WO2022148360A1 - 一种定位测速系统主机的测试方法和装置 - Google Patents
一种定位测速系统主机的测试方法和装置 Download PDFInfo
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- 238000012360 testing method Methods 0.000 title claims abstract description 114
- 238000000034 method Methods 0.000 title claims abstract description 37
- 230000002159 abnormal effect Effects 0.000 claims abstract description 19
- 238000005259 measurement Methods 0.000 claims description 103
- 238000013215 result calculation Methods 0.000 claims description 17
- 238000003745 diagnosis Methods 0.000 claims description 13
- 238000010998 test method Methods 0.000 claims description 3
- 238000012545 processing Methods 0.000 description 15
- 238000004088 simulation Methods 0.000 description 15
- 230000003993 interaction Effects 0.000 description 7
- 230000005284 excitation Effects 0.000 description 6
- 238000004891 communication Methods 0.000 description 5
- 238000001514 detection method Methods 0.000 description 3
- 238000010586 diagram Methods 0.000 description 3
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- 238000013459 approach Methods 0.000 description 2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01P—MEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
- G01P21/00—Testing or calibrating of apparatus or devices covered by the preceding groups
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B23/00—Testing or monitoring of control systems or parts thereof
- G05B23/02—Electric testing or monitoring
- G05B23/0205—Electric testing or monitoring by means of a monitoring system capable of detecting and responding to faults
- G05B23/0218—Electric testing or monitoring by means of a monitoring system capable of detecting and responding to faults characterised by the fault detection method dealing with either existing or incipient faults
- G05B23/0243—Electric testing or monitoring by means of a monitoring system capable of detecting and responding to faults characterised by the fault detection method dealing with either existing or incipient faults model based detection method, e.g. first-principles knowledge model
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01P—MEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
- G01P21/00—Testing or calibrating of apparatus or devices covered by the preceding groups
- G01P21/02—Testing or calibrating of apparatus or devices covered by the preceding groups of speedometers
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D18/00—Testing or calibrating apparatus or arrangements provided for in groups G01D1/00 - G01D15/00
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B23/00—Testing or monitoring of control systems or parts thereof
- G05B23/02—Electric testing or monitoring
- G05B23/0205—Electric testing or monitoring by means of a monitoring system capable of detecting and responding to faults
- G05B23/0208—Electric testing or monitoring by means of a monitoring system capable of detecting and responding to faults characterized by the configuration of the monitoring system
- G05B23/0213—Modular or universal configuration of the monitoring system, e.g. monitoring system having modules that may be combined to build monitoring program; monitoring system that can be applied to legacy systems; adaptable monitoring system; using different communication protocols
Definitions
- the invention relates to the field of testing, in particular to a testing method and device for positioning a speed measuring system host.
- the first is to place the absolute position sensor and the relative position sensor on the trolley used for testing in the laboratory, and set long stators around the trolley according to the actual operating environment of the maglev vehicle.
- the absolute position sensor and The relative position sensor acquires relevant signals and outputs it to the host of the positioning and speed measurement system.
- the processing result is sent to the operation control system, wireless system, control and diagnosis system.
- the system side observes the processing results generated by the host.
- Another approach is to simulate the excitation environment of a relative position sensor passing through a long stator by using a cogging simulation coil.
- the relative position sensor and absolute position sensor work through the excitation generated by the analog coil, and the generated signal is transmitted to the host of the positioning and speed measurement system to verify the function of the host.
- the inventor specially designed a testing method and device for positioning the host of the speed measurement system, and this case came into being.
- the purpose of the present invention is to provide a test method and device for the mainframe of the positioning and speed measurement system, so as to solve the problems of complicated testing process, large investment cost and high cost of testing the mainframe of the positioning and speed measurement system of a high-speed maglev train.
- a test method for positioning a speed measuring system host comprising:
- the first analog signal is obtained by an analog absolute position sensor and an analog relative position sensor;
- the obtaining the second result calculated according to the first analog signal includes:
- the second result calculated according to the first analog signal is received from the mainframe of the reference positioning test system with a normal positioning and speed measurement function.
- the comparison result between the first result and the second result exceeds a preset range, including:
- the difference between the first result and the second result is greater than or equal to the first threshold, and/or the ratio of the first result and the second result is greater than or equal to the second threshold.
- the first analog signal is a signal obtained by simulating the following signals:
- the QSPI that the relative position sensor interacts with the host of the positioning speed measurement system the cogging pulse square wave output by the relative position sensor, the diagnostic information output by the absolute position sensor, and the sign board information sent by the absolute position sensor.
- the method further includes:
- the second analog signal is obtained by simulating other systems, and the other systems include at least one of a vehicle-mounted operation control system, a vehicle-mounted wireless system, and a vehicle-mounted control and diagnosis system;
- the present invention also provides a test device for positioning the host of the test system, including:
- a first analog signal acquisition unit configured to acquire a first analog signal, the first analog signal is obtained by an analog absolute position sensor and an analog relative position sensor;
- a first analog signal sending unit configured to send the first analog signal to the host of the position and speed measurement system to be determined
- a first result calculation unit configured to obtain the first result calculated by the host of the to-be-determined position and speed measurement system according to the first analog signal
- a second result calculation unit configured to obtain a second result calculated according to the first analog signal, where the second result is a reference result corresponding to the first analog signal;
- a first determination unit configured to determine that the host of the to-be-determined position and speed measurement system is abnormal when the comparison result between the first result and the second result exceeds a first preset range.
- the second result calculation unit includes:
- a second result calculation subunit configured to calculate and obtain a second result according to the first analog signal
- the second result obtaining unit is configured to receive a second result calculated according to the first analog signal from the mainframe of the reference positioning test system with a normal positioning and speed measurement function.
- the comparison result of the first result and the second result exceeds a preset range, including:
- the difference between the first result and the second result is greater than or equal to the first threshold, and/or the ratio of the first result and the second result is greater than or equal to the second threshold.
- the first analog signal is a signal obtained by simulating the following signals:
- the QSPI that the relative position sensor interacts with the host of the positioning speed measurement system the cogging pulse square wave output by the relative position sensor, the diagnostic information output by the absolute position sensor, and the sign board information sent by the absolute position sensor.
- the device further comprises:
- the second analog signal acquisition unit is used to acquire a second analog signal, and the second analog signal is obtained by simulating other systems, and the other systems include at least one of a vehicle-mounted operation control system, a vehicle-mounted wireless system, and a vehicle-mounted control and diagnosis system ;
- a second analog signal sending unit configured to send the second analog signal to the host of the position and speed measurement system to be determined
- a third result calculation unit configured to obtain a third result calculated by the host of the to-be-determined position and speed measurement system according to the second analog signal;
- a fourth result calculation unit configured to obtain a fourth result calculated according to the second analog signal, where the fourth result is a reference result corresponding to the second analog signal;
- a second determination unit if the comparison result between the third result and the fourth result exceeds a second preset range, determine that the host of the to-be-determined position and speed measurement system is abnormal.
- the method for testing the mainframe of the positioning and speed measurement system can obtain the first analog signal, and the first analog signal is obtained through the analog absolute position sensor and the analog relative position sensor, and is sent to the mainframe of the position and speed measurement system to be determined.
- the first analog signal is to obtain the first result calculated by the host of the position and speed measurement system to be determined according to the first analog signal, and the second result calculated according to the first analog signal is obtained, and the second result is the reference result corresponding to the first analog signal, If the comparison result between the first result and the second result exceeds the preset range, it is determined that the host of the location and speed measuring system to be determined is abnormal. It can be seen that, in the embodiment of the present application, the mainframe of the positioning speed measurement system can still be tested without the components of the absolute position sensor and the relative position sensor. cost.
- FIG. 1 is a flowchart of a method for testing a mainframe of a positioning speed measurement system provided by an embodiment of the present application
- FIG. 2 is a structural diagram of a test cabinet of a test device for a mainframe of a positioning speed measurement system provided by an embodiment of the present application;
- FIG. 3 is a schematic diagram of a testing device for a mainframe of a positioning speed measurement system according to an embodiment of the present application.
- the first is that the absolute position sensor and the relative position sensor are placed on the trolley used for testing in the laboratory.
- the long stator is set around the trolley according to the actual operating environment of the maglev vehicle.
- the absolute position sensor on the trolley and the relative The position sensor acquires relevant signals and outputs it to the host of the positioning and speed measurement system.
- the host After processing, the host sends it to the operation control system, wireless system, control and diagnosis system, and observes the data generated by the host from other systems.
- the host sends it to the operation control system, wireless system, control and diagnosis system, and observes the data generated by the host from other systems.
- the host when testing the host of the positioning speed measurement system, it is necessary to simulate the actual operating environment of the maglev vehicle to build a test platform, and at the same time, it must have an absolute position sensor, a relative position sensor and a positioning sign board.
- the investment cost of the test environment is large, and it can only test the operation conditions in the low-speed operating environment, and cannot cover various operating conditions under the full
- Another approach is to simulate the excitation environment of a relative position sensor passing through a long stator by using a cogging simulation coil. Simulate the excitation environment when passing through the sign at high speed by using the sign to simulate the coil.
- the relative position sensor and absolute position sensor work through the excitation generated by the analog coil, and the generated signal is transmitted to the host of the positioning and speed measurement system to verify the function of the host.
- it although there is no need to build a motion platform, it can cover the operating environment in the full speed range, but at the same time, it must have an absolute position sensor, a relative position sensor and a positioning sign board. It is also necessary to have a cogging simulation coil tool and its controller, and a sign board to simulate a coil tool and its controller. There are often errors in the simulation tooling itself, which affects the functional judgment of the mainframe of the positioning speed measurement system.
- the embodiments of the present application provide a method and device for testing the mainframe of a positioning speed measurement system, which can test the positioning testing system without the components of an absolute position sensor and a relative position sensor, and the test process is simple It is easy to implement, does not require large-scale investment to build a test environment, and saves costs.
- the high-speed maglev train positioning speed measurement system may include a positioning speed measurement system host (ORTPR), a relative position sensor (NUT), an absolute position sensor (INK) and a positioning sign plate (LRL) fixed on the line track.
- ORTPR positioning speed measurement system host
- NUT relative position sensor
- INK absolute position sensor
- LTL positioning sign plate
- a long stator is arranged around the train, and the long stator can be a cogging structure.
- the relative position sensor located on the train can detect the upper surface of the long stator with the cogging structure, and the output 2 channels change with the position of the cogging.
- the signal is a periodically changing signal.
- the absolute position sensor on the train obtains the encoded information on the positioning sign board by scanning the passive positioning sign board fixed along the track, so as to obtain the absolute position information of the train.
- the host of the positioning and speed measurement system can obtain the information sent from the relative position sensor and the absolute position sensor and process it to obtain the processing result, and then send the processing result to the on-board wireless system, on-board operation control system, on-board control and diagnosis system, in order to realize the Train monitoring and control.
- the main engine of the positioning speed measurement system is composed of a positioning electronic unit (ORT) and a magnetic pole phase angle processing unit (PRW), which are used to process the corresponding signals.
- ORT positioning electronic unit
- PRW magnetic pole phase angle processing unit
- the long stator, the positioning mark plate, the absolute position sensor, and the relative position sensor are no longer provided, but the simulated relative position sensor passes through the long stator slot to generate the It is used to transmit the signal to the host of the positioning and speed measurement system, and simulate the absolute position sensor to generate a signal for transmission to the host of the positioning and speed measuring system after passing through the sign board, so that the host of the positioning and speed measuring system can obtain the processing result according to the received signal, based on the processing result. It can be determined whether there is an abnormality in the host of the positioning speed measurement system. Of course, if there is an error in the processing result, it can be considered that the host of the positioning speed measurement system is abnormal.
- the positioning test system can be tested even when there is only a test object but no absolute position sensor and relative position sensor components.
- the test process is simple and easy to implement and does not require large-scale investment and construction Test environment and save costs.
- the test on the host of the positioning and speed measurement system can be performed by a test cabinet, as shown in FIG. 1 , the test cabinet can include a main control module and a test cable.
- the test cable is used to connect with the host of the positioning and speed measuring system, so as to communicate with the host of the positioning and speed measuring system.
- the test cable is led out from the inside of the test cabinet, and the other end is an aviation plug, which matches the connector of the object under test (the host of the positioning and speed measuring system).
- a total of 10 test cables can be recorded as X101-X110 respectively.
- the main control module is the core of the operation and processing of the entire test system. It can be used to test the mainframe of the positioning and speed measurement system. Specifically, it can generate analog signals and verify the processing structure from the mainframe of the positioning and speed measurement system, so as to determine the mainframe of the positioning system. function is normal.
- the main control module may include a CPU processor, and may also include: a chassis; an RS485 interface card for synchronizing the sending and receiving of RS485 signals; an RS232 serial card for sending and receiving RS232 communication data; a QSPI interface card for transmitting and receiving QSPI signals Processing; CAN interface card for CAN communication; DI/DO module for digital input and output; AI/AO module for analog input and output.
- the test cabinet may also include a power module, a signal conditioning module, a display, a keyboard, etc.
- the power module controls the power input (220V) of the entire test system, which supplies power to each module inside the test system.
- the signal conditioning module adjusts the signal generated by the main control module into a signal form that is suitable for the host of the positioning and speed measurement system, and can also adjust the signal fed back by the host of the positioning and speed measurement system into a form that the main control module can receive.
- Layer signals include RS485 differential signals, TTY current loop signals, etc.
- the display is used to display the test process and results.
- the keyboard is used for the tester to input test instructions.
- FIG. 2 is a flowchart of a method for testing a mainframe of a positioning speed measurement system provided by an embodiment of the present application, the method may include:
- S101 Acquire a first analog signal, where the first analog signal is obtained by an analog absolute position sensor and an analog relative position sensor.
- the absolute position sensor and the relative position sensor can be simulated under different working conditions, so as to obtain the first analog signal corresponding to different working conditions, and the working conditions can include train speed, train direction, whether the sensor is normal or not, etc. .
- the working conditions can include train speed, train direction, whether the sensor is normal or not, etc. .
- the train speed is 300km/h and the train direction is east, there may be a corresponding first analog signal.
- the first analog signal may be a signal obtained by simulating the following signals: the QSPI that the relative position sensor interacts with the host of the positioning and speed measurement system, the cogging pulse square wave output by the relative position sensor, the diagnostic information output by the absolute position sensor, and the data sent by the absolute position sensor. Sign board information.
- the first analog signal can be obtained by simulating the absolute position sensor and the relative position sensor through the test cabinet, so that the positioning and speed measuring system can be tested without building a test environment with the absolute position sensor and the relative position sensor, reducing the The test cost is reduced, and the signal obtained by the simulation of the test cabinet is smaller than the signal error actually measured by the absolute position sensor and the relative position sensor.
- the simulated signal can cover various operating conditions under the full speed range of 600km/h, and the test is more accurate. comprehensive.
- the first analog signal may correspond to the output signals of the two absolute position sensors and the two relative position sensors, and the generated first analog signal can be determined by performing a simulation setting on the test cabinet, and the simulation parameter setting can be divided into three parts : Absolute position sensor related settings, relative position sensor related settings, system settings.
- the absolute position sensor related settings may include: sign board information (set according to test requirements, multiple sign board information can be set), sign board interval, absolute position sensor 1 start simulation, absolute position sensor 2 start simulation, absolute position sensor 1 Simultaneously start simulation with absolute position sensor 2; relative position sensor related settings can include: sine cosine amplitude, relative position sensor diagnostic bit, relative position sensor 1 start simulation, relative position sensor 2 start simulation, relative position sensor 1 and relative position sensor 2 Simultaneously start the simulation; system settings can include: train speed, train direction, ORT position code, PRW position code.
- the action of generating the first analog signal can be performed after the test cable of the test cabinet is connected to the object under test (the host of the positioning test system), for example, after the test cables X101-X110 are correctly connected to the object under test (the positioning and speed measurement system) according to the line number. After connecting to the corresponding interface of the host), power on, start and run the test cabinet, and set the simulation parameters.
- S102 Send a first analog signal to the host of the position and speed measurement system to be determined.
- the first analog signal can be sent to the host of the positioning and speed measurement system to be determined.
- the first analog signal can be a signal obtained by simulating the following signals: the QSPI, the relative position of the relative position sensor interacting with the positioning and speed measurement system host
- the first analog signal sent to the host of the position and speed measurement system to be determined may be one piece of data corresponding to the same working condition, or multiple pieces of data corresponding to multiple working conditions.
- S103 Acquire a first result calculated by the to-be-determined position and speed measuring system according to the first analog signal.
- the system for measuring the position and speed to be determined can process it to generate an operation processing result (ie, the first result).
- the first result is then transmitted to the test cabinet through the test cable.
- test cabinet can not only generate the first analog signal and send the first analog signal to the speed measurement system of the position to be determined, but also obtain the first result calculated by the host of the speed measurement system to be determined according to the first analog signal, so as to use the first result. Test the position-to-be-determined tachometer system.
- the obtained first result corresponds to the working condition
- the first analog signal is multiple pieces of data corresponding to multiple working conditions
- the obtained first result is obtained
- the first result of is multiple processing results corresponding to multiple operating conditions obtained by processing multiple pieces of data respectively.
- S104 Acquire a second result calculated according to the first analog signal, where the second result is a reference result corresponding to the first analog signal.
- the test cabinet in order to test whether the positioning and speed measuring function of the positioning and speed measuring system is normal, it is necessary to compare the first result calculated by the positioning and speed measuring system to be determined according to the first analog signal with the reference result. Therefore, the test cabinet also needs to obtain The second result is calculated according to the first analog signal, and the second result is the reference result corresponding to the first analog signal, and the host of the speed measurement system to be measured is tested by comparing the first result and the second result.
- the second result can be obtained in the following two ways.
- the test cabinet directly calculates and obtains the second result according to the first analog signal, or it can receive the second result from a reference positioning test system with a normal positioning and speed measurement function according to the first simulation signal.
- the second result calculated by the analog signal.
- test cabinet directly calculates the second result according to the first analog signal, hardware resources can be saved, and there is no need to configure a reference positioning test system, which reduces the investment cost of the test. If the test cabinet receives the second result calculated according to the first analog signal from the reference positioning test system with a normal positioning and speed measurement function, the requirement on the hardware resources of the test cabinet can be reduced.
- S104 may be executed before S102, may be executed before S103, or may be executed after S103, and those skilled in the art can set it by themselves according to actual needs.
- the difference between the first result and the second result is small, it can be determined that the positioning and speed-measuring function of the positioning and speed-measuring system is normal. Therefore, if the comparison result between the first result and the second result exceeds the first preset range, it can be determined that the speed measurement system of the position to be determined is abnormal. When the location and speed measurement system to be determined is abnormal, a test report can be generated for the user to view.
- the comparison result between the first result and the second result exceeds the preset range may include: the difference between the first result and the second result is greater than the first threshold, and/or the ratio between the first result and the second result is greater than second threshold.
- the first threshold and the second threshold may be set by those skilled in the art according to the actual situation, which is not specifically limited in this application.
- test cabinet may further perform at least one of ORT test, PRW test and CAN diagnostic test for the position-to-be-determined speed measurement system.
- the ORT test refers to the test cabinet simulating the information interaction between the vehicle-mounted operation control system and the positioning and speed measuring system host, and performing different tests on the ORT of the positioning and speed measuring system host by selecting different working modes, mainly including positioning and speed measuring mode, entering detection mode, ROM detection mode, RAM detection mode.
- PRW test means that the test cabinet simulates the interaction between the vehicle-mounted wireless system and the positioning and speed measuring system host, and tests the PRW of the positioning and speed measuring system host.
- the communication sequence can be flexibly set during the test.
- CAN test means that the test cabinet simulates the interaction between the vehicle-mounted control and diagnosis system and the positioning and speed measurement system host, and tests the CAN diagnosis of the positioning and speed measurement system host. During the test, the content of the CAN message, the number of communications and the interval time can be flexibly set.
- the test cabinet can also simulate the information interaction between the vehicle-mounted operation control system and the positioning speed measurement system host, the information interaction between the vehicle wireless system and the positioning speed measurement system host, and the information interaction between the vehicle control and diagnosis system and the positioning speed measurement system host. It is used to test the performance of the host of the positioning speed measurement system.
- ORT test, PRW test and CAN diagnostic test can be displayed through the display interface, with strong visualization and improved user experience.
- the second analog signal may be obtained, and the second analog signal is obtained by simulating other systems, and the other systems may include at least one of a vehicle-mounted operation control system, a simulated vehicle-mounted wireless system, and a simulated vehicle-mounted control and diagnosis system.
- the second analog signal obtained by simulating the vehicle-mounted operation control system or the vehicle-mounted control and diagnosis system is the TTY current loop signal
- the second analog signal obtained by simulating the vehicle-mounted wireless system is the RS485 serial port signal.
- the CAN interface card Can be used for CAN communication when the test cabinet simulates the interaction of the on-board control and diagnostic system with the positioning system to be determined.
- a second analog signal can be sent to the position-to-be-determined speed measurement system, a third result calculated by the position-to-be-determined speed measurement system according to the second analog signal is obtained, and a fourth result calculated according to the second analog signal is obtained, and the fourth result is For the reference result corresponding to the second analog signal, if the comparison result between the third result and the fourth result exceeds the second preset range, it is determined that the to-be-determined position and speed measurement system is abnormal.
- the third result may be obtained by the test cabinet according to the second analog signal, or may be obtained by using the host of the reference positioning speed measurement system, and the second preset range may be determined according to the actual situation.
- test cabinet can be powered off.
- the first analog signal can be obtained, the first analog signal is obtained by the analog absolute position sensor and the analog relative position sensor, the first analog signal is sent to the host of the speed measurement system to be determined, and the position to be determined is obtained.
- the host of the speed measurement system obtains the first result calculated according to the first analog signal, and obtains the second result calculated according to the first analog signal, and the second result is the reference result corresponding to the first analog signal. If the comparison result exceeds the preset range, it is determined that the host of the positioning and speed measuring system to be determined is abnormal. It can be seen that, in the embodiment of the present application, the mainframe of the positioning speed measurement system can still be tested without the components of the absolute position sensor and the relative position sensor. cost.
- a schematic diagram of a testing device for positioning the mainframe of a speed measurement system provided for an embodiment of the application may include:
- a first analog signal acquisition unit 201 configured to acquire a first analog signal, the first analog signal is obtained by an analog absolute position sensor and an analog relative position sensor;
- a first analog signal sending unit 202 configured to send the first analog signal to the host of the position and speed measurement system to be determined
- a first result calculation unit 203 configured to obtain a first result calculated by the host of the to-be-determined position and velocity measurement system according to the first analog signal
- a second result calculating unit 204 configured to obtain a second result calculated according to the first analog signal, where the second result is a reference result corresponding to the first analog signal;
- the first determination unit 205 is configured to determine that the host of the to-be-determined position and speed measurement system is abnormal when the comparison result between the first result and the second result exceeds a first preset range.
- the second result calculation unit 204 includes:
- a second result calculation subunit configured to calculate and obtain a second result according to the first analog signal
- the second result obtaining unit is configured to receive a second result calculated according to the first analog signal from the mainframe of the reference positioning test system with a normal positioning and speed measurement function.
- the comparison result between the first result and the second result exceeds a preset range, including:
- the difference between the first result and the second result is greater than or equal to the first threshold, and/or the ratio of the first result and the second result is greater than or equal to the second threshold.
- the first analog signal is a signal obtained by simulating the following signals:
- the QSPI that the relative position sensor interacts with the host of the positioning speed measurement system the cogging pulse square wave output by the relative position sensor, the diagnostic information output by the absolute position sensor, and the sign board information sent by the absolute position sensor.
- the device further includes:
- the second analog signal acquisition unit is used to acquire a second analog signal, the second analog signal is obtained by simulating other systems, and the other systems include at least one of a vehicle-mounted operation control system, a vehicle-mounted wireless system, and a vehicle-mounted control and diagnosis system ;
- a second analog signal sending unit configured to send the second analog signal to the host of the position and speed measurement system to be determined
- a third result calculation unit configured to obtain a third result calculated by the host of the to-be-determined position and speed measurement system according to the second analog signal;
- a fourth result calculation unit configured to obtain a fourth result calculated according to the second analog signal, where the fourth result is a reference result corresponding to the second analog signal;
- a second determination unit if the comparison result between the third result and the fourth result exceeds a second preset range, determine that the host of the to-be-determined position and speed measurement system is abnormal.
- the first analog signal can be obtained, the first analog signal is obtained by the analog absolute position sensor and the analog relative position sensor, and the first analog signal is sent to the host of the speed measurement system for the position to be determined to obtain the speed measurement of the position to be determined.
- the system host obtains the first result calculated according to the first analog signal, and obtains the second result calculated according to the first analog signal.
- the second result is the reference result corresponding to the first analog signal. If the first result and the second result are compared If the result exceeds the preset range, it is determined that the host of the position and speed measurement system to be determined is abnormal. It can be seen that in the embodiment of the present application, the mainframe of the positioning speed measurement system can still be tested without the components of the absolute position sensor and the relative position sensor. cost.
- each embodiment in this specification is described in a progressive manner, and the same and similar parts between the various embodiments can be referred to each other, and each embodiment focuses on the differences from other embodiments. place.
- the description is relatively simple, and reference may be made to some descriptions of the method embodiments for related parts.
- the device and system embodiments described above are only schematic, wherein the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in One place, or it can be distributed over multiple network elements. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution in this embodiment. Those of ordinary skill in the art can understand and implement it without creative effort.
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Abstract
Description
Claims (10)
- 一种定位测速系统主机的测试方法,其特征在于,所述方法包括:获取第一模拟信号,所述第一模拟信号通过模拟绝对位置传感器和模拟相对位置传感器得到;向待测定位测速系统主机发送所述第一模拟信号;获取所述待测定位测速系统主机根据所述第一模拟信号计算得到的第一结果;获取根据所述第一模拟信号计算得到的第二结果,所述第二结果为所述第一模拟信号对应的基准结果;若所述第一结果和所述第二结果的比较结果超出第一预设范围,则判定所述待测定位测速系统主机异常。
- 根据权利要求1所述的方法,其特征在于,所述获取根据所述第一模拟信号计算得到的第二结果,包括:根据所述第一模拟信号计算得到第二结果;或,接收来自于定位测速功能正常的基准定位测试系统主机根据所述第一模拟信号计算得到的第二结果。
- 根据权利要求1所述的方法,其特征在于,所述第一结果和所述第二结果的比较结果超出预设范围,包括:所述第一结果和所述第二结果的差值大于或等于第一阈值,和/或,所述第一结果和所述第二结果的比值大于或等于第二阈值。
- 根据权利要求1所述的方法,其特征在于,所述第一模拟信号为模拟以下信号得到的信号:相对位置传感器与定位测速系统主机交互的QSPI、相对位置传感器输出的齿槽脉冲方波、绝对位置传感器输出的诊断信息以及绝对位置传感器发送的标志板信息。
- 根据权利要求1所述的方法,其特征在于,所述方法还包括:获取第二模拟信号,所述第二模拟信号通过模拟其他系统得到,所述其他系统包括车载运控系统、车载无线系统、车载控制及诊断系统中的至少一个;向所述待测定位测速系统主机发送所述第二模拟信号;获取所述待测定位测速系统主机根据所述第二模拟信号计算得到的第三结果;获取根据所述第二模拟信号计算得到的第四结果,所述第四结果为所述第二模拟信号对应的基准结果;若所述第三结果和所述第四结果的比较结果超出第二预设范围,则判定所述待测定位测速系统主机异常。
- 一种定位测试系统主机的测试装置,其特征在于,所述装置包括:第一模拟信号获取单元,用于获取第一模拟信号,所述第一模拟信号通过模拟绝对位置传感器和模拟相对位置传感器得到;第一模拟信号发送单元,用于向待测定位测速系统主机发送所述第一模拟信号;第一结果计算单元,用于获取所述待测定位测速系统主机根据所述第一模拟信号计算得到的第一结果;第二结果计算单元,用于获取根据所述第一模拟信号计算得到的第二结果,所述第二结果为所述第一模拟信号对应的基准结果;第一判定单元,用于当所述第一结果和所述第二结果的比较结果超出第一预设范围时,则判定所述待测定位测速系统主机异常。
- 根据权利要求6所述的装置,其特征在于,所述第二结果计算单元,包括:第二结果计算子单元,用于根据所述第一模拟信号计算得到第二结果;第二结果获取单元,用于接收来自于定位测速功能正常的基准定位测试系统主机根据所述第一模拟信号计算得到的第二结果。
- 根据权利要求6所述的装置,其特征在于,所述第一结果和所述第二结果的比较结果超出预设范围,包括:所述第一结果和所述第二结果的差值大于或等于第一阈值,和/或,所述第一结果和所述第二结果的比值大于或等于第二阈值。
- 根据权利要求6所述的装置,其特征在于,所述第一模拟信号为模拟以下信号得到的信号:相对位置传感器与定位测速系统主机交互的QSPI、相对位置传感器输出 的齿槽脉冲方波、绝对位置传感器输出的诊断信息以及绝对位置传感器发送的标志板信息。
- 根据权利要求6所述的装置,其特征在于,所述装置还包括:第二模拟信号获取单元,用于获取第二模拟信号,所述第二模拟信号通过模拟其他系统得到,所述其他系统包括车载运控系统、车载无线系统、车载控制及诊断系统中的至少一个;第二模拟信号发送单元,用于向所述待测定位测速系统主机发送所述第二模拟信号;第三结果计算单元,用于获取所述待测定位测速系统主机根据所述第二模拟信号计算得到的第三结果;第四结果计算单元,用于获取根据所述第二模拟信号计算得到的第四结果,所述第四结果为所述第二模拟信号对应的基准结果;第二判定单元,若所述第三结果和所述第四结果的比较结果超出第二预设范围,则判定所述待测定位测速系统主机异常。
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CN113959392A (zh) * | 2021-10-29 | 2022-01-21 | 中车青岛四方机车车辆股份有限公司 | 一种间隙传感器的测试方法、系统及装置 |
CN114486303B (zh) * | 2021-12-31 | 2023-11-21 | 中车长春轨道客车股份有限公司 | 一种用于磁浮车测速定位系统的试验平台 |
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