by the dashed arrow rM in FIG. 57, a magnetic field is formed in the radially inner region of the magnetic circuit unit r60, in which magnetic flux flies from the first yoke r63 to the second yoke r64 in a direction intersecting the axis CL.
[0314] The magnetic circuit unit r60 is insert-molded inside the resin unit r65. The resin unit r65 is fixed to one end of the rotating shaft 13 by a bolt r66 or the like. In this state, the center of the magnetic circuit unit r60 coincides with the axis CL. The magnetic circuit unit r60 rotates around the axis CL together with the rotating shaft 13. When the magnetic circuit unit r60 rotates around the axis CL together with the rotating shaft 13, the direction of the magnetic field formed in the radially inner region of the magnetic circuit unit r60 changes. A magnetic detection unit r70 is provided in the radially inner region of the magnetic circuit unit r60.
[0315] The magnetic detection unit r70 is composed of first to fourth sensors r21 to r24, and is provided integrally with the resin that constitutes the sensor holding unit r71 by insert molding. The sensor holding unit r71 is fixed to the housing 10. Therefore, the sensor holding unit r71 corresponds to an example of a fixed body fixed to the vehicle. The positioning of the sensor holding unit r71 and the housing 10 is achieved by fitting a protrusion r72 provided on the outer peripheral edge of the sensor holding unit r71 into the inner wall surface r113 of an opening provided in the housing 10. In this state, it is possible to prevent misalignment between the magnetic detection unit r70 provided on the sensor holding unit r71 and the axis CL.
[0316] The first to fourth sensors r21 to r24 constituting the magnetic detection unit r70 are four rotation angle sensors each having a magnetoresistive element (i.e., an MR element) or a Hall element that outputs a signal according to the magnetic field of the magnetic circuit unit r60. The MR element is an element whose electrical resistance value changes according to the angle of the magnetic field horizontal to the magnetic sensing surface. The Hall element is an element that outputs a Hall voltage according to the strength of the magnetic field perpendicular to the magnetic sensing surface.
[0317] When the driver depresses the pedal 11, the pedal 11, pedal arm 12, rotating shaft 13, and magnetic circuit unit r60 all rotate around the axis line CL. The first to fourth sensors r21 to r24 that make up the magnetic detection unit r70 output signals corresponding to the swing angle of the magnetic circuit unit r60. The rotation angle of the magnetic circuit unit r60 is the same as the rotation angle of the pedal arm 12 and the rotating shaft 13. Therefore, the first to fourth sensors r21 to r24 each output a signal corresponding to the angle by which the pedal arm 12 and the rotating shaft 13 rotate around the predetermined axis line CL as the operation amount of the pedal 11.
[0318] The output signals of the four sensors r21 to r24 are input to the first ECU and the second ECU via first to fourth signal lines. In this manner, in this embodiment, the first ECU and the second ECU may be used instead of the ECU. The first sensor r21 and the first ECU are electrically connected by a first signal line, and the second sensor r22 and the first ECU are electrically connected by a second signal line. Therefore, the output signals of the first sensor r21 and the second sensor r22 are input to the first ECU in a manner that allows them to be distinguished from each other.
[0319] The third sensor r23 and the second ECU are electrically connected by a third signal line, and the fourth sensor r24 and the second ECU are electrically connected by a fourth signal line. Therefore, the output signals of the third sensor r23 and the fourth sensor r24 are input to the second ECU in a manner that enables them to be distinguished from one another. The first to fourth signal lines are, for example, configured by a wire harness or a predetermined in-vehicle LAN (Local Area Network).
[0320] Both the first ECU and the second ECU are composed of a microcomputer including a processor that performs control processing and arithmetic processing, a memory unit such as ROM and RAM that stores programs and data, and their peripheral circuits. The memory unit is composed of a non-transitory tangible storage medium. The first ECU and the second ECU each perform various control processing and arithmetic processing based on the programs stored in the memory unit, and control the operation of each device connected to the output port. Specifically, the first ECU and the second ECU detect the pedal operation amount based on the output signals of the first to fourth sensors r21 to r24, and control the brake actuator to apply a braking force to the vehicle wheels according to the rotational position of the rotating shaft 13.
[0321] The first ECU and the second ECU are connected via an in-vehicle LAN, such as a CAN (Controller Area Network) communication, as a signal transmission unit, so that they can transmit information to each other. Therefore, the output signals of the first sensor r21 and the second sensor r22 input to the first ECU are transmitted to the second ECU via the signal transmission unit in a distinguishable manner. In addition, the output signals of the third sensor r23 and the fourth sensor r24 input to the second ECU are transmitted to the first ECU via the signal transmission unit in a distinguishable manner. Therefore, both the first ECU and the second ECU can obtain the output signals of the first to fourth sensors r21 to r24 in a distinguishable manner.
[0322] The first ECU and the second ECU are configured to respond to failures of the first to fourth sensors r21 to r24, or breaks or short circuits in the first to fourth signal lines. Specifically, if any of the output signals of the first to fourth sensors r21 to r24 indicates an abnormal value, the first ECU and the second ECU can identify the output signal indicating the abnormal value by comparing the output signals of the first to fourth sensors r21 to r24. For example, the first ECU and the second ECU calculate the difference between the output signals of the first to fourth sensors r21 to r24, and if the difference (i.e., the test value) is 0 or greater than a predetermined threshold, the output signal indicates an abnormality. The first ECU and the second ECU then detect the pedal operation amount based on the normal output signals excluding the output signal indicating the abnormal value, and control the brake actuator to apply a braking force corresponding to the rotational position of the rotary shaft 13 to the vehicle wheels.
[0323] There are various methods for identifying abnormal values based on the multiple outputs of the first to fourth sensors r21 to r24. For example, it is possible to calculate a value by comparing the difference between the two outputs of the first to fourth sensors r21 to r24 and determine whether the sensor is normal or abnormal by using a threshold value as a reference. This makes it possible to determine the correct sensor signal even if the sensor signal fluctuates due to disturbances. Then, the correct sensor signal can be used to control the brakes.
[0324] The same concept as above is also used when calculating the value obtained by comparing the two output differences of two sensors other than the first and second sensors r21 and r22 for the first to fourth sensors r21 to r24.
[0325] Alternatively, as another method, a first ECU and a second ECU are provided, which store the relationship between the output signals of the first to fourth sensors r21 to r24 and the operation amount of the pedal 11 (i.e., the pedal operation amount) as described above. Based on this information, the first ECU and the second ECU derive four pedal operation amounts corresponding to the output signals of the first to fourth sensors r21 to r24, respectively. Then, an output signal indicating an operation amount different from the most frequently derived identical operation amount among the four pedal operation amounts is identified as an output signal indicating an abnormal value. In this way, up to two abnormal values can be identified from the signals of the four sensors r21 to r24 by majority vote.
[0326] The brake pedal device 1 of the first embodiment described above provides the following advantages.
[0327] (1) The first to fourth sensors r21 to r24 of the position detection device r20 are all rotation angle sensors that output a signal corresponding to the angle of rotation of the pedal arm 12 around the axis line CL as the amount of operation of the pedal 11. By providing four rotation angle sensors around the axis line CL of rotation of the pedal arm 12, the configuration can be simplified, and the number of parts, assembly man-hours, and costs can be reduced.
[0328] (2) The position detection device r20 is a magnet-type rotation angle sensor having one magnetic circuit unit r60 that generates a magnetic field and four magnetic detection units r70 as rotation angle sensors that detect the magnetic field of the magnetic circuit unit r60.
[0329] This allows the magnetic circuit unit r60 that generates the magnetic field detected by the magnetic detection unit r70 (for example, a Hall element or an MR element) to be a common unit (i.e., a single magnetic circuit unit r60), which makes it possible to reduce the size of the magnet-type rotation angle sensor having four rotation angle sensors, as well as the number of parts, assembly steps, and costs.
[0330] In this embodiment, the magnetic detection unit r70 corresponds to the sensor element 32b, and the magnetic circuit unit r60 corresponds to the target 31b. The modifications made to the first embodiment as in this embodiment can also be applied to the Hall sensors of the second to nineteenth embodiments.
[0331] (Other embodiments) The present disclosure is not limited to the above-described embodiments and may be modified as appropriate. The above-described embodiments are not unrelated to each other and may be combined as appropriate unless the combination is clearly impossible. In the above-described embodiments, elements constituting the embodiments are not necessarily essential unless expressly stated as essential or clearly considered essential in principle. In the above-described embodiments, when numerical values such as the number, value, amount, or range of a component of an embodiment are mentioned, the numerical values are not limited to the specific number unless expressly stated as essential or clearly limited to a specific number in principle. In particular, when multiple values are exemplified for a certain quantity, values between the multiple values may be adopted unless otherwise specified or clearly impossible in principle. In the above-described embodiments, when the shape, positional relationship, etc. of a component, etc. are mentioned, the shape, positional relationship, etc. of the component, etc. are not limited to the shape, positional relationship, etc. unless expressly stated or clearly limited to a specific shape, positional relationship, etc. in principle. The present disclosure also permits the following modifications and modifications within equivalent scopes of the above-described embodiments.
[0332] (Variation 1) In the above embodiment, inductive sensors and Hall sensors are used as the multiple sensors that detect the rotation of the rotating shaft. However, other combinations of sensors may be used to detect the rotation of the rotating shaft. For example, only multiple inductive sensors may be used, or only multiple Hall sensors may be used. Furthermore, for example, one of the multiple sensors may be a rotary encoder. Furthermore, if there are three or more sensors that detect the rotation of the rotating shaft, all of the three or more sensor elements may detect the rotation of the target using different detection principles.
[0333] (Variation 2) In the above embodiment, the brake pedal device 1 is shown as an example of a control pedal device, but the control pedal device may be a pedal device other than a brake pedal device that receives an operation to control the behavior of a vehicle. For example, an accelerator pedal device that receives an operation to accelerate a vehicle may have the features of the above embodiments.
[0334] (Variation 3) In the above embodiment, the sensor elements 22b, 32b, 42b, and 52b are located above the location of the reaction force generating mechanism 15 where sliding occurs in the vertical direction of the vehicle. However, roughly the same effect can be obtained even if the sensor elements 22b, 32b, 42b, and 52b are located at a position equivalent to the location of the reaction force generating mechanism 15 where sliding occurs in the vertical direction of the vehicle. Note that the sensor elements being located at a position equivalent to the location where sliding occurs in the vertical direction of the vehicle applies, for example, to cases where the range of the sensor elements partially overlaps with or completely coincides with the range of the location where sliding occurs.
[0335] (Variation 4) In the above embodiment, the gap between the rotating shaft 13 and the surrounding portions 10a, 10b is located above the portion of the reaction force generating mechanism 15 where sliding occurs. However, roughly the same effect can be obtained even if the gap is located at a position equivalent to the portion of the reaction force generating mechanism 15 where sliding occurs in the vertical direction of the vehicle. Note that the gap being located at a position equivalent to the portion of the reaction force generating mechanism 15 where sliding occurs in the vertical direction of the vehicle applies, for example, to cases where the range of the gap partially overlaps with the portion of the sliding occurrence or where the range of the gap completely coincides with the portion of the sliding occurrence.
[0336] (Various perspectives) [Point 1] A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; a rotating shaft (13) fixed to the pedal arm; a reaction force generating mechanism (15) that applies a reaction force to the pedal against the operation; A plurality of targets (21, 31b, 41, 51b) attached to the rotation shaft and rotating together with the rotation shaft; a control pedal device comprising: a plurality of sensor elements (22b, 32b, 42b, 52b) for detecting rotation of the plurality of targets; [Point 2] The control pedal device according to Aspect 1, wherein, when the control pedal device is attached to the vehicle, the plurality of targets and the plurality of sensor elements are located above or at a position equivalent to the vehicle top with respect to a portion of the reaction force generating mechanism where sliding occurs. [Aspect 3] a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism is disposed, and also forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; the mechanism chamber and the sensor chamber are separated from each other by bearings (10a, 10b, 14a, 14b, 14ba, 14bb) that rotatably support the rotation shaft; The control pedal device according to Aspect 1 or 2, wherein the gap inside the mechanism compartment and the gap inside the sensor compartment are in communication with each other via the gap between the bearing portion and the rotating shaft. [Point 4] a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism is disposed, and also forms a sensor chamber (R1, R2, R4) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The mechanism compartment and the sensor compartment are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, a gap inside the mechanism compartment and a gap inside the sensor compartment communicate with each other via a gap between the surrounding portion and the rotation shaft; The control pedal device according to Aspect 1 or 2, wherein the gap between the surrounding portion and the rotating shaft is narrower than the gap in the mechanism chamber and the gap in the sensor chamber. [Point 5] The control pedal device according to Aspect 4, wherein the surrounding portion is a bearing portion that rotatably supports the rotation shaft. [Point 6] a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism is disposed, and also forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The mechanism compartment and the sensor compartment are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, The control pedal device according to aspect 1 or 2, wherein a seal is formed between the surrounding portion and the rotating shaft. [Point 7] A control pedal device described in any one of Aspects 4 to 6, wherein a labyrinth structure is formed by the rotating shaft and the surrounding portion in a path from the mechanism compartment to the sensor compartment through the gap between the rotating shaft and the surrounding portion. [Point 8] The control pedal device according to any one of Aspects 4 to 6, further comprising a partition member (10x, 17, 18) provided between the reaction force generating mechanism and the surrounding portion in the mechanism compartment. [Point 9] A control pedal device according to aspect 8, further comprising a rod (16) disposed between the reaction force generating mechanism and the pedal arm, for transmitting the reaction force generated by the reaction force generating mechanism to the pedal arm. [Point 10] The control pedal device according to Aspect 8, wherein the partition member is a cover (17) that extends from the housing to the pedal arm in the mechanism chamber and expands and contracts in response to displacement of the pedal arm. [Point 11] A control pedal device as described in any one of Aspects 4 to 10, wherein when the control pedal device is attached to the vehicle, the gap between the rotating shaft and the surrounding portion is located above or at an equivalent position to the vehicle relative to the point in the reaction force generating mechanism where sliding occurs. [Point 12] 12. The control pedal device according to any one of Aspects 1 to 11, wherein at least two of the plurality of sensor elements detect rotation of the plurality of targets using detection principles different from each other. [Point 13] 13. The control pedal device according to any one of aspects 1 to 12, wherein the plurality of sensor elements include a sensor element (32b) in a Hall sensor and a sensor element (22b) in an inductive sensor. [Point 14] 14. The control pedal device according to any one of Aspects 1 to 13, wherein the operation received by the pedal is a brake operation for braking the vehicle. [Point 15] a housing (10) that forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The control pedal device according to aspect 1 or 2, wherein a gap between the exterior of the housing and the sensor chamber is sealed. [Point 16] a housing (10) that forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The control pedal device according to aspect 1 or 2, wherein a labyrinth structure is formed in a gap from the outside of the housing to the sensor chamber. [Point 17] a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism is disposed, and also forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; a bearing portion (14b) that rotatably supports the rotary shaft, The mechanism compartment and the sensor compartment are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, the bearing portion includes a first sub-bearing portion (14ba) interposed between the surrounding portion and the rotating shaft to rotatably support the rotating shaft, and a second sub-bearing portion (14bb) interposed between the surrounding portion and the rotating shaft to rotatably support the rotating shaft, The control pedal device according to aspect 1 or 2, wherein the first sub-bearing portion and the second sub-bearing portion are arranged side by side along the axis (CL) of the rotation shaft with a gap between them. [Point 18] some of the sensor elements among the plurality of sensor elements and some of the targets among the plurality of targets are sensor elements (p31, p32) in an inductive sensor (p1) and targets (p21, p22) in the inductive sensor, The target in the inductive sensor has a plurality of blade portions (p212, p222) arranged in positions opposite to each other with respect to the axis line (CL) of the rotation shaft, The sensor elements in the inductive sensor are disposed at positions opposite to each other with respect to the axis (CL), 18. The control pedal device according to any one of Aspects 1 to 17, wherein a sensor element in the inductive sensor is capable of detecting the plurality of blade portions. [Point 19] A control pedal device described in any one of aspects 1 to 18, wherein some of the plurality of sensor elements are sensor elements (p31, p32) in an inductive sensor (p1), and the sensor elements are arranged around the entire circumferential direction centered on the axis (CL) of the rotation shaft. [Point of View 20] A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; a rotating shaft (13) fixed to the pedal arm; a reaction force generating mechanism (15) that applies a reaction force to the pedal against the operation of the pedal, A control pedal device is formed with a structure (13a, 13b, 70, 80) to which a member (20, 30) can be attached, the member having a plurality of targets (21, 31b) attached to the rotation shaft and rotating together with the rotation shaft, and a plurality of sensor elements (22b, 32b) that detect the rotation of the plurality of targets.
Claims
1. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that exerts a reaction force against the operation of the pedal; A plurality of targets (21, 31b, 41, 51b) attached to the rotation shaft and rotating together with the rotation shaft; a plurality of sensor elements (22b, 32b, 42b, 52b) for detecting rotation of the plurality of targets; a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; the mechanism chamber and the sensor chamber are separated from each other by bearings (10a, 10b, 14a, 14b, 14ba, 14bb) that rotatably support the rotation shaft, a control pedal device in which the gap inside the mechanism compartment and the gap inside the sensor compartment are in communication with each other via a gap between the bearing portion and the rotating shaft.
2. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that exerts a reaction force against the operation of the pedal; A plurality of targets (21, 31b, 41, 51b) attached to the rotation shaft and rotating together with the rotation shaft; a plurality of sensor elements (22b, 32b, 42b, 52b) for detecting rotation of the plurality of targets; a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2, R4) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The mechanism room and the sensor room are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, a gap inside the mechanism compartment and a gap inside the sensor compartment communicate with each other via a gap between the surrounding portion and the rotation shaft; A control pedal device in which the gap between the surrounding portion and the rotating shaft is narrowed relative to the gap in the mechanism chamber and the gap in the sensor chamber.
3. 3. The control pedal device according to claim 2, wherein the surrounding portion is a bearing portion that rotatably supports the rotary shaft.
4. 2. The control pedal device according to claim 1, wherein, when the control pedal device is attached to the vehicle, the plurality of targets and the plurality of sensor elements are located above or at an equivalent position to the top of the vehicle relative to a portion of the reaction force generating mechanism where sliding occurs.
5. 4. The control pedal device according to claim 2, wherein a labyrinth structure is formed by the rotating shaft and the surrounding portion in a path from the mechanism compartment to the sensor compartment that passes through the gap between the rotating shaft and the surrounding portion.
6. 4. The control pedal device according to claim 2, further comprising a partition member (10x, 17, 18) provided between the reaction force generating mechanism and the surrounding portion in the mechanism compartment.
7. 7. The control pedal device according to claim 6, further comprising a rod (16) disposed between the reaction force generating mechanism and the pedal arm, for transmitting the reaction force generated by the reaction force generating mechanism to the pedal arm.
8. 7. The control pedal device according to claim 6, wherein the partition member is a cover (17) that extends from the housing to the pedal arm within the mechanism chamber and expands and contracts in response to displacement of the pedal arm.
9. 4. The control pedal device according to claim 2 or 3, wherein when the control pedal device is attached to the vehicle, the gap between the rotating shaft and the surrounding portion is located above or at an equivalent position to the top of the vehicle relative to the point in the reaction force generating mechanism where sliding occurs.
10. 4. The control pedal device according to claim 1, wherein at least two of the plurality of sensor elements detect rotations of the plurality of targets using detection principles different from each other.
11. 4. The control pedal device according to claim 1, wherein the plurality of sensor elements include a sensor element (32b) in a Hall sensor and a sensor element (22b) in an inductive sensor.
12. 4. The control pedal device according to claim 1, wherein the operation received by the pedal is a brake operation for braking the vehicle.
13. a housing (10) forming a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; 4. The control pedal device according to claim 1, wherein a gap between the exterior of said housing and said sensor chamber is sealed.
14. a housing (10) forming a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; 4. The control pedal device according to claim 1, wherein a labyrinth structure is formed in a gap from the outside of said housing to said sensor chamber.
15. a housing (10) that forms a mechanism room (R3) in which the reaction force generating mechanism is disposed, and also forms a sensor room (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; a bearing portion (14b) that rotatably supports the rotary shaft, The mechanism room and the sensor room are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, the bearing portion includes a first sub-bearing portion (14ba) interposed between the surrounding portion and the rotating shaft to rotatably support the rotating shaft, and a second sub-bearing portion (14bb) interposed between the surrounding portion and the rotating shaft to rotatably support the rotating shaft, 4. The control pedal device according to claim 1, wherein the first sub-bearing portion and the second sub-bearing portion are arranged side by side along the axis (CL) of the rotation shaft with a gap between them.
16. some of the sensor elements among the plurality of sensor elements and some of the targets among the plurality of targets are sensor elements (p31, p32) in an inductive sensor (p1) and targets (p21, p22) in the inductive sensor, The target in the inductive sensor has a plurality of blade portions (p212, p222) arranged in positions opposite to each other with respect to the axis line (CL) of the rotation shaft, The sensor elements in the inductive sensor are disposed at positions opposite to each other with respect to the axis (CL), 4. The control pedal device according to claim 1, wherein a sensor element in the inductive sensor is capable of detecting the plurality of blade portions.
17. 4. The control pedal device according to claim 1, wherein some of the plurality of sensor elements are sensor elements (p31, p32) in an inductive sensor (p1), and the sensor elements are arranged around the entire circumference of the rotation shaft in a circumferential direction centered on the axis (CL) of the rotation shaft.
18. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that exerts a reaction force against the operation of the pedal; A plurality of targets (21, 31b, 41, 51b) attached to the rotation shaft and rotating together with the rotation shaft; a plurality of sensor elements (22b, 32b, 42b, 52b) for detecting rotation of the plurality of targets; a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2, R4) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed, The mechanism room and the sensor room are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, a gap inside the mechanism compartment and a gap inside the sensor compartment communicate with each other via a gap between the surrounding portion and the rotation shaft; A control pedal device in which a portion of the path from the mechanism compartment to the sensor compartment through the gap between the surrounding portion and the rotating shaft is narrowed relative to the gap in the mechanism compartment and the gap in the sensor compartment.
19. One target (21) of the plurality of targets is disposed at one end of the rotation shaft, The other target (31b) of the plurality of targets is disposed at the other end of the rotation shaft, one sensor element (22b) of the plurality of sensor elements is disposed on the opposite side of the one target relative to the other target; 2. The control pedal device according to claim 1, wherein the other sensor element (32b) of the plurality of sensor elements is disposed on the opposite side of the one target with respect to the other target.
20. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that applies a reaction force against the operation of the pedal, a structure (13a, 13b, 70, 80) is formed to which a member (20, 30) can be attached, the member having a plurality of targets (21, 31b) attached to the rotation shaft and rotating together with the rotation shaft, and a plurality of sensor elements (22b, 32b) for detecting the rotation of the plurality of targets; a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; the mechanism chamber and the sensor chamber are separated from each other by bearings (10a, 10b, 14a, 14b, 14ba, 14bb) that rotatably support the rotation shaft, a control pedal device in which the gap inside the mechanism compartment and the gap inside the sensor compartment are in communication with each other via a gap between the bearing portion and the rotating shaft.
21. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that applies a reaction force against the operation of the pedal, a structure (13a, 13b, 70, 80) is formed to which a member (20, 30) can be attached, the member having a plurality of targets (21, 31b) attached to the rotation shaft and rotating together with the rotation shaft, and a plurality of sensor elements (22b, 32b) for detecting the rotation of the plurality of targets; a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2, R4) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed; The mechanism room and the sensor room are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, a gap inside the mechanism compartment and a gap inside the sensor compartment communicate with each other via a gap between the surrounding portion and the rotation shaft; A control pedal device in which the gap between the surrounding portion and the rotating shaft is narrowed relative to the gap in the mechanism chamber and the gap in the sensor chamber.
22. A control pedal device for a vehicle, comprising: A pedal (11) that receives an operation; a pedal arm (12) attached to the pedal and moving with the pedal; A rotating shaft (13) that swings integrally with the pedal arm; a reaction force generating mechanism (15) that applies a reaction force against the operation of the pedal, a structure (13a, 13b, 70, 80) is formed to which a member (20, 30) can be attached, the member having a plurality of targets (21, 31b) attached to the rotation shaft and rotating together with the rotation shaft, and a plurality of sensor elements (22b, 32b) for detecting the rotation of the plurality of targets; The control pedal device includes a housing (10) that forms a mechanism chamber (R3) in which the reaction force generating mechanism or the pedal arm is disposed, and also forms a sensor chamber (R1, R2, R4) in which at least one of the plurality of sensor elements or at least one of the plurality of targets is disposed, The mechanism room and the sensor room are separated from each other by a surrounding portion (10a, 10b) that rotatably surrounds the rotation shaft, a gap inside the mechanism compartment and a gap inside the sensor compartment communicate with each other via a gap between the surrounding portion and the rotation shaft; A control pedal device in which a portion of the path from the mechanism compartment to the sensor compartment through the gap between the surrounding portion and the rotating shaft is narrowed relative to the gap in the mechanism compartment and the gap in the sensor compartment.
23. 22. The control pedal device according to claim 1, wherein the reaction force generating mechanism is disposed in the mechanism compartment.
24. 23. The control pedal device according to claim 18, wherein the reaction force generating mechanism is disposed in the mechanism compartment.
Citation Information
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