Disc brakes with floating calipers and how to operate them.
The floating caliper disc brake design with independently operable pistons addresses residual drag torque by actively positioning the caliper and pads, reducing wear, energy consumption, and emissions while maintaining braking performance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-09
- Publication Date
- 2026-04-08
AI Technical Summary
Existing floating caliper disc brakes suffer from residual drag torque due to the inability to actively control the position of the second pad, leading to unwanted contact with the brake disc after braking, which causes pad wear, energy consumption, and pollutant emissions.
A floating caliper disc brake design with independently operable pistons that allow selective movement of the caliper body and pads relative to the brake disc, ensuring complete disengagement and minimizing residual drag torque by actively positioning the caliper body and pads.
Reduces pad wear, energy consumption, and pollutant emissions while maintaining braking performance by eliminating residual drag torque, thereby extending the vehicle's driving range.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a disc brake provided with a floating caliper and a method of operating a disc brake provided with a floating caliper, and more particularly to those for industrial use in automobiles or rotating machines.
[0002] More specifically, the present invention relates to a novel strategy for controlling the position of a floating caliper with respect to a brake disc to reduce and / or cancel residual torque or drag torque, and a strategy for implementing a novel control strategy for a floating caliper having electromechanical actuation.
Background Art
[0003] A floating caliper disc brake includes a support bracket that can be connected to a vehicle suspension, a caliper body that is slidably attached to the support bracket and forms a first wall disposed on a first side (actuation side) of the brake disc and a second wall disposed on a second side (reaction side) of the brake disc opposite the first side, one or more first and second friction pads respectively supported on the first and second sides of the brake disc by the support bracket and / or the caliper body, one or more actuation pistons that are supported only on the first side of the brake disc by the caliper body and are operable to urge a first friction pad toward a second side with respect to the brake disc.
[0004] In this way, the thrust on one side of the first friction pad with respect to the brake disc generates a reaction force that relatively slides the caliper body in a direction opposite to the direction of the thrust on one side with respect to the support bracket, i.e., toward the first side of the brake disc, and the second wall of the caliper body urges the second pad against the brake disc, resulting in alignment of the pads on the side opposite the brake disc and clamping on both sides of the brake disc.
[0005] In a floating caliper, at the end of a service braking event, the second pad on the reaction side remains in contact with the disc, generating residual drag torque even after the brake pedal is released and braking torque is no longer needed.
[0006] Therefore, it is necessary to center the floating caliper relative to the brake disc to ensure complete disengagement of the pad from the brake disc and cancel out residual drag torque.
[0007] However, to date, only the position of the first pad on the piston side can be controlled within a predetermined range by the configuration and positioning of the elastic seal and its housing within the caliper body, thereby elastically positioning the (unbiased) piston relative to the caliper (rollback effect). The second pad on the reaction side is mounted to the floating caliper without the possibility of actively biasing its position, and therefore there is no possibility of it detaching from the brake disc when the brake pedal is released and no braking torque is required. [Overview of the project]
[0008] Accordingly, an object of the present invention is to make available a method of operating a floating caliper disc brake having characteristics such as actively positioning the caliper relative to the brake disc, creating a lateral separation between the brake disc and the pad, and achieving zero residual drag torque.
[0009] This objective is achieved by floating caliper disc brakes, including the following: - A support bracket that can be connected to the vehicle's suspension, - A caliper body comprising a support bracket slidably connected in the sliding direction and a first wall located on the first side of the caliper body, and a second wall located on the second side opposite to the first side of the caliper body slidably in the sliding direction, wherein the first and second walls mutually partition a disc space for accommodating a portion of the brake band of the brake disc, - A first friction pad is provided in the disc space on the first side of the caliper body, which is slidably supported relative to the caliper body (by a support bracket or the first wall of the caliper body), - A second friction pad is supported in the disc space on the second side of the caliper body (by a support bracket or the second wall of the caliper body) and fixed to the second wall of the caliper body, - Includes a plurality of actuating pistons supported on one side of the first wall of the caliper body, which are actuated to push a first friction pad toward a second side with respect to the brake band portion of the brake disc in an operating direction parallel to the sliding direction, move the first friction pad toward the second friction pad, and slide the brake caliper body relative to each other to achieve pressing contact between the first and second friction pads toward both sides of the brake disc.
[0010] Floating caliper disc brakes have the following characteristics: - The multiple operating pistons include one or more first pistons integrally connected to the first friction pad so as to be able to translate in the operating direction, and one or more second pistons that are able to freely rest in the operating direction and are detachably associated with the first pad. - The second piston has a positioning surface that can contact a support bracket or a corresponding stationary surface that is translatably integrated with the first piston in the sliding direction toward the first side. - The first piston and the second piston can be operated selectively and independently of each other. As a result, - The backward movement of the first piston toward the first side causes the first pad to disengage from the brake disc, and - When the second piston moves backward toward the first side while the positioning surface is in contact with the stationary surface, the caliper body is displaced toward the second side along with the second pad, and the second pad separates from the brake disc.
[0011] In this way, at the end of each braking event, the first and second pistons can be moved in a predetermined sequence to position the caliper body and pads correctly relative to the brake disc, thus avoiding contact that would generate undesirable residual drag torque.
[0012] This allows for reduced pad wear, energy consumption, and pollutant emissions while maintaining braking performance, thereby extending the vehicle's driving range.
[0013] According to a further aspect of the present invention, the object of the present invention is achieved by a method of operating a disc brake equipped with a floating caliper, which includes the following: - A support bracket that can be connected to the vehicle's suspension, - A caliper body comprising a support bracket slidably connected in the sliding direction and forming a first wall located on the first side of the caliper body and a second wall located on the second side opposite to the first side of the caliper body slidably in the sliding direction, wherein the first and second walls mutually partition a disc space for accommodating a portion of the brake band of a brake disc, -A first friction pad is provided in the disc space on the first side of the caliper body, which is slidably supported relative to the caliper body (by a support bracket or the first wall of the caliper body), - A second friction pad is supported in the disc space on the second side of the caliper body (by a support bracket or the second wall of the caliper body) and fixed to the second wall of the caliper body, - Includes a plurality of actuating pistons supported on one side of the first wall of the caliper body, which are actuated to push a first friction pad toward a second side with respect to the brake band portion of the brake disc in an operating direction parallel to the sliding direction, move the first friction pad toward the second friction pad, and slide the brake caliper body relative to each other to achieve pressing contact between the first and second friction pads toward both sides of the brake disc.
[0014] Here, - The multiple operating pistons include a first piston integrally connected to a first friction pad so as to be freely translational along the operating direction, and a second piston that is freely stationary and detachably associated with the first friction pad in the operating direction. - The second piston has a positioning surface that can contact a support bracket or a corresponding stationary surface that is translatably integrated with the first piston in the sliding direction toward the first side. The following steps are involved. - A step of selectively operating the first piston and the second piston independently of each other, - After a service braking event, the first pad is separated from the brake disc by the rearward movement of the first piston toward the first side, - The first friction pad, which has been separated from the brake disc, moves the caliper body toward the second side together with the second pad, separating the second pad from the brake disc, and moving the second piston backward toward the first side with the positioning surface in contact with the stationary surface. [Brief explanation of the drawing]
[0015] To better understand the present invention and its advantages, non-limiting embodiments will be described below with reference to the figures.
[0016] [Figure 1] Figure 1 is a perspective view of a disc brake equipped with a floating caliper according to an embodiment of the present invention. [Figure 2] Figure 2 is a cross-sectional view of the disc brake of FIG. 1. [Figure 3] Figure 3 is a perspective view of the first wall of the floating caliper of the brake disc of FIG. 1. [Figure 4] Figure 4 is a cross-sectional view of the disc brake of FIG. 1, with the brake disc removed. [Figure 5] Figure 5 is a perspective view of the actuating piston of a disc brake according to an embodiment. [Figure 6] Figure 6 is a perspective view of the actuating piston of a disc brake according to an embodiment. [Figure 7] Figure 7 is a perspective block diagram of a disc brake pad according to an embodiment. [Figure 8] Figure 8 is a perspective block diagram of a disc brake pad according to an embodiment. [Figure 9A] FIG. 9A is a diagram showing the operating sequence of a disc brake having a floating caliper, for the purpose of disengaging the pads from both sides of the brake disc, according to an embodiment. [Figure 9B] FIG. 9B is a diagram showing the operating sequence of a disc brake having a floating caliper, for the purpose of disengaging the pads from both sides of the brake disc, according to an embodiment. [Figure 9C] FIG. 9C is a diagram showing the operating sequence of a disc brake having a floating caliper, for the purpose of disengaging the pads from both sides of the brake disc, according to an embodiment. [Figure 9D] FIG. 9D is a diagram showing the operating sequence of a disc brake having a floating caliper, for the purpose of disengaging the pads from both sides of the brake disc, according to an embodiment. [Figure 10A] FIG. 10A is a diagram showing the operating sequence of a disc brake provided with a floating caliper, for the purpose of separating the pads from both sides of the brake disc, according to a further embodiment. [Figure 10B]Figure 10B shows the operating sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 10C] Figure 10C shows the operating sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 10D] Figure 10D shows the operating sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 11A] Figure 11A shows the operation sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 11B] Figure 11B shows the operation sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 11C] Figure 11C shows the operation sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 11D] Figure 11D shows the operation sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Figure 11E] Figure 11E shows the operation sequence of a disc brake with a floating caliper, according to a further embodiment, which is intended to separate both sides of the pad from the brake disc. [Modes for carrying out the invention]
[0017] Disc brake 1
[0018] Referring to the diagram, the floating caliper type disc brake 1 is, For example, a support bracket 2 that can be connected to the vehicle's suspension by screws or bolts, The caliper body 3 includes a caliper body 3 that is slidably connected to a support bracket 2 in the sliding direction 4 and forms a first wall portion 5 located on the first side 6 (inside the vehicle) of the caliper body 3, and a second wall portion 7 located on the second side 8 (outside the vehicle) of the caliper body 3 opposite to the first side 6 in the sliding direction 4, The first wall portion 5 and the second wall portion 7 mutually partition the disc space 9 for accommodating a portion of the brake band 10 of the brake disc 11. Disc brake 1 also, A first friction pad 12 is supported in the disc space 9 on the first side 6 of the caliper body 3 (by the support bracket 2 or the first wall portion 5 of the caliper body 3), A second friction pad 13 is slidably mounted relative to the caliper body 3 and supported in the disc space 9 on the second surface 8 side of the caliper body 3 (by the support bracket 2 or the second wall 7 of the caliper body 3), and fixed to the second wall 7 of the caliper body 3. It includes a plurality of actuating pistons, one of which is supported on the first wall 5 of the caliper body 3 and which are actuated to press the first friction pad 12, This operating piston can be operated to push the first friction pad 12 toward the second side 8 relative to the brake band portion 10 of the brake disc 11 in an operating direction 14 parallel to the sliding direction 4, move the first friction pad 12 toward the second friction pad 13, and slide the brake caliper body 3 toward the support bracket 2 until the brake disc 11 is tightened from both sides between the first and second friction pads 12 and 13.
[0019] The multiple operating pistons include a first piston 15 connected to a first friction pad 12 that is freely translatable and integrated in the operating direction 14, and a second piston 16 that is freely stationary (relative to the first pad 12) along the operating direction 14 and is detachably associated with the first friction pad 12 (from the first pad 12).
[0020] The second piston 16 forms a positioning surface 17, which can contact corresponding stationary surfaces 18, 18' that are fixed to the support bracket 2 or the first piston 15 in the sliding direction 4 toward the first side 6, or that are integrally translated in the direction of movement 4. In other words, by retracting, the second piston 16 may contact a fixed reference point (stationary surface 18) formed on the fixed support bracket 4, or by retracting, the second piston 16 may contact a "relative" reference point (stationary surface 18') formed on the first piston 15.
[0021] The first piston 15 and the second piston 16 can be operated selectively and independently of each other, thereby, - The rearward movement of the first piston 15 toward the first side 6 disengages the first pad 12 from the brake disc 11, and the rearward movement of the second piston 16 toward the first side 6 disengages the first pad 12 from the brake disc 11. - With the positioning surface 17 in contact with the stationary surfaces 18 and 18', when the second piston 16 moves backward toward the first side 6, the caliper body 3 moves toward the second side 8 together with the second pad 13, and the second pad 13 separates from the brake disc 11.
[0022] In this way, at the end of each braking event, the first piston 15 and the second piston 16 can be moved in a predetermined order to position the caliper body 3 and the friction pads 12 and 13 relative to the brake disc 11 in the planned position, thus avoiding contact that would generate undesirable residual drag torque.
[0023] This allows for reduced pad wear, energy consumption, and pollutant emissions while maintaining braking performance, thereby extending the vehicle's driving range.
[0024] The operating pistons 15 and 16 can be actuated by a hydraulic operating system or by an electromechanical operating system 19, for example, which includes dedicated electric motors 20 and 20' for each piston 15 and 16, an operating mechanism 21, for example, gears, and a conversion mechanism 22, for example, a screw and nut assembly, which converts the rotational motion of the operating mechanism 21 into the translational motion of the pistons 15 and 16.
[0025] The operating system, for example, either electromechanical 19 or hydraulic, is sequentially connected to and controlled by the electronic control system 27 of the disc brake 1, and is connected to a user interface 39, for example, a brake pedal, brake lever, or brake button, and is configured to selectively and independently actuate the first piston 15 and the second piston 16.
[0026] The front portion 23 of the first piston 15 is connected to the support plate 24 of the first friction pad 12 by means of, for example, adhesive, adhesive film, snap fasteners, or screws.
[0027] The front portion 25 of the second piston 16 is positioned relative to the first friction pad 12 so that it can freely contact and press against the support plate 24 of the first friction pad 12, but can also freely disengage from the support plate 24. The free contact and disengagement between the second piston 16 and the first friction pad 12 does not preclude the possible presence of intermediate attachments, such as elastic springs interposed between them, but preferably occurs without interposed attachments (connectors, guides, or elastic elements).
[0028] According to one embodiment, the positioning surface 17 can be formed by a positioning appendix 28 extending laterally with respect to the operating direction 14 from the front portion 25 of the second piston 16, for example, a metal plate screwed to the front portion 25 (within the cavity 29) (Figures 3, 5, 6).
[0029] The stationary surface 18 can be formed directly on the support bracket 2, for example, on the inner surface 26 of the support bracket 2, which is positioned on the first side 6 of the caliper body 3 relative to the position of the brake disc 11 and facing the second side 8.
[0030] To avoid conforming to the shape of the support bracket 2, to compensate for the distance between the first wall 5 and the support bracket 2, and to avoid space breakage between the positioning appendix 28 and the first friction pad 12, the positioning appendix 28 advantageously has a double fold 30 that forms a step in the operating direction 14 between the first portion 31 adjacent to the second piston 16 and the second portion 32 forming the positioning surface 17.
[0031] Advantageously, since the stationary surface 18 is formed within the cavity (Figure 3) of the inner surface 26 of the support bracket 2, the stationary surface 18 can be formed in the required precise location without having to form the entire inner surface 26 with the same precision.
[0032] According to an alternative embodiment, the stationary surface 18' can be made of the first piston 15, or a support appendix extending laterally with respect to the operating direction 14 from the front portion 23 of the first piston 15, for example, a metal plate screwed (into a cavity) to the front portion 23, as in the embodiment shown in Figure 6.
[0033] As the second piston 16 retracts and its positioning surface 17 contacts the stationary surface 18 of the support bracket 2, the further rearward relative movement of the second piston 16 relative to the caliper body 3 causes the caliper body 3, together with the first piston and the first and second friction pads 12 and 13, to slide toward the second side 8 relative to the support bracket 2 and relative to the brake disc 11, thereby creating a gap between the second friction pad 13 and the brake disc 11.
[0034] As the second piston 16 retracts and its positioning surface 17 contacts the stationary surface 18' of the first piston 15, the further rearward movement of the second piston 16 relative to the caliper body 3 causes the caliper body 3, together with the second friction pad 13, to slide toward the second side 8 relative to the entire first piston 15 and first friction pad 12, and also relative to the support bracket 2 and the brake disc 11 (due to the support friction between the first friction pad 12 and the support bracket 2), thereby creating a gap between the second friction pad 13 and the brake disc 11.
[0035] When the stationary surface 18' is made by the first piston 15, the setting of the gap between the second friction pad 13 and the brake disc 11 automatically compensates for the gradual decrease in the thickness of the friction pads 12 and 13 due to wear, because the reference for the sliding of the caliper body 3 toward the second side 8 is the position of the first piston 15, which automatically advances as the wear of the first and second friction pads 12 and 13 increases.
[0036] When a stationary surface 18 is created in the support bracket 2, the gradual decrease in the thickness of the friction pads 12 and 13 due to wear gradually increases the distance between the contact position 33 (between the positioning surface 17 and the stationary surface 18) and the initial position 34 of the rearward movement of the first and second pistons 15 and 16 at the end of the braking event. Therefore, if the rearward movement length of the second piston 16 is the same, the gap between the second friction pad 13 and the brake disc 11 becomes increasingly difficult to control and gradually decreases until it becomes zero. Furthermore, the extra movement due to pad wear increases the brake response time.
[0037] Accordingly, according to the embodiment, the position of the stationary surface 18 is adjustable in a sliding direction 4 with respect to the reference surface 35 of the support bracket 2, for example, the plane of the brake disc 11 (the support bracket 2 is stationary with respect to the plane of the brake disc 11), so as to compensate for any deviation of the initial position 34 of the rearward movement of the second piston 16 due to wear of the friction pads 12 and 13.
[0038] The disc brake 1 may include a stationary surface adjustment device 37 configured to adjust the position of the stationary surface 18 so as to compensate for any deviation of the initial position 34 of the second piston rearward movement 16 due to wear of the friction pads 12, 13, for example, so as to maintain a substantially constant distance of the stationary surface 18 from the initial positions 34 of the first and second piston rearward movements 12, 13 at the end of a braking event.
[0039] The stationary surface adjustment device 37 may be functionally connected to the operating system 19 of the operating pistons 15 and 16, or to the first piston 15 or the second piston 16, or to the electronic control system 27, and is configured to adjust the position of the stationary surface 18 according to the maximum forward (braking) position of the operating pistons 15 and 16 toward the second side 8.
[0040] According to the alternative embodiment, the position of the positioning surface 17 is adjustable in the operating direction 14 relative to the reference surface 36 of the second piston 16, for example, relative to the front end surface of the second piston 16 (the position of the front end surface of the second piston 16 depends on the wear state of the friction pads 12 and 13), and can compensate for the deviation of the initial position 34 of the rearward movement of the second piston 16 due to the wear of the friction pads 12 and 13.
[0041] The disc brake 1 may include a position adjustment device 38 configured to adjust the position of the positioning surface 17, for example, so that the maximum distance between the stationary surface 18 and the positioning surface 17 remains substantially constant at the end of braking, in order to compensate for any deviation in the initial position 34 of the rearward movement of the second piston 16 due to wear of the friction pads 12, 13.
[0042] The position adjustment device 38 may be functionally connected to the operating system 19 of the operating pistons 15 and 16, or to the first piston 15 or the second piston 16, or to the electronic control system 27, and is configured to adjust the position of the positioning surface 17 according to the maximum forward (braking) position of the operating pistons 15 and 16 toward the second side 8.
[0043] Electronic control system and operating method for disc brake 1
[0044] According to a further aspect of the present invention, the method for operating the disc brake 1 includes the following steps: - A step of selectively operating the first piston 15 and the second piston 16 independently of each other, - After a service braking event, the first piston 15 is moved backward relative to the caliper body 3 toward the first side 6, thereby separating the first friction pad 12 from the brake disc 11 (the second piston 16 also moves backward in a similar manner, enabling the first friction pad 12 to separate from the brake disc 11), - When the first friction pad 12 is removed from the brake disc 11, the caliper body 3 is moved toward the second side 8 together with the second pad 13, removing the second pad 13 from the brake disc 11, and with the positioning surface 17 abutting against the stationary surfaces 18, 18', the second piston 16 is moved backward toward the first side 6.
[0045] According to one embodiment, this method includes a step of compensating for the displacement of the initial position 34 of the rearward movement of the second piston 16 due to wear of the friction pads 12, 13 by adjusting the position of the stationary surface 18 in the sliding direction 4 with respect to the reference surface 35 of the support bracket 2, for example, the plane of the brake disc 11.
[0046] The compensation phase may include the following:
[0047] - At the end of the braking event, maintain a substantially constant distance between the stationary surface 18 and the initial positions 34 of the first or second pistons moving backward 15, 16, and / or
[0048] - Adjust the position of the stationary surface 18 according to the maximum forward (braking) position of the operating pistons 15 and 16 toward the second side 8.
[0049] According to an alternative embodiment, this method includes the step of compensating for the displacement of the initial position 34 of the rearward movement of the second piston 16 due to wear of the friction pads 12, 13 by adjusting the position of the positioning surface 17 in the operating direction 14 with respect to the reference surface 36 of the second piston 16, for example, with respect to the front end surface of the second piston 16.
[0050] The steps to compensate for the wear of the friction pads 12 and 13 include adjusting the position of the stationary surface 18 and / or the positioning surface 17, which serve two purposes.
[0051] - The maximum distance between the stationary surface 18 and the positioning surface 17 is maintained substantially constant at the end of braking.
[0052] - The position of the positioning surface 17 is adjusted according to the maximum forward (braking) position of the operating pistons 15 and 16 toward the second side 8.
[0053] According to one embodiment (Figures 9A to 9D), when the braking event ends, if the user releases the brake, for example by releasing the brake pedal 39, the following occurs.
[0054] A) The first piston 15 and the second piston 16 move 2xl backward (towards the first side 6), where l corresponds to the width of the planned space between the friction pads 12, 13 and the brake disc 11 (Figure 9A).
[0055] B) The second piston 16 continues to move backward until the positioning surface 17 comes to rest on the stationary surface 18 (Figure 9B).
[0056] C) After the positioning surface 17 is brought to rest against the stationary surface 18, the second piston 16 continues to move backward for a further length l, and thus slides the caliper body 3 toward the second side 8 for the same length l, forming a space of width l between the friction pads 12 and 13 on the first side 6 and the second side 8 and the brake disc 11 (Figure 9C).
[0057] Optionally, the second piston 16 moves forward (towards the second side 8) until it contacts the first friction pad 12 again in preparation for the next braking event (Figure 9D).
[0058] Contact between the second piston 16 and the first friction pad 12 is detected by the control system 27 by detecting the cessation of the forward movement of the second piston 15, or by detecting an increase in resistance force, for example by detecting an increase in the current drawn by the electric motor 20' of the second piston 16, or by detecting an increase in the positioning force of the first piston 15, for example by detecting an increase in the current drawn by the electric motor 20 to actuate the first piston 15, or by detecting an increase in the resistance force of the second piston 16, for example by detecting an increase in the current drawn by the electric motor 20' to actuate the second piston 16, or by a switch that responds to the contact between the second piston 16 and the first friction pad 12.
[0059] Finally, optionally, the electric motor 20 of the first piston 15 can be operated (moved forward) to narrow the clearance in the electromechanical actuation system 19, particularly the gear shift mechanism 21 and / or the conversion mechanism 22, by, for example, a predetermined or appropriately detected clearance amount (Figure 9D).
[0060] The electronic control unit 27 is configured to automatically command the electromechanical actuation system 19 or the general-purpose piston actuation systems 15, 16 to perform the aforementioned operation of disengaging the friction pads 12, 13 from the brake disc 11.
[0061] The complexity of the pad removal procedure described lies in the steps shown in Figure 9B, where it is assumed that the limit stop position (the resting position between the positioning surface 17 and the stationary surface 18) is known. The exact limit stop position correlates with the wear of the friction pads 12, 13, temperature (relaxation of the friction pads and thermal expansion of the material), and the internal clearance of the actuation system 19 of the second piston 16. However, in a practical engineering approach, such a limit stop position can be assumed to be known based on experimental values and / or measured values and / or a function of a given value or value.
[0062] According to further embodiments (Figures 10A to 10D), when the user releases the brakes at the end of the braking event, for example by releasing the brake pedal 39, the following occurs:
[0063] A) The second piston 16 moves backward until the positioning surface 17 comes to rest relative to the stationary surface 18. Here, the stationary state is detectable (for example, by the electronic control system 27), and is detected, for example, as follows (Figure 10A). - By detecting an increase in the current drawn by the electric motor 20' dedicated to the second piston 16, or, - By detecting the cessation of movement of the second piston 16, - By force sensors associated with the first piston 15 or the second piston 16, - By a switch that responds to contact between the positioning surface 17 and the stationary surface 18.
[0064] B) With the second piston 16 stationary, the first piston 15 moves backward by a length of 2xl (towards the first side 6). Here, l corresponds to the planned space width between the friction pads 12, 13 and the brake disc 11 (Figure 10B).
[0065] C) Subsequently, with the first piston 15 stationary, the second piston 16 continues to move backward by a further length l, causing the caliper body 3 to slide toward the second side 8 by the same length l, creating a space of width l between the friction pads 12, 13 and the brake disc 11 on the first side 6 and the second side 8 (Figure 10C).
[0066] D) Optionally, the second piston 16 moves forward (towards the second side 8) until it contacts the first friction pad 12 again in preparation for the next braking event (Figure 10D).
[0067] Contact between the second piston 16 and the first friction pad 12 may be detected by the control system 27 by detecting the cessation of the forward movement of the second piston 15, or by detecting an increase in resistance by detecting an increase in the current drawn by the electric motor 20' of the second piston 16, for example, or by detecting an increase in the positioning force of the first piston 15 by detecting an increase in the current drawn by the electric motor 20 to actuate the first piston 15, for example, or by detecting an increase in the resistance force of the second piston 16 by detecting an increase in the current drawn by the electric motor 20' to actuate the second piston 16, for example, or by a switch that responds to contact between the second piston 16 and the first friction pad 12.
[0068] Finally, optionally, the electric motor 20 of the first piston 15 may be activated (moved forward) to reduce the clearance in the electromechanical operating system 19, particularly the gear shift mechanism 21 and / or the conversion mechanism 22, by, for example, a predetermined or appropriately detected clearance amount (Figure 10D).
[0069] In this embodiment, it is not necessary to know the limit stop position (the stationary position between the positioning surface 17 and the support surface 18). This is because reaching this position in the steps shown in Figure 10A results in a firm stop and prevents unintended sliding of the caliper body 3 against the brake disc 11.
[0070] The electronic control unit 27 is configured to automatically command the electromechanical actuation system 19 or the general-purpose piston actuation systems 15, 16 to perform the aforementioned operation of separating the friction pads 12, 13 from the brake disc 11.
[0071] According to one embodiment (Figures 11A to 11E), when the user releases the brake at the end of the braking event, for example by releasing the brake pedal 39, the following occurs.
[0072] A) The second piston 16 moves backward until the positioning surface 17 comes to rest relative to the stationary surface 18 (Figure 11A). Here, the stationary state is detectable (for example, by the electronic control system 27), and is detected, for example, by: - By detecting an increase in the current drawn by the electric motor 20' dedicated to the second piston 16, or, - By detecting the cessation of movement of the second piston 16, - By force sensors associated with the first piston 15 or the second piston 16, - By a switch that responds to contact between the positioning surface 17 and the stationary surface 18.
[0073] B) Then, with the second piston 16 stationary, the first piston 15 moves backward (towards the first side 6) for a length X (the exact length is unknown due to the internal clearance of the actuation system 19 which is recovered by the first piston 15 during the backward movement) (Figure 11B).
[0074] C) Subsequently, with the first piston 15 stationary, the second piston 16 continues to move backward, sliding the caliper body 3 toward the second side 8 until it reaches a stopping position where the first friction pad 12 contacts the brake disc 11 again and the second friction pad 13 is separated from the brake disc 11 by the same distance X (Figure 11C).
[0075] The arrival of the stopping position (Figure 11C) can be detected, for example, by the following (for example, by the electronic control system 27): - By detecting an increase in the current drawn by the electric motor 20' dedicated to the second piston 16, or - By detecting an increase in the current drawn by the electric motor 20' dedicated to the first piston 15, or - By detecting the cessation of movement of the second piston 16, - By force sensors associated with the first piston 15 or the second piston 16, - By a switch that reacts to contact between the positioning surface 17 and the stationary surface 18.
[0076] Since the sliding step of the caliper body 3 (Figure 11C) was performed by the second piston 16 without restoring the internal clearance, the distance X (which was previously not precisely known) became known (to the electronic control system 27) in terms of the angular movement of the electric motor 20' associated with the second piston 16.
[0077] moreover,
[0078] - Angle movement of the electric motor 20' of the second piston 16 to slide the caliper body 3 over a distance of X.
[0079] - Angular movement of the electric motor 20 of the first piston 15 for the backward movement of the first piston 15 by a distance X.
[0080] - The transmission ratio of the actuation system 19 between the first piston 15 and the second piston 16.
[0081] By correlating the three factors mentioned above, the internal clearance of the operating system 19 of the first piston 15 is also known.
[0082] D) Subsequently, with the second piston 16 stationary, the first piston 15 moves backward toward the first side 6 by the same length X, and as a result, the first friction pad 12 also moves away from the brake disc 11 by the same length X (Figure 11D).
[0083] In this case, since the previous movement of the first piston 15 (steps in Figure 11B) was in the same direction, it is not necessary to evaluate the characteristics of the free clearance of the first piston 15.
[0084] E) Optionally, the second piston 16 moves forward (towards the second side 8) until it contacts the first friction pad 12 again in preparation for the next braking event (Figure 11E).
[0085] In this case as well, contact between the second piston 16 and the first friction pad 12 can be detected by the control system 27 by detecting the cessation of the forward movement of the second piston 15, or by detecting an increase in resistance force by detecting an increase in the current drawn by, for example, the electric motor 20' for the second piston 16, or by detecting an increase in the positioning force of the first piston 15 by detecting an increase in the current drawn by, for example, the electric motor 20 to actuate the first piston 15.
[0086] Finally, optionally, the electric motor 20 of the first piston 15 can be actuated (forward) to close the clearance of the electromechanical actuation system 19, in particular the transmission mechanism 21 and / or the conversion mechanism 22 (Figure 11E).
[0087] In this case, the amount of internal clearance of the first piston 15 is known because it has been determined previously.
[0088] In this embodiment, there is no need to know or determine the internal clearance of the piston actuation device in advance. Instead, more adjustment steps are required related to the contact between the pad and the disc, which will generate transient drag torque.
[0089] The electronic control unit 27 is configured to automatically command the electromechanical actuation system 19 or the general-purpose piston actuation systems 15, 16 to perform the aforementioned operation of separating the friction pads 12, 13 from the brake disc 11.
[0090] To precisely set the desired distance between the friction pads and the brake disc, the electronic control system 27 may be configured to determine or detect the magnitude of the clearance between the first piston 15 and the second piston 16 in the (selective) operating direction 14 of the actuation system 19 (or the method may include that step). If the movement of the pistons 15, 16 requires the recovery of the clearance, electric motors 20, 20' dedicated to the movement of the pistons 15, 16 are operated according to the magnitude of the clearance and the planned movement of the pistons 15, 16. In other words, the motors are driven for the total movement, which is the sum of the planned movement and the magnitude of the clearance.
[0091] The clearance size can be indirectly detected by detecting the size in the electric motors 20 and 20', for example, as follows:
[0092] - For example, the rotation angle of an electric motor rotor 20, 20' using a Hall sensor, encoder, or angular position sensor.
[0093] - The electrical magnitude of motors 20 and 20', e.g., current consumption,
[0094] and their correlation with the size of the clearance, or via position sensors.
[0095] Obviously, those skilled in the art can make further modifications and variations to the disc brake 1 and the method according to the present invention, but all of these will not depart from the scope of protection of the present invention as defined in the following claims.
Claims
1. A floating caliper type disc brake (1), - A support bracket (2) that can be connected to the vehicle's suspension, - A caliper body (3) is slidably connected to a support bracket (2) in the sliding direction (4) and includes a first wall (5) located on the first side (6) of the caliper body (3) and a second wall (7) located on the second side (8) opposite to the first side (6) in the sliding direction (4) of the caliper body (3), The first wall (5) and the second wall (7) mutually partition the disc space (9) for accommodating a portion of the brake band (10) of the brake disc (11). Disc brakes also - A first friction pad (12) is supported in the disc space (9) on the first side (6) of the caliper body (3) and slides relative to the caliper body (3), - A second friction pad (13) is supported in the disc space (9) on the second side (8) of the caliper body (3) and fixed to the second wall (7) of the caliper body (3), - Includes a plurality of operating pistons supported by the first wall (5) of the caliper body (3), which are operable to push the first friction pad (12) toward the second side (8) relative to the brake disc (11) in an operating direction (14) parallel to the sliding direction (4), and which move the first friction pad (12) toward the second friction pad (13) until the brake disc (11) is clamped between the first and second friction pads (12, 13) from both sides, thereby sliding the brake caliper body (3) toward the support bracket (2), - The multiple operating pistons include a first piston (15) connected to a first friction pad (12) which is freely translatable and integrated in the operating direction (14), and a second piston (16) which is freely stationary along the operating direction (14) and detachably associated with the first friction pad (12). - The second piston (16) forms a positioning surface (17), which is capable of contacting a corresponding stationary surface (18, 18') fixed to the support bracket (2) or the first piston (15) in the sliding direction (4) toward the first side (6). The first piston (15) and the second piston (16) can be operated selectively and independently of each other, thereby, - The rearward movement of the first piston (15) toward the first side (6) causes the first pad (12) to disengage from the brake disc (11), - With the positioning surface (17) abutting against the stationary surfaces (18, 18'), when the second piston (16) moves backward toward the first side (6), the caliper body (3) moves toward the second side (8) together with the second pad (13), and the second pad (13) separates from the brake disc (11). Disc brake (1).
2. The operating pistons (15, 16) can be operated by an electromechanical operating system (19) which includes a dedicated electric motor (20, 20') and motion transmission and conversion mechanisms (21) (22) for each piston (15, 16). The drive system (19) is connected to and controlled by the electronic control system (27) of the disc brake (1). The disc brake (1) according to claim 1.
3. The positioning surface (17) includes a positioning appendix (28) extending laterally with respect to the operating direction (14) from the front portion (25) of the second piston (16). The disc brake (1) according to claim 1 or 2.
4. The stationary surface (18) is formed on the inner surface (26) of the support bracket (2), which is positioned on the first side (6) with respect to the position of the brake disc (11) and facing the second side (8). A disc brake (1) according to any one of claims 1 to 3.
5. The position of the stationary surface (18) is adjustable in the sliding direction (4) with respect to the reference surface (35) of the support bracket (2) so as to compensate for the displacement of the initial position (34) of the rearward movement of the second piston (16) due to wear of the friction pads (12, 13). A disc brake (1) according to any one of claims 1 to 4.
6. The braking system includes a stationary surface adjustment device (37) configured to adjust the position of the stationary surface (18) so as to maintain a substantially constant distance of the stationary surface (18) from the initial position (34) of the rearward movement of the second piston (12) at the end of the braking event. The disc brake (1) according to claim 5.
7. A stationary surface adjustment device (37) is functionally connected to an actuator (19) and is configured to adjust the position of the stationary surface (18) according to the maximum forward braking position of the operating piston (15; 16) toward the second side (8). The disc brake (1) according to claim 6.
8. When the user releases the brake at the end of the braking event, A) The first piston (15) and the second piston (16) move backward toward the first side (6) by a length of 2xl, where l corresponds to the planned space width between the friction pads (12, 13) and the brake disc (11). B) The second piston (16) continues to move backward until the positioning surface (17) comes to rest on the stationary surface (18). C) After the positioning surface (17) is brought to rest on the stationary surface (18), the second piston (16) continues to move further backward by a length l, sliding the caliper body (3) toward the second side (8) by the same length l, creating a space of width l between the friction pads (12, 13) on the first side (6) and the second side (8) and the brake disc (11). D) The second piston (16) moves forward toward the second side (8) until it contacts the first friction pad (12) again and prepares for the next braking. A disc brake (1) according to any one of claims 1 to 7.
9. When the user releases the brake at the end of the braking event, A) The second piston (16) moves backward until the positioning surface (17) abuts against the stationary surface (18). B) Then, with the second piston (16) stationary, the first piston (15) moves backward by a length of 2xl toward the first side (6), where l corresponds to the planned space width between the friction pads (12, 13) and the brake disc (11). C) Then, with the first piston (15) stationary, the second piston (16) continues to move further backward by a length l, sliding the caliper body (3) toward the second side (8) by the same length l, creating a space of width l between the friction pads (12, 13) and the brake disc (11) on the first side (6) and the second side (8). D) The second piston (16) moves forward toward the second side (8) until it contacts the first friction pad (12) again and prepares for the next braking operation. A disc brake (1) according to any one of claims 1 to 7.
10. After step D), the electric motor (20) of the first piston (15) is actuated forward to reduce the clearance of the electromechanical drive unit (19) of the first piston (15). The disc brake (1) according to claim 8 or 9.
11. When the user releases the brake at the end of the braking event, A) The second piston (16) moves backward until the positioning surface (17) abuts against the stationary surface (18). B) Then, with the second piston (16) stationary, the first piston (15) moves backward toward the first side (6) by a length X. C) Then, with the first piston (15) stationary, the second piston (16) continues to move backward, sliding the caliper body (3) toward the second side (8) until the first friction pad (12) strikes the brake disc (11) again and the second friction pad (13) is separated from the brake disc (11) by the same distance X. D) Then, with the second piston (16) stationary, the first piston (15) moves backward toward the first side (6) by the same length X, and as a result, the first friction pad (12) also moves away from the brake disc (11) by the same distance X. E) The second piston (16) moves forward toward the second side (8) until it again contacts the first friction pad (12) and prepares for the next braking operation. A disc brake (1) according to any one of claims 1 to 6.
12. A method for operating the disc brake (1) described in claim 1, The method is, - A step of selectively operating the first piston (15) and the second piston (16) independently of each other, - After a service braking event, the first friction pad (12) is separated from the brake disc (11) by the relative rearward movement of the first piston (15) toward the first side (6) relative to the caliper body (3), A method comprising the steps of: - When the first friction pad (12) is removed from the brake disc (11), moving the second piston (16) backward toward the first side (6) with the positioning surface (17) abutting against the stationary surfaces (18, 18'), thereby moving the caliper body (3) toward the second side (8) together with the second pad (13), thereby separating the second pad (13) from the brake disc (11).
Citation Information
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