Remote beacon light state sensing device and system

By designing a remote beacon state sensing device including a lifting frame and a shielding member, the problem of the light intensity measurement of the lamp in the prior art is affected by the external ambient light, automated sensing is realized, and the work burden of maintenance personnel is reduced.

CN119983241APending Publication Date: 2025-05-13SHANDONG ZHONGJIANG INFORMATION TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510159379.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-13
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

When the existing remote beacon state sensing device measures the lighting intensity of the lamp, the external ambient light has a great impact, and requires manual use of light shielding and other equipment to block it, resulting in troublesome sensing process and increasing the work burden of maintenance personnel.

Method used

A remote beacon state sensing device is designed, including a main control box, photovoltaic panel, mounting frame, lamp body and monitoring components. The monitoring component includes a lifting frame, a light metering plate, a driving member and a shielding member. Through the cooperation of the lifting frame and a shielding member, automatic timing lighting sensing of the lamp main body is realized.

Benefits of technology

Through the automated light sensing process, the work burden of maintenance personnel is greatly reduced and the efficiency and accuracy of beacon state sensing is improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119983241A_ABST
    Figure CN119983241A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of beacon light state sensing, in particular to a remote beacon light state sensing device and system.The remote beacon light state sensing device comprises a main control box, a photovoltaic panel, an installation frame and a light body, the photovoltaic panel is installed on the main control box and electrically connected with the main control box, the installation frame is fixedly installed on the top of the main control box, and the light body is installed on the installation frame and electrically connected with the main control box. The system further comprises a monitoring assembly. The monitoring assembly comprises a lifting frame, a light measuring plate, a driving component and a shielding component, the lifting frame is slidably mounted on the mounting frame, the light measuring plate is mounted in the lifting frame, the driving component is connected with the mounting frame and used for driving the lifting frame, and the shielding component is connected with the lifting frame and used for shielding the top of the lifting frame. According to the remote beacon light device, the illumination condition of the remote beacon light device can be automatically and regularly sensed through the arranged components, and the workload of maintenance personnel is greatly relieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of navigation light state sensing, and in particular to a remote navigation light state sensing device and system. Background Art

[0002] Remote beacon lights are an important device for water navigation. They generate light through a built-in light source, focus the light through a lens system and emit it in a direction, so that ships can identify the position and direction of the beacon. Existing remote beacon lights can be remotely monitored and operated through wireless communication. According to the different energy sources and communication methods used, remote beacon lights can be divided into many types, such as solar remote beacon lights, electric remote beacon lights, etc.

[0003] As a device for monitoring the status of beacon lights, the remote beacon light status sensing device realizes remote perception and monitoring of the status of beacon lights through integrated sensors, communication technology and data processing capabilities;

[0004] Most of the existing remote beacon light status sensing devices monitor the circuit status of the beacon light when it is working through the circuit monitoring mechanism set up, thereby achieving remote monitoring of the working conditions of the remote beacon light. However, when sensing the light intensity of the light, since the light of the external environment will affect the measurement of the light during outdoor measurement, most of them require manual on-site use of equipment such as sunshades to shield the beacon light before testing, which makes the entire sensing process very troublesome and increases the workload of maintenance personnel. Summary of the invention

[0005] The object of the present invention is to provide a remote beacon light state sensing device and system, which can automatically and regularly sense the lighting conditions of the remote beacon light through the provided components, thereby greatly reducing the workload of maintenance personnel.

[0006] To achieve the above-mentioned purpose, the present invention provides a remote navigation light state sensing device and system, comprising a main control box, a photovoltaic panel, a mounting frame and a light body, wherein the photovoltaic panel is mounted on the main control box and electrically connected to the main control box, the mounting frame is fixedly mounted on the top of the main control box, the light body is mounted on the mounting frame, and also comprises a monitoring component;

[0007] The monitoring assembly includes a lifting frame, a light measuring plate, a driving component and a shielding component. The lifting frame is slidably installed on the mounting frame, and the light measuring plate is installed in the lifting frame. The driving component is connected to the mounting frame for driving the lifting frame, and the shielding component is connected to the lifting frame for shielding the top of the lifting frame.

[0008] Among them, the driving component includes a driving screw and a driving motor, the driving screw is threadedly connected to the lifting frame and rotatably mounted on the mounting frame; the output shaft of the driving motor is connected to the driving screw, the driving motor is fixedly mounted on one side of the mounting frame and electrically connected to the main control box.

[0009] Among them, the shielding component includes a rolling rod, a shielding rolling cloth, a driving component and a rolling component, the rolling rod is connected to the lifting frame through the driving component; the shielding rolling cloth is sleeved on the rolling rod and fixedly installed in the lifting frame; the driving component is connected to the lifting frame and is used to drive the rolling rod to move in the lifting frame; the rolling component is connected to the rolling rod and is used to drive the rolling rod to rotate.

[0010] Among them, the driving component includes a driving plate, a movable plate, a driving screw and a driving motor, the driving plate is rotatably connected to the rolling rod and slidably installed on one side of the lifting frame; the movable plate is rotatably connected to the rolling rod and slidably installed on one side of the lifting frame; the driving screw is threadedly connected to the driving plate and rotatably installed on one side of the lifting frame; the output shaft of the driving motor is connected to the driving screw, the driving motor is fixedly installed on one side of the lifting frame, and electrically connected to the main control box.

[0011] Among them, the rolling component includes a sleeve gear and a connecting rack, the two sleeve gears are fixedly sleeved on both sides of the rolling rod; the two connecting racks are fixedly installed on both sides of the lifting frame, and the two connecting racks are meshed with the corresponding two sleeve gears one by one.

[0012] Among them, the monitoring component also includes a side mounting frame, a dust filter plate and an exhaust component. The side mounting frame is fixedly mounted on one side of the lifting frame; the dust filter plate is fixedly mounted on the side mounting frame; the exhaust component is fixedly mounted on one side of the lifting frame, and is used to quickly discharge dust and heat in the lifting frame.

[0013] Among them, the exhaust component includes a gas monitoring device, an air pump and a lightweight baffle, the gas monitoring device is fixedly installed in the lifting frame; the air pump is fixedly installed on one side of the lifting frame; the lightweight baffle is rotatably installed on one side of the lifting frame close to the air pump.

[0014] Among them, a remote beacon light state sensing system includes the remote beacon light state sensing device as described above, and also includes a data collection module, a data processing module, a prediction module, an instruction generation module and a visual warning module;

[0015] The data processing module is connected to the data collection module, the prediction module is connected to the data collection module, the instruction generation module is connected to the data processing module and to the prediction module, and the visual warning module is connected to the instruction generation module;

[0016] The data collection module is used to collect and receive the state sensing data information of the remote navigation light and the environmental parameters of the installation location of the remote navigation light;

[0017] The data processing module is used to process and analyze the data information collected by the data collection module;

[0018] The prediction module predicts and analyzes the working conditions of the remote navigation light based on the data information collected by the data collection module;

[0019] The instruction generation module generates corresponding warning instructions based on the data information collected by the data collection module and the prediction analysis results of the prediction module;

[0020] The visual warning module performs visual warning based on the warning instruction issued by the instruction generation module.

[0021] A remote navigation light status sensing device and system of the present invention, in actual operation, the working status of the light body is adjusted by the main control box. Under normal circumstances, the light body needs to be kept on at night, and when the lighting conditions are good during the day, the light body needs to be properly closed to ensure the long-term continuous operation of the light body. When the light body is not working, the lifting frame can be moved on the mounting frame through the driving component, and then the lifting frame is moved upward to cover the light body with the shielding component provided. Thereafter, the main control box opens the light body again to facilitate the detection of the light intensity of the light body through the side light panel provided on the inner side of the lifting frame, thereby realizing automatic remote sensing of light parameters such as the light intensity of the light body, thereby greatly reducing the workload of maintenance personnel. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art are briefly introduced below.

[0023] Figure 1 It is a structural schematic diagram of a remote navigation light state sensing device of the present invention.

[0024] Figure 2 It is a schematic diagram of the installation structure of the dust filter plate of the present invention.

[0025] Figure 3 It is a structural schematic diagram of the lifting of the lifting frame of the present invention.

[0026] Figure 4 It is a schematic structural diagram of a cutaway lifting frame of the present invention.

[0027] Figure 5 It is a schematic diagram of the installation structure of the driving screw rod of the present invention.

[0028] Figure 6 The present invention Figure 5 Enlarged view of point A.

[0029] Figure 7 It is a structural schematic diagram of the remote navigation light state sensing system of the present invention.

[0030] In the figure: 101-main control box, 102-photovoltaic panel, 103-mounting frame, 104-lamp body, 105-lifting frame, 106-light measuring plate, 201-driving screw, 202-driving motor, 301-rolling rod, 302-shielding cloth, 303-driving plate, 304-moving plate, 305-driving screw, 306-driving motor, 307-set gear, 308-connecting rack, 401-side mounting frame, 402-dust filter plate, 403-gas monitoring equipment, 404-air pump, 405-light baffle, 100-data collection module, 200-data processing module, 300-prediction module, 400-instruction generation module, 500-visualization warning module. DETAILED DESCRIPTION

[0031] Embodiments of the present invention are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and should not be construed as limiting the present invention.

[0032] In the description of the present invention, it should be understood that “plurality” means two or more than two, unless otherwise clearly and specifically defined.

[0033] See also Figures 1 to 6The present invention provides a remote beacon light state sensing device: comprising a main control box 101, a photovoltaic panel 102, a mounting frame 103, a light body 104 and a monitoring component, wherein the monitoring component comprises a lifting frame 105, a light measuring plate 106, a driving component and a shielding component, wherein the driving component comprises a driving screw 201 and a driving motor 202, wherein the shielding component comprises a rolling rod 301, a shielding cloth 302, a driving component and a rolling component, wherein the driving component comprises a driving plate 303, a moving plate 304, a driving screw 305 and a driving motor 306, wherein the rolling component comprises a sleeve gear 30 7 and the connecting rack 308. The above-mentioned scheme solves the problem that most of the existing remote beacon light status sensing devices monitor the circuit status of the beacon light when it is working by setting up a circuit monitoring mechanism, thereby achieving remote monitoring of the working conditions of the remote beacon light. However, when sensing the light intensity of the light, since the light of the external environment will affect the measurement of the light during the outdoor measurement process, most of them need to use equipment such as shading plates to block the beacon light on site before testing, which makes the entire sensing process very troublesome and greatly increases the workload of maintenance personnel.

[0034] Furthermore, the photovoltaic panel 102 is mounted on the main control box 101 and electrically connected to the main control box 101, the mounting frame 103 is fixedly mounted on the top of the main control box 101, the lamp body 104 is mounted on the mounting frame 103, and also includes a monitoring component;

[0035] The monitoring assembly includes a lifting frame 105, a light measuring plate 106, a driving component and a shielding component. The lifting frame 105 is slidably installed on the mounting frame 103, and the light measuring plate 106 is installed in the lifting frame 105. The driving component is connected to the mounting frame 103 and is used to drive the lifting frame 105. The shielding component is connected to the lifting frame 105 and is used to shield the top of the lifting frame 105.

[0036] Specifically, the photovoltaic panels 102 are arranged around the main control box 101. The photovoltaic panels 102 can be used to utilize solar energy, thereby ensuring the continuous and stable operation of the main control box 101 and the corresponding lamps. It should be noted that the photovoltaic panels 102 are mainly used for auxiliary energy supply. In weather and environments such as poor light conditions, the power supply inside the main control box 101 needs to be used for energy supply. At the same time, the operator also needs to charge the main control box 101 according to actual conditions.

[0037] The four inner sides of the lifting frame 105 are provided with corresponding photometric boards 106. The photometric boards 106 integrate light intensity sensors and circuit boards or modules of related circuits. These boards can detect the ambient light intensity in real time and convert the detected data into electrical signals or other forms of output for subsequent processing or control. The corresponding photometric boards 106 mainly rely on photosensitive elements, such as photoresistors, photodiodes or phototransistors. These elements can change their own resistance values ​​or generate corresponding electrical signals according to the intensity of light. When light shines on the photosensitive elements, a series of electrochemical reactions will be triggered, thereby changing the electrical characteristics of the elements. By measuring the changes in these characteristics, the intensity of light can be indirectly known.

[0038] By arranging the corresponding photometric plates 106 on the four sides of the inner side of the lifting frame 105, the parameters such as the light intensity and light frequency of the lamp body 104 can be detected more comprehensively. The main control box 101 is provided with a receiving module for receiving the monitoring structure data of the photometric plate 106 and a control module for remotely controlling the mechanical energy of subsequent electrical components. At the same time, the main control box 101 is also provided with a control module for controlling the lamp body 104, so that the main control box 101 can automatically control the working state of the lamp body 104 according to the weather monitoring data of the external device, so as to realize the remote control of the lamp body 104;

[0039] In actual operation, the working state of the lamp main body 104 is adjusted through the main control box 101. Under normal circumstances, the lamp main body 104 needs to be kept on at night. When the lighting conditions are good during the day, the lamp main body 104 needs to be properly turned off to ensure the long-term continuous operation of the lamp main body 104. When the lamp main body 104 is not working, the lifting frame 105 can be moved on the mounting frame 103 through the driving component, and then the lifting frame 105 is moved upward and the shielding component is coordinated to cover the lamp main body 104. After that, the main control box 101 turns on the lamp main body 104 so as to detect the light intensity of the lamp main body 104 through the side light panel arranged on the inner side of the lifting frame 105, thereby realizing automatic remote sensing of lighting parameters such as the light intensity of the lamp main body 104, thereby greatly reducing the workload of maintenance personnel.

[0040] Furthermore, the driving screw 201 is threadedly connected to the lifting frame 105 and is rotatably mounted on the mounting frame 103; the output shaft of the driving motor 202 is connected to the driving screw 201, and the driving motor 202 is fixedly mounted on one side of the mounting frame 103 and is electrically connected to the main control box 101.

[0041] When this embodiment is in use, the driving screw 201 is adapted to the threaded hole set on the bottom plate of the lifting frame 105, and the driving screw 201 is fixed to the output shaft of the driving motor 202, so that the user can directly drive the lifting frame 105 through the driving motor 202 in cooperation with the driving screw 201, thereby realizing the up and down movement of the lifting frame 105 on the mounting frame 103, and the driving motor 202 is controlled by the main control box 101, so that the user can control the driving motor 202 at regular intervals according to actual conditions to drive the lifting frame 105 to move, thereby realizing regular automatic monitoring of the lamp body 104.

[0042] Furthermore, the rolling rod 301 is connected to the lifting frame 105 through the driving component; the shielding cloth 302 is sleeved on the rolling rod 301 and fixedly installed in the lifting frame 105; the driving component is connected to the lifting frame 105, and is used to drive the rolling rod 301 to move in the lifting frame 105; the rolling component is connected to the rolling rod 301, and is used to drive the rolling rod 301 to rotate.

[0043] Furthermore, the driving plate 303 is rotatably connected to the rolling rod 301 and is slidably installed on one side of the lifting frame 105; the movable plate 304 is rotatably connected to the rolling rod 301 and is slidably installed on one side of the lifting frame 105; the driving screw 305 is threadedly connected to the driving plate 303 and is rotatably installed on one side of the lifting frame 105; the output shaft of the driving motor 306 is connected to the driving screw 305, and the driving motor 306 is fixedly installed on one side of the lifting frame 105 and is electrically connected to the main control box 101.

[0044] Furthermore, the two sleeve gears 307 are respectively fixedly sleeved on both sides of the rolling rod 301; the two connecting racks 308 are respectively fixedly installed on both sides of the lifting frame 105, and the two connecting racks 308 are meshed with the corresponding two sleeve gears 307 one by one.

[0045] When the present embodiment is in use, the driving plate 303 and the moving plate 304 are rotatably installed on both sides of the rolling rod 301, and the driving plate 303 is provided with a threaded hole adapted to the driving screw 305, and the driving screw 305 is fixed to the output shaft of the driving motor 306. When the driving motor 306 drives the driving screw 305 to rotate, the driving plate 303 can cooperate with the moving plate 304 to drive the rolling rod 301 to move at the opening at the top of the lifting frame 105. The shielding rolling rod 301 is wound around the rolling rod 301. The cloth 302 is fixedly mounted on the ends of both sides of the rolling rod 301, and the sleeve gears 307 are fixedly mounted on the ends of both sides of the rolling rod 301. The bottom of each sleeve gear 307 is provided with the connecting rack 308 for cooperation. When the driving plate 303 and the moving plate 304 drive the rolling rod 301, the rolling rod 301 can rotate between the driving plate 303 and the moving plate 304 through the cooperation of the sleeve gears 307 and the connecting rack 308, thereby spreading or retracting the shielding rolling cloth 302, so as to be able to shield the top of the lifting frame 105;

[0046] During actual use, when the lifting frame 105 moves up to cover the lamp body 104, the driving motor 306 can cooperate with the driving screw 305 to drive the driving plate 303 to move, and then drive the rolling rod 301 to move on the top of the lifting frame 105 through cooperation with the moving plate 304. When the rolling rod 301 moves, the sleeve gear 307 can drive the rolling rod 301 to rotate through cooperation with the connecting rack 308, so as to cover the top opening of the lifting frame 105 by laying the shielding cloth 302, so that the lamp body 104 will not be affected by the external environment when being measured and stored, and it can also ensure that each time the light intensity is measured, the monitoring environment of the lamp body 104 will not change significantly, which is convenient for the subsequent analysis and processing of the monitoring data collected at different periods.

[0047] Preferably, the monitoring assembly provided by the present invention further includes a side mounting frame 401 , a dust filter plate 402 and an exhaust component, and the exhaust component includes a gas monitoring device 403 , an air pump 404 and a lightweight baffle 405 .

[0048] Furthermore, the side mounting frame 401 is fixedly mounted on one side of the lifting frame 105; the dust filter plate 402 is fixedly mounted on the side mounting frame 401; the exhaust component is fixedly mounted on one side of the lifting frame 105, and is used to quickly discharge dust and heat in the lifting frame 105.

[0049] Furthermore, the gas monitoring device 403 is fixedly installed in the lifting frame 105; the air pump 404 is fixedly installed on one side of the lifting frame 105; and the lightweight baffle 405 is rotatably installed on one side of the lifting frame 105 close to the air pump 404.

[0050] When the present embodiment is in use, the side mounting frame 401 is provided with an opening inclined downward, and the dust filter plate 402 is provided at the opening provided on the side mounting frame 401. At the same time, the lifting frame 105 is provided with a through groove inclined downward on the side where the side mounting frame 401 is provided, so that the gas can enter the lifting frame 105 after passing through the dust filter plate 402;

[0051] The air inlet end of the air pump 404 is connected to the inner side of the lifting frame 105, and the air inside the lifting frame 105 can be discharged from the air outlet end of the air pump 404 through the air pump 404. The outer side of the channel of the lifting frame 105 used for the air outlet end of the air pump 404 is provided with the lightweight baffle 405. At the same time, the lifting frame 105 is also provided with the corresponding gas monitoring device 403. The gas monitoring device 403 is mainly used to monitor the dust inside the lifting frame 105 and the corresponding temperature. When the lifting frame 105 cooperates with the shielding cloth 302 to cover the lamp body During protection, the gas monitoring device 403 can monitor the quality of the storage environment inside the lifting frame 105, so that when the dust content in the storage environment inside the lifting frame 105 is too high, the dust in the lifting frame 105 can be discharged through the air pump 404, and the lamp body can also be quickly cooled after the lamp body stops working. It should be noted that the air pump 404 and the gas monitoring device 403 only work after the lamp body detection is completed and is in the off state, so as to avoid the work of the air pump 404 interfering with the collection of lighting parameters of the lamp body.

[0052] See also Figure 7 , a remote beacon light state sensing system, including the remote beacon light state sensing device, and also including a data collection module 100, a data processing module 200, a prediction module 300, an instruction generation module 400 and a visual warning module 500;

[0053] The data processing module 200 is connected to the data collection module 100, the prediction module 300 is connected to the data collection module 100, the instruction generation module 400 is connected to the data processing module 200 and to the prediction module 300, and the visual warning module 500 is connected to the instruction generation module 400;

[0054] The data collection module 100 is used to collect and receive the state sensing data information of the remote navigation light and the environmental parameters of the installation location of the remote navigation light;

[0055] The data processing module 200 is used to process and analyze the data information collected by the data collection module 100;

[0056] The prediction module 300 performs prediction analysis on the working conditions of the remote navigation light based on the data information collected by the data collection module 100;

[0057] The instruction generation module 400 generates corresponding warning instructions based on the data information collected by the data collection module 100 and the prediction analysis results of the prediction module 300;

[0058] The visual warning module 500 performs visual warning based on the warning instruction issued by the instruction generation module 400.

[0059] Specifically, the data collection module 100 is mainly used to collect the illumination data collected by the light metering plate 106 and the environmental parameters of the entire beacon light working area, while the data processing module 200 processes the illumination data collected by the light metering plate 106. The data processing module 200 can monitor the actual illumination condition of the light body 104 by comparing it with the preset illumination parameters. The instruction generation module 400 generates a corresponding warning instruction according to the processing result of the data processing module 200. When the data processing module 200 finds that the illumination intensity of the corresponding light body 104 is lower than the preset range through data comparison, the instruction generation module 400 will generate a corresponding warning instruction, and then the visual warning module 500 will perform a corresponding visual warning according to the issued warning instruction, so that the staff can timely maintain and repair the light body 104 with problems.

[0060] The prediction module 300 predicts the working state of the designated lamp body 104 by analyzing the multiple groups of illumination data collected by the data collection module 100 and the environmental parameters of the entire beacon lamp working area. The prediction module 300 can analyze the illumination data collected at different periods to obtain the changing rules of the illumination conditions of the lamp body 104, and then roughly predict the normal service life of the lamp body 104, so that the user can prepare in advance. At the same time, the prediction of the normal service life of the lamp body 104 can also assist the staff to adjust the actual working intensity of the lamp body 104. As for the collected environmental parameters, the influence of the environmental parameters on the use status of the lamp body 104 can be determined through the big data algorithm, so as to more accurately predict and judge the use of the lamp body 104 in combination with the actual monitored environmental parameters. When the prediction module 300 predicts that the service life of the lamp body 104 is less than the set period, the instruction generation module 400 can generate a corresponding warning instruction to prompt the staff to make maintenance preparations in advance through the visual warning module 500.

[0061] What is disclosed above is only one or more preferred embodiments of the present application, and cannot be used to limit the scope of rights of the present application. Ordinary technicians in this field can understand that all or part of the processes of implementing the above embodiments and equivalent changes made according to the claims of the present application are still within the scope covered by the present application.

Claims

1. A remote navigation light state sensing device, comprising a main control box, a photovoltaic panel, a mounting frame and a light body, wherein the photovoltaic panel is mounted on the main control box and electrically connected to the main control box, the mounting frame is fixedly mounted on the top of the main control box, and the light body is mounted on the mounting frame, characterized in that: It also includes monitoring components; The monitoring assembly includes a lifting frame, a light measuring plate, a driving component and a shielding component. The lifting frame is slidably installed on the mounting frame, and the light measuring plate is installed in the lifting frame. The driving component is connected to the mounting frame for driving the lifting frame, and the shielding component is connected to the lifting frame for shielding the top of the lifting frame.

2. The remote navigation light state sensing device according to claim 1, characterized in that: The driving component includes a driving screw and a driving motor. The driving screw is threadedly connected to the lifting frame and rotatably mounted on the mounting frame. The output shaft of the driving motor is connected to the driving screw. The driving motor is fixedly mounted on one side of the mounting frame and electrically connected to the main control box.

3. The remote navigation light state sensing device according to claim 1, characterized in that: The shielding member includes a rolling rod, a shielding rolling cloth, a driving member and a rolling member, the rolling rod is connected to the lifting frame through the driving member; the shielding rolling cloth is sleeved on the rolling rod and fixedly installed in the lifting frame; The driving member is connected to the lifting frame and is used to drive the rolling rod to move in the lifting frame; the rolling member is connected to the rolling rod and is used to drive the rolling rod to rotate.

4. The remote navigation light state sensing device as claimed in claim 3, characterized in that: The driving component includes a driving plate, a movable plate, a driving screw and a driving motor. The driving plate is rotatably connected to the rolling rod and slidably installed on one side of the lifting frame; the movable plate is rotatably connected to the rolling rod and slidably installed on one side of the lifting frame; the driving screw is threadedly connected to the driving plate and rotatably installed on one side of the lifting frame; the output shaft of the driving motor is connected to the driving screw, the driving motor is fixedly installed on one side of the lifting frame, and is electrically connected to the main control box.

5. The remote navigation light state sensing device as claimed in claim 3, characterized in that: The rolling component includes a sleeve gear and a connecting rack. The two sleeve gears are fixedly sleeved on both sides of the rolling rod; the two connecting racks are fixedly installed on both sides of the lifting frame, and the two connecting racks are meshed with the corresponding two sleeve gears one by one.

6. The remote navigation light state sensing device according to claim 1, characterized in that: The monitoring component also includes a side mounting frame, a dust filter plate and an exhaust component. The side mounting frame is fixedly mounted on one side of the lifting frame; the dust filter plate is fixedly mounted on the side mounting frame; the exhaust component is fixedly mounted on one side of the lifting frame, and is used to quickly discharge dust and heat in the lifting frame.

7. The remote navigation light state sensing device according to claim 6, characterized in that: The exhaust component includes a gas monitoring device, an air pump and a lightweight baffle. The gas monitoring device is fixedly installed in the lifting frame; the air pump is fixedly installed on one side of the lifting frame; and the lightweight baffle is rotatably installed on one side of the lifting frame close to the air pump.

8. A remote navigation light status sensing system, characterized in that: The device comprises the remote navigation light state sensing device as claimed in claim 1, and further comprises a data collection module, a data processing module, a prediction module, an instruction generation module and a visual warning module; The data processing module is connected to the data collection module, the prediction module is connected to the data collection module, the instruction generation module is connected to the data processing module and to the prediction module, and the visual warning module is connected to the instruction generation module; The data collection module is used to collect and receive the state sensing data information of the remote navigation light and the environmental parameters of the installation location of the remote navigation light; The data processing module is used to process and analyze the data information collected by the data collection module; The prediction module predicts and analyzes the working conditions of the remote navigation light based on the data information collected by the data collection module; The instruction generation module generates corresponding warning instructions based on the data information collected by the data collection module and the prediction analysis results of the prediction module; The visual warning module performs visual warning based on the warning instruction issued by the instruction generation module.