Working condition monitoring module based on communication power supply

By designing a working condition monitoring module based on communication power supply, the problem that traditional power monitoring methods cannot detect fault types is solved, and detailed monitoring and fault warning of communication power supply working conditions is realized, reducing the time for fault repair.

CN222979761UActive Publication Date: 2025-06-13SHENZHEN XINGXING XINHANG TECH CO LTD
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Patent Information

Application Number
CN202421807850.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-06-13
Estimated Expiration
2034-07-29

AI Technical Summary

Technical Problem

In the prior art, traditional power monitoring methods can only perform simple fault detection and cannot directly detect fault types, resulting in users needing to perform fault repairs, increasing the fault repair time.

Method used

A working condition monitoring module based on communication power supply is designed, including a data acquisition unit, a database unit, an intelligent processing unit, an abnormality detection unit, a fault warning grading unit and a communication interface unit. This module collects voltage, current and temperature data in real time, performs data analysis and threshold comparison, detects abnormalities and conducts continuous monitoring, and issues early warning signals.

Benefits of technology

It realizes detailed monitoring and fault warning of communication power supply operating conditions, so that users can understand the cause of the fault in the first time, reducing the time for fault repair.

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Abstract

The utility model provides a working condition monitoring module based on a communication power supply, and belongs to the technical field of communication. Comprising a data acquisition unit used for acquiring voltage and current values of an input end and an output end of the communication power supply and temperature information of the whole communication power supply in real time; and the database unit is electrically connected with the data acquisition unit and is used for storing the data information acquired by the data acquisition unit. According to the utility model, the abnormity detection unit is arranged, data acquired by the data acquisition unit is compared with a preset threshold value in the comparison module, and when the data is not within the threshold value range, the data is transmitted to the continuous detection unit, detected for a long time and compared with data in the database unit for analysis; the fault early-warning and grading unit judges problems in the data according to the fault information, so that the fault information is transmitted to the fault early-warning and grading unit and then transmitted to the user, and the user can know possible reasons of the fault at the first time.
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Description

Technical Field

[0001] The utility model relates to the technical field of communication, and particularly relates to a working condition monitoring module based on a communication power supply. Background Art

[0002] With the rapid development of communication technology, as the core component of a communication system, the stability and reliability of a communication power supply are crucial for the operation of the entire communication network.

[0003] In the prior art, traditional power supply monitoring methods usually can only perform simple fault detection and give warnings to users when a fault occurs. However, the type of the fault cannot be directly detected, which will cause users to need to perform fault repair again, resulting in an increase in the fault repair time. Therefore, this application provides a working condition monitoring module based on a communication power supply to meet the requirements. Summary of the Utility Model

[0004] The technical problem to be solved by the utility model is to provide a working condition monitoring module based on a communication power supply to solve the problem that the existing traditional power supply monitoring methods usually can only perform simple fault detection and give warnings to users when a fault occurs. However, the type of the fault cannot be directly detected, which will cause users to need to perform fault repair again, resulting in an increase in the fault repair time.

[0005] To solve the above technical problem, the utility model provides the following technical solution: A working condition monitoring module based on a communication power supply, comprising: a data acquisition unit for real-time collecting the voltage and current values at the input and output ends of the communication power supply and the temperature information of the overall communication power supply; a database unit electrically connected to the data acquisition unit for storing the data information collected by the data acquisition unit; an intelligent processing unit electrically connected to the data acquisition unit for processing the collected data, including voltage and current data and temperature trend analysis; an anomaly detection unit electrically connected to the intelligent processing unit and also electrically connected to the database unit, and configured such that after receiving the information of the current communication power supply from the intelligent processing unit, the anomaly detection unit performs comparative analysis with the data in the database module, and when there is abnormal data, continuously monitors the anomaly; a fault warning grading unit electrically connected to the anomaly detection unit for indicating the danger level of the abnormal state; a communication interface unit for sending the working condition information of the communication power supply to the user through an electrical signal when the anomaly detection unit does not detect an abnormal state or after detecting an abnormal state.

[0006] Preferably, the data acquisition unit includes: a voltage acquisition part for acquiring the voltage at the input and output ends of the communication power supply; a current acquisition part for acquiring the current value of the communication power supply; a temperature acquisition part for acquiring the temperature information of the communication power supply; and a timing module configured to perform time measurement when the voltage acquisition part, the current acquisition part, and the temperature acquisition part collect data.

[0007] Preferably, the anomaly detection unit includes: a comparison module, which is set with normal thresholds for voltage, current, and temperature during communication power usage, and is configured to compare with the set thresholds after the intelligent processing unit transmits data to the anomaly detection unit to detect whether the data exceeds the thresholds; a continuous monitoring unit, electrically connected to the comparison module, and is used to continuously monitor the data information transmitted by the intelligent processing unit after the data passed through the comparison module exceeds the thresholds.

[0008] Preferably, the fault warning and grading unit includes: a warning unit, electrically connected to the comparison module and also electrically connected to the continuous monitoring unit, and is configured to issue a warning signal when the comparison module detects that the data of the intelligent processing unit is not within the threshold range, and issue a warning signal when the continuous monitoring unit detects that the subsequent data of the intelligent processing unit is not within the threshold range, and stop sending the warning signal if it is within the threshold range.

[0009] Preferably, the intelligent processing unit includes: a central processing unit, which is responsible for executing instructions and controlling the operations of the entire processing unit; a digital signal processor, which is used to process digital signals, such as the data collected by the voltage acquisition unit, current acquisition unit, and temperature acquisition unit; an algorithm module, which is used to perform intelligent algorithms on the collected data information.

[0010] Preferably, the communication interface unit includes: a physical layer interface, including an Ethernet port, a serial communication port, a USB port, and a wireless communication module; a communication controller, which is responsible for managing the communication tasks of each physical interface, including data reception, transmission, and protocol conversion; a data buffer, which is used to temporarily store data to be sent or received, ensuring the integrity of the data during transmission, especially when the network conditions are unstable, it can play a role in smoothing the data stream; a security module, which integrates encryption and authentication mechanisms to protect the security of data transmission and prevent data from being eavesdropped or tampered with.

[0011] Compared with the prior art, the present utility model has at least the following beneficial effects: In the above solution, by setting the anomaly detection unit, the data collected by the data acquisition unit is compared with the preset thresholds in the comparison module. When it is not within the threshold range, the data is sent to the continuous detection unit for long-term detection of the data, and compared and analyzed with the data in the database unit to determine the problems in the data, so as to transmit the fault information to the fault warning and grading unit and then to the user, enabling the user to understand the possible causes of the fault in a timely manner. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] And the drawings forming a part of the specification herein illustrate embodiments of the present disclosure and, together with the specification, are further used to explain the principles of the present disclosure and enable those skilled in the relevant art to implement and use the present disclosure.

[0013] Figure 1 It is a schematic diagram of the principle of the present utility model;

[0014] Figure 2 It is a schematic diagram of the principle of the data acquisition unit in the present utility model.

[0015] [Reference numerals]

[0016] 1. Data acquisition unit; 101. Voltage acquisition part; 102. Current acquisition part; 103. Temperature acquisition part; 104. Timing module; 2. Database unit; 3. Intelligent processing unit; 4. Abnormality detection unit; 401. Comparison module; 402. Continuous monitoring unit; 5. Warning unit; 6. Communication interface unit.

[0017] As shown in the figure, in order to clearly implement the structure of the embodiment of the present utility model, specific structures and devices are marked in the figure, but this is only for schematic needs and is not intended to limit the present utility model to this specific structure, device and environment. According to specific needs, those of ordinary skill in the art can adjust or modify these devices and environments, and the adjustments or modifications still fall within the scope of the appended claims. Specific embodiments

[0018] The following combines the drawings and specific embodiments to describe in detail a working condition monitoring module based on a communication power supply provided by the present utility model. At the same time, it should be noted here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments. For some well-known technologies, those skilled in the art can also adopt other alternative methods for implementation; moreover, the drawings are only for more specifically describing the embodiments and are not intended to specifically limit the present utility model.

[0019] Embodiment 1: As Figure 1 And Figure 2As shown in the figure, an embodiment of the utility model provides a working condition monitoring module based on a communication power supply, including: a data acquisition unit 1 for real-time acquisition of the input and output voltages and currents of the communication power supply and the temperature information of the overall communication power supply; a database unit 2 electrically connected to the data acquisition unit 1 for storing the data information collected by the data acquisition unit 1; an intelligent processing unit 3 electrically connected to the data acquisition unit 1 for processing the collected data, including voltage and current data and temperature trend analysis; an abnormal detection unit 4 electrically connected to the intelligent processing unit 3 and electrically connected to the database unit 2, and configured such that after the abnormal detection unit 4 receives the information of the current communication power supply from the intelligent processing unit 3, it compares and analyzes the data with the data in the database module, and when there is abnormal data, continuously monitors the abnormality; a fault warning grading unit electrically connected to the abnormal detection unit 4 for indicating the danger degree of the abnormal state; a communication interface unit 6 for sending the working condition information of the communication power supply to the user through an electrical signal when the abnormal detection unit 4 does not detect an abnormal state or after detecting an abnormal state.

[0020] As Figure 1 shown Figure 2 in the figure, the data acquisition unit 1 includes: a voltage acquisition section 101 for acquiring the input and output voltages of the communication power supply; a current acquisition section 102 for acquiring the current value of the communication power supply; a temperature acquisition section 103 for acquiring the temperature information of the communication power supply; a timing module 104, and configured such that when the voltage acquisition section 101, the current acquisition section 102, and the temperature acquisition section 103 acquire data, time measurement is performed.

[0021] As Figure 1 shown

[0022] in the figure, the abnormal detection unit 4 includes: a comparison module 401 provided with normal thresholds for voltage, current, and temperature during the use of the communication power supply, and configured such that after the intelligent processing unit 3 transmits the data to the abnormal detection unit 4, it compares the data with the set thresholds to detect whether the data exceeds the thresholds; a continuous monitoring unit 402 electrically connected to the comparison module 401 for continuously monitoring the data information transmitted by the intelligent processing unit 3 after the data passed through the comparison module 401 exceeds the thresholds.

[0022] As Figure 1 shown

[0023] in the figure, the fault warning grading unit includes: a warning unit 5 electrically connected to the comparison module 401 and electrically connected to the continuous monitoring unit 402, and configured such that when the comparison module 401 detects that the data of the intelligent processing unit 3 is not within the threshold range, it issues a warning signal, and when the continuous monitoring unit 402 detects that the subsequent data of the intelligent processing unit 3 is not within the threshold range, it issues a warning signal, and if it is within the threshold range, it stops sending the warning signal.

[0023] As Figure 1As shown in the figure, the intelligent processing unit 3 includes: a central processing unit, which is responsible for executing instructions and controlling the operations of the entire processing unit; a digital signal processor, which is used to process digital signals, such as the data collected by the voltage acquisition unit 101, the current acquisition unit 102, and the temperature acquisition unit 103; and an algorithm module, which is used to perform intelligent algorithms on the collected data information.

[0024] As Figure 1 As shown in the figure, the communication interface unit 6 includes: a physical layer interface, which includes an Ethernet port, a serial communication port, a USB port, and a wireless communication module; a communication controller, which is responsible for managing the communication tasks of each physical interface, including data reception, transmission, and protocol conversion; a data buffer, which is used to temporarily store the data to be sent or the received data, ensuring the integrity of the data during the transmission process. Especially when the network conditions are unstable, it can play a role in smoothing the data stream; a security module, which integrates encryption and authentication mechanisms, is used to protect the security of data transmission and prevent data from being eavesdropped or tampered with.

[0025] When the technical solution provided by the present utility model monitors the working conditions of the communication power supply, the voltage acquisition unit 101, the current acquisition unit 102, the temperature acquisition unit 103, and the timing module 104 cooperate to record the changes in voltage, current, and temperature of the communication power supply over a period of time. The recorded data is respectively transmitted to the database unit 2 and the intelligent processing unit 3 through electrical signals. After the database unit 2 receives the data, it stores it. The intelligent processing unit 3 analyzes the collected data and then transmits the new data to the comparison module 401 of the anomaly detection unit 4. The new data is compared with the reserved threshold range in the comparison module 401. When the new data is within the threshold range, it is directly transmitted to the communication interface unit 6 through electrical signals to transmit the working condition information to the user. When the new data is not within the threshold range, the new data is first transmitted to the continuous monitoring unit 402, and the historical data in the database is retrieved. The new data is compared and analyzed with the historical data, and the data information transmitted by the intelligent processing unit 3 is continuously monitored. When the comparison module 401 detects that the data of the intelligent processing unit 3 is continuously not within the threshold range, a warning signal is issued. When the continuous monitoring unit 402 detects that the subsequent data of the intelligent processing unit 3 is not within the threshold range, a warning signal is issued. If it is within the threshold range, the warning signal is stopped from being sent, and the warning unit 5 transmits the information through the communication interface unit 6 to transmit the working condition information to the user.

[0026] The present utility model covers any alternatives, modifications, equivalent methods and solutions made on the essence and scope of the present utility model. In order to enable the public to have a thorough understanding of the present utility model, specific details have been described in detail in the above preferred embodiments of the present utility model, and those skilled in the art can fully understand the present utility model without the description of these details. In addition, in order to avoid unnecessary confusion to the essence of the present utility model, well-known methods, processes, procedures, components and circuits, etc. have not been described in detail.

[0027] The above are only the preferred embodiments of the present utility model. It should be pointed out that for those of ordinary skill in the art, without departing from the principle of the present utility model, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.

Claims

1. A working condition monitoring module based on communication power supply, characterized in that: include: A data acquisition unit (1) is used to collect voltage and current values ​​at the input and output ends of the communication power supply and temperature information of the communication power supply as a whole in real time; A database unit (2) is electrically connected to the data acquisition unit (1) and is used to store data information collected by the data acquisition unit (1); An intelligent processing unit (3) is electrically connected to the data acquisition unit (1) and is used to process the acquired data, including voltage and current data and temperature trend analysis; The abnormality detection unit (4) is electrically connected to the intelligent processing unit (3) and the database unit (2), and is configured such that after the abnormality detection unit (4) receives information about the current communication power supply from the intelligent processing unit (3), it compares and analyzes the information with the data in the database module, and when abnormal data exists, continuously monitors the abnormality; A fault warning classification unit is electrically connected to the abnormality detection unit (4) and indicates the degree of danger of the abnormal state; The communication interface unit (6) is used to send the operating condition information of the communication power supply to the user through an electrical signal when the abnormality detection unit (4) has not detected an abnormal state, or after detecting an abnormal state.

2. The working condition monitoring module based on communication power supply according to claim 1 is characterized in that: The data acquisition unit (1) comprises: A voltage collection unit (101), used for collecting voltages at the input and output ends of a communication power supply; A current collection unit (102), used for collecting the current value of the communication power supply; A temperature collection unit (103), used for collecting temperature information of a communication power supply; The timing module (104) is configured to measure time when the voltage collection unit (101), the current collection unit (102) and the temperature collection unit (103) collect data.

3. The working condition monitoring module based on communication power supply according to claim 1 is characterized in that: The abnormality detection unit (4) comprises: The comparison module (401) is provided with normal threshold values ​​of voltage, current and temperature during use of the communication power supply, and is configured to compare the data with the set threshold value after the intelligent processing unit (3) transmits the data to the abnormality detection unit (4) to detect whether the data exceeds the threshold value; The continuous monitoring unit (402) is electrically connected to the comparison module (401) and is used to continuously monitor the data information transmitted by the intelligent processing unit (3) after the data passing through the comparison module (401) exceeds a threshold value.

4. The working condition monitoring module based on communication power supply according to claim 3 is characterized in that: The fault warning classification unit comprises: The warning unit (5) is electrically connected to the comparison module (401) and the continuous monitoring unit (402), and is configured to send a warning signal when the comparison module (401) detects that the data of the intelligent processing unit (3) is not within a threshold range, and to send a warning signal when the continuous monitoring unit (402) detects that the subsequent intelligent processing unit (3) data is not within the threshold range, and to stop sending the warning signal if it is within the threshold range.

5. The working condition monitoring module based on communication power supply according to claim 2 is characterized in that: The intelligent processing unit (3) comprises: The central processing unit is responsible for executing instructions and controlling the operation of the entire processing unit; A digital signal processor, used for processing digital signals, such as data collected by the voltage collection unit (101), the current collection unit (102) and the temperature collection unit (103); The algorithm module is used to perform intelligent algorithms on the collected data information.

6. The working condition monitoring module based on communication power supply according to claim 1, characterized in that: The communication interface unit (6) comprises: Physical layer interfaces, including Ethernet port, serial communication port, USB port and wireless communication module; The communication controller is responsible for managing the communication tasks of each physical interface, including data reception, transmission and protocol conversion; Data buffer, used to temporarily store data to be sent or received, to ensure the integrity of data during transmission, especially when network conditions are unstable, it can play a role in smoothing data flow; The security module integrates encryption and authentication mechanisms to protect the security of data transmission and prevent data from being eavesdropped or tampered with.