Operation safety monitoring method, system and equipment based on intelligent grounding wire and storage medium

By integrating multi-source sensors into the intelligent grounding wire to monitor the grounding wire status in real time and trigger alarms, the problem of slow response speed and poor accuracy of traditional grounding wire monitoring methods is solved. This achieves efficient safety monitoring and hazard warning, and improves the safety of electrical operations and equipment reliability.

CN120972048APending Publication Date: 2025-11-18HAINAN POWER GRID CO LTD
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Patent Information

Application Number
CN202510837918.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-23
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

Traditional grounding wire monitoring methods are slow to respond and inaccurate, and cannot monitor the grounding wire status in real time, posing safety hazards, especially in high-voltage electrical work, where they may lead to serious accidents.

Method used

The system employs an intelligent grounding wire, integrating multi-source sensors to monitor the electrical and physical status of the grounding wire in real time. Data is transmitted to the central monitoring system via a wireless communication module for analysis, and multi-dimensional threshold parameters are set to trigger alarms and notify operators.

Benefits of technology

It enables real-time monitoring of the grounding wire status, timely detection of abnormalities, improved operational safety and real-time performance, supports hazard warning and optimization of work processes, and enhances equipment reliability and work efficiency.

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Abstract

The invention discloses an operation safety monitoring method, system and device based on an intelligent grounding wire and a storage medium, and relates to the technical field of electrical operation safety monitoring. The method comprises the steps that electrical data and physical state information of the grounding wire are collected in real time; presetting a safety threshold of the grounding wire, analyzing the electrical data and physical state information of the grounding wire collected in real time in real time, and judging the abnormal state of the grounding wire; and when an abnormal state is detected, an alarm is triggered and an operator is notified. According to the invention, the grounding state is monitored in real time through the intelligent grounding wire, and the monitoring data is transmitted to the central monitoring system for analysis and alarm, so that the whole-course safety monitoring of high-risk operation is realized, the maintenance period of the grounding wire can be intelligently evaluated, potential hazards can be found in advance, and preventive maintenance is carried out. The reliability and operation safety of the equipment are greatly improved, decision support is provided through data storage and analysis, managers are helped to optimize the operation process, and the working efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the technical field of electrical work safety monitoring, and in particular to a work safety monitoring method, system, device and storage medium based on intelligent grounding wire. Background Technology

[0002] In high-risk operations, especially electrical work, the safety of grounding wires is crucial to ensuring the safety of workers. Traditional grounding wire monitoring methods mainly rely on manual inspection or simple voltage detection, but these methods suffer from slow response times, poor accuracy, and a tendency to miss detections. They cannot monitor the status of grounding wires in real time, especially at high-voltage electrical work sites where abnormalities in the grounding wires can lead to serious safety accidents. With the development of intelligent technology, sensor-based data acquisition and analysis have become possible. Intelligent grounding wires can detect the status of grounding wires in real time, monitoring whether they are safely grounded and whether there are problems such as loosening or breakage, thereby improving the safety and real-time performance of operations. Summary of the Invention

[0003] In view of the aforementioned existing problems, this invention is proposed. Therefore, this invention provides a work safety monitoring method based on intelligent grounding wires to solve the problems mentioned in the background art.

[0004] To solve the above-mentioned technical problems, the present invention provides the following technical solution:

[0005] In a first aspect, embodiments of the present invention provide a method for monitoring operational safety based on a smart grounding wire, including: real-time acquisition of electrical data and physical status information of the grounding wire;

[0006] A preset grounding safety threshold is set, and the real-time collected electrical data and physical status information of the grounding wire are analyzed in real time to determine the abnormal state of the grounding wire.

[0007] When an abnormal state is detected, an alarm is triggered and the operators are notified.

[0008] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, it further includes: the grounding wire has a built-in multi-source sensing device to monitor the grounding status in real time, and the monitoring data is transmitted to the central monitoring system through a wireless communication module for electrical work safety monitoring; wherein the multi-source sensing device includes a current sensor, a voltage sensor, a temperature sensor, and a piezoelectric sensor.

[0009] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, the real-time acquisition of electrical data and physical status information of the grounding wire includes: current, voltage, temperature, and physical status including loosening or breakage of the grounding wire.

[0010] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, it further includes: a current sensor outputting a voltage signal proportional to the current flowing through the grounding wire, and judging the working state of the grounding wire based on the current change; a voltage sensor used to measure the voltage across the two ends of the grounding wire, and judging the grounding and voltage status of the grounding wire; data from a temperature sensor used to judge the health status of the grounding wire; and a piezoelectric sensor used to detect the physical state of the grounding wire.

[0011] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, the method includes: setting a grounding wire safety threshold, performing real-time analysis on the collected electrical data and physical state information of the grounding wire, and determining abnormal grounding wire states, including:

[0012] If the measured current value is greater than the current threshold, the grounding wire is judged to be in a fault state; if the measured current value is not greater than the current threshold, the grounding wire is judged to be in a normal state.

[0013] If the calculated grounding resistance is greater than the preset safety upper limit, the grounding wire is considered to have poor contact; if the calculated grounding resistance is not greater than the preset safety upper limit, the grounding wire is considered to be working normally.

[0014] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, it further includes: if the measured temperature is greater than the temperature threshold, the grounding wire is judged to be in a fault state; if the measured temperature is not greater than the temperature threshold, the grounding wire is judged to be in a normal state.

[0015] If the detected deformation of the grounding wire is greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a fault state. If the detected deformation of the grounding wire is not greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a normal state.

[0016] The beneficial effect of this preferred technical solution is that by analyzing and judging the data collected by the sensor in real time, abnormalities in the electrical performance or physical condition of the grounding wire can be detected in a timely manner, thereby ensuring the safety of the workers.

[0017] As a preferred embodiment of the work safety monitoring method based on intelligent grounding wire described in this invention, it includes: triggering an alarm mechanism and sending a notification to the workers when the data collected by any sensing device exceeds a preset safety threshold.

[0018] The beneficial effects of this preferred technical solution are that by monitoring the grounding status in real time through intelligent grounding wires and transmitting the monitoring data to the central monitoring system for analysis and alarm, it is possible to achieve full-process safety monitoring of high-risk operations and ensure the safety of the working environment.

[0019] Secondly, the present invention provides a work safety monitoring system based on an intelligent grounding wire, comprising:

[0020] The data acquisition module is used to collect electrical data and physical status information of the grounding wire in real time;

[0021] The anomaly detection module is used to preset the grounding wire safety threshold, perform real-time analysis on the real-time collected electrical data and physical state information of the grounding wire, and determine the abnormal state of the grounding wire.

[0022] The monitoring module is used to trigger alarms and notify operators when an abnormal state is detected.

[0023] Thirdly, the present invention provides an electronic device, comprising:

[0024] Memory and processor;

[0025] The memory is used to store computer-executable instructions, and the processor is used to execute the computer-executable instructions. When the computer-executable instructions are executed by the processor, they implement the steps of the operation safety monitoring method based on intelligent grounding wire.

[0026] Fourthly, the present invention provides a computer-readable storage medium storing computer-executable instructions that, when executed by a processor, implement the steps of the work safety monitoring method based on intelligent grounding wire.

[0027] Compared with existing technologies, the beneficial effects of this invention are as follows: By integrating multi-source sensors into the grounding wire, this invention monitors the electrical and physical states of the grounding wire in real time, forming an intelligent grounding wire structure. It performs real-time analysis and comparison of data collected by various sensors to identify dangerous situations and trigger alarms. By setting multi-dimensional threshold parameters, once any dimension exceeds a preset safety range, an alarm mechanism is triggered, and notifications are sent to operators and the management platform. The monitoring data is stored long-term and periodically backtracked for analysis, supporting modeling of the grounding wire's state evolution trend and early warning of potential hazards. Through analysis of historical data, the system can intelligently assess the maintenance cycle of the grounding wire, identify potential hazards in advance, and perform preventative maintenance, greatly improving equipment reliability and operational safety. Through data storage and analysis, the system provides decision support, helping managers optimize work processes and improve work efficiency. Attached Figure Description

[0028] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein:

[0029] Figure 1 This is a schematic diagram of the process flow of a work safety monitoring method based on an intelligent grounding wire, according to an embodiment of the present invention. Detailed Implementation

[0030] To make the above-mentioned objects, features, and advantages of the present invention more apparent and understandable, specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0031] Example 1, referring to Figure 1 As one embodiment of the present invention, this embodiment provides a work safety monitoring method based on a smart grounding wire, including:

[0032] S100: Real-time acquisition of electrical data and physical status information of the grounding wire;

[0033] S200: Preset grounding wire safety threshold, performs real-time analysis on the collected electrical data and physical status information of the grounding wire, and judges the abnormal state of the grounding wire;

[0034] S300: When an abnormal state is detected, an alarm is triggered and the operator is notified.

[0035] It should be noted that in high-risk operations, especially electrical work, the safety of the grounding wire is crucial to ensuring the safety of workers. Traditional grounding wire monitoring methods mainly rely on manual inspection or simple voltage detection, but these methods suffer from slow response time, poor accuracy, and a tendency to miss detections. They cannot monitor the grounding wire's status in real time, especially at high-voltage electrical work sites where grounding wire abnormalities can lead to serious safety accidents. With the development of intelligent technology, sensor-based data acquisition and analysis have become possible. Intelligent grounding wires can detect the grounding wire's status in real time, monitoring whether it is safely grounded and whether there are problems such as loosening or breakage, thereby improving the safety and real-time performance of the operation. This application uses intelligent grounding wires to monitor the grounding status in real time and transmits the monitoring data to a central monitoring system for analysis and alarm, thereby achieving full-process safety monitoring of high-risk operations and ensuring the safety of the working environment.

[0036] In this embodiment of the application, step S100 further includes: the grounding wire has a built-in multi-source sensing device to monitor the grounding status in real time, and the monitoring data is transmitted to the central monitoring system through a wireless communication module for safety monitoring of electrical operations; wherein the multi-source sensing device includes a current sensor, a voltage sensor, a temperature sensor and a piezoelectric sensor.

[0037] In an optional embodiment, sensor data is transmitted to a central monitoring system via a wireless communication module, such as LoRa or NB-IoT. Upon receiving the grounding wire status data, the central monitoring system uses a data analysis model to perform real-time analysis of the grounding wire's status to determine if any anomalies exist (such as abnormal grounding current, excessively high grounding resistance, or loose grounding wire). When the system detects an anomaly, it automatically triggers an alarm and sends real-time notifications to operators and relevant management personnel. The system stores all grounding wire monitoring data long-term and performs periodic retrospective analysis to help management personnel assess the long-term usage status of the grounding wire and identify potential hazards. Through data analysis, the system can predict the grounding wire's maintenance cycle and provide early warnings of equipment aging or damage.

[0038] In this embodiment of the application, the real-time acquisition of electrical data and physical status information of the grounding wire in step S100 includes: current, voltage, temperature, and physical status including loosening or breakage of the grounding wire.

[0039] In this embodiment of the application, step S100 further includes: a current sensor outputting a voltage signal proportional to the current flowing through the grounding wire, and determining the working state of the grounding wire based on the current change; a voltage sensor measuring the voltage across the grounding wire to determine the grounding and voltage status of the grounding wire; data from a temperature sensor used to determine the health status of the grounding wire; and a piezoelectric sensor used to detect the physical state of the grounding wire.

[0040] In an alternative embodiment, the current sensor can detect the magnitude of the current flowing through the grounding wire using the Hall effect or a current transformer.

[0041] Specifically, the current sensor outputs a voltage signal that is proportional to the current flowing through the grounding wire. Changes in the current directly reflect the operating state of the grounding wire, expressed as: I = V / R

[0042] Where I is the current flowing through the grounding wire, V is the output voltage of the current sensor, and R is the calibration constant of the current sensor. The current in the grounding wire can be calculated by measuring the voltage output by the current sensor.

[0043] Specifically, temperature sensors are used to monitor the temperature of the grounding wire. An increase in the grounding wire temperature usually indicates excessive grounding current or damage to the grounding wire. Temperature sensors calculate temperature by measuring changes in resistance. An increase in temperature may indicate an overload in the grounding wire, expressed as: T = f(RT).

[0044] Where T is the temperature of the grounding wire, and RT is the resistance of the temperature sensor.

[0045] Specifically, piezoelectric sensors are used to detect the physical condition of grounding wires, such as looseness or breakage. Damage to the grounding wire usually causes pressure or mechanical changes, which the piezoelectric sensor can detect and convert into an electrical signal. The output of the piezoelectric sensor can reflect the mechanical condition of the grounding wire, thereby determining whether it is loose or damaged; expressed as: P = k·Δx

[0046] Where P is the voltage output by the piezoelectric sensor, k is the piezoelectric constant, and Δx is the deformation of the grounding wire.

[0047] Furthermore, each sensor transmits real-time detected data, such as current, voltage, temperature, and piezoelectric signals, to a nearby wireless communication module. The communication module then transmits the data to the central monitoring system via low-power wide-area network technologies such as LoRa and NB-IoT. Each sensor periodically collects data, generating sampling data based on its internal sampling frequency. The sensor converts this data into digital signals and transmits them via the wireless module. The data is then transmitted to the central monitoring system via the wireless communication module. Both LoRa and NB-IoT technologies have long-range communication capabilities, enabling long-distance wireless transmission with low power consumption. The size D of the transmitted data packet is determined by the sampling frequency, the number of sensors n, and the number of bits b for each sensor, expressed as: D = f·n·b. The collected data is transmitted to the central system for further processing via a transmission protocol.

[0048] In this embodiment of the application, step S200 involves setting a grounding wire safety threshold, performing real-time analysis on the collected electrical data and physical state information of the grounding wire, and determining the abnormal state of the grounding wire, including:

[0049] If the measured current value is greater than the current threshold, the grounding wire is judged to be in a fault state; if the measured current value is not greater than the current threshold, the grounding wire is judged to be in a normal state.

[0050] Specifically, the system monitors the current value of the grounding wire in real time. If the current exceeds the set safety threshold, it is considered that there may be a fault in the grounding wire and an alarm is issued in time.

[0051] Formula: I threshold =k·I nominal

[0052] Among them, I threshold For the set current threshold, I nominal Here, I represents the current value during normal operation, and k is the safety factor. If I > I0 threshold If so, an alarm will be triggered.

[0053] If the calculated grounding resistance is greater than the preset safety upper limit, the grounding wire is considered to have poor contact; if the calculated grounding resistance is not greater than the preset safety upper limit, the grounding wire is considered to be working normally.

[0054] Specifically, the central system calculates the grounding resistance by monitoring the voltage and current of the grounding wire. If the resistance is too high, it indicates poor grounding performance and a potential safety hazard.

[0055] Formula: R = V / I

[0056] Where R is the grounding resistance, V is the voltage across the grounding wire, and I is the current flowing through the grounding wire. By calculating the grounding resistance, if R > R0... threshold This indicates a poor grounding and triggers an alarm.

[0057] In this embodiment of the application, step S200 further includes: if the measured temperature is greater than the temperature threshold, the grounding wire is determined to be in a fault state; if the measured temperature is not greater than the temperature threshold, the grounding wire is determined to be in a normal state.

[0058] Specifically, a temperature sensor monitors the temperature of the grounding wire. If the grounding wire temperature exceeds the safe range, it may indicate an overload or short circuit, triggering an alarm.

[0059] Formula: T threshold =T nominal +ΔT

[0060] Among them, T threshold T is the temperature threshold. nominal This represents the normal operating temperature, where ΔT is the temperature increment. If T > T0 threshold If this occurs, it indicates that the grounding wire is overheating and triggers an alarm.

[0061] If the detected deformation of the grounding wire is greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a fault state. If the detected deformation of the grounding wire is not greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a normal state.

[0062] Specifically, the piezoelectric sensor monitors the physical condition of the grounding wire, such as whether it is loose or broken. By analyzing the sensor data, if deformation is detected, it indicates that the grounding wire may be damaged, and an alarm will be triggered in time.

[0063] Formula: P threshold =k·Δx threshold

[0064] Among them, P threshold Δx is the threshold voltage of the piezoelectric sensor output voltage. threshold This is the threshold for changes in the physical state of the grounding wire. If Δx > Δx threshold This indicates that the grounding wire may be physically damaged, triggering an alarm.

[0065] In this embodiment of the application, in step S300, when the data collected by any sensing device exceeds a preset safety threshold, an alarm mechanism is triggered and a notification is sent to the operator.

[0066] It should be noted that by integrating current sensors, voltage sensors, temperature sensors, and piezoelectric sensors into the grounding wire, the electrical and physical states of the grounding wire (such as loosening or breakage) are monitored in real time, forming an intelligent grounding wire structure. The data collected by these multiple sensors is analyzed and compared in real time to identify dangerous situations such as abnormal current, excessive grounding resistance, excessive temperature, and abnormal physical structure (such as breakage), triggering alarms. By setting multi-dimensional threshold parameters (such as current threshold, resistance threshold, temperature threshold, and deformation threshold), once any dimension exceeds the preset safety range, an alarm mechanism is triggered, and notifications are sent to operators and the management platform. The monitoring data is stored long-term and periodically analyzed, supporting modeling of the grounding wire's state evolution trend and hazard warning. Through analysis of historical data, the system can intelligently assess the grounding wire's maintenance cycle, identify potential hazards in advance, and perform preventative maintenance, greatly improving equipment reliability and operational safety. Through data storage and analysis, the system provides decision support, helping managers optimize work processes and improve work efficiency.

[0067] Example 2 is an embodiment of the present invention. This embodiment differs from the first embodiment in that it provides a work safety monitoring system based on an intelligent grounding wire, comprising:

[0068] The data acquisition module is used to collect electrical data and physical status information of the grounding wire in real time;

[0069] The anomaly detection module is used to preset the grounding wire safety threshold, analyze the real-time collected electrical data and physical status information of the grounding wire, and determine the abnormal state of the grounding wire.

[0070] The monitoring module is used to trigger alarms and notify operators when an abnormal state is detected.

[0071] Specifically, when the modules of the work safety monitoring system based on intelligent grounding wire in this embodiment are executed, they implement the steps of the work safety monitoring method based on intelligent grounding wire in Embodiment 1, for example:

[0072] In one implementation, the work safety monitoring system based on a smart grounding wire can perform the following steps:

[0073] The grounding wire has built-in multi-source sensors to monitor the grounding status in real time. The monitoring data is transmitted to the central monitoring system via a wireless communication module for safety monitoring of electrical operations. The multi-source sensors include current sensors, voltage sensors, temperature sensors, and piezoelectric sensors.

[0074] The current sensor outputs a voltage signal proportional to the current flowing through the grounding wire, and determines the working status of the grounding wire based on the current change; the voltage sensor is used to measure the voltage across the grounding wire to determine the grounding and voltage status; the temperature sensor's data is used to determine the health status of the grounding wire; and the piezoelectric sensor is used to detect the physical condition of the grounding wire.

[0075] Real-time acquisition of electrical data and physical status information of the grounding wire, including current, voltage, temperature, and physical conditions such as loosening or breakage of the grounding wire.

[0076] If the measured current value is greater than the current threshold, the grounding wire is judged to be in a fault state; if the measured current value is not greater than the current threshold, the grounding wire is judged to be in a normal state.

[0077] If the calculated grounding resistance is greater than the preset safety upper limit, the grounding wire is considered to have poor contact; if the calculated grounding resistance is not greater than the preset safety upper limit, the grounding wire is considered to be working normally.

[0078] If the measured temperature is greater than the temperature threshold, the grounding wire is judged to be in a fault state; if the measured temperature is not greater than the temperature threshold, the grounding wire is judged to be in a normal state.

[0079] If the detected deformation of the grounding wire is greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a fault state. If the detected deformation of the grounding wire is not greater than the threshold for changes in the physical state of the grounding wire, the grounding wire is determined to be in a normal state.

[0080] When the data collected by any sensor exceeds the preset safety threshold, an alarm mechanism is triggered and a notification is sent to the operator.

[0081] This embodiment also provides an electronic device applicable to the work safety monitoring method based on intelligent grounding wires, including:

[0082] The system includes a memory and a processor. The memory stores computer-executable instructions, and the processor executes these instructions to implement the work safety monitoring method based on intelligent grounding wires as proposed in the above embodiments.

[0083] This embodiment also provides a storage medium storing a computer program that, when executed by a processor, implements the work safety monitoring method based on intelligent grounding wire as proposed in the above embodiments.

[0084] The storage medium proposed in this embodiment and the method for implementing work safety monitoring based on intelligent grounding wire proposed in the above embodiments belong to the same inventive concept. Technical details not described in detail in this embodiment can be found in the above embodiments, and this embodiment has the same beneficial effects as the above embodiments.

[0085] Based on the above description of the implementation methods, those skilled in the art can clearly understand that the present invention can be implemented using software and necessary general-purpose hardware, and of course, it can also be implemented using hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as a computer floppy disk, read-only memory (ROM), random access memory (RAM), flash memory, hard disk, or optical disk, etc., including several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods of the various embodiments of the present invention.

[0086] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A method for monitoring work safety based on a smart grounding line, characterized in that, Comprising: Real-time acquisition of electrical data and physical state information of the grounding wire; Pre-set grounding wire safety threshold, real-time analysis of the real-time acquired electrical data and physical state information of the grounding wire, and judgment of the abnormal state of the grounding wire; When detecting an abnormal state, triggering an alarm and notifying the operator.

2. The smart ground wire based job safety monitoring method of claim 1, wherein, Also comprising: The built-in multi-source sensing device of the grounding wire monitors the grounding state in real time, and the monitoring data is transmitted to the central monitoring system through the wireless communication module for safety monitoring of electrical work; Wherein the multi-source sensing device includes a current sensor, a voltage sensor, a temperature sensor, and a piezoelectric sensor.

3. The smart ground wire based job safety monitoring method of claim 2, wherein, Real-time acquisition of electrical data and physical state information of the grounding wire includes current, voltage, temperature, and physical state including grounding wire loosening and breaking.

4. The smart ground wire based job safety monitoring method according to claim 2 or 3, characterized in that, Also comprising: The current sensor outputs a voltage signal proportional to the current flowing through the grounding wire, and the working state of the grounding wire is judged based on the current change; the voltage sensor is used to measure the voltage across the grounding wire to judge the grounding and voltage state of the grounding wire; the data of the temperature sensor is used to judge the health condition of the grounding wire; The piezoelectric sensor is used to detect the physical state of the grounding wire.

5. The smart ground wire based job safety monitoring method of claim 4, wherein, Pre-set grounding wire safety threshold, real-time analysis of the real-time acquired electrical data and physical state information of the grounding wire, and judgment of the abnormal state of the grounding wire includes: If the measured current value is greater than the current threshold, the grounding wire is in a fault state, and if the measured current value is not greater than the current threshold, the grounding wire is in a normal state; If the calculated grounding resistance is greater than the pre-set upper limit value, the grounding wire is in poor contact, and if the calculated grounding resistance is not greater than the pre-set upper limit value, the grounding wire is in normal working condition.

6. The smart ground wire based job safety monitoring method of claim 5, wherein, Also comprising: If the measured temperature is greater than the temperature threshold, the grounding wire is in a fault state, and if the measured temperature is not greater than the temperature threshold, the grounding wire is in a normal state; If the detected deformation variable of the grounding wire is greater than the threshold of the physical state change of the grounding wire, the grounding wire is in a fault state, and if the detected deformation variable of the grounding wire is not greater than the threshold of the physical state change of the grounding wire, the grounding wire is in a normal state.

7. The smart ground wire based job safety monitoring method of claim 6, wherein, Comprising: When the data collected by any sensing device exceeds the pre-set safety threshold, the alarm mechanism is triggered and a notification is sent to the operator.

8. A smart grounding line based operation safety monitoring system applied to the method of any one of claims 1-7. Comprising: A data acquisition module for real-time acquisition of electrical data and physical state information of the grounding wire; An abnormality judgment module for pre-setting a grounding wire safety threshold, real-time analysis of the real-time acquired electrical data and physical state information of the grounding wire, and judgment of the abnormal state of the grounding wire; A monitoring module for triggering an alarm and notifying the operator when an abnormal state is detected. 9.An electronic device comprising: A memory and a processor; The memory is used to store computer executable instructions, and the processor is used to execute the computer executable instructions, which realize the steps of the safety monitoring method of the work based on the intelligent grounding wire in any one of claims 1 to 7 when executed by the processor.

10. A computer readable storage medium storing computer executable instructions that, when executed by a processor, implement the steps of the method for monitoring safety of work based on intelligent grounding line according to any one of claims 1 to 7.