Electric braking device
By using a partition wall with holes to position the rotation angle sensor and motor shaft member closer together, the electric braking device improves detection accuracy and prevents foreign matter ingress, addressing the issues of distance and contamination in existing devices.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- ADVICS CO LTD
- Filing Date
- 2022-08-03
- Publication Date
- 2026-04-14
AI Technical Summary
The existing electric braking devices suffer from reduced detection accuracy due to the partition between the magnet and sensor element, which increases the distance and affects magnetic flux density, while also allowing foreign substances to enter the circuit area.
Incorporating a partition wall with holes, such as through-holes or non-through-holes, to position the rotation angle sensor and motor shaft member closer together, maintaining magnetic flux density and preventing foreign matter ingress.
This configuration enhances detection accuracy by reducing the distance between sensor components and barriers foreign substances from entering the circuit area, thus maintaining effective operation and protection.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to an electric braking device.
Background Art
[0002] Patent Document 1 discloses a braking device including a non-contact sensor for detecting the rotation angle of an electric motor. The braking device disclosed in Patent Document 1 includes a partition (Trennmittel) for protecting electronic components from foreign substances such as wear powder and lubricants. The shaft of the electric motor and the sensor element are arranged so as to sandwich the partition.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In a braking device as disclosed in Patent Document 1, since a partition is arranged between the magnet attached to the shaft and the sensor element, there is a problem that the distance between the magnet and the sensor element becomes large. As a result, the detection accuracy of the sensor may be lowered.
Means for Solving the Problems
[0005] An electric braking device for solving the above problems comprises: a transmission mechanism for transmitting the rotation of a motor shaft member of an electric motor; an actuator unit that moves a friction material in accordance with the rotation of the electric motor transmitted by the transmission mechanism and applies braking force to the wheel by pressing the friction material against a rotating body that rotates integrally with the wheel; a circuit unit for controlling the actuator unit; a rotation angle sensor for detecting the rotation angle of the electric motor, comprising a detected unit attached to the motor shaft member and a detection unit provided in the circuit unit for detecting the output from the detected unit; and a partition wall that divides a first space, where the transmission mechanism is located, and a second space, where the circuit unit is located, wherein the partition wall is provided with a hole that is either a through hole or a non-through hole, and at least one of the rotation angle sensor and the motor shaft member is located in the hole.
[0006] In the above configuration, the presence of holes in the partition wall makes it easier to position the detected part and the detection part of the rotation angle sensor close together, even while a partition wall is in place to separate the first space where the transmission mechanism is located from the second space where the circuit section is located. As a result, the detection part can be positioned in a location with a relatively high magnetic flux density even with the partition wall in place. This reduces the decrease in the detection accuracy of the rotation angle sensor, while the partition wall prevents foreign matter such as wear particles and lubricants from entering the second space. [Brief explanation of the drawing]
[0007] [Figure 1] Figure 1 is a partial cross-sectional view showing an electric braking device of the first embodiment. [Figure 2] Figure 2 is a partial cross-sectional view showing an electric braking device according to the first embodiment. [Figure 3] Figure 3 is a cross-sectional view showing an electric braking device according to the second embodiment. [Figure 4] Figure 4 is a cross-sectional view showing an example of a modified electric braking system. [Figure 5] Figure 5 is a cross-sectional view showing another modified example of an electric braking system. [Figure 6] Figure 6 is a cross-sectional view showing another modified example of an electric braking system. [Figure 7] Figure 7 is a cross-sectional view showing yet another modified example of an electric braking system. [Figure 8] Figure 8 is a cross-sectional view showing an example of a modified electric braking device with bearings in holes in the bulkhead. [Figure 9] Figure 9 is a cross-sectional view showing an example of a modified electric braking system that includes grommets in the holes of the bulkhead. [Figure 10] Figure 10 is a front view showing the grommet of the electric braking system in Figure 9. [Figure 11] Figure 11 is a cross-sectional view showing an example of a modified electric braking device that includes a thin film to seal through-holes in the partition wall. [Figure 12] Figure 12 is a cross-sectional view showing another modified example of an electric braking system, which includes a thin film that seals the through-holes in the bulkhead. [Figure 13] Figure 13 is a cross-sectional view showing an example of a modified electric braking system with non-penetrating holes in the bulkhead. [Figure 14] Figure 14 is a cross-sectional view showing another modified example of an electric braking system with non-penetrating holes in the bulkhead. [Modes for carrying out the invention]
[0008] (First Embodiment) An electric braking device 10, which is a first embodiment of the electric braking device, will be described with reference to Figures 1 and 2.
[0009] <Electric braking device> The electric brake 10 includes a transmission mechanism 30 that transmits the rotation of the motor shaft member 13 of the electric motor 12. The electric brake 10 includes an actuator unit 20 that moves a friction material 22 in accordance with the rotation of the electric motor 12 transmitted by the transmission mechanism 30, and applies braking force to the wheel by pressing the friction material 22 against a rotating body 21 that rotates integrally with the wheel. The electric brake 10 includes a circuit unit 60 that controls the actuator unit 20. The electric brake 10 is composed of a detected unit 64 attached to the motor shaft member 13 and a detection unit 63 provided in the circuit unit 60 that detects the output from the detected unit 64, and includes a rotation angle sensor 62 that detects the rotation angle of the electric motor 12. The electric brake 10 includes a partition wall 70 that separates a first space, which is the space in which the transmission mechanism 30 is located, from a second space, which is the space in which the circuit unit 60 is located. The partition wall 70 is provided with a through hole 71t. At least a portion of the rotation angle sensor 62 is positioned inside the through-hole 71t.
[0010] Figures 1 and 2 show the electric brake system 10. The electric brake system 10 comprises a case 11a, a cover 11b, and a caliper housing 23. The cover 11b covers the opening of the case 11a. The caliper housing 23 is mounted on the case 11a. The case 11a is sealed.
[0011] The electric braking system 10 includes an actuator unit 20. As shown in Figure 1, the actuator unit 20 includes a friction material 22 that can be pressed against a rotating body 21 that rotates integrally with the vehicle's wheels. The rotating body 21 is, for example, a brake disc. The actuator unit 20 can generate a greater braking force the greater the force with which it presses the friction material 22 against the rotating body 21.
[0012] The electric braking device 10 includes an electric motor 12. Figures 1 and 2 show the line along the axis of the motor shaft member 13 of the electric motor 12 as the input shaft C1. As shown in FIG. 2, the actuator unit 20 includes a conversion mechanism 40 that converts the rotational motion of the electric motor 12 into a linear motion. The conversion mechanism 40 is, for example, a feed screw constituted by a screw shaft and a nut. The actuator unit 20 includes a piston 41 to which a friction material 22 is attached at an end facing the rotating body 21. The conversion mechanism 40 and the piston 41 are housed in a caliper housing 23. The actuator unit 20 can move the piston 41, that is, the friction material 22, by the linear motion converted by the conversion mechanism 40 from the rotational motion of the electric motor 12. One of the directions in which the piston 41 is moved by the linear motion is a direction in which the friction material 22 attached to the piston 41 approaches the rotating body 21. The other of the directions in which the piston 41 is moved by the linear motion is a direction in which the friction material 22 attached to the piston 41 moves away from the rotating body 21.
[0013] As shown in FIG. 2, the actuator unit 20 includes a transmission mechanism 30 that transmits the rotational motion of the electric motor 12 to the conversion mechanism 40. The transmission mechanism 30 may include a speed reduction mechanism. An example of the transmission mechanism 30 will be described.
[0014] The transmission mechanism 30 is constituted by a combination of gears or the like. The transmission mechanism 30 includes an input gear 31. For example, the input gear 31 is attached to the motor shaft member _13_. The input gear 31 may be constituted by forming teeth on the surface of the motor shaft member 13. The transmission mechanism 30 includes an output gear 33. The transmission mechanism 30 includes an output shaft member 39. The output gear 33 is attached to the output shaft member 39. In FIG. 2, a line along the axis of the output shaft member 39 is illustrated as an output shaft C2. An example of the transmission mechanism 30 is configured such that the output shaft C2 is in a position parallel to the input shaft C1.
[0015] The transmission mechanism 30 may include an intermediate gear 32. The transmission mechanism 30 may include an intermediate shaft member 38 to which the intermediate gear 32 is attached. For example, the intermediate gear 32 includes a first gear portion that can mesh with the input gear 31 and a second gear portion that can mesh with the output gear 33. In the intermediate gear 32, the first gear portion and the second gear portion rotate integrally. In an example of the intermediate gear 32, as shown in FIG. 1, the first gear portion and the second gear portion are integrally formed. For example, the transmission mechanism 30 may include a first intermediate gear corresponding to the first gear portion that can mesh with the input gear 31 and a second intermediate gear corresponding to the second gear portion that can mesh with the output gear 33 as separate members. The plurality of intermediate gears may be attached to the intermediate shaft member 38.
[0016] In the transmission mechanism 30, the rotation of the motor shaft member 13 is input to the input gear 31. The output gear 33 can rotate in response to the rotation of the input gear 31. The output gear 33 transmits the rotation to the actuator unit 20 via the output shaft member 39. More specifically, the rotational movement of the electric motor 12 can be transmitted from the motor shaft member 13 to the intermediate shaft member 38 by meshing the input gear 31 with the first gear portion of the intermediate gear 32. The rotational movement of the electric motor 12 can be transmitted from the intermediate shaft member 38 to the output shaft member 39 by meshing the second gear portion of the intermediate gear 32 with the output gear 33. The output shaft member 39 is connected to the conversion mechanism 40. The rotational movement is transmitted to the conversion mechanism 40 by the output gear 33 rotating the output shaft member 39.
[0017] Although FIG. 2 illustrates one intermediate gear 32, as the transmission mechanism 30, a plurality of gears contributing to the transmission of rotational movement may be interposed between the input gear 31 and the output gear 33.
[0018] The electric braking device 10 includes a circuit unit 60. The circuit unit 60 has a processing circuit that controls the rotational motion of the electric motor 12. The circuit unit 60 can control the actuator unit 20 through the control of the electric motor 12. The circuit unit 60 is housed in a case 11a. For example, the circuit unit 60 includes a circuit board 61 and mounted components mounted on the circuit board 61. Figures 1 and 2 show an example in which the circuit unit 60 is mounted such that it intersects with the input shaft C1, which is a line along the axis of the motor shaft member 13. More specifically, the circuit unit 60 is positioned so that the input shaft C1 and the circuit board 61 are perpendicular to each other.
[0019] The electric braking device 10 is equipped with a rotation angle sensor 62 for detecting the rotation angle of the motor shaft member 13. An example of a rotation angle sensor 62 is a non-contact type sensor. A magnetic sensor is an example of a non-contact type sensor.
[0020] The electric braking device 10 is equipped with a partition wall 70 within the case 11a. For example, the partition wall 70 can partition the case 11a into a housing for housing the circuit section 60. More specifically, the partition wall 70 can partition a first housing section 18 that houses the electric motor 12 and a second housing section 19 that houses the circuit section 60. The transmission mechanism 30 is housed in the first housing section 18. The internal space of the first housing section 18 corresponds to the "first space". The internal space of the second housing section 19 corresponds to the "second space".
[0021] As shown in Figure 1, the electric braking device 10 may include a rotation stop mechanism 50. The rotation stop mechanism 50 can maintain the braking force applied by the actuator unit 20. By activating the rotation stop mechanism 50, a parking brake function can be realized, for example. The rotation stop mechanism 50 includes, for example, a solenoid unit 53 and an engaging unit 52 that is movable by the solenoid unit 53. For example, the rotation stop mechanism 50 is housed in the first housing unit 18.
[0022] One example of the rotation-stopping mechanism 50 is that it functions as a ratchet mechanism. In this case, the rotation-stopping mechanism 50 constitutes a ratchet mechanism together with a ratchet gear 51 attached to the motor shaft member 13. For example, the ratchet gear 51 is molded integrally with the input gear 31. In another example, the ratchet gear 51 may be attached to the motor shaft member 13 as a separate component from the input gear 31. When the engaging portion 52 that contacts the ratchet gear 51 engages with the teeth of the ratchet gear 51, the ratchet gear 51 is prevented from rotating. The rotation-stopping mechanism 50 can stop the rotation of the electric motor 12 by preventing the ratchet gear 51 from rotating. The rotation-stopping mechanism 50 can stop rotation of the electric motor 12 in the direction in which the braking force decreases. This allows the rotation-stopping mechanism 50 to maintain the braking force applied to the wheel by the actuator 20. On the other hand, the rotation-stopping mechanism 50 can allow rotation of the electric motor 12 in the direction in which the braking force increases. The rotation stopping mechanism 50 can release the maintenance of braking force by disengaging the engagement between the engaging portion 52 and the ratchet gear 51.
[0023] The solenoid section 53 of the rotation stop mechanism 50 is equipped with a solenoid terminal. The solenoid terminal is connected to the circuit section 60, for example, by being inserted into a through-hole for a terminal formed in the partition wall 70, thereby penetrating the partition wall 70 and connecting to the circuit section 60. Alternatively, the solenoid terminal may be connected to the circuit section 60 via a connector and wiring, etc. The path connecting the solenoid terminal and the circuit section 60 is not limited to penetrating the partition wall 70; it may also bypass the partition wall 70.
[0024] The electric braking device 10 may include a motor bracket 81. For example, an electric motor 12 and a rotation stop mechanism 50 are mounted on the motor bracket 81. The motor bracket 81 may also include a transmission shaft hole 86. A shaft member of the transmission mechanism 30 can be inserted into the transmission shaft hole 86. For example, an intermediate shaft member 38 can be inserted into the transmission shaft hole 86, as shown in Figure 2.
[0025] The motor bracket 81 is fixed to the case 11a. That is, the electric motor 12 is fixed via the motor bracket 81. The rotation stop mechanism 50 is also fixed via the motor bracket 81. In the electric braking device 10, the electric motor 12 and the rotation stop mechanism 50 are integrated by the motor bracket 81 to form the parking brake unit 80. The parking brake unit 80 is housed in the case 11a.
[0026] <Rotation Angle Sensor> As shown in Figures 1 and 2, the rotation angle sensor 62 is composed of a detection unit 63 and a detected unit 64. For example, the detection unit 63 is mounted on a circuit board 61. The detected unit 64 is attached to the motor shaft member 13. The detection unit 63 is positioned opposite the detected unit 64. As an example, the diameter of the detected unit 64 is larger than the diameter of the motor shaft member 13.
[0027] As an example of a rotation angle sensor 62, the detected unit 64 is equipped with a magnet. For example, the detected unit 64 is equipped with a holder to which the magnet is attached. In this case, the magnet is attached to the motor shaft member 13 via the holder. As an example, the detection unit 63 is a sensor element that detects changes in the magnetic field caused by a magnet that rotates integrally with the motor shaft member 13.
[0028] <Bulkhead> As shown in Figures 1 and 2, a through-hole 71t is formed in the partition wall 70. The through-hole 71t is a hole for arranging at least a portion of the rotation angle sensor 62 inside. Figures 1 and 2 show an example in which the detected part 64 of the rotation angle sensor 62 is placed in the through-hole 71t. The detection part 63 of the rotation angle sensor 62 may also be placed in the through-hole 71t. The detected part 64 and the detection part 63 may also be placed in the through-hole 71t.
[0029] The first housing section 18 and the second housing section 19 are connected by the through-hole 71t. In other words, a path connecting the first housing section 18 and the second housing section 19 is formed by the gap located between the detected section 64 and the partition wall 70 in which the through-hole 71t is formed.
[0030] The diameter of the through-hole 71t is preferably slightly larger than the diameter of the detection portion 64, in order to reduce the gap between the detection portion 64 located in the through-hole 71t and the partition wall 70 in which the through-hole 71t is formed. In other words, it is preferable that the cross-sectional area of the path connecting the first housing portion 18 and the second housing portion 19 be small.
[0031] For example, the center of the through-hole 71t is located on the input shaft C1. For example, the through-hole 71t is formed with a constant diameter from the surface of the partition wall 70 facing the first housing section 18 to the surface of the partition wall 70 facing the second housing section 19.
[0032] An example of the partition wall 70 is permeable to magnetic flux. Another example of the partition wall 70 is formed from a non-magnetic material. Examples of non-magnetic materials include synthetic resin materials and aluminum alloys.
[0033] In the electric braking device 10, it is preferable that the partition wall 70 is positioned so that the detected part 64 is located inside the through hole 71t. For example, it is preferable that the motor bracket 81 and the partition wall 70 are fixed together by pins. However, the partition wall 70, motor bracket 81, case 11a, and cover 11b may be fixed together by pins or the like if they are in contact with each other.
[0034] <Manufacturing method for electric braking system> In the manufacturing method of the electric braking device 10, first, the step of attaching the detection unit 64 to the motor shaft member 13 of the electric motor 12 is performed. Next, the step of attaching the electric motor 12 to the case 11a is performed. Subsequently, the step of attaching the partition wall 70 is performed.
[0035] An example of a manufacturing method for the electric braking device 10 will be specifically described. First, the electric motor 12 is attached to the motor bracket 81. Next, the ratchet gear 51, input gear 31, and detection unit 64 are attached to the motor shaft member 13. Subsequently, the rotation stop mechanism 50 is attached to the motor bracket 81. Through these steps, a parking brake unit 80 is assembled, integrating the electric motor 12, rotation stop mechanism 50, and motor bracket 81. Next, the parking brake unit 80, integrating the electric motor 12, rotation stop mechanism 50, and motor bracket 81, is attached to the case 11a. For example, the parking brake unit 80 is attached to the case 11a by inserting the electric motor 12 into the opening of the case 11a from the end face opposite to the end face on which the motor shaft member 13 protrudes. Then, after attaching the transmission mechanism 30, partition wall 70, and circuit section 60 to the case 11a, the opening of the case 11a is closed by attaching the cover 11b to the case 11a. At this time, the partition wall 70 is installed so that the detected part 64 attached to the motor shaft member 13 is inserted into the through hole 71t. Furthermore, by inserting the intermediate shaft member 38 in the transmission mechanism 30 into the transmission shaft hole 86, the intermediate shaft member 38 can be supported by the motor bracket 81.
[0036] <Operation and Effects of the First Embodiment> The operation and effects of the first embodiment will be described. The electric braking device 10 prevents foreign matter, such as wear particles and lubricants, from entering the second housing section 19 from the first housing section 18, which houses the transmission mechanism 30, a potential source of foreign matter. This protects the circuit section 60 housed in the second housing section 19 from foreign matter.
[0037] In the electric braking device 10, the detected part 64 is positioned in a through hole 71t formed in the partition wall 70. This makes it easier to position the detected part 64 and the detection unit 63 close together, while still providing a partition wall 70 that separates the first housing section 18, which houses the transmission mechanism 30, and the second housing section 19, which houses the circuit section 60, within the case 11a. As a result, the detection unit 63 can be positioned in a location with a relatively high magnetic flux density even with the partition wall 70 in place. This reduces the decrease in detection accuracy of the rotation angle sensor 62 and prevents foreign matter such as wear particles and lubricants from entering the second housing section 19.
[0038] In the electric braking device 10, the gap between the bulkhead 70 and the detection unit 64 located in the through-hole 71t is reduced, thereby reducing the cross-sectional area of the path connecting the first housing unit 18 and the second housing unit 19. As a result, although a through-hole 71t is formed in the bulkhead 70, it is difficult for foreign objects to pass through the through-hole 71t.
[0039] (Second Embodiment) Figure 3 shows the electric braking device 110 of the second embodiment. The electric braking device 110 of the second embodiment differs from the electric braking device 10 of the first embodiment in that the motor shaft member 13 is arranged in the through hole 171t. With respect to the electric braking device 110, components common to the electric braking device 10 are denoted by the same reference numerals as in the first embodiment, and their descriptions are omitted as appropriate.
[0040] As shown in Figure 3, the motor shaft member 13 is inserted into the through-hole 171t of the bulkhead 170. The diameter of the through-hole 171t should be slightly larger than the diameter of the motor shaft member 13.
[0041] Since the motor shaft member 13 is positioned inside the through hole 171t, in the electric braking device 110, the detected part 64 is located in the second housing part 19. In the manufacturing method of the electric braking device 110, first, the electric motor 12 is attached to the case 11a. Next, the partition wall 170 is attached. Subsequently, the detection unit 64 is attached to the motor shaft member 13 of the electric motor 12.
[0042] <Operation and Effects of the Second Embodiment> The electric braking device 110 of the second embodiment provides the same functions and effects as the electric braking device 10 of the first embodiment.
[0043] The electric braking system 110 also provides the following functions and effects. In the electric braking device 110, it is sufficient that a through hole 171t with a diameter larger than the diameter of the motor shaft member 13 is formed in the partition wall 170. Therefore, the diameter of the through hole 171t can be made smaller compared to the through hole 71t provided in the first embodiment. This makes it more difficult for foreign objects to pass through the through hole 171t.
[0044] In the electric braking device 110, the detected unit 64 is located in the second housing unit 19 that houses the circuit unit 60. This allows the detected unit 64 and the detection unit 63 to be located closer together.
[0045] (Example of change) Each of the above embodiments can be implemented with the following modifications. Each of the above embodiments and the following modifications can be combined with each other to the extent that they do not contradict each other technically.
[0046] [Shape of a partition wall with through holes] In the first embodiment described above, a through-hole 71t with a constant diameter was exemplified. The through-hole formed in the partition wall is not limited to this.
[0047] The partition wall 270 shown in Figure 4 has a through-hole 271t formed therein. The through-hole 271t is formed so that its diameter gradually decreases from the surface of the partition wall 270 facing the first housing section 18 to the surface of the partition wall 270 facing the second housing section 19. In other words, the through-hole 271t has a tapered shape that narrows from the first housing section 18 to the second housing section 19. The diameter of the part of the through-hole 271t where the diameter is smallest is slightly larger than the diameter of the part to be detected 64. With the configuration shown in Figure 4, the effect is obtained that foreign matter that enters the through-hole 271t from the first housing section 18 is bounced back to the first housing section 18 by the tapered shape.
[0048] The partition wall 370 shown in Figure 5 has a through hole 371t formed therein. The through hole 371t has a constant diameter, similar to the through hole 71t in the first embodiment. The partition wall 370 gradually becomes thicker as it approaches the edge of the through hole 371t. That is, the partition wall 370 has an inclined surface 372 that is inclined so as it approaches the electric motor 12 as it approaches the edge of the through hole 371t. According to the configuration shown in Figure 5, foreign matter heading from the first housing section 18 towards the through hole 371t rides up onto the inclined surface 372, making it difficult for foreign matter to enter the through hole 371t.
[0049] The partition wall 470 shown in Figure 6 has a through-hole 471t formed therein. The through-hole 471t is tapered, narrowing from the first housing section 18 to the second housing section 19, and is similar to the through-hole 271t illustrated in Figure 4. The diameter of the part of the through-hole 471t with the smallest diameter is smaller than the diameter of the part to be detected 64. The part to be detected 64 is positioned offset to be closer to the electric motor 12 compared to the first embodiment. As a result, in the direction in which the axis of the motor shaft member 13 extends, a part of the partition wall 470 and the part to be detected 64 overlap. According to the configuration shown in Figure 6, foreign matter moving from the first housing section 18 to the second housing section 19 is less likely to pass through the through-hole 471t.
[0050] The partition wall 570 shown in Figure 7 has a through hole 571t formed therein. On the side of the partition wall 570 facing the second housing section 19, there is a reduced diameter section 573 that extends from the edge of the through hole 571t toward the center of the through hole 571t. The diameter of the through hole 571t from the side of the partition wall 570 facing the first housing section 18 to the reduced diameter section 573 is constant. A hole with a smaller diameter than this is formed in the reduced diameter section 573. The side of the reduced diameter section 573 facing the input shaft C1 may be tapered. In the configuration shown in Figure 7, the path connecting the first housing section 18 and the second housing section 19, which is formed by the gap located between the detected section 64 and the partition wall 570 in which the through hole 571t is formed, is bent. More specifically, the above path bends in the radial direction of the through hole 571t from the direction in which the axis of the motor shaft member 13 extends. Furthermore, the presence of the reduced diameter portion 573 causes the reduced diameter portion 573, which is part of the partition wall 570, and the detected portion 64 to overlap in the direction in which the axis of the motor shaft member 13 extends. According to the configuration shown in Figure 7, foreign matter moving from the first housing portion 18 to the second housing portion 19 becomes less likely to pass through the through hole 571t.
[0051] The partition wall formed so that the above path bends is not limited to the configuration illustrated in Figure 7. It is sufficient that the members and partition walls placed in the through-hole are configured so that the above path bends at least at one point.
[0052] [Attaching components to through holes] As shown in Figure 8, a bearing 77 may be provided, fixed to the partition wall 670 so as to be positioned in the through hole 671t. Examples of bearings 77 include rolling bearings and sliding bearings. The bearing 77 rotatably supports the part to be detected 64. In this case, the part to be detected 64 corresponds to the part to be supported. The through hole 671t is blocked by the bearing 77 and the part to be detected 64 supported by the bearing 77. Therefore, according to the configuration shown in Figure 8, the intrusion of foreign matter from the first housing part 18 into the second housing part 19 can be further suppressed.
[0053] A bearing may be applied to the through hole 171t in the second embodiment described above. That is, the bearing may rotatably support the motor shaft member 13. In this case, the motor shaft member 13 corresponds to the supported portion. In this way, the bearing only needs to rotatably support the supported portion, with at least a part of the detected portion 64 and a portion of the motor shaft member 13 that is located in the hole being the supported portion.
[0054] The partition wall may include a bearing for supporting the detection unit 64 located in the through hole, and a bearing for supporting the motor shaft member 13 located in the through hole. As shown in Figures 9 and 10, a grommet 79 may be fitted into the through-hole 771t. The through-hole 771t is formed in the partition wall 770.
[0055] As an example, the grommet 79 is elastically deformable. The grommet 79 is made of rubber, for example. The grommet 79 in a state fitted into the through hole 771t will be described. The grommet 79 has an edge portion 79a that is fitted into the through hole 771t. On the surface facing the second housing portion 19, the grommet 79 has a cover portion 79b that extends from the edge portion 79a toward the center of the through hole 771t. The thickness of the cover portion 79b is thinner than the thickness of the edge portion 79a. The thickness of the cover portion 79b is thinner than the thickness of the partition wall 770. A central hole 79c is formed in the cover portion 79b. The diameter of the central hole 79c is smaller than the diameter of the detected portion 64. The diameter of the central hole 79c is larger than the diameter of the motor shaft member 13. Radial slits 79d may be formed in the cover portion 79b extending from the central hole 79c toward the edge portion 79a. The width, length, and other shapes of the slit 79d are not particularly limited. Furthermore, any number of slits 79d can be formed in the cover portion 79b.
[0056] In the example shown in Figure 9, the motor shaft member 13 is positioned in the through hole 771t. More specifically, the motor shaft member 13 is inserted into the central hole 79c of the grommet 79, which is fitted into the through hole 771t.
[0057] The manufacturing method for the electric braking device illustrated in Figure 9 will now be described. First, the detection unit 64 is attached to the motor shaft member 13 of the electric motor 12. Next, the electric motor 12 is attached to the case 11a. Subsequently, the partition wall 770 is attached. At this point, the detection unit 64 can pass through the central hole 79c of the grommet 79 due to the elastic deformation of the cover portion 79b.
[0058] According to the above configuration, the grommet 79 has a cover portion 79b and a central hole 79c, which makes it possible to reduce the cross-sectional area of the path connecting the first housing portion 18 and the second housing portion 19. The elastic deformation of the cover portion 79b allows the motor shaft member 13 to be placed in the through hole 771t, while also allowing the detection portion 64 to be attached to the motor shaft member 13 before attaching the partition wall 70. The presence of a slit 79d in the cover portion 79b makes it easier to pass the detection portion 64 through the central hole 79c compared to a case where the slit 79d is not formed.
[0059] As shown in Figure 11, the thin film 78 may be attached to cover the through-hole 871t. The through-hole 871t is formed in the partition wall 870. The thickness of the thin film 78 is thinner than the thickness of the partition wall 870. The thin film 78 is permeable to magnetism. The thin film 78 is made of, for example, resin. In the example shown in Figure 11, the thin film 78 is attached to the surface of the partition wall 870 facing the second housing portion 19.
[0060] According to the above configuration, similar to the first embodiment, it is easier to place the detection unit 64 and the detection unit 63 close together while still arranging the partition wall 70. Furthermore, since the through hole 871t is sealed with the thin film 78, the intrusion of foreign matter into the second housing unit 19 can be further suppressed.
[0061] As shown in Figure 12, the thin film 78 that seals the through hole 871t may be attached to the inner wall of the through hole 871t. For example, the thin film 78 may be press-fitted into the through hole 871t. Furthermore, for example, instead of the grommet 79 exemplified in Figures 9 and 10, a grommet without a central hole 79c and a slit 79d can be fitted into the through hole 871t to create the configuration shown in Figure 12. In other words, the through hole 871t may be sealed by the cover portion of the grommet instead of the thin film 78.
[0062] [Partition wall with non-penetrating holes] In the first and second embodiments described above, through-holes were given as examples of holes formed in the partition wall. The holes formed in the partition wall are not limited to through-holes; they may also be non-through-holes. An example will be explained using Figure 13.
[0063] Figure 13 shows an example in which a non-through hole 71n is formed in the partition wall 970, where the surface facing the first housing section 18 is recessed toward the surface facing the second housing section 19. In other words, the thickness of the partition wall 970 is reduced in the portion where the non-through hole 71n is formed. The part to be detected 64 can be placed inside the non-through hole 71n. This allows the detection section 63 and the part to be detected 64 to be aligned in the direction in which the axis of the motor shaft member 13 extends.
[0064] According to the above configuration, similar to the first embodiment, it becomes easier to place the detection unit 64 and the detection unit 63 close together while still arranging the partition wall 970. Furthermore, since the hole in which the detection unit 64 is located is a non-through hole 71n, the intrusion of foreign matter into the second housing unit 19 can be further suppressed.
[0065] Figure 14 shows another example of a non-through hole. Figure 14 shows an example in which a non-through hole 171n is formed in the partition wall 1070, where the surface facing the second housing section 19 is recessed toward the surface facing the first housing section 18. A detection unit 63 can be placed inside the non-through hole 171n.
[0066] A bearing can also be installed in the non-through hole 71n, as illustrated in Figure 13. This bearing can support the part to be detected 64. Both non-through holes, as illustrated in Figure 13 and as illustrated in Figure 14, may be formed in the partition wall. That is, both non-through holes, where the surface facing the first housing section 18 is recessed toward the surface facing the second housing section 19, and non-through holes, where the surface facing the second housing section 19 is recessed toward the surface facing the first housing section 18, may be formed in the partition wall. With this configuration, the thickness of the partition wall in the portion where the non-through holes are formed can be made thinner.
[0067] A through-hole, which is a combination of a non-through-hole and a through-hole, may be formed in the partition wall. For example, a through-hole with a diameter smaller than the diameter of the non-through-hole may be formed at the bottom of a non-through-hole, as illustrated in Figure 13. In other words, the configuration illustrated in Figure 7 is a configuration that has holes that are a combination of a non-through-hole and a through-hole.
[0068] [Arrangement configuration of rotation angle sensors] In the first and second embodiments described above, the detection unit 63 of the rotation angle sensor 62 is positioned facing the detected unit 64. Here, in this specification, "facing the detection unit 63 and the detected unit 64" means that the detection unit 63 and the detected unit 64 are aligned in the direction in which the axis of the motor shaft member 13 extends. That is, another member such as a non-magnetic material may be placed between the detection unit 63 and the detected unit 64. For example, as illustrated in the configurations shown in Figures 11 and 12, a member that closes the through hole may be provided. For example, as illustrated in the configurations shown in Figures 13 and 14, the detection unit 63 and the detected unit 64 may be positioned so as to sandwich a portion where the thickness of the partition wall is thin.
[0069] [Positional relationship between motor shaft member and detected part] In the first and second embodiments described above, a configuration in which the detection unit 64 is attached to the end of the motor shaft member 13 was illustrated. However, the configuration is not limited to this, and the detection unit may be attached to the motor shaft member so that the motor shaft member passes through the detection unit. In other words, it is not a necessary configuration for the detection unit to be attached to the end of the motor shaft member. It is sufficient for the detection unit to be attached to the end of the motor shaft member.
[0070] Furthermore, a gear such as an input gear may be attached to the end of the motor shaft member, and the detected part may be attached to the end of the gear opposite to the motor shaft member. In other words, it is not essential that the detected part is directly attached to the motor shaft member. A member may be interposed between the detected part and the motor shaft member.
[0071] [Relationship between the rotation angle sensor and motor shaft member relative to the hole] The phrase "at least one of the rotation angle sensor and / or the motor shaft member is located inside the hole" means one of the following configurations: "at least a portion of the rotation angle sensor is located inside the hole," "a portion of the motor shaft member is located inside the hole," or "both at least a portion of the rotation angle sensor and / or a portion of the motor shaft member are located inside the hole."
[0072] Furthermore, the "part of the rotation angle sensor and motor shaft member that is located inside the through-hole" is referred to as the insertion part. Furthermore, the phrase "at least a part of the rotation angle sensor" can mean only the detected part, only the detecting part, or both the detected part and the detecting part. In this case, the "detected part" may refer to the entire detected part or only a part of the detected part. The "detecting part" may refer to the entire detecting part or only a part of the detecting part.
[0073] Based on the above combinations of options, the electric braking system can be configured as follows: The entire part to be detected is positioned within the through-hole. Part of the part to be detected is positioned within the through-hole. An example of such a configuration is the first embodiment described above.
[0074] The entire detection unit is positioned within the through-hole. A portion of the detection unit is positioned within the through-hole. A motor shaft member is positioned in the through-hole. An example of this configuration is the second embodiment described above.
[0075] The part to be detected and the motor shaft member are positioned in the through-hole. For example, the above configuration can be used when the thickness of the partition wall is greater than the thickness of the part to be detected. The detection unit and the motor shaft member are positioned in the through-hole. For example, the above configuration can be used when the motor shaft member passes through the part to be detected.
[0076] The entire part to be detected is positioned within a non-penetrating hole. Part of the part to be detected is positioned within a non-penetrating hole. An example of such a configuration is the modified example illustrated in Figure 13. The entire detection unit is positioned within the non-through hole. Part of the detection unit is positioned within the non-through hole. An example of such a configuration is the modified example illustrated in Figure 14.
[0077] The part to be detected and the motor shaft member are positioned in the non-through hole. For example, the above configuration can be used when the depth of the non-through hole is greater than the thickness of the part to be detected. The motor shaft member is positioned in the non-through hole. The detection unit and the motor shaft member are positioned in the non-through hole. For example, the above configuration can be used when the motor shaft member passes through the detection unit. [Explanation of Symbols]
[0078] 10…Electric braking device 11a... Case 11b...cover 12… Electric motor 13…Motor shaft member 18…First Detention Unit 19...Second Detention Unit 20…Actuator section 21…Rotational body 22...Friction material 30…Transmission mechanism 31...Input gear 40...Conversion mechanism 41... Piston 60...Circuit section 61... Circuit board 62... Rotation angle sensor 63...Detection unit 64...Detected part 70...Bulkhead 71t...Through hole 77...Bearings 78…Thin film
Claims
1. A transmission mechanism that transmits the rotation of the motor shaft member of an electric motor, An actuator unit that moves a friction material in accordance with the rotation of the electric motor transmitted by the transmission mechanism, and applies braking force to the wheel by pressing the friction material against a rotating body that rotates integrally with the wheel, A circuit section that controls the actuator section, A rotation angle sensor for detecting the rotation angle of the electric motor is configured with a detection unit attached to the motor shaft member and a detection unit provided in the circuit to detect the output from the detection unit, The system comprises a partition wall that separates a first space, which is the space in which the transmission mechanism is located, from a second space, which is the space in which the circuit section is located. The aforementioned partition wall is provided with through holes, At least one of the rotation angle sensor and the motor shaft member is positioned inside the through hole, A thin film, thinner than the thickness of the partition wall, is attached to the partition wall so as to block the through-hole. Electric braking device.
2. The thin film is attached to the surface of the partition wall facing the second space. The electric braking device according to claim 1.
3. The thin film is attached to the inner wall of the through hole. The electric braking device according to claim 1.
4. A transmission mechanism that transmits the rotation of the motor shaft member of an electric motor, An actuator unit that moves a friction material in accordance with the rotation of the electric motor transmitted by the transmission mechanism, and applies braking force to the wheel by pressing the friction material against a rotating body that rotates integrally with the wheel, A circuit section that controls the actuator section, A rotation angle sensor for detecting the rotation angle of the electric motor is configured with a detection unit attached to the motor shaft member and a detection unit provided in the circuit to detect the output from the detection unit, The system comprises a partition wall that separates a first space, which is the space in which the transmission mechanism is located, from a second space, which is the space in which the circuit section is located. The partition wall is provided with at least one of the following: a non-through hole in which the surface facing the first space is recessed toward the surface facing the second space, and a non-through hole in which the surface facing the second space is recessed toward the surface facing the first space. At least one of the rotation angle sensor and the motor shaft member is positioned within the non-through hole. Electric braking device.
5. The partition wall is provided with at least one of the non-through holes, wherein the surface facing the first space is recessed toward the surface facing the second space. The electric braking device according to claim 4.
Citation Information
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