An integrated self-powered environmental monitoring system

Through an integrated self-powered environmental monitoring system, the self-powered and data acquisition unit is integrated, and the neural network model is combined to conduct comprehensive abnormal judgments, which solves the problems of inconvenience in power supply and complex installation of traditional equipment, and achieves stable and reliable environmental monitoring.

CN120063386BActive Publication Date: 2025-08-01BAIYIN YINZHU ELECTRIC POWER GRP CO LTD
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Patent Information

Application Number
CN202510518067.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-08-01
Estimated Expiration
2045-04-24

AI Technical Summary

Technical Problem

Traditional split environmental monitoring equipment has problems such as complex installation, high failure risk, inconvenient power supply and poor protection caused by independent power supply and data acquisition systems, especially in remote areas, which are difficult to effectively monitor.

Method used

Design an integrated self-powered environmental monitoring system, integrating self-powered units, environmental element monitoring units, data acquisition units, radio frequency/antenna units, battery units and remote management platforms, collect and manage electricity through self-powered units, combine the cyclic neural network model to conduct comprehensive abnormal judgments, reduce installation steps and external connections, and improve system reliability and accuracy.

Benefits of technology

It realizes stable power supply in remote areas, reduces installation difficulty and failure risk, improves the accuracy and reliability of monitoring data, and ensures the continuity and efficiency of environmental monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of environmental monitoring, and discloses an integrated self-powered environmental monitoring system, which includes a self-powered unit, an environmental element monitoring unit, a data acquisition unit, a battery unit, a power management unit and a remote management platform. The self-powered unit collects environmental energy and converts it into electrical energy to ensure the power supply of the system. The environmental element monitoring unit monitors the characteristic parameters of the micro-meteorological environment in real time; the data acquisition unit processes and stores data, and interacts with the remote management platform through the radio frequency / antenna unit. The remote management platform uses the monitoring data analysis unit to judge whether the environment is abnormal and issue early warnings. The beneficial effects are remarkable. The integrated design simplifies the installation process and improves the construction efficiency; the self-powered function solves the power supply problem in remote areas; the integrated power management and remote interaction system is convenient for real-time maintenance and adjustment, and has good application prospects in the field of environmental monitoring.
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Description

Technical Field

[0001] The present invention relates to the field of environmental monitoring, and particularly to an integrated self-powered environmental monitoring system. Background Art

[0002] In the field of environmental monitoring, traditional split-type environmental monitoring equipment has many drawbacks. Its power supply system and data acquisition system are independent of each other. During installation, complex wiring and debugging work need to be carried out separately, consuming a large amount of human, material and time costs. Moreover, the protection of each part is difficult to unify and the overall protection performance is not good. In harsh outdoor environments, such as rainstorms, sandstorms and other weather conditions, the equipment is easily damaged, resulting in interrupted or inaccurate monitoring data. In addition, the split-type equipment has a large number of connections, which not only increases the risk of failure, but also affects the system reliability due to problems such as wire aging and poor contact.

[0003] In remote areas, due to the difficulty of pulling electricity, the power supply of traditional monitoring equipment has become a problem. If battery power supply is used, it is extremely inconvenient to replace the battery frequently. These problems seriously restrict the efficient development of environmental monitoring work and the improvement of the quality of monitoring data. Therefore, it is urgent to develop an integrated self-powered environmental monitoring system. Summary of the Invention

[0004] The purpose of the present invention is to provide an integrated self-powered environmental monitoring system to solve the above technical problems.

[0005] The purpose of the present invention can be achieved by the following technical solutions:

[0006] An integrated self-powered environmental monitoring system arranges environmental monitoring equipment according to preset monitoring points. The environmental monitoring equipment includes:

[0007] A self-powered unit for collecting energy in the environment and converting it into electric energy to supply power to the entire system;

[0008] An environmental element monitoring unit for real-time monitoring of various micro-meteorological environmental characteristic parameters to obtain micro-meteorological environmental data;

[0009] A data acquisition unit that preprocesses the micro-meteorological environmental data as environmental monitoring data and stores it locally;

[0010] A radio frequency / antenna unit for realizing remote data transmission and interaction between the data acquisition unit and the remote management platform, sending the processed environmental monitoring data to the remote management platform, and receiving instructions from the remote management platform at the same time;

[0011] A battery unit for storing electric energy and supplying it to the data acquisition unit and the environmental element monitoring unit;

[0012] The remote management platform stores environmental monitoring data in a database, and through the monitoring data analysis unit, first, according to the environmental monitoring data, the environmental anomaly degree is obtained through the environmental anomaly analysis model; then, the data change amount of each micro-meteorological environmental characteristic parameter is calculated;

[0013] Based on the comprehensive comparison result of the environmental anomaly degree, the data change amount with the preset warning threshold and change reference value, and combined with the result of power analysis, comprehensively judge whether there is an anomaly in the current environment. If there is an anomaly, an early warning instruction is generated in a timely manner and sent to the specified terminal.

[0014] In a further solution, the micro-meteorological environmental characteristic parameters include: atmospheric pressure, wind speed, precipitation, temperature, humidity, and light intensity;

[0015] The system further includes: a power management unit for managing the electric energy input by the self-power supply unit, supplying power to the battery unit and the data acquisition unit respectively according to requirements, and recording the data of the battery unit.

[0016] In a further solution, the working process of the monitoring data analysis unit includes:

[0017] When the environmental anomaly degree > warning threshold and the data change amount of at least one micro-meteorological environmental characteristic parameter exceeds the corresponding change reference value, it is determined that there is an anomaly in the current environment and early warning is required; otherwise, it is determined that there is no anomaly in the current environment.

[0018] In a further solution, the working process of the monitoring data analysis unit further includes:

[0019] When it is determined that there is an anomaly in the current environment, the current moment is recorded as t2, and the starting moment t1 is obtained after tracing back a preset time period backward;

[0020] Conduct power analysis on the t1 - t2 time period to determine whether the monitoring anomaly is caused by insufficient power during the t1 - t2 time period;

[0021] If the power is insufficient, further verify the environmental monitoring data and the data of associated monitoring points;

[0022] If it is confirmed that the misjudgment is caused by insufficient power, the early warning is abandoned; otherwise, an early warning instruction is generated immediately and sent to the specified terminal.

[0023] In a further solution, the formula for calculating the data change amount occurring for each micro-meteorological environmental characteristic parameter is: ;

[0024] In the formula, 、 respectively represent the range and change amount of the th micro-meteorological environmental characteristic parameter; , is a weighting factor with a value range of [0, 1], and is obtained based on historical data analysis;

[0025] , , respectively represent the maximum and minimum values of the th micro-meteorological environment characteristic parameter during the time period from t1 to t2;

[0026] ; is the th micro-meteorological environment characteristic parameter curve changing with time.

[0027] In a further solution, the process of analyzing the power consumption during the time period from t1 to t2 is as follows:

[0028] Obtain the power data of the battery unit during the time period from t1 to t2, including the battery voltage and current change curves;

[0029] If the battery voltage is lower than the preset normal operating voltage threshold and the current change shows abnormal fluctuations, it is determined that there is a power shortage situation.

[0030] In a further solution, the process of judging abnormal fluctuations in current change is as follows:

[0031] Obtain the starting current value and ending current value corresponding to t1 and t2 respectively;

[0032] Through the formula: current change value = |ending current value - starting current value|, calculate the current change value;

[0033] When the current change value > the current change threshold, it is determined that there are abnormal fluctuations in the battery current change during the time period from t1 to t2.

[0034] In a further solution, the process of further verifying the environmental monitoring data and the associated monitoring point data includes:

[0035] Taking the current monitoring point as the center, regard other monitoring points within the coverage area with a preset range d as the associated monitoring points;

[0036] Through the formula: Calculate the difference degree between the current monitoring point and the nearest associated monitoring point ; represents the difference degree reference value obtained based on historical data, represents the th micro-meteorological environment characteristic parameter curve changing with time of the associated monitoring point;

[0037] When ≤ difference threshold If so, it is determined that the misjudgment is caused by insufficient power.

[0038] Advantages of the present invention:

[0039] The present invention makes a comprehensive judgment by combining the data changes of various micro-meteorological environment characteristic parameters, the preset warning threshold, and the change reference value, considers the environmental state from multiple perspectives, avoids the limitations of a single judgment index, improves the accuracy of judging whether there is an abnormality in the current environment, and provides a strong guarantee for timely discovering environmental problems. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] The present invention will be further described below with reference to the accompanying drawings.

[0041] Figure 1 It is a schematic structural diagram of the system of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0042] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0043] Please refer to Figure 1 As shown, the present invention is an integrated self-powered environmental monitoring system. Environmental monitoring devices are arranged according to preset monitoring points. The environmental monitoring devices include:

[0044] Self-powered unit, which is used to collect energy from the environment and convert it into electrical energy to power the entire system; The system is equipped with a self-powered unit, which can collect solar energy and wind energy from the environment and convert them into electrical energy to power the entire system, enabling the environmental monitoring equipment to work normally in remote areas or places with inconvenient power supply, getting rid of the dependence on the external power grid, achieving energy self-sufficiency, and greatly expanding the application scope of environmental monitoring; Among them, the self-powered unit mainly consists of a solar energy collection component, a wind energy collection component, and an energy conversion and integration module; The solar energy collection component uses high-efficiency solar panels, and its working principle is based on the photovoltaic effect to achieve the direct conversion of solar energy into electrical energy; The wind energy collection component uses a small wind turbine. According to the law of electromagnetic induction, an induced electromotive force will be generated in the stator winding of the generator, and then electrical energy will be output to complete the conversion of wind energy into electrical energy; For the integration of electrical energy converted from multiple energy sources, the energy conversion and integration module first rectifies and filters the electrical energy output by the solar panels and wind turbines, converting unstable alternating current or direct current into stable direct current; Then, through a power regulation circuit, according to the real-time power consumption requirements of each part of the system, the integrated electrical energy is reasonably distributed and scheduled. For example, when solar energy is sufficient and the wind is small, solar energy is preferentially used for power supply, and the excess electrical energy is stored in the battery unit; When the wind is strong and solar energy is insufficient, wind energy is mainly relied on for power supply. At the same time, the energy conversion and integration module also has the functions of voltage stabilization and current stabilization to ensure that the electrical energy output to the system is stable and reliable, meeting the normal working requirements of each part such as the data acquisition unit and the environmental element monitoring unit in the system.

[0045] Environmental element monitoring unit, which is used to monitor various micro-meteorological environment characteristic parameters in real time to obtain micro-meteorological environment data;

[0046] Data acquisition unit, which preprocesses the micro-meteorological environment data as environmental monitoring data and stores it locally; The method of data preprocessing is an existing technology, so it will not be elaborated.

[0047] Radio frequency / antenna unit, which is used to realize the remote data transmission and interaction between the data acquisition unit and the remote management platform, send the processed environmental monitoring data to the remote management platform, and receive the instructions from the remote management platform at the same time.

[0048] Battery unit, which is used to store electrical energy and supply it to the data acquisition unit and the environmental element monitoring unit.

[0049] Remote management platform, which stores the environmental monitoring data in the database, and through the monitoring data analysis unit, first obtains the environmental anomaly degree according to the environmental monitoring data through the environmental anomaly analysis model; Then calculate the data change amount of each micro-meteorological environment characteristic parameter.

[0050] Compare the comprehensive environmental anomaly degree, the data change amount with the preset warning threshold and the change reference value, and then combine the result of the power analysis to comprehensively judge whether there is an anomaly in the current environment. If there is an anomaly, generate a warning instruction in time and send it to the specified terminal.

[0051] In the present invention, the above-mentioned multiple units are all integrated in the environmental monitoring device to form an integrated design. The integrated design integrates each key part into a whole, abandons the cumbersome process of traditional split installation, and there is no need to install the power supply system and the data acquisition system separately, greatly reducing the installation steps and the number of external connections. This not only reduces the construction difficulty and time cost, but also reduces the risk of failures caused by improper construction, improves the reliability of the overall system, and ensures that the monitoring work can be carried out stably and continuously. At the same time, the environmental monitoring device is also provided with a protection unit for protecting and discharging the external input interference to protect the internal system. At the same time, the external of the environmental monitoring device adopts a waterproof structure with a high protection level, effectively resisting the interference of the external environment and correspondingly reducing the waterproof level requirement for the internal unit.

[0052] The micro-meteorological environment characteristic parameters include: atmospheric pressure, wind speed, precipitation, temperature, humidity and light intensity;

[0053] The system further includes: a power management unit for managing the electric energy input by the self-power supply unit, supplying power to the battery unit and the data acquisition unit respectively according to requirements, and recording the data of the battery unit.

[0054] The working process of the monitoring data analysis unit includes:

[0055] When the environmental anomaly degree > the warning threshold and the data change amount of at least one micro-meteorological environment characteristic parameter exceeds the corresponding change reference value, it is judged that there is an anomaly in the current environment and a warning is needed; otherwise, it is judged that there is no anomaly in the current environment.

[0056] By using the pre-trained recurrent neural network model to calculate the environmental anomaly degree, it is possible to learn and capture the complex environmental data characteristics and laws. Compared with simple threshold judgment or traditional analysis methods, the recurrent neural network model can perform in-depth analysis on the multi-dimensional micro-meteorological environment characteristic parameter data, fully considering the mutual correlation and influence between the parameters, so as to more accurately evaluate the anomaly degree of the environment. At the same time, combining the data change amount of each micro-meteorological environment characteristic parameter and the preset warning threshold and change reference value for comprehensive judgment, considering the environmental state from multiple angles, avoiding the limitation of a single judgment index, improving the accuracy of judging whether there is an anomaly in the current environment, and providing a strong guarantee for timely discovering environmental problems;

[0057] Under different geographical regions and climate conditions, the variation ranges and laws of environmental characteristic parameters are different. The preset warning thresholds and change reference values can be flexibly adjusted according to the actual situation. Moreover, the recurrent neural network model can also maintain good performance under different data distributions and still operate stably and reliably in a complex and changeable environment, accurately identifying environmental anomalies, reducing the occurrence of misjudgments and missed judgments, and providing stable and reliable technical support for environmental monitoring work.

[0058] The working process of the monitoring data analysis unit further includes:

[0059] When it is determined that there is an anomaly in the current environment, the current moment is recorded as t2, and the starting moment t1 is obtained after tracing back a preset time period backward;

[0060] Perform power analysis on the time period from t1 to t2 to determine whether the monitoring anomaly is caused by insufficient power during the time period from t1 to t2;

[0061] If the power is insufficient, further verify the environmental monitoring data and the data of associated monitoring points;

[0062] If it is confirmed that the misjudgment is caused by insufficient power, the warning is abandoned; otherwise, a warning instruction is immediately generated and sent to the specified terminal.

[0063] In the present invention, in order to solve the problems that the anomaly warning mechanism of existing environmental monitoring equipment lacks comprehensiveness and accuracy, most systems do not take the power factor into consideration in the anomaly judgment, resulting in false warnings still being issued when the accuracy of monitoring data is affected by insufficient power, causing interference to relevant decision-making and processing work; or when there is a real environmental anomaly, the warning is delayed due to the lack of consideration of the power problem, and corresponding measures cannot be taken in time. For example, when the power of the monitoring equipment is insufficient, the frequency and accuracy of data collected by the sensor may decrease, and the resulting data fluctuations are easily misjudged as environmental anomalies. When the equipment has normal power but the environment actually changes abnormally, relevant personnel may not be notified in time due to the imperfect warning process.

[0064] Therefore, in the present invention, when the environmental anomaly degree is greater than the warning threshold, power analysis is performed on the time period from t1 to t2. By obtaining the voltage and current change curves of the battery unit, it is judged whether there is a situation of insufficient power, so as to be able to timely detect the monitoring data anomaly caused by the power problem, avoid misjudging the data fluctuations caused by insufficient power as real environmental anomalies, and thus reduce unnecessary warning information and improve the accuracy and reliability of the warning. For example, when the battery power is low, the operation of the sensor may be affected, resulting in abnormal fluctuations in the monitoring data. If power analysis is not performed, an environmental anomaly warning may be wrongly issued, and this process can effectively avoid such situations.

[0065] Moreover, when it is judged that there may be insufficient power, the environmental monitoring data and the associated monitoring point data are further verified, and the judgment is made in combination with the historical difference reference value and the difference threshold. This multi-dimensional verification method comprehensively considers the environmental data differences between different monitoring points and the historical data rules, and can more comprehensively and accurately judge whether the abnormal situation is a misjudgment caused by insufficient power. If it is confirmed through verification that the misjudgment is caused by insufficient power, the early warning is abandoned, avoiding false warnings for the normal environmental state; if the factor of insufficient power is excluded or it cannot be determined as the main cause, an early warning instruction is generated in a timely manner to ensure that real environmental anomalies can be processed in a timely manner, further improving the early warning accuracy and effectiveness of the environmental monitoring system.

[0066] Calculate the data change amount that occurs for each micro-meteorological environmental characteristic parameter The formula is: ; It can comprehensively consider the dispersion degree of the micro-meteorological environmental characteristic parameter (i.e., the range) and the change trend over time (i.e., the change amount) to comprehensively measure the change of the parameter, providing a more accurate data basis for environmental anomaly judgment.

[0067] In the formula, 、 respectively represent the range and the change amount of the th micro-meteorological environmental characteristic parameter; 、 are weight factors and the value range is [0, 1], ; The weight factors are obtained based on historical data analysis and can be flexibly adjusted according to different monitoring focuses and application scenarios, because different micro-meteorological environmental characteristic parameters have different importance in environmental anomaly judgment.

[0068] , 、 respectively represent the maximum value and the minimum value of the th micro-meteorological environmental characteristic parameter within the time period from t1 to t2; The range can intuitively reflect the fluctuation range of the parameter within this time period and reflect the dispersion degree of the data; A larger range means a large change range of the parameter, and there may be unstable factors, which has important reference value for environmental anomaly judgment; For example, when monitoring the wind speed, a large range indicates that the wind speed changes violently during this time period, which may indicate that the weather condition is unstable and there is a possibility of environmental anomaly.

[0069] ; is the The curve of the variation of micro-meteorological environment characteristic parameters with time. Calculate the rate of change of each parameter with time, which reflects its change within a unit time, can capture the dynamic change trend of the parameter, and understand the speed of environmental change; for example, if the temperature rises or drops rapidly within a short time, the change amount will be relatively large, indicating that the environmental temperature change is abnormal and may affect the balance of the ecosystem.

[0070] In the present invention, a formula for specifically calculating the change amount of micro-meteorological environment characteristic parameter data is provided. , through the range and the change amount calculation and combined with the weight factor, it is possible to quantify the change of each parameter with time, so as to more accurately analyze the dynamic change trend of environmental parameters, timely discover small but possibly significant environmental changes, provide more detailed data basis for environmental anomaly judgment, and improve the accuracy of environmental monitoring.

[0071] The process of analyzing the battery power for the time period from t1 to t2 is as follows:

[0072] Obtain the battery power data within the time period from t1 to t2, including the battery voltage and current change curves;

[0073] If the battery voltage is lower than the preset normal operating voltage threshold and the current change shows abnormal fluctuations, it is determined that there is a power shortage situation.

[0074] In the present invention, by obtaining the battery voltage and current change curves and combining with the preset normal operating voltage threshold to judge whether the power is insufficient, it is possible to more accurately identify the power supply state of the battery, timely discover the power shortage situation, avoid affecting the normal operation of the sensor and data acquisition unit due to power shortage, thereby ensuring the reliability and accuracy of the monitoring data, and providing a reliable data basis for subsequent environmental analysis and decision-making; when it is determined that there is a power shortage situation, the system can timely issue a prompt or warning message to remind the staff to take measures in time, such as replacing the battery, checking the self-powered unit, etc., which can prevent system failures caused by power problems in advance, reduce the occurrence of data loss and monitoring interruption, and ensure the continuity of environmental monitoring work.

[0075] The judgment process for abnormal fluctuations in current change is as follows:

[0076] Obtain the starting current value and ending current value corresponding to the times t1 and t2 respectively;

[0077] The current change value is calculated through the formula: current change value = |ending current value - starting current value|; the absolute value is used to calculate the current change value in order to uniformly measure the amplitude of current increase or decrease without considering the direction of current change; whether the current suddenly increases or decreases, it may have an adverse impact on the system. For example, a sudden increase in current may cause equipment overload, and a sudden decrease may affect the normal operation of the equipment. Therefore, only focusing on the absolute value of the change can more directly reflect the severity of the current change, facilitating subsequent comparison with the threshold to determine whether it is abnormal.

[0078] When the current change value > the current change threshold, it is determined that there is an abnormal fluctuation in the battery current change during the time period t1 - t2.

[0079] In the present invention, the simple and intuitive formula current change value = |ending current value - starting current value| is used to calculate the current change value, and it is compared with the current change threshold to determine whether there is an abnormal fluctuation in the current. It is easy to implement, can quickly and effectively identify abnormal conditions of the battery current, and helps to judge whether the working state of the battery is stable. Stable current output is the key to ensuring the normal operation of all parts of the system. By monitoring current fluctuations, potential power supply problems can be detected in a timely manner to ensure the stability of the system power supply; at the same time, timely detection of abnormal current fluctuations helps to avoid damage to the system hardware caused by unstable current. For example, excessive current fluctuations may burn out key components such as sensors and chips. By real-time monitoring of current changes and taking immediate measures such as cutting off the power supply or adjusting the power supply strategy once abnormal fluctuations are detected, the system hardware can be effectively protected, the service life of the equipment can be extended, and the maintenance cost can be reduced.

[0080] The process of further verifying the environmental monitoring data and the associated monitoring point data includes:

[0081] Taking the current monitoring point as the center, other monitoring points within the coverage area with a preset range d as the radius are used as associated monitoring points;

[0082] Through the formula: The difference degree between the current monitoring point and the nearest associated monitoring point is calculated ; represents the difference degree reference value obtained based on historical data, represents the curve of the change of the th micro-meteorological environment characteristic parameter of the associated monitoring point over time; by calculating the difference degree, the difference situation between the current monitoring point and the associated monitoring point data can be quantified; if the difference degree is small and close to the difference degree reference value during historical power shortage, then it is more likely that the abnormal data of the current monitoring point is caused by power shortage rather than real environmental abnormality; on the contrary, if the difference degree is large and significantly different from the historical reference value, it indicates that there may be a real environmental abnormality or other factors affecting, which helps to improve the accuracy of judgment and avoid misjudgment.

[0083] When ≤ difference threshold it is determined that the misjudgment is caused by insufficient power.

[0084] In the present invention, with the current monitoring point as the center, associated monitoring points within a preset range are selected for data comparison, and by calculating the difference degree and comparing it with the historical difference degree reference value to determine whether the misjudgment is caused by insufficient power. This method comprehensively considers the environmental data of surrounding monitoring points, effectively avoids misjudgments that may be caused by abnormal data of a single monitoring point, improves the accuracy of early warning, reduces interference from unnecessary early warning information, enables relevant personnel to more accurately judge environmental anomalies, and take corresponding measures in a timely manner; at the same time, by further verifying the data of associated monitoring points, the abnormal judgment mechanism is improved, and the accuracy and reliability of the system's judgment of environmental anomalies are enhanced; in complex environmental monitoring scenarios, the method of comparative analysis of multiple monitoring points can more comprehensively reflect environmental changes, effectively eliminate false judgments caused by local interference or equipment failures, improve the monitoring quality of the entire environmental monitoring system, and provide a more reliable basis for environmental research and protection.

[0085] It should be noted that: the calculation formulas and each parameter participating in the operation in the present invention are all pre - processed through dimensionless processing, and the process of dimensionless processing is well - known in the industry and will not be described here.

[0086] The above has described a detailed embodiment of the present invention, but the content described is only a preferred embodiment of the present invention and cannot be considered as limiting the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the present invention application should still fall within the patent coverage scope of the present invention.

Claims

1. An integrated self-powered environmental monitoring system, characterized in that, Arrange environmental monitoring equipment according to preset monitoring points. The environmental monitoring equipment includes: A self-power supply unit, which is used to collect energy in the environment and convert it into electric energy to supply power to the entire system; An environmental element monitoring unit, which is used to monitor various micro-meteorological environment characteristic parameters in real time to obtain micro-meteorological environment data; A data acquisition unit, which preprocesses the micro-meteorological environment data as environmental monitoring data and stores it locally; A radio frequency / antenna unit, which is used to realize remote data transmission and interaction between the data acquisition unit and the remote management platform, send the processed environmental monitoring data to the remote management platform, and receive instructions from the remote management platform at the same time; A battery unit, which is used to store electric energy and supply it to the data acquisition unit and the environmental element monitoring unit; A remote management platform, which stores the environmental monitoring data in a database, and through a monitoring data analysis unit, first according to the environmental monitoring data, obtains the environmental anomaly degree through an environmental anomaly analysis model; then calculates the data change amount of each micro-meteorological environment characteristic parameter; Based on the comprehensive comparison results of the environmental anomaly degree, the data change amount with the preset warning threshold and the change reference value, and combined with the result of the power analysis, comprehensively judge whether there is an anomaly in the current environment. If there is an anomaly, generate a warning instruction in time and send it to the specified terminal; The working process of the monitoring data analysis unit includes: When the environmental anomaly degree > the warning threshold and the data change amount of at least one micro-meteorological environment characteristic parameter exceeds the corresponding change reference value, it is judged that there is an anomaly in the current environment and early warning is needed; otherwise, it is judged that there is no anomaly in the current environment; The working process of the monitoring data analysis unit also includes: When it is judged that there is an anomaly in the current environment, record the current moment as t2, and obtain the starting moment t1 after tracing back a preset time period backward; Conduct a power analysis on the time period from t1 to t2 to judge whether the monitoring anomaly is caused by insufficient power during the time period from t1 to t2; If the power is insufficient, further check the environmental monitoring data and the data of associated monitoring points; If it is confirmed that the misjudgment is caused by insufficient power, the early warning is abandoned; otherwise, a warning instruction is generated immediately and sent to the specified terminal.

2. The integrated self-powered environmental monitoring system according to claim 1, characterized in that, The micro-meteorological environment characteristic parameters include: atmospheric pressure, wind speed, precipitation, temperature, humidity and light intensity; The system also includes: a power management unit, which is used to manage the electric energy input by the self-power supply unit, supply power to the battery unit and the data acquisition unit respectively according to requirements, and record the data of the battery unit.

3. The integrated self-powered environmental monitoring system according to claim 1, characterized in that Calculate the data change amount that occurs for each micro-meteorological environment characteristic parameter The formula is as follows: ; In the formula, and respectively represent the range and change amount of the -th micro-meteorological environment characteristic parameter; and are weight factors and the value range is [0, 1], , obtained based on historical data analysis; , and respectively represent the maximum and minimum values of the th micro-meteorological environment characteristic parameter in the time period from t1 to t2; ; is the curve of the th micro-meteorological environment characteristic parameter changing with time.

4. The integrated self-powered environmental monitoring system according to claim 1, wherein The process of conducting a power analysis on the time period from t1 to t2 is: Obtain the power data of the battery unit during the time period from t1 to t2, including the battery voltage and current change curve; If the battery voltage is lower than the preset normal working voltage threshold and the current change shows abnormal fluctuations, it is judged that there is a situation of insufficient power.

5. The integrated self-powered environmental monitoring system according to claim 4, wherein The judgment process of abnormal fluctuations in current change is: Obtain the starting current value and the ending current value corresponding to the moments t1 and t2 respectively; Calculate the current change value through the formula: current change value = |ending current value - starting current value|; When the current change value > the current change threshold, it is judged that there are abnormal fluctuations in the battery current during the time period from t1 to t2.

6. The integrated self-powered environmental monitoring system according to claim 3, characterized in that The process of further verifying the environmental monitoring data and the data of associated monitoring points includes: Taking the current monitoring point as the center, other monitoring points within the coverage area with a preset range d as the radius are regarded as associated monitoring points; Through the formula: Calculate the difference degree between the current monitoring point and the nearest associated monitoring point ; Represents the difference degree reference value obtained based on historical data, Represents the curve of the th micro-meteorological environment characteristic parameter of the associated monitoring point changing with time; When ≤ difference threshold it is determined that the misjudgment is caused by insufficient power.

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