Non-national standard turnout drive system based on double 2-vote-2 architecture
11718331 · 2023-08-08
Assignee
Inventors
- Ruiyuan Ye (Shanghai, CN)
- Ting Jiang (Shanghai, CN)
- Xinxin Li (Shanghai, CN)
- Liang Chen (Shanghai, CN)
- Weijuan Li (Shanghai, CN)
- Zenghua Fang (Shanghai, CN)
- Xiaonan Liu (Shanghai, CN)
- Man Xu (Shanghai, CN)
Cpc classification
B61L27/30
PERFORMING OPERATIONS; TRANSPORTING
B61L5/06
PERFORMING OPERATIONS; TRANSPORTING
B61L27/33
PERFORMING OPERATIONS; TRANSPORTING
International classification
B61L5/06
PERFORMING OPERATIONS; TRANSPORTING
B61L19/06
PERFORMING OPERATIONS; TRANSPORTING
B61L27/30
PERFORMING OPERATIONS; TRANSPORTING
B61L27/33
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The disclosure relates to a non-national standard turnout drive system based on a double 2-vote-2 architecture, including an interlocking processing subsystem IPS, an interlocking maintenance station SDM, a non-national standard turnout drive module HIOM and an interlocking maintenance station SDM, wherein the non-national standard turnout drive module HIOM, a full-electronic communication module EIOCOM2, and the interlocking processing subsystem IPS are connected with each other in order, and the full-electronic communication module EIOCOM2 is connected to the interlocking maintenance station SDM; two non-national standard turnout drive module HIOMs, which are mutually redundant, obtain turnout drive commands through the interlocking processing subsystem IPS to control drive relays in a non-national standard turnout to lift and fall for driving the turnout to rotate toward a specified direction, while collecting representation information of the turnout and determining a position of the turnout. Compared with the prior art, the disclosure has advantages of high reliability and strong maintainability.
Claims
1. A turnout drive system based on a double 2-vote-2 architecture, comprising an interlocking processing subsystem (IPS), an interlocking maintenance station, a turnout drive module and an interlocking maintenance station, wherein the turnout drive module, a full-electronic communication module, and the interlocking processing subsystem (IPS) are connected with each other in order, and the full-electronic communication module is connected to the interlocking maintenance station; two turnout drive modules, which are mutually redundant, obtain turnout drive commands through the interlocking processing subsystem (IPS) to control drive relays in a turnout to lift and fall for driving the turnout to rotate toward a specified direction, while collecting representation information of the turnout and determining a position of the turnout, wherein the turnout drive module further comprises a power supply module, a relay control module and an isolation module; when an exception occurs in the power supply module or the relay control module, the isolation module disconnects power from a relay, and wherein the turnout drive module further comprises a fuse module; when the isolation module fails or an exception affecting safety occurs in a drive system, the fuse module may blow a fuse and guide the drive system to a safe status.
2. The turnout drive system based on a double 2-vote-2 architecture according to claim 1, wherein the interlocking processing subsystem (IPS), the full-electronic communication module and the turnout drive module are all double 2-vote-2 systems.
3. The turnout drive system based on a double 2-vote-2 architecture according to claim 1, wherein the turnout drive module is provided with a drive module driven by the turnout, a representation collection module for the turnout to represent information collection, and a self-test module periodically checking safety devices on its own module.
4. The turnout drive system based on a double 2-vote-2 architecture according to claim 1, wherein the turnout drive module comprises a field programmable gate array (FPGA) and a central processing unit (CPU) that are connected with each other in order; the turnout drive module further comprises a turnout metering voltage collection module connected to the FPGA, and the CPU is connected to the full-electronic communication module; two FPGAs periodically collect a turnout metering voltage through the turnout metering voltage collection module, and transmit to two CPUs respectively; two CPUs determines a representation status through the metering voltage, then results in a final representation status by comparison with double 2-vote-2, and transmit the representation status to the interlocking maintenance station through the full-electronic communication module.
5. The turnout drive system based on a double 2-vote-2 architecture according to claim 4, wherein both the FPGA and the CPU utilize dual hot-backup redundancy.
6. The turnout drive system based on a double 2-vote-2 architecture according to claim 5, wherein the turnout drive module further comprises a turnout drive current collection module connected to the FPGA, the drive current collection module periodically collects a drive current of the turnout and then transmits to the CPU through the FPGA, and the CPU sends the drive current information to the interlocking processing subsystem (IPS) and the interlocking maintenance station through the full-electronic communication module respectively.
7. The turnout drive system based on a double 2-vote-2 architecture according to claim 1, wherein the interlocking maintenance station has functions of saving received monitoring information and alarming malfunction.
8. A turnout drive system based on a double 2-vote-2 architecture, comprising an interlocking processing subsystem (IPS), an interlocking maintenance station, a turnout drive module and an interlocking maintenance station, wherein the turnout drive module, a full-electronic communication module, and the interlocking processing subsystem (IPS) are connected with each other in order, and the full-electronic communication module is connected to the interlocking maintenance station; two turnout drive modules, which are mutually redundant, obtain turnout drive commands through the interlocking processing subsystem (IPS) to control drive relays in a turnout to lift and fall for driving the turnout to rotate toward a specified direction, while collecting representation information of the turnout and determining a position of the turnout, wherein by changing external wiring, types of turnout switch supported by the drive system comprising: a three-phase three-wire turnout switch, with a drive voltage of an alternative current of 380V, driven in three-wire mode, having a representation signal of a direct current of 0-48V; a three-phase five-wire turnout switch, with a drive voltage of an alternative current of 380V, driven in five-wire mode, having a representation signal of a direct current of 0-48V; a single-phase six-wire turnout switch, with a drive voltage of an alternative current of 220V, driven in six-wire mode, having a representation signal of a direct current of 0-48V; and a single-phase three-wire turnout switch, with a drive voltage of an alternative current of 220V, driven in three-wire mode, having a representation signal of a direct current of 0-48V.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(8) The technical solutions in the embodiments of the present disclosure will be clearly and completely described hereafter. It is apparent that the described embodiments are a part of the embodiments of the present disclosure, but not the whole. Based on the embodiments of the present disclosure, all the other embodiments obtained by those of ordinary skill in the art without inventive effort are within the scope of the present disclosure.
(9) As shown in
(10) The non-national standard turnout drive module HIOM supports one set of turnouts. Two non-national standard turnout drive modules HIOM, which are mutually redundant, work in parallel at the same time, wherein if any one fails, it does not affect the other module. At the same time, the board supports hot-plugging to improve maintainability.
(11) The interlocking processing subsystem IPS, the full-electronic communication module EIOCOM2 and the non-national standard turnout drive module HIOM all are dual hot-backup systems (i.e., a double 2-vote-2 architecture), wherein the full-electronic communication module EIOCOM2 and the non-national standard turnout drive module HIOM support hot-plugging. Compared with the previous relay circuit, the difficulty in construction and device footprint are greatly reduced, which saves costs from engineering and hardware.
(12) In terms of software, the interlocking processing subsystem IPS maintains existing softwares, and the interlocking maintenance station SDM adds an interface with the full-electronic communication module EIOCOM2, while the non-national standard turnout drive module HIOM is newly self-developed. The non-national standard turnout drive module HIOM has software functions divided into 5 sub-tasks: a mode management task, a fuse unit task, an isolation unit task, a drive unit task, and a representation collection task. The mode management task is mainly used to determine the current mode of the software; the fuse unit task is used to periodically detect the fuse module and perform safe state processing in the event of an exception in the non-national standard turnout drive module HIOM; the isolation unit task is mainly used to detect the isolation unit, and handle the isolation state when an exception occurs in the power supply module and an output unit of the non-national standard turnout drive module HIOM, including in the relay control module; the drive unit task is mainly used to obtain the turnout drive commands and drive the non-national standard switch, periodically check statuses of the power supply module and the relay control module, and uploads the drive current information and alarming information to the interlocking maintenance station SDM for monitoring; the presentation collection task is mainly used to collect information about a position where the turnout is located, and send the collected turnout representation information to the IPS, while periodically checking a status of the turnout representation collection module.
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(19) What is mentioned above is only the specific implementation of the present disclosure, but does not limit the protection scope of the present disclosure, and anyone skilled in the art may easily think of mortifications and alternations within the technical scope disclosed by the present disclosure, all of which should be contained within the protection scope of the present disclosure. Therefore, the scope of the present disclosure should be determined by the scope of the claims.