CN215734265U - Ground equipment of a new generation of photoelectric composite transponder transmission system - Google Patents

Ground equipment of a new generation of photoelectric composite transponder transmission system Download PDF

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CN215734265U
CN215734265U CN202121931693.8U CN202121931693U CN215734265U CN 215734265 U CN215734265 U CN 215734265U CN 202121931693 U CN202121931693 U CN 202121931693U CN 215734265 U CN215734265 U CN 215734265U
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黄新林
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Tongji University
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Abstract

本实用新型涉及轨道交通应答器传输系统,提出了全新一代光电复合应答器传输系统地面设备,其特征在于,包括光电复合有源应答器和光电复合地面电子单元(O/E‑LEU);其中,光电复合有源应答器和光电复合地面电子单元(O/E‑LEU)之间用光电复合缆连接,光电复合地面电子单元(O/E‑LEU)和列控中心(TCC)之间采用光纤通信。针对传统应答器传输系统地面设备存在的不足,本实用新型光电复合地面电子单元(O/E‑LEU)与列控中心(TCC)及光电复合有源应答器之间的报文传输均采用光纤接口,它具有传输距离远、传输时延低、抗干扰能力强、全双工通信的特点。

Figure 202121931693

The utility model relates to a rail transit transponder transmission system, and proposes a new generation of ground equipment for a photoelectric composite transponder transmission system, which is characterized in that it includes a photoelectric composite active transponder and a photoelectric composite ground electronic unit (O/E-LEU); wherein , the photoelectric composite active transponder and the photoelectric composite ground electronic unit (O/E‑LEU) are connected by a photoelectric composite cable, and the photoelectric composite ground electronic unit (O/E‑LEU) and the train control center (TCC) are connected by Optical Fiber Communication. In view of the shortcomings of the ground equipment of the traditional transponder transmission system, the optical fiber is used for the message transmission between the optoelectronic composite ground electronic unit (O/E-LEU), the train control center (TCC) and the optoelectronic composite active transponder. It has the characteristics of long transmission distance, low transmission delay, strong anti-interference ability and full-duplex communication.

Figure 202121931693

Description

Ground equipment of brand new generation photoelectric composite transponder transmission system
Technical Field
The utility model relates to ground equipment in a rail transit transponder transmission system.
Background
The current rail transit system plays an important role in daily travel and cargo transportation of people and also faces a plurality of potential safety hazards. The transponder transmission system is an indispensable safety guarantee measure of a rail transit system, and is used for transmitting line characteristics such as gradient, turning radius and inclination angle of a train transmission line, temporary speed limit information, station route information, positioning information and other information which must be known by a train control system.
The transponder transmission system is a ground-to-train transmission system (as shown in fig. 1) implemented based on an electromagnetic coupling principle, is used for transmitting information to a train from the ground at a specific place, and can send message information to a vehicle-mounted subsystem, so that fixed information can be transmitted, and variable information can be transmitted by connecting with a trackside unit. The ground equipment in a transponder transmission system includes a transponder and a ground electronic unit (LEU).
Transponders in transponder transmission systems are divided into passive transponders and active transponders. The passive transponder does not need to be powered and is used for transmitting fixed information stored in the transponder; existing active transponders require connection to a surface electronics unit (LEU) via a dedicated high frequency twisted pair shielded cable, which is powered by the surface electronics unit (LEU) and provides the variable transponder messages that need to be transmitted. The prior art active transponder circuit is constructed as shown in fig. 2, and includes a C-interface portion, an a-interface portion, and a storage and control module. The C interface part is connected with a ground electronic unit (LEU) and receives a power supply signal and a message baseband signal of the ground electronic unit (LEU). The power supply signal and the message baseband signal of a ground electronic unit (LEU) are coupled on a pair of differential lines for transmission and are sent to an active transponder. In an active transponder, the memory unit primarily stores some fixed message information that will be sent in the event of a failure of the ground electronic unit (LEU) to connect to the active transponder. In the active responder, the control module is responsible for selecting the message to be sent.
A ground electronic unit (LEU) in ground equipment of a transponder transmission system is a data acquisition and processing unit, the ground electronic unit (LEU) is an important component in the whole transponder transmission system, and selects one of messages stored in the ground electronic unit (LEU) to be transmitted to a ground active transponder according to the change of external conditions, or directly transmits a transponder message transmitted by a Train Control Center (TCC) to the active transponder, a system block diagram of the existing ground electronic unit (LEU) is shown in fig. 3, and the system block diagram has the following main functions:
(1) message reception
The input channel and the interface unit adopt a redundancy mechanism, double sets of the input channel and the interface unit work simultaneously, and even if one channel or one interface circuit fails, the communication between a ground electronic unit (LEU) and a Train Control Center (TCC) is not influenced.
The microprocessor periodically receives messages from a Train Control Center (TCC) through the communication interface and transmits the messages to the logic control unit, and the logic control unit changes the periodic messages into continuous messages to be output. If the channel fails or the interior of the electronic unit on the ground (LEU) fails, the microprocessor cannot receive the correct Train Control Center (TCC) message, and at this time, the corresponding default message is selected from the message memory and transmitted to the logic control unit.
In addition, the reliability of communication is ensured by adopting a safe communication protocol, and the method has the greatest characteristic of introducing a timestamp concept besides adopting common coding, frame structure definition and CRC (cyclic redundancy check), thereby ensuring the correctness, instantaneity and integrity of communication information and the correctness of information sequence.
(2) Logic control unit
After the message is received by the microprocessor, the message is dumped into a logic control unit, which corresponds to a transmission buffer, and cyclically outputs the message (e.g., 1023-bit-long message) at 564.48 kbps. Besides outputting message data, the logic control unit also generates 8.82KHz sine wave power supply signals required by the C6 interface.
(3) Power amplification
Since the message data signal C1 defined by the C interface and the interface power supply signal C6 are very different in frequency, power amplification needs to be performed separately. The amplified C1 and C6 signals are coupled into a transformer, thereby realizing the transmission of two signals on a pair of transmission lines.
In summary, the ground equipment of the existing transponder transmission system has the following disadvantages:
(1) the cable for connecting the ground electronic unit (LEU) and the active transponder is a special high-frequency twisted-pair shielded cable, which has the advantages of high price, short reliable transmission distance (the requirement of the China's republic of China railway industry standard TB/T3485 and 2017 is no more than 2.5km at most), low transmission rate (564.48kbps) and long message transmission delay.
(2) The Train Control Center (TCC) sends the message information to the ground electronic unit (LEU) through the communication interface (RS485/422 serial interface), the speed of the serial interface is low (38.4kbps), and the message transmission delay is large.
(3) The method is easy to be interfered by thunder and lightning, and the quality of the message baseband signal can be influenced by external electromagnetic interference.
(4) The ground electronic unit (LEU) couples the amplified power supply signal and the message signal to a special high-frequency twisted-pair shielding cable for transmission, so that the message signal is interfered by the power supply signal, and the reliability of system transmission is reduced. Because the frequency (8.82kHz) of the power supply signal falls within the frequency band (564.48kHz) of the message baseband signal, the band-pass filter for filtering the power supply signal also filters partial message baseband signals, and the accuracy of DBPL decoding is reduced.
(5) Since a single surface electronics unit (LEU) is typically connected to a plurality of active transponder units at different distances, the signal quality received by the plurality of active transponders is less consistent. The active transponder with a close distance receives a good signal, and the active transponder with a far distance receives a poor signal.
(6) The ground electronic unit (LEU) communicates with the active transponder in a simplex manner, the ground electronic unit (LEU) can only detect whether the cable line is faulty, and the active transponder does not inform the ground electronic unit (LEU) whether the message is correctly received.
SUMMERY OF THE UTILITY MODEL
The utility model aims to overcome the defects of the prior art and develop a brand new generation of photoelectric composite transponder transmission system ground equipment.
The technical scheme of the utility model is as follows:
a brand new generation photoelectric composite transponder transmission system ground device comprises a photoelectric composite active transponder and a photoelectric composite ground electronic unit. One or more photoelectric composite active transponders are connected with the photoelectric composite ground electronic unit through a photoelectric composite cable, and the photoelectric composite ground electronic unit is communicated with the train control center through optical fibers.
A first part: photoelectric composite active transponder
The photoelectric composite active transponder comprises an A interface part, an O/E interface part, a manufacturing information storage module, a message storage module and a transponder control module. The interface part A, the message storage and responder control module and the functional relation among the interface part A and the responder control module adopt the prior art, wherein the interface part A comprises a coupling coil, filtering protection, a 27M high-frequency receiving filter, data receiving and transmitting and an interface A working power supply.
The O/E interface section includes: EMC protection module, O/E interface working power supply module, GTP interface, GTP peripheral interface circuit, optical port data transceiver module, data extraction module, logic control module, serial interface. The O/E interface part is externally connected with an optical-electrical composite cable, and the optical-electrical composite cable comprises a power line and an optical fiber.
The EMC protection module is connected with a power line of the photoelectric composite cable and used as input of the power line, the output of the EMC protection module is connected with the O/E interface working power supply module, and the O/E interface working power supply module supplies power to circuits of the whole O/E interface.
The optical fiber in the photoelectric composite cable is connected with the GTP interface through a GTP peripheral interface circuit and then is connected to the data extraction module through an input/output data line of the optical port data transceiver module.
Further, the optical port data transceiver module includes: the device comprises a GTP RX module, a GTP TX module, a GTP data storage module and a GTP data returning module, wherein the GTP RX module receives message data from a GTP interface and transfers the message data to the GTP data storage module for storage, the message data is returned and communicated to an opposite terminal through the GTP data returning module and the GTP TX module, and meanwhile, the message data is transmitted to a data extraction module for further processing.
The GTP interface is connected with the optical fiber through a GTP peripheral interface circuit.
The data extraction module comprises three sub-modules: the device comprises a frame check module, a message decoding module and a differential Manchester coding waveform output module, wherein:
and the frame checking module completes message checking and checks message correctness.
The message decoding module executes a message decoding function and comprises three sub-modules: the device comprises a bit checking module, a code word generating module and a decoding output module. Firstly, a bit checking module checks whether a control bit and an additional bit of a message are correct or not; then, the code word generation module completes the code word conversion from 10 bits to 11 bits to generate a new code word; and the decoding output module outputs the code word obtained by decoding to the differential Manchester coding waveform output module.
The differential Manchester encoding waveform output module performs differential Manchester encoding and outputs a waveform to the serial interface.
The logic control module is used for respectively performing logic control on the optical port data transceiver module, the data extraction module and the serial interface according to an operation instruction, and the main contents of the logic control include enabling, resetting, synchronizing and the like.
A second part: photoelectric composite ground electronic unit (O/E-LEU)
The photoelectric composite ground electronic unit (O/E-LEU) comprises seven functional modules, namely an optical signal transmitting and receiving original message module, a logic control and coding module, an optical signal transmitting and receiving coding message module, a program storage module, a message storage module, a detection recording module, a power supply module and the like.
The optical signal receiving and transmitting original message module comprises: the optical communication interface and the optical interface data transceiver module I.
The optical communication interface includes: GTP interface, GTP interface peripheral circuit. The optical communication interface completes the conversion of the photoelectric signal, which is the prior art. The GTP interface may also be replaced by a higher rate GTX interface, GTH interface, or GTZ interface. The optical communication interfaces have two identical interfaces, so that the main and standby redundancy configuration is realized.
The first optical port data transceiver module comprises: the device comprises a GTP RX module, a GTP TX module, a GTP data storage module and a GTP data returning module. The GTP RX module receives message data from a GTP interface, the message data are stored by a GTP data storage module, the message data are transmitted back to a Train Control Center (TCC) through a GTP data back transmission module and a GTP TX module, and meanwhile, the message data are transmitted to a logic control and coding module for further processing.
The logic control and encoding module comprises: the device comprises a logic control module, a DBPL coding module (differential biphase level code) and an 8.82KHz sine wave generating module; the logic control module judges a corresponding target photoelectric composite active responder according to message information received by the original message receiving and transmitting module of the optical signal, then controls the DBPL coding module to code message data, and finally transmits the coded message data to a second optical port data receiving and transmitting module corresponding to the target photoelectric composite active responder. And the DBPL coding module is responsible for coding the message data. The 8.82KHz sine wave generating module generates an 8.82KHz sine wave signal, and the sine wave signal is amplified by the power amplifying module and then is connected with a power line in the photoelectric composite cable to supply power to the photoelectric composite active transponder.
The optical signal receiving and transmitting coded message module realizes optical signal transmission between the O/E-LEU and the photoelectric composite active transponder. The method comprises the following steps: the optical port data transceiver module II and the optical communication interface. The second optical port data transceiver module comprises: the device comprises a GTP RX module, a GTP TX module, a GTP receiving data storage module and a GTP sending data storage module. The GTP RX module and the GTP TX module are both connected with a GTP interface in the optical communication interface, the output of the GTP RX module is connected with the GTP receiving data storage module, and the output of the GTP sending data storage module is connected with the GTP TX module. The optical signal receiving and transmitting coded message module is connected with optical fibers in the photoelectric composite cable and is communicated with the photoelectric composite active transponder.
The program storage module is a memory chip and is used for storing a program operated by an optical-electrical composite ground electronic unit (O/E-LEU).
The message storage module is a memory chip and is used for storing default message information sent to the photoelectric composite active transponder by the O/E-LEU.
The detection recording module is a memory chip and is used for storing the detection result data of the O/E-LEU system state. The detection record data is transmitted back to a Train Control Center (TCC) through a first optical port data transceiver module.
And the power supply module provides a working power supply for the O/E-LEU system.
The ground equipment of the utility model modifies the existing LEU and the existing active transponder, and adopts the connection of the photoelectric composite cable, thereby realizing Gbps full-duplex high-speed optical transmission, and the data message transmission between the modified LEU (namely a photoelectric composite ground electronic unit (O/E-LEU)) and the Train Control Center (TCC) and the modified active transponder (namely the photoelectric composite active transponder) adopts full-duplex optical fiber communication, thereby making the construction of a new generation photoelectric composite transponder transmission system possible to replace the traditional rail transit transponder transmission system.
Drawings
FIG. 1 is a schematic diagram of a model common to transponder transmission systems
FIG. 2 is a block diagram of a prior art active transponder system
FIG. 3 is a block diagram of a conventional terrestrial electronics unit (LEU) system
FIG. 4 block diagram of an opto-electronic hybrid active transponder system of the present application
FIG. 5 is a block diagram of an O/E interface portion of the present application showing an optoelectronic transceiver and signal processing circuit
FIG. 6 is a block diagram of an opto-electronic composite terrestrial electronic Unit (O/E-LEU) system of the present application
FIG. 7 is a block diagram of an opto-electronic composite terrestrial electronic unit (O/E-LEU) system circuit of the present application
Detailed Description
The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
The specific scheme is to modify the existing transponder transmission system ground equipment, and the modified photoelectric composite active transponder (see fig. 4 and 5) and the modified photoelectric composite ground electronic unit (O/E-LEU) (see fig. 6 and 7) are included.
The photoelectric composite active transponder and the photoelectric composite ground electronic unit (O/E-LEU) are detailed in two parts.
A first part: photoelectric composite active transponder
As shown in fig. 4, a block diagram of the optoelectronic composite active transponder proposed by the present invention includes an a interface portion, an O/E interface portion, a manufacturing information storage, a message storage, and a transponder control module. The interface part A, the message storage and responder control module and the functional relation among the interface part A and the responder control module adopt the prior art, wherein the interface part A comprises a coupling coil, filtering protection, a 27M high-frequency receiving filter, data receiving and transmitting and an interface A working power supply.
The O/E interface part is the innovation part of the application and comprises: EMC protection module, O/E interface working power supply module, GTP interface, GTP peripheral interface circuit, optical port data transceiver module, data extraction module, logic control module, serial interface. For example, but not limitation, in the present embodiment, the O/E interface portion is implemented by an FPGA. The O/E interface part is externally connected with an optical-electrical composite cable, and the optical-electrical composite cable comprises a power line and an optical fiber.
The EMC protection module is connected with a power line of the photoelectric composite cable and used as input of the power line, the output of the EMC protection module is connected with the O/E interface working power supply module, and the O/E interface working power supply module supplies power to circuits of the whole O/E interface.
The optical fiber in the photoelectric composite cable is connected with the GTP interface through a GTP peripheral interface circuit and then is connected to the data extraction module through an input/output data line of the optical port data transceiver module.
Further, as shown in fig. 5, the optical port data transceiver module includes: the device comprises a GTP RX module, a GTP TX module, a GTP data storage module and a GTP data returning module, wherein the GTP RX module receives message data from a GTP interface and transfers the message data to the GTP data storage module for storage, the message data is returned and communicated to an opposite terminal through the GTP data returning module and the GTP TX module, and meanwhile, the message data is transmitted to a data extraction module for further processing. Note: in order to fully exert the advantage of large capacity of optical fiber transmission, the GTP data returning module not only returns the message stored in the GTP data storage module, but also returns the message data sent to the serial interface by the data extraction module and necessary working state information of the active responder.
The GTP interface is self-contained by the FPGA and is connected with the optical fiber interface through a GTP peripheral interface circuit. The peripheral GTP interface circuit is the prior art and can be replaced by optical interfaces such as GTX, GTH or GTZ.
The data extraction module comprises three sub-modules: the device comprises a frame check module, a message decoding module and a differential Manchester coding waveform output module, wherein:
and the frame checking module completes message checking and checks message correctness.
The message decoding module executes a message decoding function and comprises three sub-modules: the device comprises a bit checking module, a code word generating module and a decoding output module. Firstly, a bit checking module checks whether a control bit and an additional bit of a message are correct or not; then, the code word generation module completes the code word conversion from 10 bits to 11 bits to generate a new code word; and the decoding output module outputs the code word obtained by decoding to the differential Manchester coding waveform output module.
The differential Manchester encoding waveform output module performs differential Manchester encoding and outputs a waveform to the serial interface.
The logic control module is used for respectively performing logic control on the optical port data transceiver module, the data extraction module and the serial interface according to an operation instruction, and the main contents of the logic control include enabling, resetting, synchronizing and the like.
Through the circuit design, when the photoelectric composite ground electronic unit is applied, the O/E interface part is connected with the photoelectric composite ground electronic unit through the photoelectric composite cable, and receives a power supply signal and a message baseband signal of the photoelectric composite ground electronic unit. The power supply signal and the message baseband signal output by the photoelectric composite ground electronic unit are independently transmitted through the power line and the optical fiber in the photoelectric composite cable respectively without mutual influence. After the signal is sent to the photoelectric composite active transponder, the following treatment is carried out: (1) connecting a power line in the input photoelectric composite cable into an electromagnetic compatibility protection module (EMC) to prevent an input signal current and voltage signal from being overlarge to damage photoelectric composite active transponder equipment; then, the power supply is connected to a working power supply module to form a stable O/E interface part working power supply; (2) the method comprises the steps that optical fibers in an input photoelectric composite cable are connected to a GTP interface, and then message data are received through an optical interface data receiving and sending module; (3) the data extraction module is responsible for decoding the received message data and recovering bit streams of '0' and '1' of the original message; (4) if the message data recovered by the data extraction module passes the verification, the photoelectric composite active responder control module is informed to receive a new message, and the message information (or a message confirmation message for correct reception) is reversely transmitted back to the photoelectric composite ground electronic unit through the optical port data transceiver module, and the photoelectric composite ground electronic unit simultaneously transmits the message information to a Train Control Center (TCC) after receiving the message information; otherwise, transmitting a reception failure message back to the photoelectric composite ground electronic unit.
A second part: photoelectric composite ground electronic unit (O/E-LEU)
As shown in the block diagram of fig. 6, the optical-electrical composite ground electronic unit (O/E-LEU) includes seven functional modules, i.e., an optical signal transceiving original message module, a logic control and encoding module, an optical signal transceiving encoded message module, a program storage module, a message storage module, a detection recording module, and a power supply module. An implementation circuit diagram of an optical-electrical composite ground electronic unit (O/E-LEU) system is shown in fig. 7.
The optical signal receiving and transmitting original message module comprises: the optical communication interface and the optical interface data transceiver module I. The first optical port data transceiver module is an innovation of the utility model.
The optical communication interface includes: GTP interface, GTP interface peripheral circuit. The optical communication interface completes the conversion of the photoelectric signal, which is the prior art. The GTP interface may also be replaced by a higher rate GTX interface, GTH interface, or GTZ interface. The optical communication interfaces have two identical interfaces, so that the main and standby redundancy configuration is realized.
The first optical port data transceiver module comprises: the device comprises a GTP RX module, a GTP TX module, a GTP data storage module and a GTP data returning module. The GTP RX module receives message data from a GTP interface, the message data are stored by a GTP data storage module, the message data are transmitted back to a Train Control Center (TCC) through a GTP data back transmission module and a GTP TX module, and meanwhile, the message data are transmitted to a logic control and coding module for further processing.
The logic control and encoding module comprises: the device comprises a logic control module, a DBPL coding module (differential biphase level code) and an 8.82KHz sine wave generating module; the logic control module judges a corresponding target photoelectric composite active responder according to message information received by the original message receiving and transmitting module of the optical signal, then controls the DBPL coding module to code message data, and finally transmits the coded message data to a second optical port data receiving and transmitting module corresponding to the target photoelectric composite active responder. The DBPL coding module is responsible for coding message data, and the specific process is given in the China's republic of China railway industry standard TB/T3485-. The 8.82KHz sine wave generating module generates an 8.82KHz sine wave signal, and the sine wave signal is amplified by the power amplifying module and then is connected with a power line in the photoelectric composite cable to supply power to the photoelectric composite active transponder.
The optical signal receiving and transmitting coded message module realizes optical signal transmission between an optical-electrical composite ground electronic unit (O/E-LEU) and an optical-electrical composite active transponder. The method comprises the following steps: the optical port data transceiver module II and the optical communication interface. The second optical port data transceiver module comprises: the device comprises a GTP RX module, a GTP TX module, a GTP receiving data storage module and a GTP sending data storage module. The GTP RX module and the GTP TX module are both connected with a GTP interface in the optical communication interface, the output of the GTP RX module is connected with the GTP receiving data storage module, and the output of the GTP sending data storage module is connected with the GTP TX module. The optical signal receiving and transmitting coded message module is connected with optical fibers in the photoelectric composite cable and is communicated with the photoelectric composite active transponder.
The program storage module is a memory chip and is used for storing a program operated by an optical-electrical composite ground electronic unit (O/E-LEU).
The message storage module is a memory chip and is used for storing default message information sent to the photoelectric composite active transponder by a photoelectric composite ground electronic unit (O/E-LEU).
The detection recording module is a memory chip and is used for storing the detection result data of the system state of the photoelectric composite ground electronic unit (O/E-LEU). The detection record data is transmitted back to a Train Control Center (TCC) through a first optical port data transceiver module.
The power supply module provides a working power supply for an optical-electrical composite ground electronic unit (O/E-LEU) system.
In an embodiment the O/E interface portion is implemented with an FPGA. For example, but not limited to, a dedicated optical interface transceiver chip may be purchased to implement in combination with microprocessor chips such as an ARM and a DSP, so as to replace the optical interface data transceiver module in the embodiment to include: the system comprises a GTP RX module, a GTP TX module, a GTP data storage module, a GTP data returning module, a logic control module, a frame checking module, a message decoding module, a differential Manchester coding waveform output module and a serial interface for output.
In the embodiment, an FPGA is adopted to realize an O/E-LEU system. For example, but not limited to, a dedicated optical interface transceiver chip may be purchased and implemented in combination with an ARM, a DSP, and other microprocessor chips, so as to replace the first optical interface data transceiver module (including a GTP RX module, a GTP TX module, a GTP data storage module, and a GTP data backhaul module), the logic control and encoding module, and the 8.82KHz sine wave generating module in the embodiment.
The special high-frequency twisted-pair shielding cable is changed into the photoelectric composite cable, the photoelectric composite cable is low in price, small in size and long in service life, the optical fiber transmits message information, the optical fiber is insulated and not prone to being damaged by electromagnetic interference such as thunder and lightning, the longest transmission distance can reach hundreds of kilometers, and the laying range of the active transponder is greatly enlarged.
The ground equipment of the utility model modifies the existing LEU and the existing active transponder, and adopts the connection of the photoelectric composite cable, thereby realizing Gbps full-duplex high-speed optical transmission, and the data message transmission between the modified LEU (namely a photoelectric composite ground electronic unit (O/E-LEU)) and the Train Control Center (TCC) and the modified active transponder (namely the photoelectric composite active transponder) adopts full-duplex optical fiber communication, thereby making the construction of a new generation photoelectric composite transponder transmission system possible to replace the traditional rail transit transponder transmission system.

Claims (3)

1.全新一代光电复合应答器传输系统地面设备,其特征在于,包括光电复合有源应答器和光电复合地面电子单元;其中,一个或者多个光电复合有源应答器和光电复合地面电子单元之间用光电复合缆连接,光电复合地面电子单元和列控中心之间采用光纤通信。1. A new generation of photoelectric composite transponder transmission system ground equipment, characterized in that it includes photoelectric composite active transponders and photoelectric composite ground electronic units; wherein, one or more photoelectric composite active transponders and photoelectric composite ground electronic units. It is connected by photoelectric composite cable, and optical fiber communication is adopted between the photoelectric composite ground electronic unit and the train control center. 2.如权利要求1所述全新一代光电复合应答器传输系统地面设备,其特征在于,所述光电复合有源应答器包括A接口部分,O/E接口部分,制造信息存储,报文存储以及应答器控制模块;2. The new generation of photoelectric composite transponder transmission system ground equipment according to claim 1, wherein the photoelectric composite active transponder comprises an A interface part, an O/E interface part, a manufacturing information storage, a message storage and a Transponder control module; 所述O/E接口部分包括:EMC防护模块,O/E接口工作电源模块,GTP接口,GTP外围接口电路,光口数据收发模块,数据提取模块,逻辑控制模块,串行接口;O/E接口部分对外连接光电复合缆,光电复合缆包括电源线与光纤;The O/E interface part includes: EMC protection module, O/E interface working power supply module, GTP interface, GTP peripheral interface circuit, optical port data transceiver module, data extraction module, logic control module, serial interface; O/E The interface part is connected to the external photoelectric composite cable, and the photoelectric composite cable includes the power cord and the optical fiber; 所述EMC防护模块连接光电复合缆中的电源线,作为其输入,EMC防护模块的输出与所述O/E接口工作电源模块相连,O/E接口工作电源模块为整个O/E接口部分电路供电;The EMC protection module is connected to the power line in the photoelectric composite cable, and as its input, the output of the EMC protection module is connected to the O/E interface working power module, and the O/E interface working power module is part of the entire O/E interface circuit. powered by; 光电复合缆中的光纤通过GTP外围接口电路与所述GTP接口连接,然后经由光口数据收发模块的输入/输出数据线连接到数据提取模块;The optical fiber in the photoelectric composite cable is connected to the GTP interface through the GTP peripheral interface circuit, and then connected to the data extraction module via the input/output data line of the optical port data transceiver module; 进一步的,所述光口数据收发模块包括:GTP RX模块、GTPTX模块、GTP数据存储模块和GTP数据回传模块,其中,所述GTP RX模块接收来自GTP接口的报文数据,交由GTP数据存储模块储存,报文数据通过GTP数据回传模块和GTP TX模块回传通信至对端,同时,该报文数据传输到数据提取模块做进一步处理;Further, the optical port data transceiver module includes: a GTP RX module, a GTPTX module, a GTP data storage module, and a GTP data return module, wherein the GTP RX module receives the message data from the GTP interface, and hands it over to the GTP data The storage module stores, and the message data is communicated back to the opposite end through the GTP data return module and the GTP TX module, and at the same time, the message data is transmitted to the data extraction module for further processing; 所述GTP接口通过GTP外围接口电路与光纤连接;The GTP interface is connected with the optical fiber through the GTP peripheral interface circuit; 所述数据提取模块包括三个子模块:帧校验模块、报文解码模块和差分曼彻斯特编码波形输出模块,其中:The data extraction module includes three sub-modules: a frame check module, a message decoding module and a differential Manchester encoded waveform output module, wherein: 所述帧校验模块完成报文校验,检查报文正确性;The frame check module completes the message check and checks the message correctness; 所述报文解码模块执行报文解码功能,包括三个子模块:位检查模块、码字生成模块和解码输出模块;输入报文首先由位检查模块检查报文的控制位、附加位是否正确;然后由码字生成模块完成10位到11位的码字转换,生成新码字;解码输出模块将解码获得的码字输出到差分曼彻斯特编码波形输出模块;The message decoding module executes the message decoding function, including three sub-modules: a bit checking module, a codeword generating module and a decoding output module; the input message is first checked by the bit checking module whether the control bits and additional bits of the message are correct; Then the codeword generation module completes the 10-bit to 11-bit codeword conversion to generate a new codeword; the decoding output module outputs the decoded codeword to the differential Manchester encoding waveform output module; 所述差分曼彻斯特编码波形输出模块执行差分曼彻斯特编码并将波形输出到串行接口;The differential Manchester encoding waveform output module performs differential Manchester encoding and outputs the waveform to the serial interface; 所述逻辑控制模块功能是根据操作指令分别对光口数据收发模块、数据提取模块和串行接口进行逻辑控制,逻辑控制主要内容包括使能、复位、同步。The function of the logic control module is to perform logic control on the optical port data transceiver module, the data extraction module and the serial interface respectively according to the operation instructions, and the main contents of the logic control include enabling, resetting and synchronization. 3.如权利要求1所述全新一代光电复合应答器传输系统地面设备,其特征在于,所述光电复合地面电子单元包括光信号收发原始报文模块、逻辑控制及编码模块、光信号收发编码报文模块、程序存储模块、报文存储模块、检测记录模块和电源模块七部分功能模块;3. The ground equipment of a new-generation photoelectric composite transponder transmission system according to claim 1, wherein the photoelectric composite ground electronic unit comprises an optical signal sending and receiving original message module, a logic control and encoding module, an optical signal sending and receiving encoded message module. There are seven functional modules: file module, program storage module, message storage module, detection record module and power supply module; 所述光信号收发原始报文模块包括:光通信接口和光口数据收发模块一;The optical signal sending and receiving original message module includes: an optical communication interface and an optical interface data sending and receiving module 1; 所述光通信接口包括:GTP接口、GTP接口外围电路;所述光通信接口有相同的两套接口,实现主备冗余配置;The optical communication interface includes: a GTP interface and a peripheral circuit of the GTP interface; the optical communication interface has the same two sets of interfaces to realize active and standby redundant configuration; 所述光口数据收发模块一包括:GTP RX模块、GTP TX模块、GTP数据存储模块和GTP数据回传模块;其中,所述GTP RX模块接收来自GTP接口的报文数据,交由GTP数据存储模块储存,报文数据通过GTP数据回传模块和GTP TX模块回传至列控中心,同时,该报文数据传输到逻辑控制及编码模块做进一步处理;The first optical port data transceiver module includes: a GTP RX module, a GTP TX module, a GTP data storage module, and a GTP data return module; wherein, the GTP RX module receives the message data from the GTP interface, and stores it in the GTP data The module is stored, and the message data is sent back to the train control center through the GTP data return module and the GTP TX module. At the same time, the message data is transmitted to the logic control and encoding module for further processing; 所述逻辑控制及编码模块包括:逻辑控制模块、DBPL编码模块和8.82KHz正弦波生成模块;所述逻辑控制模块首先根据光信号收发原始报文模块接收的报文信息来判断相应的目标光电复合有源应答器,然后控制DBPL编码模块对报文数据进行编码,最后将编码报文数据传给目标光电复合有源应答器对应的光口数据收发模块二;DBPL编码模块负责对报文数据进行编码;8.82KHz正弦波生成模块产生8.82KHz正弦波信号,该正弦波信号通过功率放大模块放大后连接光电复合缆中的电源线,向光电复合有源应答器供电;The logic control and coding module includes: a logic control module, a DBPL coding module and an 8.82KHz sine wave generation module; the logic control module firstly judges the corresponding target optoelectronic composite according to the message information received by the optical signal transceiver and original message module. The active transponder then controls the DBPL encoding module to encode the message data, and finally transmits the encoded message data to the optical port data transceiver module 2 corresponding to the target optoelectronic composite active transponder; the DBPL encoding module is responsible for processing the message data. Code; 8.82KHz sine wave generation module generates 8.82KHz sine wave signal, the sine wave signal is amplified by the power amplifier module and then connected to the power line in the photoelectric composite cable to supply power to the photoelectric composite active transponder; 所述光信号收发编码报文模块实现O/E-LEU与光电复合有源应答器之间的光信号传输;包括:光口数据收发模块二、光通信接口;所述光口数据收发模块二包括:GTPRX模块、GTPTX模块、GTP接收数据存储模块和GTP发送数据存储模块;GTP RX模块、GTP TX模块均与光通信接口中的GTP接口连接,GTP RX模块的输出与GTP接收数据存储模块连接,GTP发送数据存储模块的输出与GTP TX模块连接;光信号收发编码报文模块连接光电复合缆中的光纤,与光电复合有源应答器通信;The optical signal transceiving and coded message module realizes optical signal transmission between the O/E-LEU and the photoelectric composite active transponder; it includes: an optical port data transceiver module II, an optical communication interface; the optical port data transceiver module II Including: GTPRX module, GTPTX module, GTP receiving data storage module and GTP sending data storage module; GTP RX module and GTP TX module are all connected with the GTP interface in the optical communication interface, and the output of the GTP RX module is connected with the GTP receiving data storage module , the output of the GTP sending data storage module is connected with the GTP TX module; the optical signal sending and receiving coded message module is connected with the optical fiber in the photoelectric composite cable, and communicates with the photoelectric composite active transponder; 所述程序存储模块为存储器芯片,用于存储光电复合地面电子单元运行的程序;The program storage module is a memory chip, used for storing the program of the photoelectric composite ground electronic unit operation; 所述报文存储模块为存储器芯片,用于存储O/E-LEU发送给光电复合有源应答器的默认报文信息;The message storage module is a memory chip, used for storing the default message information sent by the O/E-LEU to the photoelectric composite active transponder; 所述检测记录模块为存储器芯片,用于存储O/E-LEU系统状态检测结果数据,该检测记录数据通过光口数据收发模块一回传给列控中心;The detection record module is a memory chip, which is used to store the O/E-LEU system state detection result data, and the detection record data is transmitted back to the train control center through the optical port data transceiver module; 所述电源模块为O/E-LEU系统提供工作电源。The power module provides working power for the O/E-LEU system.
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