CIM urban planning and construction management equipment

By combining the design of square beams and rod-shaped structures, and utilizing clamps, sliding platforms, guide shoes, adjusting rods, and bolted positioning structures, the problem of difficulty in adjusting the height and position of the camera after installation is solved, achieving flexible adjustment and efficient installation.

CN223537282UActive Publication Date: 2025-11-11CHENGDU ALPHA YUNYAO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202423219248.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-11-11
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

Existing cameras are difficult to adjust in terms of height and position after installation in urban planning and construction. Especially when installed at high altitudes, they need to be disassembled and reinstalled, which increases the difficulty of debugging and the risk of equipment damage.

Method used

The camera's height and horizontal position can be flexibly adjusted by using a combination of square beams and rod-shaped structures, clamps, sliding platforms, guide shoes, adjusting rods, and bolted positioning structures.

Benefits of technology

It enables flexible adjustment of the camera's height and position after installation, reducing debugging difficulty, improving installation efficiency, and reducing the risk of equipment damage.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223537282U_ABST
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Abstract

The utility model discloses a CIM city planning construction management device, which comprises a square-opening cross beam and a hoop installed at one end of the square-opening cross beam, the hoop is used for being connected with a rod-shaped structure, a lower sliding table is installed at the bottom end of the square-opening cross beam in a sliding mode, and guide shoes matched with the outer wall of the square-opening cross beam in a sliding mode are installed on the two sides of the top end of the lower sliding table. Supporting structures are mounted on the two sides of the bottom end of the lower sliding table correspondingly, and two adjusting rods are slidably mounted in the supporting structures. The square-opening cross beam is connected with the rod-shaped structure through the hoop, installation and position adjustment of the binocular camera are more flexible and efficient, a worker can accurately adjust the height and the horizontal position of the camera through matched use of the lower sliding table, the guide shoe, the adjusting rod, the bolting positioning structure and other assemblies, and the working efficiency is improved. Therefore, the purposes of optimizing the monitoring effect, reducing the debugging difficulty and improving the installation efficiency are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of urban construction management technology, specifically a CIM urban planning, construction and management equipment. Background Technology

[0002] In CIM (City Information Modeling) urban planning, construction, and management, cameras play an indispensable role. They are used not only for real-time monitoring of urban infrastructure status and construction progress, but also for analyzing traffic flow, pedestrian activity, and environmental changes through image recognition technology. By collecting and processing image data, cameras provide city managers with accurate decision-making support, thereby improving the efficiency and safety of urban operations. Regarding installation and deployment, the selection and layout of cameras need to be optimized based on specific application scenarios and monitoring needs. First, determine the type of camera (e.g., fixed, rotating, or binocular) and its technical specifications (e.g., resolution, field of view) to ensure it meets specific monitoring requirements. Next, choosing a suitable installation location is crucial, typically considering the width of the field of view, lighting conditions, and potential obstructions to achieve optimal monitoring results. During deployment, power and network cabling is usually required to ensure stable camera operation and real-time data transmission. Modern cameras can also be connected via wireless networks, reducing cabling complexity. After installation, debugging and calibration are required to ensure that the camera can accurately capture the predetermined monitoring area. In the current urban planning and construction process, some cameras need to be installed on pole-like structures such as utility poles and light poles using brackets. Once the camera is deployed, it is difficult to adjust it if the installation height is found to be unsuitable. This is mainly because the camera is usually closely connected to the bracket, power supply and network connection, requiring the disassembly and reinstallation of the bracket and other parts. It may also require the use of special tools for disassembly, especially when installed at high altitudes, requiring the use of high-altitude work equipment such as lifts or ladders, which increases the difficulty of debugging the monitoring equipment. Utility Model Content

[0003] The purpose of this utility model is to provide a CIM urban planning, construction and management device. A square beam is connected to pole-like structures such as utility poles and light poles via clamps. An installation space is created by extending the square beam radially from the pole-like structure. Then, a sliding platform and a support structure are slidably installed onto the square beam using guide shoes. Later, the height of the binocular camera can be adjusted using the adjusting rod and bolted positioning structure in the support structure, and the horizontal position of the binocular camera can be adjusted using the guide shoes and the sliding platform. This allows for flexible further position adjustments as needed after the binocular camera is installed, thereby solving the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a CIM urban planning and construction management device, comprising a square beam and a clamp installed at one end of the square beam, the clamp being used to connect with a rod-shaped structure, a sliding platform being slidably installed at the bottom end of the square beam, and guide shoes being installed on both sides of the top of the sliding platform that slide in cooperation with the outer wall of the square beam, a support structure being installed on both sides of the bottom end of the sliding platform, two adjusting rods being slidably installed inside the support structure, a bolted positioning structure for locking the adjusting rods being provided on one side of the outer wall of the support structure, a right-angle base being fixed at the bottom end of the adjusting rod, and a binocular camera being installed on the outer wall of the right-angle base on the side away from the sliding platform.

[0005] Preferably, rubber rings are installed on both the top and bottom openings of the clamp.

[0006] Preferably, dovetail guide rails are integrally formed on both outer walls of the square beam, and the dovetail guide rails and guide shoes are interference-fitted.

[0007] Preferably, a rubber pad is adhered to the inner wall of the guide shoe, and the rubber pad and the dovetail guide rail slide together.

[0008] Preferably, the support structure includes two symmetrical longitudinal columns fixed inside the sliding platform and guide seats installed at the same end of the two longitudinal columns, and two adjusting rods slidably installed inside the guide seats.

[0009] Preferably, the bolted positioning structure includes a plurality of internally threaded holes equally spaced on the surface of the adjusting rod and two bolts threadedly mounted on the outer wall of one side of the guide seat.

[0010] Compared with the prior art, the beneficial effects of this utility model are as follows: This CIM urban planning and construction management equipment, through the use of a structure with a square crossbeam, guide shoes and other components working together, and the square crossbeam connected to the rod-like structure by a clamp, makes the installation and position adjustment of the binocular camera more flexible and efficient. Through the coordinated use of components such as the sliding platform, guide shoes, adjusting rod, and bolted positioning structure, the staff can accurately adjust the height and horizontal position of the camera, thereby achieving the goals of optimizing the monitoring effect, reducing the difficulty of debugging and improving the installation efficiency.

[0011] The square beam design allows the camera's installation height and horizontal position to be adjusted according to actual needs. This flexibility enables the monitoring system to quickly adapt to different monitoring requirements after installation. Furthermore, the use of adjusting rods and bolted positioning structures allows users to easily adjust the camera's height and horizontal position without disassembly. This feature not only saves time but also reduces the risk of equipment damage caused by frequent disassembly. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the main structure of this utility model;

[0013] Figure 2 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 1 ;

[0014] Figure 3 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 2 ;

[0015] Figure 4 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 3 ;

[0016] Figure 5 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 4 .

[0017] In the diagram: 1. Square crossbeam; 101. Dovetail guide rail; 2. Clamp; 3. Lower slide; 4. Guide shoe; 5. Longitudinal column; 6. Guide seat; 7. Adjusting rod; 8. Bolted positioning structure; 9. Binocular camera; 10. Right-angle base. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the 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 scope of protection of the present utility model.

[0019] Please see Figure 1-5 An embodiment of this utility model is provided: a CIM urban planning and construction management device, including a square beam 1 and a clamp 2 installed at one end of the square beam 1. The clamp 2 is used to connect with a rod-shaped structure. Rubber rings are installed on the top opening and the bottom opening of the clamp 2.

[0020] A sliding lower platform 3 is slidably installed at the bottom end of the square beam 1, and guide shoes 4 that slide and cooperate with the outer wall of the square beam 1 are installed on both sides of the top of the sliding lower platform 3. Support structures are installed on both sides of the bottom end of the sliding lower platform 3. Two adjusting rods 7 are slidably installed inside the support structure. A bolted positioning structure 8 for locking the adjusting rods 7 is provided on one side of the outer wall of the support structure. A right-angle base 10 is fixed at the bottom end of the adjusting rod 7, and a binocular camera 9 is installed on the outer wall of the right-angle base 10 away from the sliding lower platform 3.

[0021] Dovetail guide rails 101 are integrally formed on both outer walls of the square beam 1. The dovetail guide rails 101 and guide shoes 4 are interference-fitted. A rubber pad is bonded to the inner wall of the guide shoes 4. The rubber pad and the dovetail guide rails 101 are in sliding fit.

[0022] The guide shoe 4 is in interference sliding fit with the dovetail guide rail 101 on the outer wall of the square beam 1. The tension stress between the guide shoe 4 and the dovetail guide rail 101 allows the guide shoe 4 to be stably installed on the square beam 1 and has the function of adjusting the horizontal position of the binocular camera 9.

[0023] The support structure includes two symmetrical longitudinal columns 5 fixed inside the lower slide table 3 and guide seats 6 installed at the same end of the two longitudinal columns 5. Two adjusting rods 7 are slidably installed inside the guide seats 6. The longitudinal columns 5 and guide seats 6 in the support structure support the adjusting rods 7 and assist the adjusting rods 7 in sliding along the Z-axis. The bolted positioning structure 8 includes several internal threaded holes equally spaced on the surface of the adjusting rods 7 and two bolts threaded on the outer wall of one side of the guide seat 6.

[0024] When adjusting the height of the adjusting rod 7 and the binocular camera 9, the operator needs to unscrew the two bolts on the outer wall of the guide seat 6 to unlock the adjusting rod 7. Then, move the adjusting rod 7, the binocular camera 9, and the right-angle base 10 up or down until the binocular camera 9 is adjusted to the appropriate position. Then, use the bolts and internal threaded holes to lock the adjusting rod 7 and the guide seat 6 to ensure that the binocular camera 9 will not be displaced in subsequent use.

[0025] In this embodiment, the operator first needs to ensure that the square beam 1 is securely connected to the pole or light pole via the clamp 2, and that the square beam 1 is stable in both the vertical and horizontal directions. Then, the sliding platform 3 is installed onto the square beam 1 via the guide shoe 4. The guide shoe 4 has a sliding function, allowing it to move freely on the square beam 1, thus providing flexible adjustment space. The operator can then adjust the lateral position of the binocular camera 9 by sliding the sliding platform 3. The binocular camera 9 needs to be pre-attached to the side wall of the right-angle base 10 via holes, bolts, and brackets to secure it. After the binocular camera 9 is fixed, the operator can adjust the camera position using the adjusting rod 7 and the bolted positioning structure 8. The Z-axis height of the head and the horizontal position of the binocular camera 9 can also be adjusted using the sliding platform 3 and guide shoe 4. After the height of the binocular camera 9 is adjusted to a satisfactory position, the staff needs to use the bolted positioning structure 8 to fix the adjusting rod 7, the binocular camera 9, the right-angle base 10, and other parts to ensure that the binocular camera 9 will not shift during subsequent use. After completing the height and horizontal position adjustment, the staff needs to conduct a comprehensive inspection and debugging to ensure that the installation position of the binocular camera 9 meets the actual requirements and to perform a final precise calibration, that is, to check whether the viewing angle of the binocular camera 9 meets the expectations by debugging the host computer display system or monitoring terminal. If necessary, fine adjustments can be made to ensure that the monitoring area of ​​the camera is fully covered.

Claims

1. A CIM (City Information Management) urban planning, construction, and management device, characterized in that: The structure includes a square beam (1) and a clamp (2) installed at one end of the square beam (1). The clamp (2) is used to connect with the rod-shaped structure. A sliding platform (3) is slidably installed at the bottom end of the square beam (1). Guide shoes (4) that slide and cooperate with the outer wall of the square beam (1) are installed on both sides of the top of the sliding platform (3). Support structures are installed on both sides of the bottom end of the sliding platform (3). Two adjusting rods (7) are slidably installed inside the support structure. A bolted positioning structure (8) for locking the adjusting rods (7) is provided on one side of the outer wall of the support structure. A right-angle base (10) is fixed at the bottom end of the adjusting rod (7). A binocular camera (9) is installed on the outer wall of the right-angle base (10) away from the sliding platform (3).

2. The CIM urban planning, construction, and management equipment according to claim 1, characterized in that: Rubber rings are installed on the top and bottom openings of the clamp (2).

3. The CIM urban planning, construction, and management equipment according to claim 1, characterized in that: The square beam (1) has dovetail guide rails (101) integrally formed on both outer walls, and the dovetail guide rails (101) and guide shoes (4) are interference-fitted.

4. The CIM urban planning, construction, and management equipment according to claim 3, characterized in that: A rubber pad is adhered to the inner wall of the guide shoe (4), and the rubber pad and the dovetail guide rail (101) slide together.

5. The CIM urban planning, construction, and management equipment according to claim 1, characterized in that: The support structure includes two symmetrical longitudinal columns (5) fixed inside the sliding platform (3) and guide seats (6) installed at the same end of the two longitudinal columns (5), and two adjusting rods (7) slidably installed inside the guide seats (6).

6. The CIM urban planning, construction, and management equipment according to claim 5, characterized in that: The bolted positioning structure (8) includes several internal threaded holes equally spaced on the surface of the adjusting rod (7) and two bolts threaded on the outer wall of one side of the guide seat (6).