Information room monitoring device

By using a transfer stand and drive mechanism to switch workstations within the information equipment room, the surveillance camera can be moved in all directions, solving the problem of blind spots in traditional monitoring devices and improving monitoring effectiveness.

CN224680441UActive Publication Date: 2026-08-25CHINA TOBACCO GUANGXI IND
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Patent Information

Application Number
CN202522161989.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-13
Publication Date
2026-08-25
Estimated Expiration
2035-10-13

AI Technical Summary

Technical Problem

Traditional data center monitoring devices have blind spots due to their fixed installation on the roof beams, which affects the monitoring effect.

Method used

The information room monitoring device includes a transfer seat, a first transmission mechanism, a second transmission mechanism, a support base, and a drive mechanism. By switching between different workstations through the drive mechanism, the horizontal and vertical movement of the monitoring camera can be realized, ensuring all-round real-time monitoring.

Benefits of technology

It enables comprehensive real-time monitoring within the information server room, eliminating blind spots and improving monitoring effectiveness.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224680441U_ABST
    Figure CN224680441U_ABST
Patent Text Reader

Abstract

The utility model relates to information computer lab technical field especially information computer lab monitoring devices, this information computer lab monitoring devices includes removal seat, monitoring camera, support base, first transmission mechanism, second transmission mechanism and drive mechanism, removal seat can move along ground, first transmission mechanism and second transmission mechanism all install in removal seat, monitoring camera links to each other with first transmission mechanism, monitoring camera is configured as real -time shooting information computer lab, support base links to each other with second transmission mechanism, support base is configured as with ground support fixed, drive mechanism can switch between first station, second station and third station, the drive mechanism in first station links to each other with first transmission mechanism to make drive mechanism drive monitoring camera move along up and down direction, the drive mechanism in second station links to each other with second transmission mechanism to make drive mechanism drive support base move along up and down direction, the drive mechanism in third station stops working.
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Description

Technical Field

[0001] This utility model relates to the field of information data center technology, and in particular to an information data center monitoring device. Background Technology

[0002] Information rooms, also known as data centers or computer rooms, are spaces specifically designed to house critical information infrastructure such as servers, storage devices, and network equipment.

[0003] In related technologies, to improve the security of data centers, monitoring cameras are installed inside for real-time monitoring. However, traditional monitoring cameras in data centers are mostly fixed to the beams with bolts, which creates blind spots and affects the actual monitoring effect.

[0004] Therefore, there is an urgent need to invent a monitoring device for computer rooms to solve the above problems. Utility Model Content

[0005] The purpose of this invention is to provide an information room monitoring device to achieve comprehensive real-time monitoring of the information room with good monitoring results.

[0006] To achieve this objective, the present invention adopts the following technical solution:

[0007] Information room monitoring equipment includes:

[0008] A transfer station that is movable along the ground;

[0009] A first transmission mechanism and a second transmission mechanism are both installed inside the transfer seat;

[0010] A surveillance camera is connected to the first transmission mechanism, and the surveillance camera is configured to capture real-time information from the computer room.

[0011] A support base is connected to the second transmission mechanism, and the support base is configured to be fixed to the ground.

[0012] A drive mechanism is provided, which can switch between a first station, a second station, and a third station. The drive mechanism at the first station is connected to the first transmission mechanism so that the drive mechanism drives the monitoring camera to move in the up and down direction.

[0013] The drive mechanism at the second work station is connected to the second transmission mechanism so that the drive mechanism drives the support base to move along the vertical direction;

[0014] The drive mechanism at the third station stops working.

[0015] As an optional solution, the information room monitoring device also includes:

[0016] A first locking mechanism is used to lock the first transmission mechanism, wherein the drive mechanism at the first station is connected to the first transmission mechanism and opens the first locking mechanism; and

[0017] The second locking mechanism is used to lock the second transmission mechanism. The drive mechanism at the second work station is connected to the second transmission mechanism and opens the second locking mechanism.

[0018] As an optional solution, the first transmission mechanism includes:

[0019] A first adapter is rotatably connected to the drive mechanism or fixedly connected to the first locking mechanism. The drive mechanism is capable of driving the first adapter to rotate around the vertical central axis of the first adapter.

[0020] A first lead screw extends along the vertical direction, and the vertical central axis of the first lead screw is coaxial with the vertical central axis of the first adapter; and

[0021] The first nut seat is sleeved on the outer periphery of the first lead screw along the axial direction of the first lead screw. The first nut seat is threadedly engaged with the first lead screw, and the first nut seat is equipped with the monitoring camera.

[0022] As an optional solution, the first transmission mechanism further includes:

[0023] A first guide structure is mounted on the transfer seat. The first guide structure has a guide space extending in the vertical direction, and a portion of the first lead screw and a portion of the first nut seat are movably disposed within the guide space.

[0024] As an optional solution, the first adapter includes:

[0025] A first adapter portion, having a first abutting lower end face and a first abutting upper end face, wherein when the driving mechanism is not in the first working position, the first locking mechanism is abutted and fixed against the first abutting upper end face to prevent the first adapter portion from rotating; and when the driving mechanism is in the first working position, the output end of the driving mechanism can abut against the first abutting lower end face, and drive the first locking mechanism to separate from the first abutting upper end face, so that the driving mechanism drives the first adapter portion to rotate; and

[0026] The second adapter is fixedly connected to the first abutting upper end face of the first adapter and the first lead screw.

[0027] As an optional solution, the first locking mechanism includes:

[0028] A first locking member is disposed above the first adapter portion, and the first locking member has a first locking lower end face; and

[0029] A first elastic drive member is configured to drive the first locking member to move downward. When the drive mechanism is not in the first position, the first elastic drive member drives the lower locking end face to abut and fix with the upper abutting end face. When the drive mechanism is in the first position, the output end of the drive mechanism drives the first locking member to move upward so that the lower locking end face separates from the upper abutting end face.

[0030] As an optional solution, the first abutting upper end surface, the first abutting lower end surface, and the first locking lower end surface are all provided with friction structures, and the friction structures are configured to increase the surface roughness of the first abutting upper end surface, the first abutting lower end surface, and the first locking lower end surface.

[0031] As an optional solution, the drive mechanism includes:

[0032] First contact structure;

[0033] The second abutting structure is provided with the first abutting structure at both ends along the vertical direction;

[0034] belt; and

[0035] An operating lever, which engages with the second abutment structure to tension the belt, is capable of moving the belt and switching the belt, the first abutment structure, and the second abutment structure between the first work station, the second work station, and the third work station.

[0036] When the driving mechanism is in the first working position, the upper end face of the second abutting structure is abutted and fixed to the lower end face of the first abutting structure. The first abutting structure located above the second abutting structure abuts against the first transition part and drives the lower locking end face to separate from the upper abutting end face. The lower end face of the second abutting structure separates from the second transmission mechanism.

[0037] When the drive mechanism is in the second working position, the lower end face of the second abutment structure is connected to the second transmission mechanism, the first abutment structure located below the second abutment structure opens the second locking mechanism, and the upper end face of the second abutment structure separates from the lower end face of the first abutment structure, and the first abutment structure located above the second abutment structure separates from the first transition part.

[0038] As an optional solution, the drive mechanism further includes:

[0039] The protective shell has a protective cavity in which the belt, part of the operating lever, and part of the second abutment structure are accommodated.

[0040] As an optional solution, the transfer seat has at least three casters, which are spaced apart at the lower end of the transfer seat and are not collinear, and each of the casters makes rolling contact with the ground.

[0041] The beneficial effects of this utility model are:

[0042] This utility model provides an information room monitoring device. By mounting a first transmission mechanism and a second transmission mechanism on a movable base that can move along the ground, and mounting a monitoring camera on the first transmission mechanism, the device allows the monitoring camera to move arbitrarily in the horizontal plane using the movable base. A drive mechanism is provided that can switch between a first position, a second position, and a third position. When the drive mechanism is in the first position, it is connected to the first transmission mechanism, driving the monitoring camera to move vertically. This allows for arbitrary adjustment of the monitoring camera's position within the space, achieving comprehensive real-time monitoring of the information room and meeting practical monitoring needs. By connecting a support base to the second transmission mechanism, the drive mechanism in the second position is also connected to the second transmission mechanism. The drive mechanism drives the support base to move vertically until it is fixed to the ground, thus keeping the movable base and the monitoring camera connected to it relatively fixed to the ground, ensuring the monitoring camera... The monitoring effect of the camera: By stopping the drive mechanism at the third position, with the monitoring device in the information room fixed relative to the ground and the drive mechanism in the third position, if it is necessary to adjust the height of the monitoring camera in the vertical direction, the drive mechanism is moved to the first position to adjust the height of the monitoring camera in the vertical direction. After the height adjustment of the monitoring camera in the vertical direction is completed, the drive mechanism is switched back to the third position. If it is necessary to adjust the horizontal position of the monitoring camera, the drive mechanism is moved to the second position to adjust the height of the support base in the vertical direction, so that the support base is no longer fixed to the ground. Then the drive mechanism is switched back to the third position, and the transfer base can move freely along the ground to adjust the position of the monitoring camera in the horizontal direction. After the horizontal position adjustment of the monitoring camera is completed, the drive mechanism is switched back to the second position so that the support base is fixed to the ground again. Finally, the drive mechanism is switched back to the third position and stops working. Attached Figure Description

[0043] Figure 1 This is a schematic diagram of the structure of the information room monitoring device provided in this embodiment of the utility model;

[0044] Figure 2 This is a first partial sectional view of the information room monitoring device provided in this embodiment of the utility model;

[0045] Figure 3 This is a first partial exploded view of the information room monitoring device provided in this embodiment of the utility model;

[0046] Figure 4 This is a second partial sectional view of the information room monitoring device provided in this embodiment of the utility model;

[0047] Figure 5 This is a schematic diagram of the drive mechanism provided in an embodiment of the present invention;

[0048] Figure 6 This is a second partial exploded view of the information room monitoring device provided in this embodiment of the utility model.

[0049] In the picture:

[0050] 100. Surveillance cameras;

[0051] 200. Support base; 210. Support part; 220. Mating part; 221. First stop ring; 222. Mating protrusion;

[0052] 300. Transfer seat; 310. Casters; 320. Accommodation space;

[0053] 400, First transmission mechanism; 410, First lead screw; 420, First nut seat; 430, First guide structure; 440, First adapter; 441, First adapter part; 442, Second adapter part;

[0054] 500, Second transmission mechanism; 510, Second lead screw; 520, Second adapter; 530, Second guide structure; 531, Second stop ring; 5311, Mating groove;

[0055] 600. Drive mechanism; 610. First abutment structure; 611. Bearing; 612. Gasket; 620. Second abutment structure; 630. Belt; 640. Protective housing; 650. Operating lever;

[0056] 700. First locking mechanism; 710. First locking element; 720. First elastic driving element;

[0057] 800, Second Locking Mechanism. Detailed Implementation

[0058] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar parts or parts having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0059] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection or a detachable connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection through an intermediate medium; or the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0060] In the description of this utility model, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0061] A data center, also known as an information server room or computer room, is a space specifically designed to house critical information infrastructure such as servers, storage devices, and network equipment. To enhance security, monitoring cameras are typically installed inside the data center for real-time surveillance. However, traditional data center cameras are mostly bolted to the ceiling beams, creating blind spots and affecting the effectiveness of monitoring.

[0062] To solve the above problems, such as Figures 1-5 As shown in the figure, this embodiment provides an information room monitoring device. The information room monitoring device includes a transfer base 300, a first transmission mechanism 400, a second transmission mechanism 500, a support base 200, a monitoring camera 100, and a drive mechanism 600. The transfer base 300 is movable along the ground. The first transmission mechanism 400 and the second transmission mechanism 500 are both installed inside the transfer base 300. The monitoring camera 100 is connected to the first transmission mechanism 400 and is configured to capture real-time images of the information room. The support base 200 is connected to the second transmission mechanism 500 and is configured to be fixed to the ground. The drive mechanism 600 can switch between a first station, a second station, and a third station. When in the first station, the drive mechanism 600 is connected to the first transmission mechanism 400 to drive the monitoring camera 100 to move vertically. When in the second station, the drive mechanism 600 is connected to the second transmission mechanism 500 to drive the support base 200 to move vertically. When in the third station, the drive mechanism 600 stops working.

[0063] This information room monitoring device mounts a first transmission mechanism 400 and a second transmission mechanism 500 on a movable base 300, and mounts a monitoring camera 100 on the first transmission mechanism 400. The transfer base 300 allows the monitoring camera 100 to move arbitrarily in the horizontal plane. A drive mechanism 600 is included, which can switch between a first, second, and third workstation. When the drive mechanism 600 is in the first workstation, it is connected to the first transmission mechanism 400, and the drive mechanism 600 drives the monitoring camera 100 to move vertically. This mechanism allows for flexible adjustment of the position of the surveillance camera 100 within a given space, enabling comprehensive real-time monitoring of the information room and meeting practical monitoring needs. By connecting the support base 200 to the second transmission mechanism 500, the drive mechanism 600 at the second position is also connected to the second transmission mechanism 500. The drive mechanism 600 drives the support base 200 to move vertically, bringing it into contact with and fixing it to the ground. This, in turn, keeps the transfer base 300 and the surveillance camera 100 connected to the transfer base 300 relatively fixed to the ground, ensuring effective monitoring. The monitoring effect of the camera 100 is monitored by stopping the drive mechanism 600 in the third position. With the monitoring device in the information room fixed relative to the ground and the drive mechanism 600 in the third position, if it is necessary to adjust the height of the camera 100 vertically, the drive mechanism 600 is moved to the first position to adjust the height of the camera 100 vertically. After the vertical height adjustment is complete, the drive mechanism 600 is switched back to the third position. If it is necessary to adjust the horizontal position of the camera 100... The drive mechanism 600 is moved to the second station to adjust the height of the support base 200 in the vertical direction, so that the support base 200 is no longer fixed to the ground. Then the drive mechanism 600 switches back to the third station, and the transfer seat 300 can move freely along the ground to adjust the position of the monitoring camera 100 in the horizontal direction. After the horizontal position adjustment of the monitoring camera 100 is completed, the drive mechanism 600 switches back to the second station so that the support base 200 is fixed to the ground again. Finally, the drive mechanism 600 switches back to the third station and stops working.

[0064] Optionally, the transfer seat 300 has at least three casters 310, which are spaced apart at the lower end of the transfer seat 300 and are not collinear. Each caster 310 makes rolling contact with the ground. It should be noted that in this embodiment, the transfer seat 300 has four casters 310. The transfer seat 300 is a cube, and the four casters 310 are respectively located at the four corners of the lower end face of the cube. The four casters 310 together drive the transfer seat 300 to move along the ground. In other embodiments, the specific number of casters 310 can be adjusted arbitrarily within a range of not less than three according to actual needs; this embodiment does not impose a specific limitation.

[0065] As an optional solution, the information room monitoring device also includes a first locking mechanism 700 and a second locking mechanism 800. The first locking mechanism 700 is used to lock the first transmission mechanism 400. The drive mechanism 600 at the first station is connected to the first transmission mechanism 400 and opens the first locking mechanism 700. The second locking mechanism 800 is used to lock the second transmission mechanism 500. The drive mechanism 600 at the second station is connected to the second transmission mechanism 500 and opens the second locking mechanism 800. By setting a first locking mechanism 700 to lock the first transmission mechanism 400 and a second locking mechanism 800 to lock the second transmission mechanism 500, and by causing the drive mechanism 600 in the first position to open the first locking mechanism 700 and drive the first transmission mechanism 400 to move, and the drive mechanism 600 in the second position to open the second locking mechanism 800 and drive the second transmission mechanism 500 to move, the installation stability of the surveillance camera 100 and the support base 200 is guaranteed.

[0066] In an optional embodiment, the first transmission mechanism 400 includes a first adapter 440, a first lead screw 410, and a first nut seat 420. The first adapter 440 is rotatably connected to the drive mechanism 600 or fixedly connected to the first locking mechanism 700. The drive mechanism 600 can drive the first adapter 440 to rotate around the vertical central axis of the first adapter 440. The first lead screw 410 extends in the vertical direction, and the vertical central axis of the first lead screw 410 is coaxial with the vertical central axis of the first adapter 440. The first nut seat 420 is sleeved on the outer periphery of the first lead screw 410 along the axial direction of the first lead screw 410. The first nut seat 420 is threadedly engaged with the first lead screw 410. A monitoring camera 100 is installed on the first nut seat 420. By setting a first lead screw 410 extending vertically, with its vertical center axis coaxial with the vertical center axis of the first adapter 440, and a first nut seat 420 threadedly engaged with the first lead screw 410, the monitoring camera 100 is mounted on the first nut seat 420. When the drive mechanism 600 is in the first position, the first adapter 440 is rotatably connected to the drive mechanism 600 around its central axis, driving the first nut seat 420 to move vertically, thereby driving the monitoring camera 100 to move vertically. When the drive mechanism 600 is not in the first position, the first adapter 440 is fixedly connected to the first locking mechanism 700, preventing the first lead screw 410 from rotating, thus achieving the positioning of the monitoring camera 100.

[0067] As an optional solution, the first transmission mechanism 400 further includes a first guide structure 430, wherein the first guide structure 430 is mounted on the transfer seat 300 and has a guide space extending in the vertical direction. A portion of the first lead screw 410 and a portion of the first nut seat 420 are movably disposed within the guide space. By providing a guide space extending in the vertical direction within the first guide structure 430, and movably disposing a portion of the first lead screw 410 and a portion of the first nut seat 420 within the guide space, not only can the protection of the first lead screw 410 and the first nut seat 420 be improved, but also guidance can be provided for the vertical movement of the first nut seat 420, thereby improving the driving accuracy of the monitoring camera 100 in the vertical direction.

[0068] Combination Figure 2 and Figure 3The specific structure of the first adapter 440 is described below. The first adapter 440 includes a first adapter portion 441 and a second adapter portion 442 connected to each other. The first adapter portion 441 has a first abutting lower end surface and a first abutting upper end surface. When the drive mechanism 600 is not in the first working position, the first locking mechanism 700 is abutted and fixed to the first abutting upper end surface to prevent the first adapter portion 441 from rotating. When the drive mechanism 600 is in the first working position, the output end of the drive mechanism 600 can abut against the first abutting lower end surface and drive the first locking mechanism 700 to separate from the first abutting upper end surface, so that the drive mechanism 600 drives the first adapter portion 441 to rotate. The second adapter portion 442 is fixedly connected to the first abutting upper end surface of the first adapter portion 441 and the first lead screw 410, respectively. By providing a first upper abutment surface and a first lower abutment surface in the first adapter 441, and fixing the second adapter 442 to the first upper abutment surface and the first lead screw 410 respectively, it is ensured that when the drive mechanism 600 is in the first working position, the output end of the drive mechanism 600 can abut against the first lower abutment surface and drive the first locking mechanism 700 to separate from the first upper abutment surface, so that the drive mechanism 600 drives the first adapter 441 to rotate, thereby driving the first lead screw 410 to rotate, so as to drive the monitoring camera 100 to move in the vertical direction.

[0069] Optionally, the first locking mechanism 700 includes a first locking member 710 and a first elastic driving member 720. The first locking member 710 is disposed above the first adapter 441 and has a first locking lower end face. The first elastic driving member 720 is configured to drive the first locking member 710 to move downward. When the driving mechanism 600 is not in the first position, the first elastic driving member 720 drives the first locking lower end face to abut and fix it against the first abutting upper end face. When the driving mechanism 600 is in the first position, the output end of the driving mechanism 600 drives the first locking member 710 to move upward so that the first locking lower end face separates from the first abutting upper end face. By providing a first locking member 710 above the first adapter 441 and providing a first elastic driving member 720 to drive the first locking member 710 downward, so that the locking lower end face of the first locking member 710 abuts and fixes with the first abutting upper end face, the rotation of the first adapter 441 can be prevented. By driving the first locking member 710 upward by the output end of the driving mechanism 600 in the first position, the first locking lower end face is separated from the first abutting upper end face. Combined with the abutting and fixing of the output end of the driving mechanism 600 with the first abutting lower end face in the first adapter 441, the effect of the driving mechanism 600 driving the first locking mechanism 700 to disengage from the first adapter 441 and driving the first adapter 441 to rotate can be achieved.

[0070] It should be noted that in this embodiment, the first elastic driving element 720 is a spring. Springs have a simple structure, are small in size, and are easy to assemble and disassemble. In other embodiments, the first elastic driving element 720 may also be a rubber block or other elastic structure; this embodiment does not impose specific limitations.

[0071] Furthermore, to further improve the locking effect of the first locking mechanism 700 on the first adapter 441, the first locking mechanism 700 includes a plurality of first elastic driving members 720. These multiple first elastic driving members 720 collectively drive the first locking lower end face of the first locking member 710 to abut against the first abutting upper end face of the first adapter 441. In this embodiment, the first locking mechanism 700 has four first elastic driving members 720, which are arranged in a circular, equally spaced pattern. The four first elastic driving members 720 collectively drive the first locking lower end face of the first locking member 710 to abut against the first abutting upper end face of the first adapter 441. In other embodiments, the specific number of first elastic driving members 720 can be adjusted according to actual needs; this embodiment does not impose a specific limitation.

[0072] To further improve the contact and fixing effect between the first locking lower end face and the first abutting upper end face, as well as the contact and fixing effect between the first abutting lower end face and the output end of the drive mechanism 600, friction structures are provided on the first abutting upper end face, the first abutting lower end face, and the first locking lower end face. These friction structures are configured to increase the surface roughness of the first abutting upper end face, the first abutting lower end face, and the first locking lower end face, thereby increasing the frictional force and improving the contact and fixing effect between the first locking lower end face and the first abutting upper end face, as well as the contact and fixing effect between the first abutting lower end face and the output end of the drive mechanism 600. It should be noted that in this embodiment, the friction structure is an irregularly patterned protrusion. In other embodiments, the friction structure may also be an irregularly patterned depression; this embodiment does not impose a specific limitation.

[0073] In one of the alternative solutions, such as Figures 2-5As shown, the drive mechanism 600 includes a first abutment structure 610, a second abutment structure 620, a belt 630, and an operating lever 650. The second abutment structure 620 has first abutment structures 610 at both ends along its vertical direction. The operating lever 650 and the second abutment structure 620 engage together to tension the belt 630. The operating lever 650 can drive the belt 630 to move, and can also switch the belt 630, the first abutment structure 610, and the second abutment structure 620 between a first station, a second station, and a third station. When the drive mechanism 600 is in the first station, the upper end face of the second abutment structure 620 is in contact with the lower end face of the first abutment structure. The first abutting structure 610, located above the second abutting structure 620, abuts against the first transition part 441 and drives the first locking lower end face to separate from the first abutting upper end face. The lower end face of the second abutting structure 620 separates from the second transmission mechanism 500. When the driving mechanism 600 is in the second working position, the lower end face of the second abutting structure 620 is connected to the second transmission mechanism 500. The first abutting structure 610, located below the second abutting structure 620, opens the second locking mechanism 800, and the upper end face of the second abutting structure 620 separates from the first abutting lower end face. The first abutting structure 610, located above the second abutting structure 620, separates from the first transition part 441. By using the operating lever 650 and the second abutment structure 620 to engage with the tension belt 630, the operating lever 650 can be rotated, and the belt 630 can be used to drive the second abutment structure 620 to rotate. Combined with the abutment and fixation between the second abutment structure 620 and the first abutment lower end face in the first transmission mechanism 400 or the second transmission mechanism 500, and combined with the first abutment structure 610 set on the upper and lower end faces of the second abutment structure 620, the first abutment structure 610 abuts with the first locking lower end face in the first locking mechanism 700 or abuts with the second locking mechanism 800, the first locking mechanism 700 can be opened and the monitoring camera 100 can be driven to move in the vertical direction, or the second locking mechanism 800 can be opened and the support base 200 can be driven to move in the vertical direction.

[0074] It should be noted that, in this embodiment, friction structures are provided on both the upper and lower end faces of the second abutment structure 620 to increase the surface roughness of the upper and lower end faces of the second abutment structure 620 and improve the driving effect of the second abutment structure 620.

[0075] Optionally, the first abutting structure 610 includes a bearing 611 and a gasket 612. The two end faces of the bearing 611 are provided with a second abutting structure 620 and a gasket 612. The gasket 612 is used to isolate the bearing 611 from the first locking mechanism 700 or the second locking mechanism 800. When the second abutting structure 620 drives the bearing 611 to rotate, the bearing 611 can rotate relative to the gasket 612 to prevent the first abutting structure 610 from driving the first locking mechanism 700 or the second locking mechanism 800 to rotate.

[0076] Furthermore, the drive mechanism 600 also includes a protective housing 640, which has a protective cavity in which the belt 630, part of the operating lever 650, and part of the second abutment structure 620 are accommodated. By providing the protective housing 640, the belt 630, part of the operating lever 650, and part of the second abutment structure 620 are accommodated in the protective cavity within the protective housing 640. This not only improves the protection of the belt 630, operating lever 650, and second abutment structure 620, but also enhances the structural strength between the belt 630, operating lever 650, and second abutment structure 620, facilitating the switching of the drive belt 630, first abutment structure 610, and second abutment structure 620 between the first station, second station, and third station.

[0077] It should be noted that the upper end of the second abutting structure 620 extends upwards outwards from the protective shell 640, and the lower end of the second abutting structure 620 extends downwards outwards from the protective shell 640, so as to ensure the normal operation of the upper and lower end faces of the second abutting structure 620.

[0078] Furthermore, in this embodiment, a receiving space 320 is provided within the transfer seat 300. The protective shell 640, the first abutment structure 610, the second abutment structure 620, the belt 630, the first locking mechanism 700, the second locking mechanism 800, a portion of the operating lever 650, a portion of the first transmission mechanism 400, and a portion of the second transmission mechanism 500 are all disposed within the receiving space 320. The first, third, and second workstations are arranged sequentially from top to bottom. When the second abutment structure 620 needs to be moved from the third workstation to the first workstation, the operating lever 650 drives the drive mechanism 600 to move upwards until the upper surface of the second abutment structure 620 abuts against the first transmission mechanism 400. When the second abutment structure 620 needs to be moved from the third workstation to the second workstation, the operating lever 650 drives the drive mechanism 600 to move downwards until the upper surface of the second abutment structure 620 abuts against the first transmission mechanism 400.

[0079] In this embodiment, the second transmission mechanism 500 is structurally similar to the first transmission mechanism 400, the only difference being that the second transmission mechanism 500 does not have a mating seat. Figure 2 and Figure 6As shown, the second transmission mechanism 500 includes a second adapter 520 and a second lead screw 510. The support base 200 includes a support part 210 and a mating part 220. The support part 210 can be fixed to the ground. The mating part 220 has a threaded inner hole that is threadedly engaged with the second lead screw 510. The support base 200 is driven to move in the up and down direction by the threaded inner hole and the threaded engagement of the second lead screw 510.

[0080] The second transmission mechanism 500 also includes a second guide structure 530. The upper end of the mating part 220 is fixed with a first stop ring 221. The outer peripheral wall of the mating part 220 is provided with a mating protrusion 222 extending in the vertical direction. The second guide structure 530 has a guide through hole. The lower end of the guide through hole is fixed with a second stop ring 531. The second stop ring 531 has a mating groove 5311. The mating groove 5311 and the mating protrusion 222 are slidably engaged. The first stop ring 221 and the second stop ring 531 are stopped and fixed to limit the downward sliding limit position of the mating part 220, so that the mating part 220 can slide in the vertical direction within a specified range.

[0081] Understandably, the specific structure and working principle of the second transmission mechanism 500, the second locking mechanism 800 and the driving mechanism 600 are the same as those of the first transmission mechanism 400, the first locking mechanism 700 and the driving mechanism 600. For the sake of brevity, they will not be described again here.

[0082] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. An information room monitoring device, characterized in that, include: A transfer seat (300) is movable along the ground; A first transmission mechanism (400) and a second transmission mechanism (500) are both installed inside the transfer seat (300); A surveillance camera (100) is connected to the first transmission mechanism (400), and the surveillance camera (100) is configured to capture information in the computer room in real time; A support base (200) is connected to the second transmission mechanism (500), and the support base (200) is configured to be fixed to the ground. A drive mechanism (600) is available to switch between a first station, a second station and a third station. The drive mechanism (600) at the first station is connected to the first transmission mechanism (400) so that the drive mechanism (600) drives the monitoring camera (100) to move in the up and down direction. The drive mechanism (600) at the second work station is connected to the second transmission mechanism (500) so that the drive mechanism (600) drives the support base (200) to move along the vertical direction; The drive mechanism (600) at the third station stops working.

2. The information room monitoring device according to claim 1, characterized in that, The information room monitoring device also includes: A first locking mechanism (700) is used to lock the first transmission mechanism (400), wherein the drive mechanism (600) at the first work station is connected to the first transmission mechanism (400) and opens the first locking mechanism (700); and The second locking mechanism (800) is used to lock the second transmission mechanism (500). The drive mechanism (600) at the second station is connected to the second transmission mechanism (500) and opens the second locking mechanism (800).

3. The information room monitoring device according to claim 2, characterized in that, The first transmission mechanism (400) includes: The first adapter (440) is rotatably connected to the drive mechanism (600) or fixedly connected to the first locking mechanism (700). The drive mechanism (600) is capable of driving the first adapter (440) to rotate around the vertical central axis of the first adapter (440). The first lead screw (410) extends along the vertical direction, and the vertical central axis of the first lead screw (410) is coaxial with the vertical central axis of the first adapter (440); and The first nut seat (420) is sleeved on the outer periphery of the first lead screw (410) along the axial direction of the first lead screw (410). The first nut seat (420) is threadedly engaged with the first lead screw (410). The first nut seat (420) is equipped with the monitoring camera (100).

4. The information room monitoring device according to claim 3, characterized in that, The first transmission mechanism (400) further includes: A first guide structure (430) is mounted on the transfer seat (300). The first guide structure (430) has a guide space extending in the vertical direction. A portion of the first lead screw (410) and a portion of the first nut seat (420) are movably disposed within the guide space.

5. The information room monitoring device according to claim 3, characterized in that, The first adapter (440) includes: The first adapter (441) has a first abutting lower end face and a first abutting upper end face. When the drive mechanism (600) is not in the first working position, the first locking mechanism (700) is abutted and fixed against the first abutting upper end face to prevent the first adapter (441) from rotating. When the drive mechanism (600) is in the first working position, the output end of the drive mechanism (600) can abut against the first abutting lower end face and drive the first locking mechanism (700) to separate from the first abutting upper end face, so that the drive mechanism (600) drives the first adapter (441) to rotate; and The second adapter (442) is fixedly connected to the first abutting upper end face of the first adapter (441) and the first lead screw (410).

6. The information room monitoring device according to claim 5, characterized in that, The first locking mechanism (700) includes: A first locking member (710) is disposed above the first adapter (441), and the first locking member (710) has a first locking lower end face; and A first elastic drive member (720) is configured to drive the first locking member (710) to move downward. When the drive mechanism (600) is not in the first working position, the first elastic drive member (720) drives the first locking lower end face to abut and fix with the first abutting upper end face. When the drive mechanism (600) is in the first working position, the output end of the drive mechanism (600) drives the first locking member (710) to move upward so that the first locking lower end face separates from the first abutting upper end face.

7. The information room monitoring device according to claim 6, characterized in that, The first abutting upper end surface, the first abutting lower end surface, and the first locking lower end surface are all provided with friction structures, and the friction structures are configured to increase the surface roughness of the first abutting upper end surface, the first abutting lower end surface, and the first locking lower end surface.

8. The information room monitoring device according to claim 6, characterized in that, The drive mechanism (600) includes: First abutment structure (610); The second abutting structure (620) has the first abutting structure (610) at both ends along the vertical direction. Belt (630); and An operating lever (650) and the second abutment structure (620) engage together to tension the belt (630). The operating lever (650) can drive the belt (630) to move, and the operating lever (650) can drive the belt (630), the first abutment structure (610), and the second abutment structure (620) to switch between the first work station, the second work station, and the third work station. When the drive mechanism (600) is in the first working position, the upper end face of the second abutting structure (620) is abutted and fixed with the first abutting lower end face, the first abutting structure (610) located above the second abutting structure (620) abuts with the first transition part (441) and drives the first locking lower end face to separate from the first abutting upper end face, and the lower end face of the second abutting structure (620) separates from the second transmission mechanism (500); When the drive mechanism (600) is in the second working position, the lower end face of the second abutment structure (620) is connected to the second transmission mechanism (500), the first abutment structure (610) located below the second abutment structure (620) opens the second locking mechanism (800), and the upper end face of the second abutment structure (620) is separated from the lower end face of the first abutment, and the first abutment structure (610) located above the second abutment structure (620) is separated from the first transition part (441).

9. The information room monitoring device according to claim 8, characterized in that, The drive mechanism (600) further includes: The protective shell (640) has a protective cavity in which the belt (630), a portion of the operating lever (650) and a portion of the second abutment structure (620) are accommodated.

10. The information room monitoring device according to claim 1, characterized in that, The transfer seat (300) has at least three casters (310), which are spaced apart at the lower end of the transfer seat (300) and are not collinear. Each of the casters (310) makes rolling contact with the ground.