Code module testing device and method and electronic equipment
The problem of power cord interfering signals in electrocoding module testing is solved by integrating the electrocoding module and the interlocking machine in one section and concentrating other devices and power cords in another section, and improving the accuracy and reliability of the test.
Patent Information
- Application Number
- CN202311837837.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-28
- Publication Date
- 2025-07-01
AI Technical Summary
During the electrocoding module testing process, the spatial contact between the power line and the signal line causes interference signals, affecting the accuracy of the test.
An electrocoding module testing device is designed to integrate the electrocoding module and the interlocking machine in one part, and other equipment and power lines are concentrated in another part, and the signal lines are wired between the two parts to reduce spatial contact between the power lines and the signal lines.
It effectively reduces the interference signal of the power cord during the electrocoding module testing process, and improves the accuracy and reliability of the test.
Smart Images

Figure CN120233159A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of railways, and more specifically, to a testing device, method, and electronic device for a codelization module. Background Art
[0002] In the in-station ZPW-2000A track circuit, the transmitter of the main track circuit can generate a power output voltage signal (low-frequency signal and carrier frequency signal) according to the coding conditions sent by the codelization module and send it to the codelization module. The codelization module sends the power output voltage signal to the corresponding track section. After receiving the carrier frequency signal and low-frequency signal in the power output voltage signal, the train decodes to obtain the coding information and obtains the train operation instructions (such as stop, pass, and decelerated stop) corresponding to the coding information. Before the codelization module is put into use, it is necessary to test whether the codelization module can output a power output voltage signal. Since multiple devices need to be temporarily connected by cables during the test of the codelization module and the test space is limited, the various cables overlap and contact, and the interference signals in the power supply cable that supplies power to the codelization module are easily coupled into the signal cable, interfering with the test of the codelization module. Summary of the Invention
[0003] In view of this, the present application provides a testing device, method, and electronic device for a codelization module to solve the problem of interference signals in the codelization module test.
[0004] To achieve the above object, the following solutions are proposed:
[0005] A testing device for a codelization module, the testing device for the codelization module includes a codelization module integration part and a device integration part. The codelization module integration part includes an interlocking machine, a codelization module, a first power module, and a first cable. The interlocking machine is connected to the codelization module through the first cable. The first power module is connected to the power interface terminal of the codelization module through the first cable. The device integration part includes a second power module, a transmitter, an LED lamp, and a second cable. The second power module is connected to the power interface terminal of the transmitter through the second cable;
[0006] The information sending terminal of the board of the codelization module coding interface board is connected to the information receiving terminal of the transmitter;
[0007] The signal sending terminal of the transmitter is connected to the signal receiving terminal of the board of the codelization module side line rear plug-in interface board;
[0008] The signal sending terminal of the board of the codelization module side line rear plug-in interface board is connected to the LED lamp.
[0009] Optionally, both the first power supply module and the second power supply module are programmable power supply modules, and the output voltages of the first power supply module and the second power supply module are both 24V.
[0010] Optionally, the transmitter is disposed on the upper part of the second power supply module and adjacent to the second power supply module, and the LED lamp is disposed on the upper part of the transmitter and adjacent to the transmitter.
[0011] Optionally, a blanking plate is disposed on the upper part of the LED lamp and adjacent to the LED lamp, and a blanking plate is disposed on one side of the second power supply module and adjacent to the second power supply module.
[0012] Optionally, a handle is disposed on one side of the blanking plate, and the handle is disposed on the side of the second power supply module where the blanking plate is not provided.
[0013] Optionally, a plurality of heat dissipation holes are disposed on the upper surface of the blanking plate on the upper part of the LED lamp.
[0014] A codelocking module testing method is applied to the codelocking module testing device described in any one of the above, and the codelocking module testing method includes:
[0015] The codelocking module sends a coding condition to the information receiving terminal of the transmitter through the information sending terminal of the board of the coding interface board, and the coding condition is: information determined by the codelocking module according to the code sending instruction provided by the interlocking machine;
[0016] The transmitter outputs a power output voltage signal to the signal receiving terminal of the board of the codelocking module side line rear plug-in interface board through the signal sending terminal according to the coding condition;
[0017] Determine whether the signal sending terminal of the board of the codelocking module side line rear plug-in interface board outputs the power output voltage signal according to the lighting logic of the LED lamp.
[0018] Optionally, the transmitter outputs a power output voltage signal to the signal receiving terminal of the board of the codelocking module side line rear plug-in interface board through the signal sending terminal according to the coding condition, including:
[0019] The transmitter selects a corresponding low-frequency frequency according to the coding condition,
[0020] The transmitter selects a carrier frequency according to a preset carrier frequency condition and selects a power output voltage according to a preset power output voltage level;
[0021] The transmitter outputs a power output voltage signal with low-frequency frequency information and carrier frequency information to the signal receiving terminal of the board of the codelocking module side line rear plug-in interface board through the signal sending terminal.
[0022] Optionally, determining whether the signal sending terminal of the board of the side plug-in interface board of the codelization module outputs the power output voltage signal according to the lighting logic of the LED lamp includes:
[0023] If the signal sending terminal of the board of the side plug-in interface board of the codelization module outputs the power output voltage signal, the LED lamps with different numbers are lit in sequence;
[0024] If the signal sending terminal of the board of the side plug-in interface board of the codelization module does not output the power output voltage signal, the LED lamps are not lit.
[0025] An electronic device includes a memory and a processor;
[0026] The memory is used for storing a program;
[0027] The processor is used for executing the program to implement each step of the codelization module test method described in any one of the above.
[0028] This application discloses a codelization module test device, method and electronic device. The codelization module test device integrates the codelization module and the interlocking machine in the codelization module integration part, concentrates other devices except the codelization module in the device integration part, and the power lines are fixedly wired inside the integration part, and the signal lines are wired between the two integration parts, which can reduce the spatial contact between the power lines and the signal lines, thereby reducing the interference signal of the power lines during the test of the codelization module. Description of the Drawings
[0029] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained according to the provided drawings without creative efforts.
[0030] Figure 1 It is a schematic structural diagram of a codelization module test device provided by an embodiment of the present application;
[0031] Figure 2 It is a schematic flow chart of a codelization module test method provided by an embodiment of the present application;
[0032] Figure 3 It is a hardware structural block diagram of an electronic device provided by an embodiment of the present application. Detailed Embodiments
[0033] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.
[0034] As Figure 1 shown, the embodiment of the present application provides a codelocking module testing device. The codelocking module testing device includes a codelocking module integration part and a device integration part. The codelocking module integration part includes an interlocking machine 1, a codelocking module 2, a first power module 3, and a first cable. The interlocking machine 1 is connected to the codelocking module 2 through the first cable. The first power module 3 is connected to the power interface terminal of the codelocking module 2 through the first cable. The device integration part includes a second power module 4, a transmitter 5, an LED lamp 6, and a second cable. The second power module 4 is connected to the power interface terminal of the transmitter 5 through the second cable;
[0035] The information sending terminal of the board of the coding interface board of the codelocking module 2 is connected to the information receiving terminal of the transmitter 5;
[0036] The signal sending terminal of the transmitter 5 is connected to the signal receiving terminal of the board of the side line rear plug-in interface board of the codelocking module 2;
[0037] The signal sending terminal of the board of the side line rear plug-in interface board of the codelocking module 2 is connected to the LED lamp 6.
[0038] Among them, the interlocking machine 1 can be an important part of the railway signal system, mainly used to realize the control and monitoring of station signal equipment. It can collect the status information of signal equipment in real time through the interfaces with on-site signal equipment (such as track circuits, turnouts, and signal machines, etc.), and make judgments and processing according to preset logic rules, and finally output control commands to realize the control of signal equipment. For example, when a train enters a certain route, the interlocking machine 1 will automatically close the signal machine on that route.
[0039] The codelocking module 2 can be a device in the railway signal system, mainly used to realize the codelocking of the track circuit. Among them, the codelocking of the track circuit can refer to transmitting the information encoded by the transmitter 5 on the track circuit to realize the control of train operation. The test of the codelocking module 2 in this embodiment can be to test whether the codelocking module 2 can output a power output voltage signal.
[0040] The first power supply module 3 and the second power supply module 4 can both be programmable power supply modules. A programmable power supply module can be a programmable-controlled power supply. It not only has a small volume and low-power design, making it easy to integrate into various applications, but also can be programmed according to user requirements and application program requirements to provide precise voltage and current outputs. In this embodiment, both the first power supply module 3 and the second power supply module 4 can be Phoenix Contact switching power supplies (a single-phase input power supply), and the output voltages of the first power supply module 3 and the second power supply module 4 can both be 24V.
[0041] The transmitter 5 can be a key device for generating and transmitting frequency-shift information. The transmitter 5 in a section can be controlled by coding conditions and generate frequency-shift signals modulated by low frequencies representing different meanings. The frequency-shift signals can be transmitted to the matching transformer and tuning unit through a cable channel (actual cable and analog cable). Since the rail is non-insulated, the frequency-shift signals can be transmitted both to the main track and to the small track of the tuning area. After the frequency-shift signals on the main track are transmitted through the rail to the receiving end of the track circuit, they are transmitted to the receiver in the same section through the tuning unit, matching transformer, and cable channel. In this embodiment, the transmitter 5 can be a device for providing frequency-shift signals during the test of the coding module 2, used to test the information transmission function of the coding module 2. The transmitter 5 can be used to generate high-precision and high-stability frequency-shift signals with 18 low frequencies and 8 carrier frequencies, and transmit them to the coding module 2 through a cable.
[0042] In this embodiment, the number of LED lights 6 can be multiple, and they can be simultaneously connected to the signal transmission terminals of the boards on the side-line rear interface board of the coding module 2.
[0043] The track module in the track circuit system can collect the track section status and upload it to the interlocking machine 1 through the communication bus, providing the occupancy and clearing status of the track section for the interlocking machine 1. The interlocking machine 1 can perform logical operations in combination with the status collected by the track module, and send the operation results (coding information and train running position information) to the coding module 2. Among them, the coding information can include 18 types, and each type of coding information can correspond to different train operation information, giving train drivers driving instructions such as stop, pass, speed, and decelerate to stop. In the integrated part of the coding module 2 in this embodiment, the interlocking machine 1 can send the operation results to the coding module 2 through the first cable connected to the coding module 2.
[0044] The coder module 2 can be powered by the first power supply module 3 in this embodiment, or can be additionally wired for power supply from the second power supply module 4 of the device integration part. When the coder module 2 is powered by the second power supply module 4, the connection cable can be located at the bottom of the coder module test device, the cable for signal transmission can be located at the upper part of the coder module test device, and the cable for power supply is far away from the cable for signal transmission.
[0045] When testing the coder module 2 in this embodiment, the information sending terminal of the board of the coding interface board of the coder module 2 can be connected to the information receiving terminal of the transmitter 5 through a cable, for the coder module 2 to send coding conditions to the transmitter 5; the signal sending terminal of the transmitter 5 can be connected to the signal receiving terminal of the board of the post-insert interface board on the side line of the coder module 2 through a cable, for the transmitter 5 to send the output voltage signal to the coder module 2; the signal sending terminal of the board of the post-insert interface board on the side line of the coder module 2 can be connected to the LED lamp 6 through a cable, for detecting whether the coder module 2 outputs the output voltage signal through the LED lamp 6.
[0046] The embodiment of the present application discloses a coder module test device. The coder module test device integrates the coder module 2 and the interlocking machine 1 in the coder module integration part, and centralizes other devices except the coder module 2 in the device integration part. Moreover, the power lines are fixedly wired inside the integration part, and the signal lines are wired between the two integration parts, which can reduce the spatial contact between the power lines and the signal lines, thereby reducing the interference signal of the power lines during the test process of the coder module 2. Further, the coder module test device can centrally manage the devices and is not likely to cause loss or loss of the devices.
[0047] In another coder module test device provided according to the embodiment of the present application, the transmitter 5 can be arranged on the upper part of the second power supply module 4 and adjacent to the second power supply module 4, and the LED lamp 6 can be arranged on the upper part of the transmitter 5 and adjacent to the transmitter 5.
[0048] Among them, the second power supply module 4 can be located at the bottom of the coder module test device, and the transmitter 5 and the LED lamp 6 are both arranged on the upper part of the second power supply module 4, which is convenient for when the coder module 2 accesses power from the second power supply module 4, the cable for power-on can be arranged at the bottom of the coder module test device and is far away from the cable for signal transmission.
[0049] In another coder module test device provided according to the embodiment of the present application, a blank filling board is arranged on the upper part of the LED lamp 6 and adjacent to the LED lamp 6, and a blank filling board is arranged on one side of the second power supply module 4 and adjacent to the second power supply module 4.
[0050] Among them, the blank filling board can be a kind of board used to fill the vacant part in the codeline module testing device. In this embodiment, a blank filling board is arranged at the uppermost part of the codeline module testing device (above the LED lamp 6). Further, a plurality of heat dissipation holes are arranged on the upper surface of the blank filling board above the LED lamp 6.
[0051] A blank filling board is arranged on one side of the second power supply module 4, and a handle is arranged on one side of the blank filling board. A handle is arranged on the side of the second power supply module 4 where the blank filling board is not arranged. By arranging a handle on the side of the second power supply module 4 where the blank filling board is not arranged, the power supply module in the device integration part can be replaced at any time through the handle, and the blank filling board can also be replaced through the handle on one side of the blank filling board, or a second power supply module 4 can be added at the position of the blank filling board.
[0052] The main function of the blank filling board can be to fill the vacancy in the area without equipment installation in the codeline module testing device, making the internal layout of the codeline module testing device more regular and beautiful. Through the blank filling board, the internal space of the codeline module testing device can be better utilized, improving the space utilization rate of the codeline module testing device. At the same time, it is also convenient for the installation and maintenance of the equipment in the codeline module testing device. In addition, the blank filling board can also strengthen the structure of the codeline module testing device, improving the bearing capacity and stability of the codeline module testing device.
[0053] The codeline module testing device can also be configured with a dedicated equipment grounding copper bar and a lightning protection grounding copper bar, which can improve the grounding discharge capacity of the codeline module testing device and the anti-interference ability of each device in the codeline module testing device.
[0054] Corresponding to a codeline module testing device provided in an embodiment of the present application, an embodiment of the present application also provides a codeline module testing method.
[0055] An embodiment of the present application also provides a codeline module testing method, which can be applied to the codeline module testing device in the above embodiment, as Figure 2 shown. The codeline module testing method can include:
[0056] S10. The codeline module 2 sends coding conditions to the information receiving terminal of the transmitter 5 through the information sending terminal of the board card of the coding interface board. The coding conditions are: the information determined by the codeline module 2 according to the code sending instruction provided by the interlocking machine 1;
[0057] S11. According to the coding conditions, the transmitter 5 outputs a power output voltage signal to the signal receiving terminal of the board card of the side line rear plug-in interface board of the codeline module 2 through the signal sending terminal;
[0058] S12. Determine whether the signal transmission terminal of the board of the rear plug-in interface board on the side line of the codelocking module 2 outputs a power output voltage signal according to the lighting logic of the LED lamp 6.
[0059] Among them, the coding condition can be the coding information determined by the code sending instruction provided by the interlocking machine 1. The code sending instruction provided by the interlocking machine 1 can be obtained by logically processing the track section status collected by the track module, and the code sending instruction can include commands for coding, code sending and transmission sequence. After the codelocking module 2 obtains the code sending instruction, it can determine the coding condition of the transmitter 5 according to the code sending instruction, and the coding condition can include the low-frequency frequency of the low-frequency signal sent by the transmitter 5. The power output voltage signal can be a voltage signal carrying low-frequency frequency information and carrier frequency information. The coding interface board of the codelocking module 2 can be an interface board for connecting the codelocking module 2 and other devices. The main function of the coding interface board can be to convert the output information of the encoder into information suitable for other devices to process, so as to realize communication and data transmission between devices. The rear plug-in interface board on the side line of the codelocking module 2 can be a special type of interface board, usually installed on the side or back of the codelocking module 2 to provide additional connection and expansion functions. The design of the rear plug-in interface board on the side line can make it convenient to insert into the existing structure of the codelocking module 2, and through connecting cables or other interfaces, realize communication and data transmission between the codelocking module 2 and other devices or systems.
[0060] Specifically, the transmitter 5 can first select the corresponding low-frequency frequency according to the coding condition, then select the carrier frequency according to the preset carrier frequency condition, and finally select the output power voltage according to the preset output power voltage level. The transmitter 5 outputs an output power voltage signal with low-frequency frequency information and carrier frequency information to the signal receiving terminal of the board of the rear plug-in interface board of the codelocking module 2 through the signal sending terminal. Among them, the preset carrier frequency condition can be the carrier frequency terminal selected by the transmitter 5 to access, and different accessed carrier frequency terminals correspond to different carrier frequencies. In this embodiment, the transmitter 5 can access two carrier frequency terminals, one carrier frequency terminal is the selection terminal of the carrier frequency type, and one carrier frequency terminal is the terminal of the specific carrier frequency. The carrier frequency types in this embodiment can be divided into -1 type carrier frequency and -2 type carrier frequency, and the specific carrier frequencies can be divided into 1700Hz, 2000Hz, 2300Hz, and 2600Hz. When accessing the carrier frequency terminal, select one carrier frequency terminal to access from the carrier frequency terminals of -1 type carrier frequency and -2 type carrier frequency, and select one carrier frequency terminal to access from the carrier frequency terminals of 1700Hz, 2000Hz, 2300Hz, and 2600Hz to obtain the carrier frequency of the transmitter 5. For example, if one carrier frequency terminal accesses the carrier frequency terminal of -1 type carrier frequency and the other carrier frequency terminal accesses the carrier frequency terminal of 1700Hz, the carrier frequency of the transmitter 5 is 1701.4Hz. The preset output power voltage can also be determined according to the voltage terminal selected by the transmitter 5 to access, and the corresponding output power voltage is determined according to the accessed voltage terminal.
[0061] The embodiment of the present application provides a method for testing a codelocking module. This method can quickly test the codelocking module 2 by simple wiring, effectively improve the test efficiency of the codelocking module 2, and quickly know whether the codelocking module 2 outputs an output power voltage signal through the lighting logic of the LED lamp 6.
[0062] In another method for testing a codelocking module provided by the embodiment of the present application, Figure 2 The specific steps of step S12 can include:
[0063] If the signal sending terminal of the board of the rear plug-in interface board of the codelocking module 2 outputs an output power voltage signal, different numbers of LED lamps 6 are lit in sequence;
[0064] If the signal sending terminal of the board of the rear plug-in interface board of the codelocking module 2 does not output an output power voltage signal, the LED lamp 6 is not lit.
[0065] Among them, since the codelocking module 2 can transmit the output power voltage signal to the corresponding track section, after the train obtains the output power voltage signal from the track section, it decodes the corresponding coding information according to the low-frequency frequency information and carrier frequency information carried in the output power voltage signal, which is used to determine the train operation indication. Among them, the coding information can include 18 types, and each type of coding information can correspond to different train operation information, giving train drivers operation indications such as stop, passing, speed, and decelerating to stop. Then, the test of the codelocking module 2 in this embodiment can be to test whether the codelocking module 2 can output the output power voltage signal. In this embodiment, the signal sending terminal of the board card of the side-line rear plug-in interface board of the codelocking module 2 is connected to the LED lamp 6, and it is judged whether the codelocking module 2 outputs the output power voltage signal according to the lighting logic of the LED lamp 6.
[0066] In this embodiment, the number of LED lamps 6 can be 8. The codelocking module 2 can have multiple display lamps, and the display lamps can include 8 track transmission display lamps (track transmission 1 to track transmission 8) and 10 coding display lamps (coding 1 to coding 10). During the process of testing the codelocking module 2, when the codelocking module 2 outputs the output power voltage signal to the LED lamp 6, it will sequentially light up the display lamp groups (at least one track transmission display lamp and at least one coding display lamp) on the codelocking module 2. The LED lamp 6 sequentially displays a fixed lighting logic, and each displayed lighting logic represents a display lamp group. When the lighting logic displayed by the LED lamp 6 is correct each time, it means that the signal sending terminal of the board card of the side-line rear plug-in interface board of the codelocking module 2 can normally output the output power voltage signal. Specifically, when the codelocking module 2 lights up track transmission 1 and coding 1, the LED lamp 6 lights the first one; when the codelocking module 2 lights up track transmission 2 and coding 2, the LED lamp 6 lights the second one; when the codelocking module 2 lights up track transmission 3 and coding 3, the LED lamp 6 lights the third one; when the codelocking module 2 lights up track transmission 4 and coding 4, the LED lamp 6 lights the fourth one; when the codelocking module 2 lights up track transmission 5 and coding 5, the LED lamp 6 lights the fifth one; when the codelocking module 2 lights up track transmission 6 and coding 6, the LED lamp 6 lights the sixth one; when the codelocking module 2 lights up track transmission 7 and coding 7, the LED lamp 6 lights the seventh one; when the codelocking module 2 lights up track transmission 8 and coding 8, the LED lamp 6 lights the eighth one; when the codelocking module 2 lights up track transmissions 1 / 2 / 3 / 4 and coding 9, the LED lamp 6 lights the first four (1 / 2 / 3 / 4); when the codelocking module 2 lights up track transmissions 5 / 6 / 7 / 8 and coding 10, the LED lamp 6 lights the last four (5 / 6 / 7 / 8). In this embodiment, the lighting sequence of the LED lamp 6 is not limited. It can start from both ends. Of course, it can also start from the middle. The lighting logic of the LED lamp 6 each time corresponds to the display lamp group lit by the codelocking module 2.
[0067] Such as Figure 3As shown, an embodiment of the present application provides an electronic device 70, including at least one processor 701, at least one memory 702 connected to the processor 701, and a bus 703; wherein, the processor 701 and the memory 702 complete communication with each other through the bus 703; the processor 701 is used to call program instructions in the memory 702 to execute the above-mentioned coder module test method. The electronic device 70 in this article can be a server, a PC, a PAD, a mobile phone, etc.
[0068] This application is described with reference to the flowcharts and / or block diagrams of methods, devices (systems), and computer program products according to embodiments of the present application. It should be understood that each flow and / or block in the flowchart and / or block diagram, and the combination of flows and / or blocks in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing devices to generate a machine, so that the instructions executed by the processor of the computer or other programmable data processing devices generate for implementing in the process Figure 1 one process or multiple processes and / or blocks Figure 1 a device for the functions specified in one block or multiple blocks.
[0069] In a typical configuration, the device includes one or more processors (CPUs), a memory, and a bus. The device may also include an input / output interface, a network interface, etc.
[0070] The memory may include non-permanent memory in a computer-readable storage medium, in the form of random access memory (RAM) and / or non-volatile memory, such as read-only memory (ROM) or flash memory (flash RAM), and the memory includes at least one storage chip. The memory is an example of a computer-readable medium.
[0071] A computer-readable storage medium includes both permanent and non-permanent, removable and non-removable media and can implement information storage by any method or technology. The information can be computer-readable instructions, data structures, program modules, or other data. Examples of the computer's storage media include, but are not limited to, phase change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technologies, compact disc read-only memory (CD-ROM), digital versatile disc (DVD) or other optical storage, magnetic cassette tapes, disk storage or other magnetic storage devices, or any other non-transitory medium that can be used to store information accessible by a computing device. As defined herein, computer-readable media does not include transitory computer-readable media, such as modulated data signals and carrier waves.
[0072] Those skilled in the art should understand that the embodiments of the present application can be provided as a method, a system, or a computer program product. Therefore, the present application can take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present application can take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk memory, CD-ROM, optical memory, etc.) that contain computer-usable program code.
[0073] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. It should also be noted that the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, commodity or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, commodity or device. Without further limitation, an element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, commodity or device including the element.
[0074] Each embodiment in this specification is described in a related manner. The same or similar parts between the embodiments can be referred to each other, and the differences between each embodiment and other embodiments are emphasized. In particular, for the device embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and the relevant parts can be referred to the description of the method embodiment.
[0075] The above are only embodiments of the present application and are not intended to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included within the scope of the claims of the present application.
Claims
1. A codelization module testing device, characterized in that The coder module test device includes a coder module integration part and a device integration part. The coder module integration part includes an interlocking machine, a coder module, a first power supply module, and a first cable. The interlocking machine is connected to the coder module through the first cable. The first power supply module is connected to the power interface terminal of the coder module through the first cable. The device integration part includes a second power supply module, a transmitter, an LED lamp, and a second cable. The second power supply module is connected to the power interface terminal of the transmitter through the second cable; The information sending terminal of the board of the coder module coding interface board is connected to the information receiving terminal of the transmitter; The signal sending terminal of the transmitter is connected to the signal receiving terminal of the board of the coder module side line rear plug-in interface board; The signal sending terminal of the board of the coder module side line rear plug-in interface board is connected to the LED lamp.
2. The codelization module testing device according to claim 1, characterized in that Both the first power supply module and the second power supply module are programmable power supply modules, and the output voltage of both the first power supply module and the second power supply module is 24V.
3. The coder module testing device according to claim 1, characterized in that The transmitter is arranged on the upper part of the second power supply module and is adjacent to the second power supply module. The LED lamp is arranged on the upper part of the transmitter and is adjacent to the transmitter.
4. The codelization module testing device according to claim 1, characterized in that, A blank filling board is arranged above the LED lamp and is adjacent to the LED lamp. A blank filling board is arranged on one side of the second power supply module and is adjacent to the second power supply module.
5. The coder module testing device according to claim 4, characterized in that A handle is arranged on one side of the blank filling board. The handle is arranged on the side of the second power supply module where the blank filling board is not arranged.
6. The codelization module testing device according to claim 4, wherein A plurality of heat dissipation holes are arranged on the upper surface of the blank filling board above the LED lamp.
7. A method for testing a coder module, characterized in that, Applied to the coder module test device according to any one of claims 1 to 6, the coder module test method includes: The coder module sends coding conditions to the information receiving terminal of the transmitter through the information sending terminal of the board of the coding interface board. The coding conditions are: the information determined by the coder module according to the code sending instruction provided by the interlocking machine; According to the coding conditions, the transmitter outputs a power output voltage signal to the signal receiving terminal of the board of the coder module side line rear plug-in interface board through the signal sending terminal; According to the lighting logic of the LED lamp, it is determined whether the signal sending terminal of the board of the coder module side line rear plug-in interface board outputs the power output voltage signal.
8. The codelization module testing method according to claim 7, characterized in that The transmitter outputs a power output voltage signal to the signal receiving terminal of the board of the coder module side line rear plug-in interface board through the signal sending terminal according to the coding conditions, including: The transmitter selects a corresponding low-frequency frequency according to the coding conditions, The transmitter selects a carrier frequency according to a preset carrier frequency condition and selects a power output voltage according to a preset power output voltage level; The transmitter outputs a power output voltage signal with low-frequency frequency information and carrier frequency information to the signal receiving terminal of the board of the coder module side line rear plug-in interface board through the signal sending terminal.
9. The method for testing an electrification module according to claim 7, wherein The determining whether the signal sending terminal of the board of the coder module side line rear plug-in interface board outputs the power output voltage signal according to the lighting logic of the LED lamp includes: If the signal sending terminal of the board of the side line rear plug-in interface board of the coder module outputs the output power voltage signal, different numbers of the LED lights are sequentially lit; If the signal sending terminal of the board of the side line rear plug-in interface board of the coder module does not output the output power voltage signal, the LED lights are not lit.
10. An electronic device, characterized in that, It includes a memory and a processor; The memory is used to store programs; The processor is used to execute the program to implement each step of the coder module test method according to any one of claims 7-9.