Bayonet device power distribution system, method, storage medium and computer program product
By integrating communication, selection, and power management modules, the gate equipment power distribution system solves the problems of complex wiring and manual operation, achieves precise power distribution control, and improves the intelligent management and safety of the system.
Patent Information
- Application Number
- CN202511297618.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2026-01-06
AI Technical Summary
The existing checkpoint equipment power distribution system has complicated wiring, requires manual operation, cannot achieve precise power distribution control, and has problems of safety hazards and low efficiency.
The system adopts an integrated design of communication module, selection module and power management module. It transmits working data through transmission channel and monitors equipment status in real time. It can automatically control power supply when abnormal conditions are identified. It also integrates detection module and alarm module to improve the intelligent management of the system.
It enables intelligent management of the power supply to checkpoint equipment, improves work efficiency and accuracy, ensures system stability and security, and reduces the risk of manual intervention and potential failures.
Smart Images

Figure CN121282976A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of power distribution technology for checkpoint equipment, and in particular to power distribution systems, methods, storage media, and computer program products for checkpoint equipment. Background Technology
[0002] In the past, the power distribution system of customs checkpoint equipment mainly relied on manual operation for management and control. While this traditional operating method met basic power supply needs to a certain extent, it had many shortcomings and challenges.
[0003] At customs checkpoints, the stability and reliability of the power supply are crucial for ensuring smooth customs clearance. However, in the power distribution system, power workers need to frequently operate switches manually to control the power supply to different equipment and areas. This method is not only cumbersome but also inefficient, and prone to human error, which can disrupt the normal operation of customs.
[0004] Furthermore, early customs checkpoint power distribution systems suffered from tangled wiring. Due to technological limitations and design flaws, distribution boxes and cable lines often lacked proper layout and planning, resulting in a chaotic and tangled mess. This not only affected aesthetics and tidiness but, more importantly, created serious safety hazards. Tangled wiring easily led to short circuits, electrical leaks, and other faults, which in turn caused fires and other safety accidents, posing a serious threat to personnel and equipment at customs checkpoints. Summary of the Invention
[0005] The main purpose of this application is to provide a checkpoint equipment power distribution system, method, storage medium and computer program product, which aims to solve the technical problem that the existing checkpoint equipment power distribution system has complicated wiring, requires manual operation and cannot achieve precise power distribution control.
[0006] To achieve the above objectives, this application proposes a checkpoint equipment power distribution system, comprising: a communication module, a selection module, and a power management module; the communication module establishes connections with multiple checkpoint devices and is also connected to the power management module through the selection module; the selection module includes multiple transmission channels corresponding to the checkpoint devices; the communication module is used to transmit the working data of the checkpoint devices to the power management module through the transmission channels; the power management module is used to supply power to the checkpoint devices through the transmission channels; the power management module is also used to control the selection module to close the transmission channels corresponding to the checkpoint devices to stop power supply when it detects that the working data of the checkpoint devices is outside a preset working range.
[0007] In one embodiment, the checkpoint device power distribution system further includes: a detection module; the detection module is connected to the selection module and the power management module respectively; the detection module is used to detect the circuit parameters of multiple transmission channels of the selection module and transmit them to the power management module; the power management module is also used to control the selection module to shut down the transmission channel corresponding to the circuit parameters when the circuit parameters are outside the preset circuit parameter range.
[0008] In one embodiment, the detection module includes multiple voltage and current sensors; the selection module includes multiple relays; the communication module includes multiple interfaces and multiple manual switches; each interface is connected to each manual switch; each manual switch is also connected to each voltage and current sensor; each voltage and current sensor is also connected to each relay; each relay is connected to the power management module, forming multiple transmission channels; the interface is used to establish a connection with the checkpoint device.
[0009] In one embodiment, the detection module is further configured to detect working environment parameters and transmit them to the power management module; the power management module is further configured to generate a device health index based on the working data, the circuit parameters, and the environmental parameters; the power management module is further configured to control the selection module to shut down the transmission channel corresponding to the device health index when the device health index is outside a preset health index range.
[0010] In one embodiment, the checkpoint equipment power distribution system further includes: a display module; the display module is connected to the power management module; the display module is also used to receive and display the working data, circuit parameters, environmental parameters and equipment health index transmitted by the power management module.
[0011] In one embodiment, the checkpoint equipment power distribution system further includes: an alarm module; the alarm module is connected to the power management module; the power management module is further configured to control the alarm module to sound an alarm when the working data is outside a preset working range; the power management module is further configured to control the alarm module to sound an alarm when the circuit parameters are outside a preset circuit parameter range; the power management module is further configured to control the alarm module to sound an alarm when the equipment health index is outside a preset health index range.
[0012] In one embodiment, the checkpoint equipment power distribution system further includes: a fault repair module; the fault repair module is connected to the power management module; the fault repair module is used to repair faults in the checkpoint equipment power distribution system and transmit the fault repair signal to the power management module after repair; the power management module is also used to start the transmission channel that is in a closed state after receiving the fault repair signal.
[0013] Furthermore, to achieve the above objectives, this application also proposes a power distribution method for checkpoint equipment. The method applies the checkpoint equipment power distribution system described above. The method includes: acquiring the operating parameters, circuit parameters, and environmental parameters of the checkpoint equipment power distribution system; generating an equipment health index based on the operating parameters, circuit parameters, and environmental parameters; and shutting down the transmission channel corresponding to the checkpoint equipment to stop power supply and triggering an alarm when any of the operating parameters, circuit parameters, or equipment health index exceeds a preset range.
[0014] In addition, to achieve the above objectives, this application also proposes a storage medium, which is a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it implements the steps of the checkpoint device power distribution method described above.
[0015] In addition, to achieve the above objectives, this application also provides a computer program product, which includes a computer program that, when executed by a processor, implements the steps of the checkpoint device power distribution method described above.
[0016] One or more technical solutions proposed in this application have at least the following technical effects:
[0017] The system integrates communication, selection, and power management technologies. Its modular design makes each component easy to replace and upgrade, improving the system's scalability and flexibility. It achieves intelligent management of the power supply to checkpoint equipment, significantly improving work efficiency and accuracy. Through the real-time monitoring and intelligent response mechanism of the power management module, it effectively prevents damage to the system caused by equipment failure when the working data of the checkpoint equipment is outside the preset operating range, ensuring the system's stability and security. Attached Figure Description
[0018] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0019] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a structural block diagram provided for Embodiment 1 of the checkpoint equipment power distribution system of this application;
[0021] Figure 2This is a structural block diagram provided for Embodiment 2 of the checkpoint equipment power distribution system of this application;
[0022] Figure 3 This is a schematic diagram of the equipment connection for the checkpoint equipment power distribution method provided in Embodiment 2 of this application;
[0023] Figure 4 This is a flowchart illustrating an embodiment of the power distribution method for checkpoint equipment in this application.
[0024] Explanation of icon numbers:
[0025] label illustrate label illustrate 10 Signal monitoring module 60 Control module 20 Signal acquisition submodule 70 Display module 30 Brake detection submodule K1 manual switch 40 Signal conversion module L1 Voltage and current sensors 50 First Judgment Submodule J1 relay
[0026] The purpose, features, and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0027] It should be understood that the specific embodiments described herein are merely illustrative of the technical solutions of this application and are not intended to limit this application.
[0028] In the past, the stability and reliability of power supply at customs checkpoints were crucial to ensuring smooth customs clearance. However, in the power distribution system, power workers had to frequently operate switches manually to control the power supply to different equipment and areas. This method was not only cumbersome but also inefficient, and prone to human error, which could disrupt the normal operation of customs.
[0029] Furthermore, early customs checkpoint power distribution systems suffered from tangled wiring. Due to technological limitations and design flaws, distribution boxes and cable lines often lacked proper layout and planning, resulting in a chaotic and tangled mess. This not only affected aesthetics and tidiness but, more importantly, created serious safety hazards. Tangled wiring easily led to short circuits, electrical leaks, and other faults, which in turn caused fires and other safety accidents, posing a serious threat to personnel and equipment at customs checkpoints.
[0030] Based on this, the embodiments of this application provide a power distribution system for checkpoint equipment, referring to... Figure 1 , Figure 1 This is a structural block diagram provided for Embodiment 1 of the checkpoint equipment power distribution system of this application.
[0031] In this embodiment, the checkpoint equipment power distribution system includes: a communication module 10, a selection module 20, and a power management module 30.
[0032] It should be noted that the communication module 10 establishes connections with multiple checkpoint devices and is also connected to the power management module 30 through the selection module 20. As the communication core of the system, the communication module 10 is responsible for establishing stable connections with multiple checkpoint devices and transmitting their working data in real time. Simultaneously, it is also connected to the power management module 30 through the selection module 20 to ensure accurate data transmission and command issuance.
[0033] It should be noted that the communication module 10 adopts advanced communication interface technologies, such as Ethernet, Wi-Fi or private network communication, to ensure the real-time performance, integrity and security of the data.
[0034] It should be noted that the selection module 20 includes multiple transmission channels corresponding to the checkpoint devices. The selection module 20 is an intelligent selection unit in the system, containing multiple transmission channels that correspond one-to-one with the checkpoint devices. These transmission channels are used not only for data transmission but also for power supply control.
[0035] Understandably, multiple transmission channels, including power lines and signal lines, are used to transmit electrical energy and data to the checkpoint equipment. Each transmission channel is associated with a specific checkpoint device, ensuring directional data transmission and precise control of power supply.
[0036] In this embodiment, the selection module 20 has a switching function, which can select between different transmission channels to adapt to different working requirements or fault conditions.
[0037] The communication module 10 is used to transmit the working data of the checkpoint device to the power management module 30 through the transmission channel. The power management module 30 is used to supply power to the checkpoint device through the transmission channel; the power management module 30 is also used to control the selection module 20 to shut down the transmission channel corresponding to the checkpoint device to stop power supply when it is detected that the working data of the checkpoint device is outside the preset working range.
[0038] It should be noted that the power management module 30, as the system's power distribution center, is responsible for supplying stable power to each checkpoint device through the transmission channel in the selection module 20. Simultaneously, it also possesses real-time monitoring and intelligent response capabilities, enabling it to identify whether the checkpoint device's operating data is within the preset operating range.
[0039] It should be noted that the operational data of checkpoint equipment mainly refers to the data generated during the operation of the checkpoint equipment, which reflects the equipment's own operating status. This data is of great significance for monitoring the health status of the equipment, promptly identifying and resolving problems, and ensuring the stable operation of the equipment.
[0040] Generally speaking, the working data of checkpoint equipment includes basic equipment information, operating status data (working time, working voltage / current and working temperature, etc.), communication status data, fault alarm data and maintenance record data.
[0041] It should be noted that the preset operating range refers to a series of parameters or conditions required for the normal operation of the checkpoint equipment. These preset operating ranges ensure that the checkpoint equipment can operate stably and accurately and reliably complete its monitoring and recording tasks. The preset operating range may include electrical parameter ranges, operating temperature ranges, communication parameter ranges, and data processing ranges (such as data processing speed and capacity).
[0042] Understandably, determining the preset operating range usually requires considering the specific application scenario, equipment model, and manufacturer recommendations. First, the application scenario of the checkpoint equipment needs to be clearly defined, such as urban traffic monitoring, highway toll collection, or other specific scenarios. Different application scenarios may have different performance and parameter requirements for the checkpoint equipment. Second, the model and manufacturer information of the checkpoint equipment you intend to use must be determined, as different models may have different operating ranges and performance parameters. Consult the official documentation, technical manuals, or product specifications provided by the equipment manufacturer. These documents typically contain detailed parameters, operating ranges, and recommended usage conditions. Finally, industry standards and specifications need to be referenced, as the preset operating range of the checkpoint equipment may be subject to relevant industry standards or specifications.
[0043] Understandably, based on the steps described above, the actual operating range of the checkpoint equipment is determined through experiments or tests. This may include testing the equipment's performance under different environmental conditions to understand its stability and reliability.
[0044] Understandably, if the working data of the checkpoint equipment is outside the preset working range, it means that the actual operating status of the equipment exceeds its normal or expected working parameter limits. This may indicate that there are problems such as equipment failure, external environmental influence, or improper operation. Timely inspection, adjustment, or repair is required to ensure the normal operation of the equipment and the accuracy of the data.
[0045] Therefore, once the power management module 30 detects that the working data of a certain checkpoint device exceeds the preset range, it will immediately control the selection module 20 to shut down the transmission channel corresponding to the device to cut off its power supply, thereby preventing the spread of the fault and system crash.
[0046] In this embodiment, the system integrates communication, selection, and power management technologies. Its modular design facilitates easy replacement and upgrades of components, enhancing system scalability and flexibility. This enables intelligent management of the power supply to checkpoint equipment, significantly improving work efficiency and accuracy. Through the real-time monitoring and intelligent response mechanism of the power management module, damage to the system from equipment failures is effectively prevented when checkpoint equipment data falls outside the preset operating range, ensuring system stability and security.
[0047] Based on the above, this application provides further detailed solutions, please refer to... Figure 2 , Figure 2 This is a structural block diagram provided for Embodiment 2 of the power distribution system for the checkpoint equipment in this application.
[0048] In this embodiment, the checkpoint equipment power distribution system further includes: a detection module 40; the detection module 40 is connected to the selection module 20 and the power management module 30 respectively; the detection module 40 is used to detect the circuit parameters of multiple transmission channels of the selection module 20 and transmit them to the power management module 30; the power management module 30 is also used to control the selection module 20 to shut down the transmission channel corresponding to the circuit parameters when the circuit parameters are outside the preset circuit parameter range.
[0049] Understandably, circuit parameters typically include voltage, current, resistance, power factor, etc., which reflect the operating status and health of the transmission channel. Once a circuit parameter of a transmission channel is detected to exceed the preset circuit parameter range (i.e., the normal range), the detection module 40 will immediately transmit these abnormal data to the power management module 30.
[0050] In addition, the detection module 40 is also used to detect working environment parameters and transmit them to the power management module 30; the power management module 30 is also used to generate a device health index based on the working data, the circuit parameters, and the environmental parameters. The power management module 30 is also used to control the selection module 20 to shut down the transmission channel corresponding to the device health index when the device health index is outside a preset health index range.
[0051] Understandably, operating environment parameters include temperature, humidity, dust concentration, and electromagnetic interference levels. Based on this, the power management module 30 can now generate a comprehensive equipment health index based on various received data—including operating data (such as equipment operating status and data transmission volume), circuit parameters (such as voltage and current), and operating environment parameters. This index is a quantitative indicator used to assess the overall health and operating efficiency of the checkpoint equipment.
[0052] Specifically, the construction of a health model requires data collection, such as: equipment operation data, including equipment operating status (such as startup, operation, shutdown, etc.), data transmission volume, processing speed, etc., which can reflect the operating efficiency and performance of the equipment; circuit parameters, such as voltage, current, resistance, power factor, etc., which are important indicators for assessing the health status of the circuit; and environmental parameters, such as temperature, humidity, dust concentration, electromagnetic interference level, etc., which have an important impact on the performance and lifespan of the equipment.
[0053] Specifically, the collected data is preprocessed: the collected data is cleaned, organized, and formatted to ensure data quality and consistency; then, data normalization or standardization is performed for use in subsequent analysis and modeling.
[0054] Specifically, select appropriate algorithms and models, such as machine learning algorithms (e.g., support vector machines, neural networks) or deep learning models (e.g., convolutional neural networks, recurrent neural networks). Train the model using preprocessed data to find correlations and patterns among the data. Optimize model performance through methods such as cross-validation and parameter tuning to ensure the model's accuracy and reliability.
[0055] Specifically, after the model is trained, it is evaluated using a test dataset to verify its generalization ability and accuracy. Based on the evaluation results, the model is fine-tuned or optimized to improve its performance.
[0056] Finally, the real-time collected data is input into the trained model, which calculates the device health index based on the input data. The device health index is a quantitative indicator used to assess the overall health and operational efficiency of the device. Its value typically fluctuates within a preset range. Depending on the specific application scenario and requirements, different thresholds can be set to determine the device's health status, i.e., the preset health index range.
[0057] Understandably, when the equipment health index falls outside a preset threshold, the system can issue a fault warning signal, controlling the selection module 20 to shut down the transmission channel corresponding to the equipment health index, thus alerting management personnel to the equipment's health status. By analyzing the changing trends and historical data of the equipment health index, the system can further predict the types and timing of potential equipment failures.
[0058] In this embodiment, the checkpoint equipment power distribution system further includes: a display module 50; the display module is connected to the power management module 30; the display module 50 is also used to receive and display the working data, circuit parameters, environmental parameters and equipment health index transmitted by the power management module 30.
[0059] Understandably, the display module 50 is connected to the power management module 30 and is responsible for receiving and displaying various data transmitted by the power management module 30, including operating data (such as equipment operating status, data transmission volume, etc.), circuit parameters (such as voltage, current, etc.), environmental parameters (such as temperature, humidity, etc.), and equipment health index. This data is presented to operators or managers in an intuitive manner (such as numbers, charts, indicator lights, etc.) through the display module 50, enabling them to quickly understand the equipment's operating status and health level.
[0060] In this embodiment, the checkpoint equipment power distribution system further includes: an alarm module 60; the alarm module 60 is connected to the power management module 30; the power management module 30 is also used to control the alarm module 60 to sound an alarm when the working data is outside a preset working range; the power management module 30 is also used to control the alarm module 60 to sound an alarm when the circuit parameters are outside a preset circuit parameter range; the power management module 30 is also used to control the alarm module 60 to sound an alarm when the equipment health index is outside a preset health index range.
[0061] Understandably, the alarm module 60 is also connected to the power management module 30, and its function is to issue an alarm signal when the device malfunctions or fails. Specifically, the power management module 30 compares various received data (operating data, circuit parameters, device health index, etc.) with preset thresholds.
[0062] In this embodiment, the checkpoint equipment power distribution system further includes: a fault repair module 70; the fault repair module 70 is connected to the power management module 30; the fault repair module 70 is used to repair faults in the checkpoint equipment power distribution system and transmit the fault repair signal to the power management module 30 after repair; the power management module 30 is also used to start the transmission channel that is in a closed state after receiving the fault repair signal.
[0063] Understandably, as a crucial component of the power distribution system, the fault repair module 70's primary responsibility is to detect and repair faults within the system. When a fault occurs, the fault repair module 70 responds rapidly, utilizing advanced diagnostic technologies and repair algorithms to locate the fault source and implement corresponding corrective measures. Once the fault is successfully repaired, the fault repair module 70 sends a fault repair signal to the power management module 30, notifying the system that the fault has been resolved.
[0064] Understandably, after receiving the fault repair signal sent by the fault repair module 70, the power management module 30 will perform a series of operations to ensure the normal operation of the system.
[0065] First, the closed transmission channels are activated. During the fault repair process, in order to isolate the source of the fault, the power management module 30 may shut down the affected transmission channels. Once the fault is repaired, the power management module 30 will restart these previously shut-down transmission channels based on the fault repair signal, restoring the system's normal data transmission function.
[0066] Secondly, the device health index is updated. After the fault is repaired, the power management module 30 will recalculate the device health index based on the latest working data, circuit parameters and environmental parameters to reflect the current actual health status of the system.
[0067] Finally, the fault history is recorded. For subsequent analysis and improvement, the power management module 30 will also record information such as the time of the fault, the type of fault, the repair measures, and the status of the equipment after the repair, forming a fault history database.
[0068] In this embodiment, through the combined use of the display module 50 and the alarm module 60, managers can monitor the operating status and health level of the equipment in real time and receive alarm signals immediately when equipment malfunctions or fails, thus enabling them to take swift action. The addition of the alarm module 60 significantly enhances system safety, as it can promptly issue alarms when potential equipment malfunctions or safety hazards occur, effectively preventing accidents. The addition of the fault repair module 70 enables the power distribution system to have the ability to self-detect and repair faults, greatly reducing the need for manual intervention and improving the reliability and stability of the system.
[0069] Specifically, based on the above, this application provides a detailed implementation of Embodiment 2, please refer to... Figure 3 , Figure 3 This is a schematic diagram of the device connection for the power distribution method of the checkpoint device provided in Embodiment 2 of this application.
[0070] The detection module 40 includes multiple voltage and current sensors L1; the selection module 20 includes multiple relays J1; the communication module includes multiple interfaces and multiple manual switches K1. Each interface is connected to each manual switch K1; each manual switch K1 is also connected to each voltage and current sensor L1; each voltage and current sensor L1 is also connected to each relay J1; each relay J1 is connected to the power management module 30, forming multiple transmission channels; the interface is used to establish a connection with the checkpoint device.
[0071] Understandably, multiple voltage and current sensors L1 are responsible for monitoring the voltage and current parameters in the power distribution system in real time to ensure that the system operates within safe electrical limits. Each voltage and current sensor L1 is connected to a relay J1 in the selection module 20 via a specific connection so that the detected data is transmitted to the relay and then processed by the power management module 30.
[0072] Understandably, multiple relays J1 act as electrical switches to control the opening and closing of different transmission channels in the power distribution system. They selectively allow or block current flow according to instructions from the power management module 30. One end of each relay J1 is connected to a voltage and current sensor L1, and the other end is connected to the power management module 30, forming a complete signal transmission path. Simultaneously, relays J1 may also be connected to the main circuit of the power distribution system through other connections to perform switching operations.
[0073] Understandably, interfaces are used to establish physical connections with bayonet devices, enabling data transmission and the reception of control signals. These interfaces may include different types of electrical connectors to accommodate the connection requirements of various bayonet devices.
[0074] Understandably, the manual switch K1 provides manual control functionality, allowing operators to directly intervene in the operation of the power distribution system when necessary. For example, in an emergency, operators can quickly cut off the power or switch transmission channels using the manual switch K1. Each interface is connected to a corresponding voltage and current sensor L1 via a manual switch K1. This design ensures both reliable data transmission and flexible manual control options.
[0075] Understandably, when the checkpoint equipment connects to the power distribution system via an interface, the voltage and current sensor L1 begins to monitor electrical parameters in real time. This data is transmitted to the power management module 30 via relay J1 for analysis and processing. The power management module 30 generates control commands based on the received data and other input information (such as environmental parameters and equipment health indices). These commands control the opening and closing of different transmission channels via relay J1 to meet the power requirements of the checkpoint equipment.
[0076] Based on the above, this application also proposes a power distribution method for checkpoint equipment, please refer to... Figure 4 , Figure 4 This is a flowchart illustrating an embodiment of the power distribution method for checkpoint equipment in this application.
[0077] In this embodiment, the method is applied to the checkpoint equipment power distribution system as described above, and the method includes steps S10 to S30.
[0078] Step S10: Obtain the operating parameters, circuit parameters, and environmental parameters of the checkpoint equipment's power distribution system.
[0079] In this step, the power distribution system comprehensively collects key data through its built-in detection module (containing multiple voltage and current sensors L1). This data covers the power distribution system's operating parameters (such as equipment operating status, data transmission volume, etc.), circuit parameters (such as actual voltage and current values), and environmental parameters (such as the temperature and humidity of the operating environment). This data provides a solid foundation for subsequent equipment health assessments and potential fault warnings.
[0080] Step S20: Generate a device health index based on the operating parameters, the circuit parameters, and the environmental parameters.
[0081] After successfully acquiring the aforementioned data, the power management module 30 of the power distribution system uses complex algorithms and models to comprehensively consider these parameters, thereby generating an index that reflects the current health status of the equipment—the equipment health index. This index is a comprehensive indicator that reflects the overall performance of the equipment across multiple dimensions, including electrical performance, operating environment, and work efficiency. By comparing the equipment health index with preset health thresholds, managers can intuitively understand the health status of the equipment and make timely maintenance decisions.
[0082] Step S30: When any of the operating parameters, circuit parameters, and device health index exceeds a preset range, the transmission channel corresponding to the checkpoint device is shut down, power supply is stopped, and an alarm is triggered.
[0083] This is a crucial step in the power distribution method, designed to ensure the power distribution system can respond quickly to abnormal situations, protecting the safety of equipment and personnel. Once any of the operating parameters, circuit parameters, or equipment health indicators deviate from the preset safe range, the power management module 30 will immediately take action, shutting off the corresponding transmission channel and cutting off power to the problematic equipment via relay J1 in the selection module 20. Simultaneously, the alarm module 60 will be activated, emitting an audible and visual alarm signal to alert management personnel to the abnormal situation and prompt them to take appropriate measures.
[0084] The checkpoint equipment power distribution method provided in this application is applied to the aforementioned checkpoint equipment power distribution system, and can solve the technical problem that the existing checkpoint equipment power distribution system has complicated wiring, requires manual operation, and cannot achieve precise power distribution control. Compared with the prior art, the beneficial effects of the checkpoint equipment power distribution method provided in this application are the same as the beneficial effects of the checkpoint equipment power distribution system provided in the above embodiments, and will not be repeated here.
[0085] This application provides a computer-readable storage medium having computer-readable program instructions (i.e., a computer program) stored thereon, the computer-readable program instructions being used to execute the gate device power distribution method in the above embodiments.
[0086] The computer-readable storage medium provided in this application may be, for example, a USB flash drive, but is not limited to, electrical, magnetic, optical, electromagnetic, infrared, or semiconductor systems, devices, or any combination thereof. More specific examples of computer-readable storage media may include, but are not limited to: electrical connections having one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination thereof. In this embodiment, the computer-readable storage medium may be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, system, or device. The program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to: wires, optical cables, RF (Radio Frequency), etc., or any suitable combination thereof.
[0087] The aforementioned computer-readable storage medium may be included in the power distribution system of the checkpoint equipment; or it may exist independently and not be assembled into the power distribution system of the checkpoint equipment.
[0088] The aforementioned computer-readable storage medium carries one or more programs. When the aforementioned one or more programs are executed by the checkpoint equipment power distribution system, the checkpoint equipment power distribution system causes the following: to acquire the operating parameters, circuit parameters, and environmental parameters of the checkpoint equipment power distribution system; to generate an equipment health index based on the operating parameters, circuit parameters, and environmental parameters; and to shut down the transmission channel corresponding to the checkpoint equipment, stop power supply, and trigger an alarm when any of the operating parameters, circuit parameters, and equipment health index exceeds a preset range.
[0089] Computer program code for performing the operations of this application can be written in one or more programming languages or a combination thereof, including object-oriented programming languages such as Java, Smalltalk, and C++, as well as conventional procedural programming languages such as "C" or similar programming languages. The program code can be executed entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving remote computers, the remote computer can be connected to the user's computer via any type of network—including a Local Area Network (LAN) or a Wide Area Network (WAN)—or can be connected to an external computer (e.g., via the Internet using an Internet service provider).
[0090] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or operation, or using a combination of dedicated hardware and computer instructions.
[0091] The modules described in the embodiments of this application can be implemented in software or hardware. The names of the modules do not necessarily limit the functionality of the unit itself.
[0092] The readable storage medium provided in this application is a computer-readable storage medium that stores computer-readable program instructions (i.e., computer programs) for executing the above-described checkpoint equipment power distribution method. This solves the technical problem that existing checkpoint equipment power distribution systems have complex wiring requiring manual operation and cannot achieve precise power distribution control. Compared with the prior art, the beneficial effects of the computer-readable storage medium provided in this application are the same as those of the checkpoint equipment power distribution method provided in the above embodiments, and will not be repeated here.
[0093] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the steps of the checkpoint device power distribution method described above.
[0094] The computer program product provided in this application can solve the technical problem that the existing checkpoint equipment power distribution system has complicated wiring that requires manual operation and cannot achieve precise power distribution control. Compared with the prior art, the beneficial effects of the computer program product provided in this application are the same as the beneficial effects of the checkpoint equipment power distribution method provided in the above embodiments, and will not be repeated here.
[0095] The above description is only a part of the embodiments of this application and does not limit the patent scope of this application. All equivalent structural transformations made under the technical concept of this application and using the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included in the patent protection scope of this application.
Claims
1. A bay power distribution system, comprising: The bayonet device power distribution system comprises a communication module, a selection module and a power management module; The communication module is connected with multiple bayonet devices and is connected with the power management module through the selection module; The selection module comprises multiple transmission channels corresponding to the bayonet devices; The communication module is configured to transmit working data of the bayonet devices to the power management module through the transmission channels; The power management module is configured to supply power to the bayonet devices through the transmission channels; The power management module is further configured to control the selection module to close the transmission channels corresponding to the bayonet devices to stop power supply when it is identified that the working data of the bayonet devices is out of a preset working range.
2. The bay power distribution system of claim 1, wherein, The bayonet device power distribution system further comprises a detection module; The detection module is connected with the selection module and the power management module; The detection module is configured to detect circuit parameters of the multiple transmission channels of the selection module and transmit the circuit parameters to the power management module; The power management module is further configured to control the selection module to close the transmission channels corresponding to the circuit parameters when the circuit parameters are out of a preset circuit parameter range.
3. The card access power distribution system of claim 2, wherein, The detection module comprises multiple voltage and current sensors, the selection module comprises multiple relays, and the communication module comprises multiple interfaces and multiple manual switches; Each of the interfaces is connected with each of the manual switches; Each of the manual switches is further connected with each of the voltage and current sensors; Each of the voltage and current sensors is further connected with each of the relays; Each of the relays is connected with the power management module to form multiple transmission channels; The interfaces are configured to establish connections with the bayonet devices.
4. The card access power distribution system of claim 3, wherein, The detection module is further configured to detect working environment parameters and transmit the working environment parameters to the power management module; The power management module is further configured to generate a device health index based on the working data, the circuit parameters and the environment parameters; The power management module is further configured to control the selection module to close the transmission channels corresponding to the device health index when the device health index is out of a preset health index range.
5. The card access power distribution system of claim 4, wherein, The bayonet device power distribution system further comprises a display module; The display module is connected with the power management module; The display module is further configured to receive the working data, the circuit parameters, the environment parameters and the device health index transmitted by the power management module and display the working data, the circuit parameters, the environment parameters and the device health index.
6. The card access power distribution system of claim 5, wherein, The bayonet device power distribution system further comprises an alarm module; The alarm module is connected with the power management module; The power management module is further configured to control the alarm module to alarm when the working data is out of the preset working range; The power management module is further configured to control the alarm module to alarm when the circuit parameters are out of the preset circuit parameter range; The power management module is further configured to control the alarm module to alarm when the device health index is out of the preset health index range.
7. The bay power distribution system of any of claims 1 to 6, wherein, The bayonet device power distribution system further comprises a fault repair module; The fault repair module is connected with the power management module; The fault repair module is configured to repair a fault of the power distribution system of the socket device and transmit the fault repair signal to the power management module after the fault is repaired. The power management module is further configured to start a transmission channel in a closed state after receiving the fault repair signal.
8. A method for distributing power to a bayonet device, characterized in that The method applies the socket device power distribution system according to any one of claims 1 to 7, and the method comprises: acquiring working parameters, circuit parameters and environmental parameters of the socket device power distribution system; generating a device health index based on the working parameters, the circuit parameters and the environmental parameters; when any one of the working parameters, the circuit parameters and the device health index exceeds a preset range, stopping power supply to a transmission channel corresponding to the socket device and alarming.
9. A storage medium, characterized by The storage medium is a computer readable storage medium, and the storage medium stores a computer program. The computer program is executed by the processor to implement the steps of the socket device power distribution method according to claim 8.
10. A computer program product, characterised in that, The computer program product comprises a computer program. The computer program is executed by the processor to implement the steps of the socket device power distribution method according to claim 8.