MICROCOMPUTER-CONTROLLED ELECTROMECHANICAL BRAKING SYSTEM
20200198605 ยท 2020-06-25
Inventors
- Mengling Wu (Shanghai, CN)
- Chun Tian (Shanghai, CN)
- Maolin Chen (Shanghai, CN)
- Tianhe MA (Shanghai, CN)
- Fulei Feng (Shanghai, CN)
- Chi LEI (Shanghai, CN)
- Zewang YUAN (Shanghai, CN)
Cpc classification
F16D2066/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D2125/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/665
PERFORMING OPERATIONS; TRANSPORTING
F16D2121/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60T13/746
PERFORMING OPERATIONS; TRANSPORTING
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T8/17
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60T8/17
PERFORMING OPERATIONS; TRANSPORTING
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
B61H5/00
PERFORMING OPERATIONS; TRANSPORTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A microcomputer-controlled electromechanical braking system comprises an electromechanical braking control device (1) and an electromechanical braking unit (5); the electromechanical braking control device (1) comprises a braking microcomputer control unit (2), an electromechanical control unit (3) and a standby power supply module (4); the braking microcomputer control unit (2) receives a braking instruction signal sent by a driver or an automatic driving system, performs the calculation of a target braking force and braking management, and at the same time, can communicate with braking microcomputer control units (2) of other vehicles in a train group.
Claims
1. A microcomputer-controlled electromechanical braking system, comprising a power supply line, a signal line and a network cable, and further comprising electromechanical braking control devices (1) and electromechanical braking units (5), wherein each electromechanical brake control device (1) and a plurality of electromechanical brake units (5) form an independent microcomputer-controlled electromechanical brake module; each electromechanical braking control device (1) comprises a braking microcomputer control unit (2) and an electromechanical control unit (3); the braking microcomputer control unit (2) included in each electromechanical braking control device (1) receives train braking and release signals, completes calculation of a target braking force according to load information, braking instructions and vehicle speed signals, and transmits a target braking force signal and the braking and release signals to the electromechanical control units (3), and the electromechanical control unit controls the actions of the electromechanical braking units to apply and release the braking force.
2. The electromechanical braking system according to claim 1, wherein each electromechanical braking control device (1) further comprises a standby power supply module (4); each electromechanical braking control device is normally powered by a train, and is automatically switched to be powered by the standby power supply module in an emergent case; and each electromechanical braking unit is powered by the corresponding electromechanical control unit.
3. The electromechanical braking system according to claim 1, wherein each brake microcomputer control unit (2) is communicated with the corresponding electromechanical control unit (3) in two implementation forms of a fieldbus technology and a hard-wired signal; and a fieldbus is used for communication in common cases, and the hard-wired signal is used for backup of communications in an emergent case.
4. The electromechanical braking system according to claim 1, wherein each electromechanical control unit (3) independently controls one or two electromechanical braking units in real time; and each electromechanical control unit comprises a common control module and an emergency control module, which are configured to control the electromechanical braking units to perform brake release and application in a common working condition and an emergent working condition, respectively.
5. The electromechanical braking system according to claim 1, wherein each braking microcomputer control unit (2) dynamically calculates a desired electromechanical braking force according to the magnitude of the electric braking force, and performs a cooperation between electric braking and electromechanical braking, and an allocation of the braking force among the electromechanical braking units; and each electromechanical control unit (3) controls the braking force output by the corresponding electromechanical braking unit (5) to be variable during braking.
6. The electromechanical braking system according to claim 1, wherein the electromechanical brake control devices realize switching of vehicle control, frame control, axis control, disc control, and wheel control through software configuration.
7. The electromechanical braking system according to claim 1, wherein each braking microcomputer control unit (2) controls a parking brake actuator in the corresponding electromechanical braking unit to be powered off or powered on, so that the train has a function of maintaining and releasing the parking braking force.
8. The electromechanical braking system according to claim 1, wherein each electromechanical control unit (3) performs limited processing on signals output to the corresponding electromechanical braking unit on software or hardware circuits, so that the process of the rise and drop of the electromechanical braking force meets requirements of train shock limitation.
9. The electromechanical braking system according to claim 1, wherein each brake microcomputer control unit (2) performs wheelset slip detection and anti-slip control according to singles from a speed sensor installed at the shaft end; the control signals are divided into three modes: a force reduction mode, a maintenance mode, and a force increase mode; and each electromechanical control unit controls the electromechanical braking unit to reduce, maintain and increase the corresponding braking force according to the anti-slip control mode signal.
10. The electromechanical braking system according to claim 1, wherein the standby power supply module (4) comprises a battery or a battery pack and a power management module, which realizes self-management of battery charging and discharging, and meanwhile has a communication interface with the corresponding braking microcomputer control unit to receive the control signals and feed back state signals.
11. The electromechanical braking system according to claim 1, wherein each electromechanical braking unit (5) comprises a motor-driven friction braking device for a rail vehicle; the device consists of a torque motor, an electromagnetic brake, a nut, a screw and a brake friction pair, wherein the torque motor comprises a torque motor rotor and a torque motor body and is of a hollow structure; the screw is inserted into the hollow part of the torque motor and is coaxially fixed with the motor; the screw is sleeved with the nut and is in non-self-locking threaded connection with the nut; one end of the nut is connected to the brake friction pair; the electromagnetic brake sleeves the screw; the torque motor rotor generates a braking torque which is transmitted to the braking friction pair through the screw and the nut in sequence to achieve braking.
12. The electromechanical braking system according to claim 1, wherein each electromechanical braking unit (5) comprises a mechanical power-amplifying type motor-driven friction braking device for a rail vehicle; the device consists of a torque motor, a speed reduction mechanism, an electromagnetic brake, a nut, a screw and a brake friction pair, wherein the torque motor comprises a torque motor rotor and a torque motor body; the speed reduction mechanism is composed of a sun gear, a planet gear, and a planet gear carrier; the torque motor is of a hollow structure; the screw is inserted into the hollow part of the torque motor and is coaxial with the torque motor; the torque motor rotor is fixedly connected to the sun gear; the planet gear carrier is fixedly connected to the screw; the screw is sleeved with the nut and is in non-self-locking threaded connection with the nut; one end of the nut is connected to the brake friction pair; the electromagnetic brake sleeves the screw; the torque motor rotor generates a braking torque which is transmitted to the braking friction pair through the speed reduction mechanism, the screw and the nut in sequence to achieve braking.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020] In drawings, reference symbols represent the following components: 1-electromechanical brake control device, 2-brake microcomputer control unit, 3-electromechanical control unit, 4-standy power supply module, 5-electromechanical brake unit.
DETAILED DESCRIPTION
[0021] The present invention will be further described below with reference to the accompanying drawings. The structure and principle of this device are very clear to those skilled in the art. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0022] The following detailed description refers to the accompanying drawings, which form a part of the detailed description. In the drawings, similar symbols typically identify similar components, unless context dictates otherwise. The illustrative embodiments described in the detailed description, drawings and claims are not intended to be limitative. Other embodiments may be used, and other changes may be made, without departing from the spirit or scope of the subject matter provided by the present invention.
[0023] As shown in FIG, 1, a microcomputer-controlled electromechanical braking system comprises a power supply line, a signal line and a network cable, and further comprises electromechanical braking control devices (1) and electromechanical braking units (5), wherein each electromechanical brake control device (1) and a plurality of electromechanical brake units (5) form an independent microcomputer-controlled electromechanical brake module; each electromechanical braking control device (1) comprises a braking microcomputer control unit (2) and an electromechanical control unit (3); the braking microcomputer control unit (2) included in each electromechanical braking control device (1) receives train braking and release signals, completes calculation of a target braking force according to load information, braking instructions and vehicle speed signals, and transmits a target braking force signal and the braking and release signals to the electromechanical control units (3), and the electromechanical control unit controls the actions of the electromechanical braking units to apply and release the braking force.
[0024] Each electromechanical braking control device (1) further comprises a standby power supply module (4); each electromechanical braking control device is normally powered by a train, and is automatically switched to be powered by the standby power supply module in an emergent case; and each electromechanical braking unit is powered by the corresponding electromechanical control unit.
[0025] Each brake microcomputer control unit (2) is communicated with the corresponding electromechanical control unit (3) in two implementation forms of a fieldbus technology and a hard-wired signal; and a fieldbus is used for communication in common cases, and the hard-wired signal is used for backup of communications in an emergent case.
[0026] Each electromechanical control unit (3) independently controls one or two electromechanical braking units in real time; and each electromechanical control unit comprises a common control module and an emergency control module, which are configured to control the electromechanical braking units to perform brake release and application in a common working condition and an emergent working condition, respectively.
[0027] Each braking microcomputer control unit (2) dynamically calculates a desired electromechanical braking force according to the magnitude of the electric braking force, and performs a cooperation between electric braking and electromechanical braking, and an allocation of the braking force among the electromechanical braking units; and each electromechanical control unit (3) controls the braking force output by the corresponding electromechanical braking unit (5) to be variable during braking.
[0028] The electromechanical brake control devices realize switching of vehicle control, frame control, axis control, disc control, and wheel control through software configuration.
[0029] Each braking microcomputer control unit (2) controls a parking brake actuator in the corresponding electromechanical braking unit to be powered off or powered on, so that the train has a function of maintaining and releasing the parking braking force.
[0030] Each electromechanical control unit (3) performs limited processing on signals output to the corresponding electromechanical braking unit on software or hardware circuits, so that the process of the rise and drop of the electromechanical braking force meets requirements of train shock limitation.
[0031] Each brake microcomputer control unit (2) performs wheelset slip detection and anti-slip control according to singles from a speed sensor installed at the shaft end; the control signals are divided into three modes: a force reduction mode, a maintenance mode, and a force increase mode; and each electromechanical control unit controls the electromechanical braking unit to reduce, maintain and increase the corresponding braking force according to the anti-slip control mode signal.
[0032] The standby power supply module (4) comprises a battery or a battery pack and a power management module, which realizes self-management of battery charging and discharging, and meanwhile has a communication interface with the corresponding braking microcomputer control unit to receive the control signals and feed back state signals.
[0033] Referring to
[0034] Referring to
[0035] The electromechanical braking unit (5) refers to a braking unit employing an electromechanical braking technology, and specific implementation forms include, but are not limited to, the mechanical motor-driven friction braking device for a rail vehicle and the mechanical force-amplifying type motor-driven friction braking device for a rail vehicle.
[0036] Embodiment 1: referring to
[0037] Embodiment 2: referring to
[0038] Although some solutions and embodiments have been disclosed herein, other solutions and embodiments will be apparent to those skilled in the art. The various solutions and embodiments disclosed herein are exemplary and are not intended to be limitative, the true scope and spirit being indicated by the appended claims.