Real-time monitoring system of micro-module data center

By combining the design of cameras and servo motors, multi-dimensional adjustment of micro-module data center cameras has been achieved, solving the problems of complex control and insufficient monitoring range in existing technologies, and improving the flexibility and reliability of the monitoring system.

CN121803784APending Publication Date: 2026-04-07SHENZHEN AIRFACT NETWORK ENVIRONMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-05-16
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing monitoring devices for micro-module data centers suffer from problems such as difficulty in controlling camera angle adjustments, susceptibility to damage, and insufficient monitoring range.

Method used

It adopts a combination design of camera, servo motor, steering seat, mounting seat, main gear, sliding seat, main rack, transmission frame, auxiliary rack, incomplete gear and adjustment part. The left and right angle of the camera is adjusted by the unidirectional rotation of the servo motor, and the up and down angle and installation height of the camera are adjusted by the adjustment screw.

Benefits of technology

It enables flexible adjustment of camera angle and height, simplifies the control process, reduces the risk of equipment damage, and expands the monitoring range.

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Abstract

The invention discloses a real-time monitoring system of a micro-module data center, a control module is electrically connected with a camera and a servo motor, the control module is externally connected with a power supply and controls the camera and the servo motor, the control module and the camera are mounted in a steering seat, the steering seat is rotatably connected to the middle lower part of a mounting seat, and the steering seat is rotatably connected to the middle lower part of the mounting seat. A horizontal sliding seat is connected to the upper rear portion of the mounting seat in a left-right sliding mode, a horizontal main rack is fixed to the upper portion of the sliding seat, and a horizontal transmission frame is fixed to the top end of the sliding seat. The left-right angle of the camera can be adjusted by controlling the servo motor to rotate in a single direction, control is easy and convenient, damage is not likely to happen, the up-down angle of the camera can be adjusted by rotating the two adjusting screw rods to different degrees, the installation height of the camera can be adjusted, and the adjustment precision of the camera is improved. Therefore, the video monitoring work can be better carried out.
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Description

Technical Field

[0001] This invention relates to the field of monitoring technology, and in particular to a real-time monitoring system for a micro-module data center. Background Technology

[0002] Micro-modular data centers, also known as miniature modular data centers, are a type of modular computer room characterized by energy efficiency, high performance, simplicity, and reliability. To ensure the security of equipment and electronic information within the computer room, real-time monitoring using video surveillance equipment is essential. Chinese invention patent application number 202222700347.X provides an intelligent micro-modular data center monitoring device. This device adjusts the installation height through the cooperation of a positioning threaded rod, positioning frame, and positioning nut. By controlling the rotation of a servo motor and utilizing the cooperation of a drive gear and an arc-shaped gear rack, the camera angle can be adjusted. However, this device can only stably adjust the left and right angles when adjusting the camera angle, resulting in a limited monitoring range. Furthermore, limit switches are required for limit protection when controlling the servo motor's rotation, and the forward and reverse rotation of the servo motor is necessary to adjust the camera angle, increasing the control complexity and the number of electronic components used, making it prone to malfunctions and highlighting its shortcomings. Summary of the Invention

[0003] The purpose of this invention is to provide a real-time monitoring system for a micro-module data center to solve the above-mentioned technical problems.

[0004] To achieve the above objectives, the present invention adopts the following technical solution: A real-time monitoring system for a micro-module data center includes a camera, a servo motor, a steering seat, a mounting base, a main gear, a sliding seat, a main rack, a transmission frame, a secondary rack, an incomplete gear, and an adjustment mechanism. The control module is electrically connected to the camera and the servo motor, and is powered by an external power source. The control module and the camera are mounted within the steering seat. The steering seat is rotatably connected to the lower part of the mounting base, and a main gear is coaxially fixed to its upper part. A horizontal sliding seat is slidably connected to the upper rear part of the mounting base. A horizontal main rack is fixed to the upper part of the sliding seat, and a horizontal transmission frame is fixed to its top. Horizontal secondary racks are fixed to the front and rear ends of the inner wall of the transmission frame. An incomplete gear is coaxially fixed to the shaft of the servo motor. An adjustment mechanism is mounted on the mounting base.

[0005] Based on the above technical solution, the adjustment part includes a base, mounting holes, adjusting screws, handwheels, sliders, and support arms. The base has horizontal mounting holes penetrating its upper, middle, and lower parts. The upper and lower parts of the base are each rotatably connected to vertical adjusting screws. The two adjusting screws are coaxially fixed with handwheels and threadedly connected to sliders. The two sliders are each hinged to support arms, and their rear ends are in contact with the base. The front parts of the two support arms are respectively hinged to the upper and lower parts of the mounting base.

[0006] Based on the above technical solution, the main gear meshes with the main rack, and the two auxiliary racks alternately mesh with the incomplete gear. When the servo motor is powered on and rotates, it can drive the transmission frame, the main rack, and the sliding seat to move back and forth left and right through the incomplete gear and the auxiliary rack. When the main rack moves back and forth left and right, it can drive the steering seat to swing left and right through the main gear. When the adjusting screw rotates forward and backward, it can drive the slider to move up and down. When the slider moves up and down, it can drive the mounting seat to move back and forth through the support arm.

[0007] Compared with the prior art, the present invention has the following advantages: The present invention can adjust the left and right angle of the camera by controlling the servo motor to rotate in one direction. The control is simple and convenient and not easily damaged. By rotating the two adjusting screws to different degrees, not only the up and down angle of the camera can be adjusted, but also the installation height of the camera can be adjusted, thereby enabling better video surveillance. Attached Figure Description

[0008] Figure 1 This is a control diagram of the present invention.

[0009] Figure 2 This is a schematic diagram of the structure of the present invention.

[0010] Figure 3 This is a schematic diagram illustrating the engagement of the main gear, main rack, auxiliary rack, and incomplete gear of the present invention.

[0011] Figure 4 This is a schematic diagram illustrating the interaction between the adjusting screw and the slider of the present invention.

[0012] In the diagram: 1. Camera, 2. Servo motor, 3. Steering seat, 4. Mounting seat, 5. Main gear, 6. Sliding seat, 7. Main rack, 8. Transmission frame, 9. Secondary rack, 10. Incomplete gear, 11. Adjustment part, 12. Base, 13. Mounting hole, 14. Adjustment screw, 15. Handwheel, 16. Slider, 17. Support arm. Detailed Implementation

[0013] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0014] like Figures 1-4As shown, a real-time monitoring system for a micro-module data center includes a camera 1, a servo motor 2, a steering seat 3, a mounting base 4, a main gear 5, a sliding seat 6, a main rack 7, a transmission frame 8, a secondary rack 9, an incomplete gear 10, and an adjustment part 11. The control module is electrically connected to the camera 1 and the servo motor 2. The control module is externally powered and controls the camera 1 and the servo motor 2. The control module and the camera 1 are installed inside the steering seat 3. The steering seat 3 is rotatably connected to the lower part of the mounting base 4, and the main gear 5 is coaxially fixed on its upper part. The upper rear part of the mounting base 4 is slidably connected to a horizontal sliding seat 6. The upper part of the sliding seat 6 is fixed with a horizontal main rack 7, and the top of the sliding seat 6 is fixed with a horizontal transmission frame 8. The inner wall of the transmission frame 8 is fixed with horizontal secondary racks 9 at both ends. The shaft of the servo motor 2 is coaxially fixed with an incomplete gear 10. The mounting base 4 is equipped with an adjustment part 11.

[0015] The adjustment part 11 includes a base 12, mounting holes 13, adjusting screws 14, handwheels 15, sliders 16, and support arms 17. The base 12 has horizontal mounting holes 13 passing through its upper, middle, and lower parts, which can be used to easily fix the base 12. The upper and lower parts of the base 12 are each rotatably connected to vertical adjusting screws 14. The two adjusting screws 14 are respectively coaxially fixed with handwheels 15, which can be used to easily rotate the adjusting screws 14. The two adjusting screws 14 are respectively threadedly connected to sliders 16. The two sliders 16 are respectively hinged to support arms 17, and their rear ends are respectively in contact with the base 12. The front parts of the two support arms 17 are respectively hinged to the upper and lower parts of the mounting base 4.

[0016] The main gear 5 meshes with the main rack 7, and the two auxiliary racks 9 alternately mesh with the incomplete gear 10. When the servo motor 2 is powered on and rotates, it can drive the transmission frame 8, the main rack 7 and the sliding seat 6 to move back and forth left and right through the incomplete gear 10 and the auxiliary rack 9. When the main rack 7 moves back and forth left and right, it can drive the steering seat 3 to swing left and right through the main gear 5. When the adjusting screw 14 rotates forward and backward, it can drive the slider 16 to move up and down. When the slider 16 moves up and down, it can drive the mounting seat 4 to move back and forth through the support arm 17.

[0017] The working principle of this invention is as follows: In use, the base 12 is fixed to a wall or roof by bolts passing through the mounting hole 13. The servo motor 2 is rotated by controlling the rotation. The transmission frame 8 can move left and right by the cooperation of the incomplete gear 10 and the secondary rack 9. When the transmission frame 8 moves left and right, the steering seat 3 can swing left and right by the sliding seat 6, the main rack 7 and the main gear 5, thereby adjusting the left and right angle of the camera 1. The slider 16 can be moved up and down by manually rotating the adjusting screw 14 in both directions. The mounting seat 4 can be moved back and forth by the support arm 17, thereby adjusting the distance of the camera 1 relative to the base 12, i.e., the installation height. Different rotations of the two adjusting screws 14 can make the mounting seat 4 present different tilt angles, thereby adjusting the up and down angle of the camera 1.

[0018] The above description represents a preferred embodiment of the present invention. For those skilled in the art, any changes, modifications, substitutions, and variations made to the implementation methods without departing from the principles and spirit of the present invention, based on the teachings of the present invention, still fall within the protection scope of the present invention.

Claims

1. A real-time monitoring system for a micro-module data center, comprising a camera (1), a servo motor (2), a steering seat (3), a mounting base (4), a main gear (5), a sliding seat (6), a main rack (7), a transmission frame (8), a secondary rack (9), an incomplete gear (10), and an adjustment part (11), characterized in that: The control module is electrically connected to the camera (1) and the servo motor (2). The control module is powered by an external power source and controls the camera (1) and the servo motor (2). The control module and the camera (1) are installed in the steering seat (3). The steering seat (3) is rotatably connected to the lower part of the mounting seat (4), and the upper part is coaxially fixed with a main gear (5). The upper rear part of the mounting seat (4) is slidably connected with a horizontal sliding seat (6). The upper part of the sliding seat (6) is fixed with a horizontal main rack (7), and the top is fixed with a horizontal transmission frame (8). The inner wall of the transmission frame (8) is fixed with horizontal auxiliary racks (9) at both ends. The shaft of the servo motor (2) is coaxially fixed with an incomplete gear (10). The mounting seat (4) is equipped with an adjustment part (11).

2. The real-time monitoring system for a micro-module data center according to claim 1, characterized in that: The adjustment part (11) includes a base (12), a mounting hole (13), an adjustment screw (14), a handwheel (15), a slider (16), and a support arm (17). The base (12) has horizontal mounting holes (13) passing through its upper, middle, and lower parts. The upper and lower parts of the base (12) are rotatably connected to vertical adjustment screws (14). The two adjustment screws (14) are coaxially fixed with handwheels (15) and threadedly connected with sliders (16). The two sliders (16) are hinged with support arms (17), and their rear ends are in contact with the base (12). The front parts of the two support arms (17) are hinged to the upper and lower parts of the mounting base (4).

3. The real-time monitoring system for a micro-module data center according to claim 2, characterized in that: The main gear (5) meshes with the main rack (7), and the two auxiliary racks (9) mesh alternately with the incomplete gear (10). When the servo motor (2) is powered on and rotates, it can drive the transmission frame (8), the main rack (7) and the sliding seat (6) to move back and forth through the incomplete gear (10) and the auxiliary rack (9). When the main rack (7) moves back and forth, it can drive the steering seat (3) to swing left and right through the main gear (5). When the adjusting screw (14) rotates forward and backward, it can drive the slider (16) to move up and down. When the slider (16) moves up and down, it can drive the mounting seat (4) to move back and forth through the support arm (17).

Citation Information

Patent Citations

  • Intelligent micro-module data center monitoring device

    CN218720206U