Electromagnetic environment photovoltaic energy storage monitoring device

By using a photovoltaic energy storage monitoring device for electromagnetic environment, combined with an electromagnetic radiation monitoring probe and photovoltaic panel components, the problems of long time consumption, high power consumption, and low detection accuracy in existing technologies have been solved. This device enables low-power real-time three-dimensional omnidirectional monitoring and automated alarm, improving the accuracy and efficiency of electromagnetic environment monitoring.

CN224152568UActive Publication Date: 2026-04-21GUANGDONG ENVIRONMENTAL RADIATION MONITORING CENT +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG ENVIRONMENTAL RADIATION MONITORING CENT
Filing Date
2025-04-17
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing electromagnetic environment monitoring methods are time-consuming and power-intensive, cannot achieve automatic remote monitoring around the clock, have low detection accuracy, cannot achieve three-dimensional all-round monitoring, lack alarm and early warning functions, and cannot achieve fault location and status assessment.

Method used

The electromagnetic environment photovoltaic energy storage monitoring device includes a cabin, an electromagnetic radiation monitoring probe, and photovoltaic panels. The photovoltaic panels reduce energy consumption and enable real-time and three-dimensional omnidirectional monitoring. It is equipped with an energy storage inverter and a power consumption unit, and integrates a display screen and a smoke sensor to achieve automated data transmission and fault alarm.

Benefits of technology

It achieves low-power real-time electromagnetic environment monitoring, improves detection accuracy and monitoring efficiency, has comprehensive automatic real-time monitoring capabilities, and has alarm and early warning functions, thereby improving the accuracy and efficiency of operation and maintenance work.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a photovoltaic energy storage monitoring device for an electromagnetic environment. The photovoltaic energy storage monitoring device comprises a cabin body, an electromagnetic radiation monitoring probe installed on the top wall of the cabin body, and a photovoltaic panel assembly installed on the top wall of the cabin body. Telescopic plates are arranged on the two sides of the top wall of the cabin body, and photovoltaic panel assemblies are installed on the telescopic parts of the telescopic plates. The photovoltaic panel assembly is connected with a power utilization unit through an energy storage inverter, commercial power is connected with an energy storage battery through the energy storage inverter, and the photovoltaic panel assembly is connected with the energy storage battery. Real-time measurement of signals is realized through the electromagnetic radiation monitoring probe, and energy consumption of the monitoring device is reduced through the photovoltaic panel assembly. The device can be widely applied to the technical field of automatic monitoring.
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Description

Technical Field

[0001] This utility model relates to the field of automatic monitoring technology, and in particular to an electromagnetic environment photovoltaic energy storage monitoring device. Background Technology

[0002] With the rapid development of society and economy, facilities that generate electromagnetic radiation, such as power transmission and transformation facilities, television stations, mobile communication base stations, and high-voltage substations, are ubiquitous. Various power transmission and transformation equipment in power transmission and transformation stations, including power transformers, high-voltage circuit breakers, disconnecting switches, and current transformers, generate electromagnetic radiation during operation. A large amount of electromagnetic radiation is generated during the design and manufacturing process of these devices. For safety reasons, it is necessary to measure the electromagnetic radiation and install grounding structures and other measures to shield the electromagnetic radiation from its impact on the environment and surroundings.

[0003] In related technologies, electromagnetic monitoring methods usually require manual handheld measurement instruments, which is time-consuming, cannot meet the requirements of comprehensive monitoring, has low monitoring efficiency, and consumes a lot of power. Utility Model Content

[0004] The purpose of this utility model is to at least partially solve one of the technical problems existing in the related technologies.

[0005] Therefore, one objective of this utility model is to provide a low-power electromagnetic environment photovoltaic energy storage monitoring device, comprising:

[0006] This utility model provides an electromagnetic environment photovoltaic energy storage monitoring device, comprising: a cabin, an electromagnetic radiation monitoring probe installed on the top wall of the cabin, and a photovoltaic panel assembly installed on the top wall of the cabin; retractable plates are provided on both sides of the top wall of the cabin, and the photovoltaic panel assembly is installed on the retractable portion of the retractable plates; the photovoltaic panel assembly is connected to a power consumption unit through an energy storage inverter, and the mains power is connected to an energy storage battery through the energy storage inverter, and the photovoltaic panel assembly is connected to the energy storage battery. This application achieves real-time signal measurement through the electromagnetic radiation monitoring probe and reduces the energy consumption of the monitoring device through the photovoltaic panel assembly.

[0007] In addition, the electromagnetic environment photovoltaic energy storage monitoring device according to the above embodiments of this utility model may also have the following additional technical features:

[0008] Furthermore, in one embodiment of this utility model, the electromagnetic radiation monitoring probe includes a power frequency electromagnetic field monitoring probe and a radio frequency electric field monitoring probe. The electric field antenna of the power frequency electromagnetic field monitoring probe is a flat plate, and the magnetic induction intensity antenna of the power frequency electromagnetic field monitoring probe is a coil type. The antennas of the power frequency electromagnetic field monitoring probe are distributed in the sagittal plane, the coronal plane, and the horizontal plane. The electric field antenna of the radio frequency electric field monitoring probe is a dipole antenna type, and the antennas are distributed in the sagittal plane, the coronal plane, and the horizontal plane.

[0009] Furthermore, in one embodiment of this utility model, the electromagnetic radiation monitoring probe includes a triaxial omnidirectional antenna, which includes an integrated triaxial loop antenna and a triaxial monopole antenna. The probe test frequency range of the triaxial omnidirectional antenna is 100kHz-6GHz.

[0010] Furthermore, in one embodiment of this utility model, an office compartment is provided in the cabin, and a display screen is installed on one side wall of the cabin, the display screen being connected to the office compartment.

[0011] Furthermore, in one embodiment of this utility model, the material of one side wall of the cabin is electro-fogging glass.

[0012] Furthermore, in one embodiment of this utility model, the material of the cabin is galvanized sheet coated with metallic fluorocarbon paint.

[0013] Furthermore, in one embodiment of this utility model, the power consumption unit includes an air conditioner, lighting, and a display screen, and the mains power is connected to the power consumption unit through a surge protection unit.

[0014] Furthermore, the monitoring device also includes: a power cord, one end of which is placed in a first probe hole on the top wall of the cabin, and the other end of which is placed in a group of holes on the bottom wall of the cabin;

[0015] An optical fiber, one end of which is placed in the first probe hole on the top wall of the cabin, and the other end of which is placed in a group of holes on the bottom wall of the cabin;

[0016] A communication antenna, one end of which is placed in the second probe hole on the top wall of the cabin, and the other end of which is placed in the group of holes on the bottom wall of the cabin;

[0017] A radio frequency (RF) cable, one end of which is placed in the third probe hole on the top wall of the cabin, and the other end of which is placed in the hole group on the bottom wall of the cabin.

[0018] Furthermore, in one embodiment of the present invention, the monitoring device further includes a power distribution box, which is placed on the side wall of the cabin, with one end of a wire connected to the power distribution box and the other end of the wire connected to the power consumption unit.

[0019] Furthermore, in one embodiment of the present invention, the monitoring device further includes a smoke sensor, which is placed on the top wall of the cabin and is used to detect smoke inside the cabin. One end of the smoke sensor network cable is connected to the smoke sensor, and the other end of the smoke sensor network cable is connected to a group of holes on the bottom wall of the cabin.

[0020] The advantages and beneficial effects of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention:

[0021] This application discloses an electromagnetic environment photovoltaic energy storage monitoring device, comprising: a cabin, an electromagnetic radiation monitoring probe installed on the top wall of the cabin, and a photovoltaic panel assembly installed on the top wall of the cabin; retractable plates are provided on both sides of the top wall of the cabin, and the photovoltaic panel assembly is installed on the retractable portion of the retractable plates; the photovoltaic panel assembly is connected to a power consumption unit through an energy storage inverter, and the mains power is connected to an energy storage battery through the energy storage inverter, and the photovoltaic panel assembly is connected to the energy storage battery. This application achieves real-time signal measurement through the electromagnetic radiation monitoring probe and reduces the energy consumption of the monitoring device through the photovoltaic panel assembly. Attached Figure Description

[0022] Figure 1 A schematic diagram of the structure of an embodiment of the electromagnetic environment photovoltaic energy storage monitoring device provided in this application;

[0023] Figure 2 A schematic diagram of one embodiment of the power supply unit provided in this application;

[0024] Figure 3 A connection diagram of one embodiment of power supply for the photovoltaic panel module provided in this application;

[0025] Figure 4 A schematic diagram of one embodiment of the cabin wiring provided in this application;

[0026] Figure 5 A schematic diagram of another embodiment of the cabin wiring provided in this application;

[0027] Figure 6 This is a schematic diagram of one embodiment of the working principle of the energy storage inverter provided in this application. Detailed Implementation

[0028] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0029] In the description of this utility model, it should be understood that the terms "length," "upper," "lower," "front," "rear," "left," "right," "top," "inner," "outer," "axial," "radial," and "circumferential," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.

[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0031] With the rapid development of society and economy, facilities that generate electromagnetic radiation, such as power transmission and transformation facilities, television stations, mobile communication base stations, and high-voltage substations, are ubiquitous. Various power transmission and transformation equipment in power transmission and transformation stations, including power transformers, high-voltage circuit breakers, disconnecting switches, and current transformers, generate electromagnetic radiation during operation. A large amount of electromagnetic radiation is generated during the design and manufacturing process of these devices. It is necessary to consider certain grounding structure devices and other measures to shield the electromagnetic radiation from its impact on the environment and surroundings.

[0032] People are constantly exposed to electromagnetic radiation. Long-term exposure to electromagnetic radiation will cause the human body to absorb the energy of the electromagnetic radiation. If the electromagnetic radiation energy exceeds a certain value, it will pose a great threat to human health.

[0033] Current electromagnetic environment monitoring technologies suffer from drawbacks such as excessive time consumption, low detection accuracy, and the inability to achieve continuous, automatic, remote monitoring, resulting in significant limitations. Existing electromagnetic monitoring systems cannot provide three-dimensional, omnidirectional monitoring, and current technologies cannot switch data, monitor the electromagnetic environment's operational status in real time, provide alarm and early warning functions, or perform fault location and status assessment. Consequently, maintenance personnel cannot accurately monitor the operational status of electromagnetic equipment.

[0034] This utility model patent provides a novel automatic monitoring system for electromagnetic environment radiation, which overcomes the shortcomings of existing technologies. Compared with existing technologies, this utility model's automatic monitoring system for electromagnetic environment radiation has the following advantages:

[0035] 1. This utility model uses a real-time monitoring and transmission method for measurement, and has the function of real-time monitoring of power frequency electromagnetic field and radio frequency electric field spectrum. It can communicate with the data monitoring platform through network devices such as routers.

[0036] 2. The automatic monitoring device is equipped with multiple storage modules, including device probes, display screens, photovoltaic panels, smoke sensors, distribution boxes, integrated reverse control units, switches, audio systems, and fault alarm modules. This structure enables comprehensive automatic real-time monitoring of the electromagnetic environment, improving the system's safety and reliability.

[0037] 3. The top of the cabin is equipped with a probe mechanism. The electric field antenna of the power frequency electromagnetic field monitoring probe is a flat plate, and the magnetic induction intensity antenna is a coil type. The antennas are distributed in the sagittal, coronal, and horizontal planes. The electric field antenna of the radio frequency selective electric field monitoring probe is a dipole antenna type. The antennas are distributed in the sagittal, coronal, and horizontal planes to achieve the effect of three-dimensional omnidirectional monitoring, increase the monitoring efficiency of electromagnetic environment monitoring, and greatly improve the detection accuracy and the accuracy of detection results.

[0038] 4. Adopting a multi-site transmission system that can be automatically switched at will, it switches automatically according to the data of the monitoring sites, making full use of the advantages of each component of the system and greatly improving work efficiency.

[0039] 5. The electromagnetic radiation environment automatic monitoring system is connected via Ethernet. Ethernet is connected to the firewall and switch, and finally to the electromagnetic environment monitoring platform server. The system displays the switching of multi-level monitoring data on the screen.

[0040] Therefore, this application proposes an electromagnetic environment photovoltaic energy storage monitoring device, with reference to... Figure 1 The schematic diagram of the electromagnetic environment photovoltaic energy storage monitoring device shown in this application provides a detailed description of the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application.

[0041] The electromagnetic environment photovoltaic energy storage monitoring device proposed in this application includes: a cabin, an electromagnetic radiation monitoring probe installed on the top wall of the cabin, and a photovoltaic panel assembly installed on the top wall of the cabin;

[0042] The top wall of the cabin is equipped with retractable panels on both sides, and the retractable part of the retractable panels is equipped with photovoltaic panel components.

[0043] The photovoltaic panel module is connected to the power consumption unit through the energy storage inverter, the mains power is connected to the energy storage battery through the energy storage inverter, and the photovoltaic panel module is connected to the energy storage battery.

[0044] In some possible implementations, the electromagnetic radiation monitoring probe is installed on the outer side of the top wall of the cabin, and the photovoltaic panel assembly is also installed on the outer side of the top wall of the cabin. The number of photovoltaic panel assemblies can be adjusted according to actual needs. When retracted, the retractable panel can be located at the upper or lower part of the top wall of the cabin; this application does not specifically limit the positional relationship. It is understood that photovoltaic panel assemblies are installed on both the top wall of the cabin and the retractable panel. When the lighting conditions meet the requirements, extending the retractable panel allows the photovoltaic panel assemblies on both the top wall of the cabin and the retractable panel to provide power to the monitoring device, increasing the illuminated area, improving energy supply, and helping to reduce internal losses. It should be noted that... Figure 1 As one embodiment of the cabin, the cabin in this application can be of any shape. For example, it can be a square cabin or a circular cabin, which can be set as needed. The telescopic plate in this application can also be made of any material. The angle, distance and other parameters between the telescopic plate and the cabin after it extends can be set as needed; the size of the telescopic plate is also set as needed, and this application does not make any specific limitation.

[0045] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application includes an electromagnetic radiation monitoring probe comprising a power frequency electromagnetic field monitoring probe and a radio frequency electric field monitoring probe. The electric field antenna of the power frequency electromagnetic field monitoring probe is a flat plate, and the magnetic induction intensity antenna of the power frequency electromagnetic field monitoring probe is a coil type. The antennas of the power frequency electromagnetic field monitoring probe are distributed in the sagittal plane, the coronal plane, and the horizontal plane. The electric field antenna of the radio frequency electric field monitoring probe is a dipole antenna type, and the antennas are distributed in the sagittal plane, the coronal plane, and the horizontal plane.

[0046] In some possible implementations, the top wall of the cabin is equipped with a probe mechanism. The electric field antenna of the power frequency electromagnetic field monitoring probe is a flat plate, and the magnetic induction intensity antenna is a coil type. The antennas are distributed in the sagittal, coronal, and horizontal planes. The electric field antenna of the radio frequency selective electric field monitoring probe is a dipole antenna type. The antennas are distributed in the sagittal, coronal, and horizontal planes to achieve the effect of three-dimensional omnidirectional monitoring, increase the monitoring efficiency of electromagnetic environment monitoring, and greatly improve the detection accuracy and the accuracy of detection results.

[0047] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application includes an electromagnetic radiation monitoring probe comprising a triaxial omnidirectional antenna, which includes an integrated triaxial loop antenna and a triaxial monopole antenna. The probe test frequency range of the triaxial omnidirectional antenna is 100kHz-6GHz.

[0048] In some possible implementations, this application realizes an integrated automatic electromagnetic radiation monitoring station with a frequency-selective electromagnetic radiation monitoring probe ranging from 100kHz to 6GHz. This technological innovation solves the mutual interference problem existing in previous multi-probe monitoring modes, thereby improving the accuracy and synchronization of data.

[0049] The probe's test frequency is 100kHz-6GHz, and the test electric field strength range is 0.01V / m-300V / m. Conventional antennas of this type on the market typically require at least two separate antennas to complete the 100kHz-6GHz spectrum measurement. When a single antenna is used to measure such a wide frequency band, its frequency influence flatness is very poor, resulting in insufficient test sensitivity. The 100kHz-6GHz triaxial omnidirectional antenna integrates a triaxial loop antenna and a triaxial monopole antenna. The triaxial loop antenna measures the triaxial omnidirectional field strength from 100kHz to 30MHz, while the triaxial monopole antenna measures the triaxial omnidirectional field strength from 30MHz to 6GHz. This antenna incorporates a high-speed channel switching module, which can quickly switch the internal antenna test channels by changing the TTL level, thus achieving broadband spectrum measurement from 100kHz to 6GHz while ensuring the antenna's test sensitivity meets the requirements.

[0050] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application includes an office compartment inside the cabin, and a display screen is installed on one side wall of the cabin, with the display screen connected to the office compartment.

[0051] In some possible implementations, this application attempts to highly integrate electromagnetic radiation monitoring with a mobile office cabin. By installing the monitoring probe on the top of the office cabin and using the back of the cabin as a promotional screen, not only is the space utilization rate improved, but the cumbersome process of carrying a large amount of equipment required for science popularization is also eliminated, providing a more efficient way to promote science popularization and pushing science popularization work to a new level.

[0052] Optionally, in the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application, one side wall of the cabin is made of electro-fogging glass.

[0053] It is understood that at least a portion of the sidewalls of the cabin in this application are made of electro-fog glass, which satisfies the requirements for both lighting and privacy.

[0054] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application has a cabin made of galvanized steel sheet coated with metallic fluorocarbon paint.

[0055] In some possible implementations, galvanized steel sheets coated with metallic fluorocarbon paint have fireproof, lightning protection, wind and rain resistance properties.

[0056] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application includes an air conditioner, lighting, and a display screen in its power consumption unit, with the mains power connected to the power consumption unit through a surge protection unit.

[0057] In some possible implementations, circuit protection can also be achieved through a circuit breaker.

[0058] Reference Figure 2 As shown, the power supply unit in this application includes a lighting circuit, a 16A air conditioning socket, an LED screen, electro-fogging glass, and an energy storage inverter within the monitoring cabin. An external 220V voltage is supplied, transmitted to surge protection and the circuit breaker, and then to the lighting, air conditioning 16A socket, LED screen, electro-fogging glass, and energy storage inverter. (See reference...) Figure 3 As shown, the solar panel (photovoltaic panel module) powers the main unit and the top probe. It adopts power supply self-switching. The power generated by the solar panel (photovoltaic) is converted into AC power by the energy storage inverter, so as to be used or connected to the main unit box. The solar panel and battery use 6 square photovoltaic wires.

[0059] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application further includes: a power line, one end of which is placed in the first probe hole on the top wall of the cabin, and the other end of which is placed in the hole group on the bottom wall of the cabin.

[0060] The optical fiber has one end placed in the first probe hole on the top wall of the cabin, and the other end placed in the group of holes on the bottom wall of the cabin.

[0061] The communication antenna has one end placed in the second probe hole on the top wall of the cabin, and the other end placed in the group of holes on the bottom wall of the cabin.

[0062] The radio frequency (RF) cable has one end placed in the third probe hole on the top wall of the cabin, and the other end placed in the hole group on the bottom wall of the cabin.

[0063] In some possible implementations, refer to Figure 4 The diagram shown illustrates the wiring layout of the top and bottom walls of the cabin. Through the proper arrangement of the wiring, the wiring of the hole groups on the top and bottom walls of the cabin can be achieved.

[0064] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application further includes a distribution box, which is placed on the side wall of the cabin. One end of the wire is connected to the distribution box, and the other end of the wire is connected to the power consumption unit.

[0065] In some possible implementations, the distribution box serves to distribute electrical energy.

[0066] Optionally, the electromagnetic environment photovoltaic energy storage monitoring device proposed in this application further includes a smoke sensor. The smoke sensor is placed on the top wall of the cabin and is used to detect smoke inside the cabin. One end of the smoke sensor network cable is connected to the smoke sensor, and the other end of the smoke sensor network cable is connected to the hole group on the bottom wall of the cabin.

[0067] Reference Figure 5 As shown in the diagram, the wiring inside the cabin enables the efficient operation of the monitoring device through the wiring of various components.

[0068] The monitoring device provided in this application will be described in detail below with a specific embodiment:

[0069] The purpose of this utility model is to provide a novel automatic electromagnetic environment monitoring system. The container has the functions of heat insulation, shielding and isolation, and lightning protection. On the other hand, it can improve the stability and safety reliability of the monitoring system. It is characterized by simple assembly and high structural reliability.

[0070] This utility model provides a technical solution:

[0071] An automatic electromagnetic environment monitoring system is disclosed for use in electromagnetic environment monitoring. The automatic electromagnetic environment monitoring data equipment includes a container structure and functional components arranged within the container structure. In some embodiments, the container may adopt a cuboid structure, with probes mounted on the top of the container and solar panels installed on the top to power the monitoring system. The functional components include photovoltaic panels, smoke sensors, a distribution box, an integrated inverter / controller unit, a switch, an audio system, and a fault alarm module. The functional component circuits include a central processing circuit, a storage circuit, indicator light circuits, a wireless communication module circuit, a data acquisition and communication circuit, and a fault alarm circuit. Each functional component circuit can use conventional circuits to achieve the required response function.

[0072] The storage circuit, indicator light circuit, wireless communication module circuit, and data acquisition and communication circuit are all connected to the central processing circuit, and all circuits at each level transmit data to the central processing circuit. For the cuboid-structured container, the container structure includes a first shell, a second shell, and a distribution box wall-mounted assembly. The container is made of galvanized sheet metal sprayed with metallic fluorocarbon paint, providing fire resistance, lightning protection, and wind and rain resistance. The second shell is integrated with the distribution box wall-mounted assembly. The first shell includes a bottom wall, a first side wall, a second side wall, and a first top wall. The first and second side walls are respectively located on both sides of the bottom wall, with the first side wall at one end and the second side wall at the other end. The bottom wall has a set of perforations. The second shell includes a third side wall, located at one end of the top wall. Two photovoltaic panels are installed inside the top wall, connected in series. Additionally, a smoke sensor is installed inside the top. The smoke sensor detects fire smoke and uses smoke concentration monitoring to prevent fires. Photovoltaic panels absorb sunlight and convert it into electricity. The entire process is zero-emission and completely pollution-free, which helps reduce dependence on traditional energy sources.

[0073] The top and bottom walls of the modular shelter are positioned opposite each other, and the photovoltaic panels and smoke detectors are fixedly connected to the top wall. The first and second side walls are located at opposite ends of either the top or bottom wall. The electrical distribution box is fixedly connected to the second side wall.

[0074] Multiple monitoring substation modules include power supply and distribution equipment, monitoring center server equipment, data transmission equipment, HDMI visualization equipment, communication equipment, and indoor alarm monitoring equipment.

[0075] The power supply and distribution equipment is installed in the main control room of the monitoring system. The power supply and distribution equipment is installed on the power lines in the main control room. The data transmission equipment is used to collect data information and parameters. The HDMI visualization equipment sends the collected data to the monitoring center server through communication. The data transmission equipment is used to collect parameter information on the power lines. The communication module is wirelessly connected to the monitoring center server module. The indoor alarm monitoring device provides early warning and alarm for the monitoring and operation of the entire control room, and has a high reliability.

[0076] The first sidewall is connected to the second and third sidewalls. Retractable panels are installed on both sides of the top wall. Multiple series-connected photovoltaic panels and energy storage components are installed on the retractable top wall and the retractable part. The multiple series-connected photovoltaic panels and energy storage components are connected to the top wall. The beneficial effect is to increase the light-receiving area and the light source area. By setting up multiple series-connected photovoltaic panels, the light energy is converted into electrical energy by absorbing sunlight, which greatly saves energy and achieves zero emissions in the whole process.

[0077] The system features retractable rooftop energy storage components. By equipping these components with energy storage devices, the electricity generated by the photovoltaic system can be stored, allowing excess electricity generated during the day to continue supplying power at night or during periods of low sunlight. (See reference) Figure 6 The working principle of the energy storage inverter shown is to convert AC power into DC power to supply power to the power-consuming unit.

[0078] In other embodiments, the monitoring device further includes multiple monitoring sub-modules, which are connected to the main monitoring module via a communication device, including a VPN connection device. (See also...) Figure 5 As shown.

[0079] The antenna unit is connected to the internal data transmission device, and the monitoring center server unit is connected to the HDMI high-definition multimedia interface, wiring, outdoor monitoring network cable, and indoor alarm monitoring. The monitoring center server unit is connected to each sub-module. The monitoring center server is used to monitor and manage various data and information. The monitoring center server adopts a network topology setting to aggregate HDMI high-definition multimedia and indoor alarm monitoring data to the monitoring center server.

[0080] In some embodiments, the 100kHz-6GHz triaxial omnidirectional antenna in this application can be used in fields such as electromagnetic radiation monitoring of medium and shortwave radio stations, electromagnetic radiation monitoring of radio stations, and electromagnetic radiation monitoring of mobile communication base stations, realizing that such a wide-band omnidirectional electromagnetic radiation spectrum measurement can be achieved with just one antenna.

[0081] A magnetic ring was added inside the antenna and on the extension line, which can effectively suppress interference signals coupled in by the cable itself, so that the measurement signals all come from the antenna itself, which can effectively improve the overall measurement accuracy of the system.

[0082] A new type of triaxial omnidirectional antenna can measure the electromagnetic radiation spectrum from 100kHz to 6GHz, reducing the use of automatic monitoring station supports. At the same time, only one radio frequency cable is needed to transmit the signal to the main unit inside the cabin, avoiding the interference of multiple supports and multiple cables on the signal, reducing the difficulty of wiring and the use of materials, and greatly reducing material and construction costs.

[0083] The top probe uses a 315mm flange with 3 probes. It needs to be fully welded, ground, and then painted. After the top is ground, the left and right probes are painted with the black disc and decorative ring shown in the picture.

[0084] Compared with existing technologies, the beneficial effects of the electromagnetic environment automatic monitoring system provided by this utility model are:

[0085] The storage circuit, indicator light circuit, wireless communication module circuit, and data acquisition and communication circuit are all connected to the central processing circuit, and data from each level of circuit is transmitted to the central processing circuit. The storage circuit stores monitoring data, alarm data, fault data, and data logs. The indicator light circuit indicates the electromagnetic operating status. The wireless communication module circuit enables wireless communication of electromagnetic monitoring data. The data acquisition and communication circuit acquires communication data. The central processing circuit controls the overall circuitry of the control module through various circuit interfaces.

[0086] The enclosures are all constructed of galvanized steel sheet coated with a metallic fluorocarbon paint. The system includes a distribution box for power distribution, playing a crucial role in power allocation within the electromagnetic monitoring system. Photovoltaic panels are installed, absorbing sunlight and converting it into electricity in a zero-emission, pollution-free process, helping to reduce dependence on traditional energy sources. Smoke sensors detect smoke in case of fire and monitor smoke concentration to prevent fires. An integrated inverter / controller unit combines a photovoltaic inverter and a photovoltaic charging controller, primarily converting solar energy into AC power, controlling battery charging, protecting system safety, and simplifying installation and maintenance.

[0087] The system is equipped with energy storage components, which store the electricity generated by the photovoltaic system. Excess electricity generated during the day can be stored in the energy storage components so that it can continue to supply power at night or during periods of low sunlight.

[0088] The indoor alarm device collects data signals and parameters received by the monitoring center server. The monitoring center server adopts a network topology setting to aggregate HDMI high-definition multimedia and indoor alarm monitoring data to the monitoring center server. The alarm device is set in the system, which can effectively monitor the faults of the electromagnetic environment system and provide early warning.

[0089] In the description of this specification, references to terms such as "one embodiment," "another embodiment," or "some embodiments," etc., indicate that a specific feature, structure, material, or characteristic described in connection with an embodiment or example is included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0090] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. An electromagnetic ambient light photovoltaic energy storage monitoring device, characterized by, include: The cabin, an electromagnetic radiation monitoring probe installed on the top wall of the cabin, and a photovoltaic panel assembly installed on the top wall of the cabin; The top wall of the cabin is provided with retractable panels on both sides, and photovoltaic panel components are installed on the retractable part of the retractable panels. The photovoltaic panel assembly is connected to the power consumption unit through an energy storage inverter, and the mains power is connected to the energy storage battery through the energy storage inverter. The photovoltaic panel assembly is also connected to the energy storage battery.

2. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The electromagnetic radiation monitoring probe includes a power frequency electromagnetic field monitoring probe and a radio frequency electric field monitoring probe. The electric field antenna of the power frequency electromagnetic field monitoring probe is a flat plate, and the magnetic induction intensity antenna of the power frequency electromagnetic field monitoring probe is a coil type. The antennas of the power frequency electromagnetic field monitoring probe are distributed in the sagittal plane, the coronal plane, and the horizontal plane. The electric field antenna of the radio frequency electric field monitoring probe is a dipole antenna type, and the antennas are distributed in the sagittal plane, the coronal plane, and the horizontal plane.

3. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The electromagnetic radiation monitoring probe includes a triaxial omnidirectional antenna, which comprises an integrated triaxial loop antenna and a triaxial monopole antenna. The probe's test frequency range is 100kHz-6GHz.

4. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, An office compartment is set up in the cabin, and a display screen is installed on one side wall of the cabin, which is connected to the office compartment.

5. The electromagnetic environment photovoltaic energy storage monitoring device according to claim 1, characterized in that, One side wall of the cabin is made of electro-fogging glass.

6. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The cabin is made of galvanized steel sheet coated with metallic fluorocarbon paint.

7. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The power consumption unit includes an air conditioner, lighting, and a display screen, and the mains power is connected to the power consumption unit through a surge protection unit.

8. The electromagnetic environment photovoltaic energy storage monitoring device according to claim 1, characterized in that, The monitoring device further includes: a power cord, one end of which is placed in a first probe hole on the top wall of the cabin, and the other end of which is placed in a group of holes on the bottom wall of the cabin; An optical fiber, one end of which is placed in the first probe hole on the top wall of the cabin, and the other end of which is placed in a group of holes on the bottom wall of the cabin; A communication antenna, one end of which is placed in the second probe hole on the top wall of the cabin, and the other end of which is placed in the group of holes on the bottom wall of the cabin; The radio frequency (RF) cable has one end placed in the third probe hole on the top wall of the cabin and the other end placed in the hole group on the bottom wall of the cabin.

9. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The monitoring device also includes a power distribution box, which is placed on the side wall of the cabin. One end of the wire is connected to the power distribution box, and the other end of the wire is connected to the power consumption unit.

10. The electromagnetic ambient light photovoltaic energy storage monitoring device of claim 1, wherein, The monitoring device also includes a smoke sensor, which is placed on the top wall of the cabin and is used to detect smoke inside the cabin. One end of the smoke sensor network cable is connected to the smoke sensor, and the other end of the smoke sensor network cable is connected to a group of holes on the bottom wall of the cabin.