Remote monitoring vehicle management device suitable for Internet of Things
By integrating dust removal and collection mechanisms into the vehicle remote monitoring and management device, automatic dust collection and prevention of secondary diffusion are achieved, solving the problems of incomplete dust cleaning and secondary pollution in existing technologies, and improving the quality of monitoring images and the reliability of equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZONGHENGXINGTONG (NINGBO) TECHNOLOGY CO LTD
- Filing Date
- 2025-06-06
- Publication Date
- 2026-05-05
AI Technical Summary
Existing vehicle remote monitoring and management devices are difficult to effectively collect dust when cleaning the surface of the camera, and are prone to causing secondary pollution.
A remote monitoring vehicle management device integrating a dust removal mechanism and a dust collection mechanism was designed, including a drive unit, a dust collection cover, and a detachable dust collection box. The drive unit controls the opening and closing of the dust collection cover to achieve automatic dust collection and prevent secondary diffusion.
Effective cleaning of dust on camera devices improves the quality of surveillance images, reduces the need for manual maintenance, enhances the reliability and ease of use of the equipment, prevents dust from spreading, and strengthens the stability and adaptability of the equipment.
Smart Images

Figure CN224205167U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of automotive equipment technology, and more specifically, to a remote monitoring vehicle management device suitable for the Internet of Things. Background Technology
[0002] With the continuous development of IoT technology in the field of vehicle management, the usage rate of remote vehicle monitoring and management devices is increasing. However, dust easily accumulates in camera devices during long-term use, which significantly affects the quality of image acquisition and monitoring effectiveness. Current cleaning methods mainly include regular manual cleaning and simple mechanical sweeping. Regular manual cleaning is not only labor-intensive but may also fail to address dust issues in a timely manner; while simple mechanical sweeping is ineffective in collecting dust and can easily cause secondary pollution.
[0003] The problem is that the current vehicle remote monitoring and management device has difficulty effectively collecting dust when cleaning the dust on the surface of the camera device, and it is easy to cause secondary pollution. Utility Model Content
[0004] This invention solves the technical problem of current vehicle remote monitoring and management devices struggling to effectively collect dust when cleaning the surface of the camera, which easily leads to secondary pollution. By combining a dust removal mechanism and a dust collection mechanism, this invention achieves effective dust collection and avoids secondary pollution to the camera device.
[0005] To address the aforementioned problems, this utility model provides a remote monitoring vehicle management device suitable for the Internet of Things, comprising: a housing with an installation space within it; a camera device installed in the installation space; a dust removal mechanism installed on the camera device; and a dust collection mechanism installed at the bottom of the installation space corresponding to the camera device. The dust collection mechanism includes a drive unit, a dust collection cover, and a detachable dust collection box, with the dust collection cover installed in the dust collection box. The dust removal mechanism can sweep dust from the camera device into the dust collection box, and the drive unit can cooperate with the dust removal mechanism to control the opening or closing of the dust collection cover relative to the dust collection box.
[0006] Compared to existing technologies, this technical solution achieves the following advantages: By establishing a dust removal mechanism, dust on the camera device can be effectively cleaned, ensuring camera clarity and thus improving the quality of surveillance images. Furthermore, the introduction of an automated dust collection system eliminates the need for manual intervention during cleaning, reducing maintenance complexity and improving ease of use. Integrating the camera device, dust removal mechanism, and dust collection mechanism into a single housing fully utilizes equipment space, improves the overall design's compactness, and facilitates installation and management. Simultaneously, by controlling the opening and closing of the dust collection cover via a drive mechanism, the dust collection box can be closed after cleaning, preventing dust from falling back onto the camera device due to vehicle vibrations, thus enhancing the camera device's reliability and durability and ensuring normal operation over long periods.
[0007] In one possible design, the dust collection mechanism also includes a collection component, which is fixedly connected to the housing; wherein the dust collection box is detachably snapped onto the collection component.
[0008] Compared to existing technologies, this technical solution achieves the following advantages: the dust collection box is detachably snapped onto the collection component, making cleaning or replacing the dust collection box easier and faster for users, reducing the time and effort required for maintenance. Furthermore, the collection component is fixedly connected to the housing, ensuring the dust collection box remains stable during use, regardless of the vehicle's condition, and preventing it from easily falling off, thus increasing the overall structural stability. Simultaneously, the collection component also increases the collection range of the dust collection mechanism, improving its dust collection efficiency.
[0009] In one possible design, the dust collection box has an opening, and the dust collection cover is movably connected to the dust collection box through the opening; wherein, the driving device includes a drive motor and a drive arm, the drive motor being able to control the drive arm to push the dust collection cover into the dust collection box, so that the dust collection cover is closed relative to the dust collection box; or the drive motor being able to control the drive arm to pull the dust collection cover out of the dust collection box, so that the dust collection cover is open relative to the dust collection box.
[0010] Compared to existing technologies, this technical solution achieves the following advantages: By introducing a drive motor and drive arm, the opening and closing process of the dust collection cover is automated. Users no longer need to operate it manually, greatly improving convenience and intelligence, and adapting to the application needs of modern Internet of Things (IoT). Furthermore, the drive arm pushes and pulls the dust collection cover, enabling precise opening and closing, ensuring the cover is fully closed or fully open, improving dust collection efficiency and safety, and preventing dust leakage. The dust collection cover is movably connected to the opening of the dust collection box, increasing its flexibility and applicability, making opening and closing the dust collection box easier.
[0011] In one possible design, the drive arm has a soft magnetic component at one end near the dust collection cover, which is made of ferromagnetic material. When the soft magnetic component is energized, it can magnetically hold the dust collection cover in place. When the soft magnetic component is de-energized, it separates from the dust collection cover.
[0012] Compared with existing technologies, the technical advantages of this solution are as follows: The electromagnetic adsorption of soft magnetic components assists in pulling out the dust collection cover, making the pulling process of the drive arm easier and more flexible. Simultaneously, the combination of soft magnetic components and ferromagnetic materials simplifies the overall structure of the drive device, reduces manufacturing and maintenance complexity, and ensures the stability and reliability of the device.
[0013] In one possible design, the dust cover can be removed together with the dust box when it is closed relative to the dust box and the soft magnetic component is separated from the dust cover.
[0014] Compared with existing technologies, the technical advantages of this solution are as follows: By disassembling the dust collection cover and dust collection box together, the dust collection box can be kept sealed during disassembly, thus preventing dust from spreading during movement and helping to keep the vehicle interior clean. Simultaneously, by incorporating a soft magnetic component into the drive arm and using a ferromagnetic material for the dust collection cover, the separation of the drive arm from the dust collection cover becomes simpler and more reliable.
[0015] In one possible design, the camera device includes a camera and a body, with the camera connected to the body; a dust removal mechanism is installed on the body and is capable of sweeping dust from the camera into the dust collection mechanism.
[0016] Compared to existing technologies, this technical solution achieves the following advantages: Integrating a dust removal mechanism into the camera device enables automatic cleaning during use, eliminating the hassle of manual cleaning by the user. This not only improves the user experience but also makes device maintenance more convenient and efficient. Furthermore, cameras are prone to image quality degradation due to dust accumulation during operation; the automatic cleaning function effectively reduces the impact of dust on the camera lens, maintaining clearer shooting results and improving the camera's reliability and performance. Moreover, in various environments, especially dusty ones, the automatic cleaning function ensures the device is always in optimal working condition, enhancing its adaptability and flexibility.
[0017] In one possible design, the dust removal mechanism includes a rotating assembly, a rotating component, and a cotton brush. The rotating assembly is installed inside the body and partially protrudes from both sides of the body. The rotating component is installed on both sides of the body corresponding to the rotating assembly, and the cotton brush is installed on the side of the rotating component closer to the camera. The rotating assembly drives the rotating component to rotate, which in turn drives the cotton brush to sweep the dust on the camera into the dust collection mechanism.
[0018] Compared to existing technologies, this technical solution achieves the following advantages: The rotating component allows the cotton brush to effectively clean around the camera. Through continuous contact and movement, dust is quickly collected and swept into the dust collection mechanism, significantly improving dust removal efficiency. Simultaneously, the soft material of the cotton brush ensures that it will not scratch or damage the camera surface during cleaning, enabling precise and safe dust removal. Furthermore, by combining the rotating component with the cotton brush, continuous and periodic cleaning can be achieved, meaning that dust levels remain low while the camera is operating, consistently ensuring image quality. Automated cleaning reduces the device's reliance on manual cleaning; users no longer need to manually clean the camera, reducing maintenance burden and improving ease of use.
[0019] In one possible design, the dust removal mechanism also includes a cleaning component, which is installed at the bottom of the device near the camera. When the rotating component moves the cotton brush past the cleaning component, the cleaning component can clean the dust on the cotton brush into the dust collection mechanism.
[0020] Compared to existing technologies, this technical solution achieves the following advantages: By introducing a cleaning component, a dual cleaning process is created. While the cotton brush cleans the camera surface, the cleaning component performs a secondary cleaning of the cotton brush, ensuring it remains in optimal cleanliness and thus improving the effectiveness of the entire dust removal process. Simultaneously, the cleaning component effectively reduces the amount of dust adhering to the cotton brush, resulting in more thorough cleaning each time. This prevents the cotton brush from experiencing a decline in cleaning effectiveness due to dust accumulation after repeated use. Furthermore, the automated cleaning mechanism allows the entire system to self-clean during continuous operation, reducing the need for user intervention, thereby saving time and improving equipment efficiency.
[0021] In one possible design, the body is also equipped with blocking elements, which are installed on both sides of the rotating component to limit its rotation range.
[0022] Compared with existing technologies, the technical advantages of this solution are as follows: By limiting the rotation range of the rotating parts, damage to other internal components due to excessive rotation can be avoided, thereby improving the overall safety of the equipment. Simultaneously, the blocking component effectively limits the rotation amplitude of the rotating parts, ensuring that the movement range of the cotton brush during the cleaning process is controllable and improving the stability of the dust removal mechanism. Furthermore, a reasonable range of motion can reduce wear and tear on components caused by frequent collisions or exceeding design limits, extending the service life of components and thus reducing maintenance and replacement costs.
[0023] In one possible design, a telescopic assembly is also provided on the top of the housing for mounting and securing the housing.
[0024] Compared with existing technologies, the technical benefits of this solution are as follows: the telescopic assembly makes the installation of the housing more flexible, allowing the height or position of the housing to be adjusted according to different usage scenarios and space requirements, thus improving the equipment's adaptability to the environment. Furthermore, the telescopic assembly can retract the housing when not needed, reducing space occupation, facilitating storage and transportation, and improving space utilization. Attached Figure Description
[0025] Figure 1 A schematic diagram of the structure of a remote monitoring vehicle management device suitable for the Internet of Things provided in this embodiment of the utility model. Figure 1 ;
[0026] Figure 2 A schematic diagram of the structure of a remote monitoring vehicle management device suitable for the Internet of Things provided in this embodiment of the utility model. Figure 2 ;
[0027] Figure 3 for Figure 2 Enlarged view of region A in the middle;
[0028] Figure 4 A schematic diagram of the dust collection mechanism and driving device provided in the embodiments of this utility model;
[0029] Figure 5 A schematic diagram of the structure of a remote monitoring vehicle management device suitable for the Internet of Things provided in this embodiment of the utility model. Figure 3 .
[0030] Explanation of reference numerals in the attached figures:
[0031] 11-Housing; 12-Camera device; 13-Dust removal mechanism; 14-Dust collection mechanism; 15-Drive device; 16-Dust collection cover; 17-Dust collection box; 18-Collection component; 19-Drive motor; 20-Drive arm; 21-Soft magnetic component; 22-Camera; 23-Body; 24-Rotating component; 25-Cotton brush; 26-Cleaning component; 27-Blocking component; 28-Telescopic component. Detailed Implementation
[0032] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0033] See Figures 1 to 5This utility model provides a remote monitoring vehicle management device suitable for the Internet of Things, comprising: a housing 11, with an installation space inside the housing 11; a camera device 12, installed in the installation space; a dust removal mechanism 13, installed on the camera device 12; and a dust collection mechanism 14, installed at the bottom of the installation space corresponding to the camera device 12. The dust collection mechanism 14 includes a drive device 15, a dust collection cover 16, and a detachable dust collection box 17, with the dust collection cover 16 installed on the dust collection box 17. The dust removal mechanism 13 can sweep the dust on the camera device 12 into the dust collection box 17, and the drive device 15 can cooperate with the dust removal mechanism 13 to control the dust collection cover 16 to open or close relative to the dust collection box 17.
[0034] Specifically, in this embodiment, the dust collection mechanism 14 is installed at the bottom of the installation space corresponding to the camera device 12, and partially exposed within the installation space. The drive device 15 is installed at the bottom of the installation space corresponding to the dust collection mechanism 14, and is positioned between the bottom of the housing 11 and the camera device 12. The drive device 15 works in conjunction with the dust removal mechanism 13 to complete the dust cleaning and collection operations on the camera device 12. When the dust removal mechanism 13 is in operation and cleaning the camera device 12, the drive device 15 controls the dust collection cover 16 to open relative to the dust collection box 17, allowing dust to fall into the dust collection box 17. If the dust removal mechanism 13 is in a stopped state and not cleaning the camera device 12, the drive device 15 controls the dust collection cover 16 to close relative to the dust collection box 17, thereby preventing dust from spreading into the vehicle interior due to wind or vehicle vibration.
[0035] In one embodiment of this application, the dust collection mechanism 14 further includes a collection component 18, which is fixedly connected to the housing 11; wherein the dust collection box 17 is detachably snapped onto the collection component 18.
[0036] Specifically, in this embodiment, the collecting component 18 is fixedly connected to the housing 11, and the dust collection box 17 is snapped onto the collecting component 18. When the dust collection box 17 is installed and removed, the collecting component 18 can provide stable support for the dust collection box 17. In addition, the collecting component 18 is provided with two inclined collecting plates, which can effectively increase the opening of the collecting component 18 and collect more scattered dust.
[0037] In one embodiment of this application, the dust collection box 17 has an opening, and the dust collection cover 16 is movably connected to the dust collection box 17 through the opening; wherein, the driving device 15 includes a driving motor 19 and a driving arm 20, the driving motor 19 can control the driving arm 20 to push the dust collection cover 16 into the dust collection box 17, so that the dust collection cover 16 is closed relative to the dust collection box 17; or the driving motor 19 can control the driving arm 20 to pull the dust collection cover 16 out of the dust collection box 17, so that the dust collection cover 16 is open relative to the dust collection box 17.
[0038] Specifically, in this embodiment, the dust collection box 17 has an opening on the side near the drive device 15. This opening is adapted to the shape of the dust collection cover 16, allowing only relative movement between the dust collection cover 16 and the dust collection box 17. The end of the dust collection cover 16 away from the drive device 15 cannot completely leave the dust collection box 17. The drive device 15 includes a drive motor 19 and two drive arms 20. Each drive arm 20 has a gear drive path. Gears are respectively provided at both ends of the drive motor 19, and the two gears fall into the gear drive paths of the two drive arms 20. Rotation of the drive motor 19 can drive the two drive arms 20 to move towards or away from the dust collection cover 16. A moving groove is provided at the bottom of the housing 11, and the two drive arms 20 are installed in the moving groove. The moving groove is used to limit the range of movement of the drive arms 20 and prevent them from derailing.
[0039] In one embodiment of this application, the drive arm 20 is provided with a soft magnetic component 21 at one end near the dust collection cover 16, and the dust collection cover 16 is made of ferromagnetic material; wherein, when the soft magnetic component 21 is energized, the soft magnetic component 21 can magnetically attract the dust collection cover 16; when the soft magnetic component 21 is de-energized, the soft magnetic component 21 separates from the dust collection cover 16.
[0040] Specifically, in this embodiment, a soft magnetic component 21 is provided at the end of each of the two drive arms 20 near the dust collection cover 16. The soft magnetic component 21 is electrically connected to the main controller of the remote monitoring vehicle management device, and the main controller controls the power supply of the soft magnetic component 21. Furthermore, the dust collection cover 16 is made of ferromagnetic material. When the soft magnetic component 21 is energized, the drive arms 20 can be magnetically attracted to the dust collection cover 16; when the soft magnetic component 21 is de-energized, no magnetism is generated between the drive arms 20, and their respective movements are not affected. Specifically, when it is necessary to close the dust collection cover 16 relative to the dust collection box 17, the drive motor 19 rotates, driving the drive arms 20 to move towards the dust collection box 17, thereby pushing the dust collection cover 16 into the dust collection box 17. When it is necessary to open the dust collection cover 16 relative to the dust collection box 17, the soft magnetic component 21 is energized, causing the soft magnetic component 21 to magnetically attract the dust collection cover 16. The drive motor 19 then rotates to drive the drive arm 20 to move away from the dust collection box 17, thereby pulling the dust collection cover 16 out of the dust collection box 17. After the dust collection cover 16 moves to the preset position, the drive motor 19 stops working and the soft magnetic component 21 is de-energized.
[0041] In one embodiment of this application, when the dust collection cover 16 is closed relative to the dust collection box 17 and the soft magnetic component 21 is separated from the dust collection cover 16, the dust collection cover 16 can be disassembled together with the dust collection box 17.
[0042] Specifically, in this embodiment, the dust collection cover 16 can only be successfully disassembled when it is closed relative to the dust collection box 17 and the soft magnetic component 21 is separated from the dust collection cover 16 (i.e., the soft magnetic component 21 is not energized). Traditionally, the dust collection box 17 can only be disassembled individually, and the dust inside may spill into the vehicle interior, affecting its cleanliness. In this embodiment, the dust collection box 17 and dust collection cover 16 can be disassembled together. After disassembly, the dust collection box 17 is closed, preventing dust from spreading into the vehicle interior and helping to maintain cleanliness. The user can manually open the dust collection cover 16, empty the dust from the dust collection box 17, and then reattach it to the collection assembly 18.
[0043] In one embodiment of this application, the camera device 12 includes a camera 22 and a body 23, with the camera 22 connected to the body 23; a dust removal mechanism 13 is installed on the body 23 and is capable of sweeping the dust on the camera 22 into the dust collection mechanism 14.
[0044] Specifically, in this embodiment, the camera 22 is a semi-circular camera, and the rotating component 24 is arc-shaped. The arc-shaped rotating component 24 drives the cotton brush 25 to more easily sweep the dust on the semi-circular camera 22 into the dust collection box 17. A mounting bracket is provided at the bottom of the housing 11 for mounting and fixing the camera 22 and the housing 23.
[0045] In one embodiment of this application, the dust removal mechanism 13 includes a rotating assembly, a rotating component 24, and a cotton brush 25. The rotating assembly is installed inside the body 23 and partially protrudes from both sides of the body 23. The rotating component 24 is installed on both sides of the body 23 corresponding to the rotating assembly, and the cotton brush 25 is installed on the side of the rotating component 24 near the camera 22. The rotating assembly drives the rotating component 24 to rotate, which in turn drives the cotton brush 25 to sweep the dust on the camera 22 into the dust collection mechanism 14.
[0046] Specifically, in this embodiment, the rotating component is a motor installed inside the body 23, and the drive shaft extends from both sides of the body 23; the two ends of the rotating part 24 are respectively installed on the drive shaft of the rotating component on both sides of the body 23. When the drive component is working, it can drive the rotating part 24 and the cotton brush 25 to the camera 22 for cleaning.
[0047] In one embodiment of this application, the dust removal mechanism 13 further includes a cleaning component 26, which is installed at the bottom of the body 23 near the camera 22. When the rotating component 24 drives the cotton brush 25 to pass through the cleaning component 26, the cleaning component 26 can clean the dust on the cotton brush 25 into the dust collection mechanism 14.
[0048] Specifically, in this embodiment, the cleaning component 26 is a toothed comb. When the rotating component 24 drives the cotton brush 25 to pass through the toothed comb, the toothed comb can scrape the dust on the cotton brush 25 into the dust collection box 17, thereby cleaning the cotton brush 25 and ensuring the cleanliness of the cotton brush 25.
[0049] In one embodiment of this application, a blocking member 27 is also installed on the body 23. The blocking member 27 is installed on both sides of the rotating member 24 to limit the rotation range of the rotating member 24.
[0050] Specifically, in this embodiment, there are two blocking members 27, which are installed on the body 23 and distributed on both sides of the rotating member 24. They are used to limit the range of rotation of the rotating member 24 toward the top of the housing 11 and the range of rotation toward the cleaning member 26, so that the rotating member 24 is always within the specified range.
[0051] In one embodiment of this application, a telescopic component 28 is also provided on the top of the housing 11 for mounting and fixing the housing 11.
[0052] Specifically, in this embodiment, one end of the telescopic component 28 is fixed to the housing 11, and the other end is used for installation and fixation, which can be screwed, glued, or snapped. The length of the telescopic component 28 can be adjusted according to different usage scenarios and space requirements to adapt the remote monitoring vehicle management device to the environment.
[0053] Specifically, in this embodiment, when the dust removal mechanism 13 is not working, the dust collection cover 16 and the dust collection box 17 are relatively closed, and the soft magnetic component 21 is not energized. The dust collection cover 16 and the dust collection box can be detached together for emptying the dust inside. When the dust removal mechanism 13 starts working, the main controller energizes the soft magnetic component 21, causing it to magnetically attract the dust collection cover 16. The drive motor 19 drives the drive arm 20 to pull the dust collection cover 16 out of the dust collection box 17 until the dust collection cover 16 moves to a preset position. Then, the drive motor 19 stops working and de-energizes the soft magnetic component 21. When the dust collection cover 16 and the dust collection box 17 are in the open state, the dust generated by the dust removal mechanism 13 can slide into the dust collection box 17 through the collection component 18. When the dust removal mechanism 13 stops working, the drive motor 19 rotates to drive the drive arm 20 to move closer to the dust collection box 17, thereby pushing the dust collection cover 16 into the dust collection box 17 and closing the dust collection cover 16 relative to the dust collection box 17.
[0054] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can make various modifications and alterations without departing from the spirit and scope of the present invention; therefore, the scope of protection of the present invention should be determined by the scope defined in the claims.
Claims
1. A remote vehicle management monitoring device suitable for the Internet of Things, characterized in that, include: The housing (11) has an installation space inside; A camera device (12) is installed in the installation space; A dust removal mechanism (13) is installed on the camera device (12); A dust collection mechanism (14) is installed at the bottom of the installation space corresponding to the camera device (12). The dust collection mechanism (14) includes a drive device (15), a dust collection cover (16) and a detachable dust collection box (17). The dust collection cover (16) is installed on the dust collection box (17). The dust removal mechanism (13) can sweep the dust on the camera device (12) into the dust collection box (17), and the drive device (15) can cooperate with the dust removal mechanism (13) to control the dust collection cover (16) to open or close relative to the dust collection box (17).
2. The remote monitoring vehicle management device for the Internet of Things according to claim 1, characterized in that, The dust collection mechanism (14) further includes a collection component (18), which is fixedly connected to the housing (11). The dust collection box (17) is detachably snapped onto the collection assembly (18).
3. The remote monitoring vehicle management device for the Internet of Things according to claim 2, characterized in that, The dust collection box (17) has an opening, and the dust collection cover (16) is movably connected to the dust collection box (17) through the opening. The driving device (15) includes a driving motor (19) and a driving arm (20). The driving motor (19) can control the driving arm (20) to push the dust collection cover (16) into the dust collection box (17) so that the dust collection cover (16) is closed relative to the dust collection box (17); or the driving motor (19) can control the driving arm (20) to pull the dust collection cover (16) out of the dust collection box (17) so that the dust collection cover (16) is open relative to the dust collection box (17).
4. The remote monitoring vehicle management device for the Internet of Things according to claim 3, characterized in that, The drive arm (20) has a soft magnetic component (21) at one end near the dust collection cover (16), which is made of ferromagnetic material; When the soft magnetic component (21) is energized, it can magnetically hold the dust collection cover (16); when the soft magnetic component (21) is de-energized, it separates from the dust collection cover (16).
5. The remote monitoring vehicle management device for the Internet of Things according to claim 4, characterized in that, When the dust collection cover (16) is closed relative to the dust collection box (17) and the soft magnetic component (21) is separated from the dust collection cover (16), the dust collection cover (16) can be disassembled together with the dust collection box (17).
6. The remote monitoring vehicle management device for the Internet of Things according to claim 1, characterized in that, The camera device (12) includes a camera (22) and a body (23), the camera (22) being connected to the body (23); the dust removal mechanism (13) is installed on the body (23) and can sweep the dust on the camera (22) into the dust collection mechanism (14).
7. The remote monitoring vehicle management device for the Internet of Things according to claim 6, characterized in that, The dust removal mechanism (13) includes a rotating assembly, a rotating component (24), and a cotton brush (25). The rotating assembly is installed inside the body (23) and partially protrudes from both sides of the body (23). The rotating component (24) is installed on both sides of the body (23) corresponding to the rotating assembly. The cotton brush (25) is installed on the side of the rotating component (24) near the camera (22). The rotating component drives the rotating part (24) to rotate, which in turn drives the cotton brush (25) to sweep the dust on the camera (22) into the dust collection mechanism (14).
8. The remote monitoring vehicle management device for the Internet of Things according to claim 7, characterized in that, The dust removal mechanism (13) also includes a cleaning component (26), which is installed at the bottom of the body (23) near the camera (22); When the rotating component (24) drives the cotton brush (25) to pass through the cleaning component (26), the cleaning component (26) can clean the dust on the cotton brush (25) into the dust collection mechanism (14).
9. The remote monitoring vehicle management device for the Internet of Things according to claim 7, characterized in that, The fuselage (23) is also equipped with a blocking member (27), which is installed on both sides of the rotating member (24) to limit the rotation range of the rotating member (24).
10. The remote monitoring vehicle management device for the Internet of Things according to any one of claims 1-9, characterized in that, The top of the housing (11) is also provided with a telescopic component (28) for installing and fixing the housing (11).