Support platform of traffic meteorological mobile observation equipment

By setting up a lifting and rotating structure and an angle adjustment structure on the support platform, the problem of the camera position not being able to be adjusted in a timely manner was solved, enabling multi-directional monitoring of the camera and improving the monitoring accuracy and range.

CN224245850UActive Publication Date: 2026-05-15武汉市公共气象服务中心 +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
武汉市公共气象服务中心
Filing Date
2025-07-09
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

The existing support platform cannot adjust the camera position in a timely manner, resulting in the inability to accurately monitor every location on the road, especially in complex weather conditions such as rain, snow, fog, snow accumulation, and ice, which affects the safe operation of highways.

Method used

A support platform for a mobile traffic meteorological observation device was designed, comprising a lifting and rotating structure and an angle adjustment structure. The height and angle of the camera are adjusted by the lifting motor and the rotating motor to achieve multi-directional monitoring by the camera.

Benefits of technology

It enables flexible adjustment of the camera at different heights and angles, achieving a wider monitoring range, improving the monitoring scope and accuracy, and realizing a broader monitoring effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of support platforms, in particular to a support platform of traffic meteorological mobile observation equipment, which comprises a fixed connecting rod, a lifting rotating structure is connected onto the end face of the fixed connecting rod, an angle adjusting structure is connected onto the lifting rotating structure, a camera is connected onto the angle adjusting structure, and the camera is connected onto the fixed connecting rod. A controller is connected to the end face of the fixed connecting rod, the lifting rotating structure comprises a connecting vertical rod, the connecting vertical rod is connected to the end face of the fixed connecting rod, a movable box body is connected to the side wall of the connecting vertical rod, and a lifting motor is connected to the side wall of the movable box body through a connecting base; according to the utility model, the angle adjusting structure is arranged in the support platform of the traffic meteorological mobile observation equipment, so that the elevation angle of the camera in use can be adjusted by using the driving motor in the angle adjusting structure through the transmission structure, and the monitoring distance can be wider.
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Description

Technical Field

[0001] This utility model relates to the field of support platform technology, specifically a support platform for a mobile traffic and meteorological observation device. Background Technology

[0002] Monitoring weather and environmental conditions is crucial for the scientific operation of highways. Rain, snow, fog, snow accumulation, and icing all directly impact highway operations. Statistics show that fog, snow, and icy roads are the meteorological factors with the greatest impact on road traffic safety, accounting for a significant proportion of fatal and injury-causing traffic accidents each year. Their impact on highways is mainly reflected in four aspects: safety, economic benefits, social impact, and the traffic problems they introduce. Existing support platforms mostly use fixed cameras, allowing monitoring only at a single location. However, road conditions are complex, necessitating timely adjustments to camera positions for more accurate monitoring of every location on the road. To address these issues, a support platform for a mobile traffic meteorological observation device is needed. Utility Model Content

[0003] The purpose of this invention is to provide a support platform for a mobile traffic and meteorological observation device to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution:

[0005] A support platform for a mobile traffic meteorological observation device includes a fixed link, a lifting and rotating structure connected to the end face of the fixed link, an angle adjustment structure connected to the lifting and rotating structure, a camera connected to the angle adjustment structure, and a controller connected to the end face of the fixed link.

[0006] The lifting and rotating structure includes a connecting rod connected to the end face of a fixed connecting rod. A movable housing is connected to the side wall of the connecting rod. A lifting motor is connected to the side wall of the movable housing via a connecting seat. The drive end of the lifting motor is connected to a drive rod via a coupling. A rotating gear is connected to the side wall of the drive rod and located inside the cavity of the movable housing. A fixed rack is connected to the side wall of the rotating gear and is connected to the side wall of the connecting rod. A rotating motor is connected to the side wall of the movable housing via a connecting seat. The drive end of the rotating motor is connected to a rotating rod via a coupling. One end of the rotating rod is connected to a rotating connecting plate. A connecting slider is connected to the bottom of the rotating connecting plate. A connecting slide rail is connected to the connecting slider and is connected to the side wall of the movable housing via a connecting plate.

[0007] As a preferred embodiment of this utility model, the angle adjustment structure includes a connecting frame connected to the end face of a rotating connecting plate. A fixed connecting plate is connected to the end face of the connecting frame. A drive motor is connected to the end face of the fixed connecting plate via a connecting seat. The drive end of the drive motor is connected to a drive rod via a coupling. A driven gear is meshed with a drive gear on the side wall of the drive rod. A rotating lead screw is connected to the center of the driven gear. A movable slide plate is connected to the side wall of the rotating lead screw. Fixed slide rods are symmetrically connected to the movable slide plate. Both ends of the fixed slide rods are connected to the connecting frame. Fixed connecting seats are symmetrically connected to the end face of the movable slide plate. A rotating support rod is connected to the fixed connecting seat. The other end of the rotating support rod is connected to a connecting connecting seat. A swinging rotating plate is connected to the connecting connecting seat. A fixed connecting block is connected to the bottom of the swinging rotating plate. A connecting block is connected to the fixed connecting block and is connected to the end face of the fixed connecting plate.

[0008] As a preferred embodiment of this utility model, the camera is connected to the controller via a wire in an electrical connection manner, and a sliding groove is provided on the movable housing corresponding to the connecting rod, wherein the connecting rod and the sliding groove are connected in a sliding connection manner, and the lifting motor is connected to the controller via a wire in an electrical connection manner.

[0009] In a preferred embodiment of this utility model, the drive rod is connected to the movable housing via a bearing seat, wherein the drive rod and the bearing seat are connected by a rotatable connection, the rotating motor is connected to the controller via a wire and the connection is electrical, and the rotating rod is connected to the movable housing via a bearing seat, wherein the rotating rod and the bearing seat are connected by a rotatable connection.

[0010] As a preferred embodiment of this utility model, the connecting slide rail has an arc-shaped structure, and the center line of the connecting slide rail coincides with the center line of the rotating rod. A sliding groove is provided on the connecting slide rail and corresponding to the connecting slider. The connecting slider and the sliding groove are connected in a sliding connection manner. The drive motor is connected to the controller through a wire and the connection method is an electrical connection.

[0011] As a preferred embodiment of this utility model, the drive rod is connected to the fixed connecting plate through a bearing seat, wherein the connection between the drive rod and the bearing seat is a rotatable connection, and the rotating lead screw is connected to the connecting frame through a bearing seat, wherein the connection between the rotating lead screw and the bearing seat is a rotatable connection.

[0012] As a preferred embodiment of this utility model, the rotating lead screw and the movable slide are connected by a threaded connection, and the movable slide has a connecting hole corresponding to the fixed slide rod, wherein the fixed slide rod and the connecting hole are connected by a sliding connection.

[0013] In a preferred embodiment of this utility model, the fixed connecting seat and the rotating support rod are rotatably connected by a rotating shaft, the rotating support rod and the connecting connecting seat are rotatably connected by a rotating shaft, and the fixed connecting block and the connecting connecting block are rotatably connected by a rotating shaft.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] In this invention, a lifting and rotating structure is set in the support platform of the mobile traffic and meteorological observation equipment. The lifting motor and rotating motor in the lifting and rotating structure can be used to adjust the height and rotation angle of the camera during use through the transmission structure, so that the monitoring range can be wider.

[0016] In this invention, an angle adjustment structure is set in the support platform of the mobile traffic and meteorological observation equipment. The drive motor in the angle adjustment structure can adjust the elevation angle of the camera during use through the transmission structure, thereby enabling a wider monitoring distance. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the isotropic structure of this utility model;

[0018] Figure 2 This is a schematic diagram of the lifting and rotating structure of this utility model;

[0019] Figure 3 for Figure 2 Partial structural diagram;

[0020] Figure 4 This is a schematic diagram of the angle adjustment structure of this utility model;

[0021] Figure 5 for Figure 4 A partial structural diagram.

[0022] In the diagram: 1. Fixed connecting rod; 2. Lifting and rotating structure; 3. Angle adjustment structure; 4. Camera; 5. Controller; 201. Connecting upright; 202. Moving box; 203. Lifting motor; 204. Drive rod; 205. Rotating gear; 206. Fixed rack; 207. Rotating motor; 208. Rotating rod; 209. Rotating connecting plate; 210. Connecting slider; 211. Connecting slide rail; 301. Connecting frame; 302. Fixed connecting plate; 303. Drive motor; 304. Drive rotating rod; 305. Drive gear; 306. Driven gear; 307. Rotating lead screw; 308. Moving slide plate; 309. Fixed slide rod; 310. Fixed connecting seat; 311. Rotating support rod; 312. Connecting connecting seat; 313. Swinging rotating plate; 314. Fixed connecting block; 315. Connecting connecting block. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0024] For an example, please refer to... Figure 1-5 This utility model provides a technical solution:

[0025] A support platform for a mobile traffic meteorological observation device includes a fixed link 1, a lifting and rotating structure 2 connected to the end face of the fixed link 1, an angle adjustment structure 3 connected to the lifting and rotating structure 2, a camera 4 connected to the angle adjustment structure 3, and a controller 5 connected to the end face of the fixed link 1.

[0026] In this embodiment, reference Figure 1 , Figure 2 and Figure 3 The lifting and rotating structure 2 includes a connecting rod 201, which is connected to the end face of the fixed connecting rod 1. A movable housing 202 is connected to the side wall of the connecting rod 201. A lifting motor 203 is connected to the side wall of the movable housing 202 via a connecting seat. The drive end of the lifting motor 203 is connected to a drive rod 204 via a coupling. A rotating gear 205 is connected to the side wall of the drive rod 204 and located inside the cavity of the movable housing 202. A fixed gear is connected to the side wall of the rotating gear 205. A rack 206 is fixed and connected to the side wall of the connecting rod 201. A rotating motor 207 is connected to the side wall of the movable housing 202 via a connecting seat. The drive end of the rotating motor 207 is connected to a rotating rod 208 via a coupling. One end of the rotating rod 208 is connected to a rotating connecting plate 209. A connecting slider 210 is connected to the bottom of the rotating connecting plate 209. A connecting slide rail 211 is connected to the connecting slider 210. The connecting slide rail 211 is connected to the side wall of the movable housing 202 via a connecting plate.

[0027] Based on the above structure and the connection relationship of the above structure, the controller 5 controls the operation of the lifting motor 203. When the driving end of the lifting motor 203 rotates, it drives the driving rod 204 and the rotating gear 205 to rotate in sequence. When the rotating gear 205 rotates, it drives the camera 4 to move up and down through the fixed rack 206. The controller 5 controls the operation of the rotating motor 207. When the driving end of the rotating motor 207 rotates, it drives the rotating rod 208, the rotating connecting plate 209 and the connecting slider 210 to rotate in sequence, thereby adjusting the rotation angle of the camera 4.

[0028] Furthermore, the camera 4 is connected to the controller 5 via wires in an electrical manner, the lifting motor 203 is connected to the controller 5 via wires in an electrical manner, and the rotating motor 207 is connected to the controller 5 via wires in an electrical manner, so that the camera 4, the lifting motor 203 and the rotating motor 207 can be controlled by the controller 5.

[0029] Furthermore, a sliding groove is provided on the movable housing 202 corresponding to the connecting rod 201, wherein the connecting rod 201 and the sliding groove are connected in a sliding connection. The drive rod 204 is connected to the movable housing 202 through a bearing seat, wherein the drive rod 204 and the bearing seat are connected in a rotating connection. When the drive rod 204 rotates, it can drive the camera 4 to move upward.

[0030] Furthermore, the rotating rod 208 is connected to the movable housing 202 via a bearing seat. The connection between the rotating rod 208 and the bearing seat is a rotatable connection. The connecting slide rail 211 has an arc-shaped structure, and its center line coincides with the center line of the rotating rod 208. A groove is provided on the connecting slide rail 211 and corresponding to the connecting slider 210. The connection between the connecting slider 210 and the groove is a sliding connection. When the rotating rod 208 rotates, it drives the camera 4 to rotate in a horizontal position.

[0031] In this embodiment, reference Figure 1 , Figure 4 and Figure 5 The angle adjustment structure 3 includes a connecting frame 301, which is connected to the end face of the rotating connecting plate 209. A fixed connecting plate 302 is connected to the end face of the connecting frame 301. A drive motor 303 is connected to the end face of the fixed connecting plate 302 via a connecting seat. The drive end of the drive motor 303 is connected to a drive rod 304 via a coupling. A driven gear 306 is meshed with the side wall of the drive rod 304 via a drive gear 305. A rotating lead screw 307 is connected to the center of the driven gear 306. A movable slide plate 308 is connected to the side wall of the rotating lead screw 307. Fixed slide rods 309 are symmetrically connected to the slide plate 308. The two ends of the fixed slide rods 309 are connected to the connecting frame 301. Fixed connecting seats 310 are symmetrically connected to the end face of the slide plate 308. Rotating support rods 311 are connected to the fixed connecting seats 310. The other end of the rotating support rods 311 is connected to the connecting connecting seat 312. A swing plate 313 is connected to the connecting connecting seat 312. A fixed connecting block 314 is connected to the bottom of the swing plate 313. A connecting block 315 is connected to the fixed connecting block 314. The connecting block 315 is connected to the end face of the fixed connecting plate 302.

[0032] Based on the above structure and the connection relationship of the above structure, the controller 5 controls the drive motor 303 to run. When the drive end of the drive motor 303 rotates, it sequentially drives the drive rod 304, drive gear 305, driven gear 306 and rotating screw 307 to rotate. When the rotating screw 307 rotates, it drives the movable slide plate 308 to move on the side wall of the rotating screw 307. When the movable slide plate 308 moves, it drives the swing plate 313 to rotate at the shaft core at the connection of the fixed connecting block 314 and the connecting connecting block 315 through the fixed connecting seat 310, the rotating support rod 311 and the connecting connecting seat 312, thereby adjusting the elevation angle of the camera 4.

[0033] Furthermore, the drive motor 303 is connected to the controller 5 via wires in an electrical connection manner, and the controller 5 can control the operation of the drive motor 303.

[0034] Furthermore, the drive rod 304 is connected to the fixed connecting plate 302 via a bearing seat, wherein the drive rod 304 and the bearing seat are connected by a rotatable connection. The rotating screw 307 is connected to the connecting frame 301 via a bearing seat, wherein the rotating screw 307 and the bearing seat are connected by a rotatable connection. The rotating screw 307 and the movable slide plate 308 are connected by a threaded connection. The movable slide plate 308 has a corresponding connecting hole with the fixed slide rod 309, wherein the fixed slide rod 309 and the connecting hole are connected by a sliding connection. The fixed connecting seat 310 and the rotating support rod 311 are rotatably connected via a rotating shaft. The rotating support rod 311 and the connecting connecting seat 312 are rotatably connected via a rotating shaft. The fixed connecting block 314 and the connecting connecting block 315 are rotatably connected via a rotating shaft. When the drive rod 304 rotates, the elevation angle of the camera 4 can be adjusted.

[0035] The working process of this utility model is as follows: When using the support platform of the mobile traffic and meteorological observation equipment, the device is first connected to the power supply so that the device is in working condition. The lifting motor 203 is controlled by the controller 5. When the drive end of the lifting motor 203 rotates, it drives the drive rod 204 to rotate. The drive rod 204 drives the rotating gear 205 to rotate. When the rotating gear 205 rotates, it drives the camera 4 to move up and down through the fixed rack 206, thereby adjusting the height of the camera 4 during use.

[0036] The controller 5 controls the operation of the rotating motor 207. When the rotating motor 207 drives the rotating rod 208 to rotate, the rotating rod 208 drives the rotating connecting plate 209 to rotate, and the rotating connecting plate 209 drives the connecting slider 210 to rotate, thereby adjusting the rotation angle of the camera 4 during use.

[0037] The controller 5 controls the operation of the drive motor 303. When the drive end of the drive motor 303 rotates, it drives the drive rod 304 to rotate. The drive rod 304 drives the drive gear 305 to rotate. The drive gear 305 drives the driven gear 306 to rotate. The driven gear 306 drives the rotating screw 307 to rotate. When the rotating screw 307 rotates, it drives the moving slide plate 308 to move on the side wall of the rotating screw 307. When the moving slide plate 308 moves, it drives the swing plate 313 to rotate at the shaft core at the connection of the fixed connecting block 314 and the connecting connecting block 315 through the fixed connecting seat 310, the rotating support rod 311, and the connecting connecting seat 312, thereby adjusting the elevation angle of the camera 4.

[0038] The camera 4, lifting motor 203, rotating motor 207, drive motor 303 and controller 5 used in this utility model are all existing known electrical devices, and can all be purchased and used directly on the market. Their structure, circuit and control principle are all existing known technologies. Therefore, the structure, circuit and control principle of the camera 4, lifting motor 203, rotating motor 207, drive motor 303 and controller 5 will not be described in detail here.

[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art 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 appended claims and their equivalents.

Claims

1. A support platform for a mobile traffic meteorological observation device, comprising a fixed connecting rod (1), characterized in that: A lifting and rotating structure (2) is connected to the end face of the fixed link (1), an angle adjustment structure (3) is connected to the lifting and rotating structure (2), a camera (4) is connected to the angle adjustment structure (3), and a controller (5) is connected to the end face of the fixed link (1). The lifting and rotating structure (2) includes a connecting rod (201), which is connected to the end face of the fixed connecting rod (1). A movable housing (202) is connected to the side wall of the connecting rod (201). A lifting motor (203) is connected to the side wall of the movable housing (202) via a connecting seat. The drive end of the lifting motor (203) is connected to a drive rod (204) via a coupling. A rotating gear (205) is connected to the side wall of the drive rod (204) and located in the inner cavity of the movable housing (202). A fixed rack is connected to the side wall of the rotating gear (205). (206) The fixed rack (206) is connected to the side wall of the connecting rod (201). The side wall of the movable box (202) is connected to the rotating motor (207) through the connecting seat. The drive end of the rotating motor (207) is connected to the rotating rod (208) through the coupling. One end of the rotating rod (208) is connected to the rotating connecting plate (209). The bottom of the rotating connecting plate (209) is connected to the connecting slider (210). The connecting slider (210) is connected to the connecting slide rail (211). The connecting slide rail (211) is connected to the side wall of the movable box (202) through the connecting plate.

2. The support platform for a mobile traffic meteorological observation device according to claim 1, characterized in that: The angle adjustment structure (3) includes a connecting frame (301), which is connected to the end face of the rotating connecting plate (209). A fixed connecting plate (302) is connected to the end face of the connecting frame (301). A drive motor (303) is connected to the end face of the fixed connecting plate (302) via a connecting seat. The drive end of the drive motor (303) is connected to a drive rod (304) via a coupling. A driven gear (306) is meshed with a drive gear (305) on the side wall of the drive rod (304). A rotating lead screw (307) is connected to the center of the driven gear (306). A movable slide plate (308) is connected to the side wall of the rotating lead screw (307). Fixed slide rods (309) are symmetrically connected to the slide plate (308). The two ends of the fixed slide rods (309) are connected to the connecting frame (301). Fixed connecting seats (310) are symmetrically connected to the end face of the movable slide plate (308). Rotating support rods (311) are connected to the fixed connecting seats (310). The other end of the rotating support rods (311) is connected to the connecting connecting seat (312). A swing plate (313) is connected to the connecting connecting seat (312). A fixed connecting block (314) is connected to the bottom of the swing plate (313). A connecting block (315) is connected to the fixed connecting block (314). The connecting block (315) is connected to the end face of the fixed connecting plate (302).

3. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The camera (4) is connected to the controller (5) by a wire and the connection method is electrical connection. The movable box (202) is provided with a sliding groove corresponding to the connecting rod (201), wherein the connection method between the connecting rod (201) and the sliding groove is sliding connection. The lifting motor (203) is connected to the controller (5) by a wire and the connection method is electrical connection.

4. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The drive rod (204) is connected to the movable housing (202) through a bearing seat, wherein the drive rod (204) and the bearing seat are connected by a rotatable connection. The rotating motor (207) is connected to the controller (5) through a wire and the connection method is an electrical connection. The rotating rod (208) is connected to the movable housing (202) through a bearing seat, wherein the rotating rod (208) and the bearing seat are connected by a rotatable connection.

5. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The connecting slide rail (211) has an arc-shaped structure, and the center line of the connecting slide rail (211) coincides with the center line of the rotating rod (208). The connecting slide rail (211) is provided with a groove corresponding to the connecting slider (210). The connecting slider (210) and the groove are connected by a sliding connection. The drive motor (303) is connected to the controller (5) through a wire and the connection method is an electrical connection.

6. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The drive rod (304) is connected to the fixed connecting plate (302) through a bearing seat, wherein the drive rod (304) and the bearing seat are connected by a rotatable connection. The rotating screw (307) is connected to the connecting frame (301) through a bearing seat, wherein the rotating screw (307) and the bearing seat are connected by a rotatable connection.

7. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The rotating lead screw (307) and the movable slide plate (308) are connected by a threaded connection. The movable slide plate (308) has a connecting hole corresponding to the fixed slide rod (309). The fixed slide rod (309) and the connecting hole are connected by a sliding connection.

8. The support platform for a mobile traffic meteorological observation device according to claim 2, characterized in that: The fixed connecting seat (310) and the rotating support rod (311) are rotatably connected by a rotating shaft, the rotating support rod (311) and the connecting connecting seat (312) are rotatably connected by a rotating shaft, and the fixed connecting block (314) and the connecting block (315) are rotatably connected by a rotating shaft.