Ruins protection monitoring device

By introducing components such as cooling fans, cooling pipes and conductive blocks into the site protection monitoring device, the problem of heat dissipation and removal difficulties in the monitoring cabinet is solved, rapid heat dissipation is achieved, and the practicality of the device is improved.

CN223286114UActive Publication Date: 2025-08-29洛阳隋唐大运河文化博物馆
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Patent Information

Application Number
CN202422673285.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2025-08-29
Estimated Expiration
2034-11-01

AI Technical Summary

Technical Problem

The existing site protection monitoring device is difficult to quickly dissipate heat when working for a long time, which affects the practicality of the device.

Method used

A heat dissipation component including a cooling fan, a cooling pipe, a conductive block, a water storage tank and a semiconductor refrigeration plate is designed. Through the movement and rotation of the fan, it is combined with the low-temperature introduction of the cooling pipe and a conductive block to achieve rapid heat dissipation.

Benefits of technology

Effectively and quickly dissipate the heat inside the monitoring cabinet, improve the overall practicality of the device and ensure the stable operation of the monitoring device in a high-temperature environment.

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Abstract

The utility model relates to the technical field of ruins protection, in particular to a ruins protection monitoring device which comprises a monitoring cabinet body, a displayer is arranged on the upper half portion of the inner side of the monitoring cabinet body, a monitoring machine is arranged in the middle of the inner side of the monitoring cabinet body, and a communication server is arranged on the lower half portion of the inner side of the monitoring cabinet body. A connecting shell is arranged on the outer side of the monitoring cabinet body, a heat dissipation assembly is arranged in the connecting shell, and multiple sets of heat dissipation grooves are formed in the outer side of the connecting shell and the outer side of the monitoring cabinet body; the heat dissipation assembly is used for carrying out effective heat dissipation treatment on the interior of the monitoring cabinet main body, the heat dissipation assembly is composed of a movable shell, heat dissipation fans, a cooling pipe, a conduction block and a water storage tank, the movable shell is slidably connected to the interior of the connecting shell, the multiple sets of heat dissipation fans are located on the outer side of the movable shell, and the cooling pipe is located in the movable shell. Compared with an existing monitoring device, the overall practicability of the monitoring device can be improved through the design.
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Description

Technical Field

[0001] The utility model relates to the technical field of site protection, in particular to a site protection monitoring device. Background Art

[0002] Cultural relics are an important form of cultural inheritance for human beings. They have important historical, scientific and artistic value. Therefore, the protection of cultural relics is of far-reaching significance today. However, cultural relics are easily affected by temperature, humidity, concentration of certain gases, etc. Therefore, monitoring the microclimate of the relics is an important means of protecting the relics.

[0003] After searching, announcement number CN220156779U discloses a site protection monitoring device, including a monitoring cabinet, a cabinet door is provided on the front side of the monitoring cabinet, a display is provided on the upper inner half of the monitoring cabinet, a monitoring machine is provided on the middle inner side of the monitoring cabinet, a communication server is provided on the lower inner half of the monitoring cabinet, ventilation holes are symmetrically provided on the left and right sides of the monitoring cabinet, a heat dissipation shell is fixedly installed at the heat dissipation port at the upper end of the monitoring cabinet, heat dissipation holes are provided on the outer side of the heat dissipation shell, and a mounting frame is fixedly installed on the top inner side of the monitoring cabinet. The utility model adopts the above structure, by adding ventilation holes on the left and right sides of the monitoring cabinet, and installing a heat dissipation shell with heat dissipation holes at the heat dissipation port at the upper end of the monitoring cabinet, and using the top mounting frame inside the monitoring cabinet to fix the mounting shell with the fan. The fan can conveniently and quickly discharge the heat rising inside the monitoring cabinet through the heat dissipation port, thereby realizing efficient heat dissipation inside the monitoring cabinet; its defect is that: the existing monitoring cabinet will generate heat inside when working for a long time, and the heat inside the existing monitoring cabinet is only dissipated by the fan installed at a specified position, and the heat in the entire cabinet cannot be quickly dissipated. Therefore, it is particularly important to improve the existing monitoring device and design a new site protection monitoring device to solve the above technical defects and improve the practicality of the overall monitoring device. Utility Model Content

[0004] The purpose of this utility model is to provide a ruins protection monitoring device. When the monitoring cabinet body generates heat during long-term operation, the heat dissipation fan can be moved up and down and rotated to quickly blow the heat inside the monitoring cabinet body to the outside of the monitoring cabinet body, so as to solve the problems raised in the above-mentioned background technology.

[0005] To achieve the above objectives, the present invention provides the following technical solutions:

[0006] A ruins protection monitoring device includes a monitoring cabinet body, wherein a display is provided on the upper inner half of the monitoring cabinet body, a monitoring machine is provided on the middle inner half of the monitoring cabinet body, a communication server is provided on the lower inner half of the monitoring cabinet body, a connecting shell is provided on the outer side of the monitoring cabinet body, a heat dissipation component is provided inside the connecting shell, and multiple groups of heat dissipation slots are provided on the outer sides of the connecting shell and the monitoring cabinet body;

[0007] The heat dissipation component is used to effectively dissipate heat inside the monitoring cabinet body. The heat dissipation component consists of a movable shell, a cooling fan, a cooling pipe, a conduction block and a water tank. The movable shell is slidably connected to the inside of the connecting shell. Multiple groups of the cooling fans are located on the outside of the movable shell, the cooling pipe is located inside the movable shell, multiple groups of the conduction blocks are located on the outside of the cooling pipe, and the water tank is located inside the movable shell and close to one end of the cooling pipe.

[0008] As a preferred solution of the present invention, multiple groups of the conduction blocks are distributed at equal intervals on the outside of the cooling tube, and the cooling tube is designed in a serpentine coil structure.

[0009] As a preferred solution of the present invention, multiple groups of cooling fans are distributed at equal intervals on the outside of the movable shell, the cooling fans are connected to the conduction block through a connecting shell, and a dustproof net is provided on the outside of the monitoring cabinet body and inside the connecting shell.

[0010] As a preferred solution of the present invention, a circulation pump is provided at one end of the water tank close to the cooling pipe, the output end of the circulation pump is connected to the cooling pipe, and the input end of the circulation pump extends to the interior of the water tank.

[0011] As a preferred solution of the present invention, a semiconductor refrigeration plate is provided inside the water tank, a heat dissipation block is provided at one end of the water tank close to the semiconductor refrigeration plate, and a heat dissipation cavity is provided at one end of the connecting shell and the movable shell close to the water tank.

[0012] As a preferred solution of the present invention, movable grooves are provided at both ends of the interior of the connecting shell, and a driving screw is rotatably connected to the interior of the movable groove. The internal structure size of the movable groove is designed to correspond to the external structure size of the movable shell, and the movable shell is connected to the driving screw through the movable groove.

[0013] As a preferred solution of the present invention, the movable shell is rotatably connected to both ends of the two sets of driving screws, and a threaded barrel is provided inside the threaded barrel. The threaded barrel is connected to the driving screw through the threaded barrel, and the outer side of the driving screw is fixedly connected to the driving end of the driving motor.

[0014] Compared with the prior art, the beneficial effects of the present invention are:

[0015] In the present invention, through the design of the heat dissipation component, when the monitoring cabinet body generates heat during long-term operation, the low temperature emitted by the cooling tube can be introduced into the interior of the monitoring cabinet body through the up and down movement of the heat dissipation fan and the cooperation of the heat dissipation fan with the conduction block, so as to dissipate heat for the components inside the monitoring cabinet body, thereby facilitating the rapid blowing of the heat inside the monitoring cabinet body to the outside of the monitoring cabinet body. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the overall structure of the utility model;

[0017] Figure 2 This is a schematic diagram of the internal structure of the connecting shell of the utility model;

[0018] Figure 3 This is a schematic diagram of the mobile shell structure of the utility model;

[0019] Figure 4 This is a schematic diagram of the structure of the heat dissipation component of the utility model.

[0020] In the figure: 1. Monitoring cabinet body; 2. Display; 3. Monitoring machine; 4. Communication server; 5. Connecting shell; 6. Heat dissipation assembly; 7. Heat dissipation slot; 8. Moving shell; 9. Cooling fan; 10. Cooling pipe; 11. Conduction block; 12. Water tank; 13. Dustproof net; 14. Heat dissipation block; 15. Moving slot; 16. Drive screw; 17. Threaded barrel; 18. Threaded slot. DETAILED DESCRIPTION

[0021] The following will combine the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0022] Example:

[0023] See also Figures 1-4 , the utility model provides a technical solution:

[0024] A site protection monitoring device includes a monitoring cabinet body 1, a display 2 is provided on the inner upper half of the monitoring cabinet body 1, a monitoring machine 3 is provided on the inner middle part of the monitoring cabinet body 1, a communication server 4 is provided on the inner lower half of the monitoring cabinet body 1, a connecting shell 5 is provided on the outer side of the monitoring cabinet body 1, a heat dissipation component 6 is provided inside the connecting shell 5, and multiple groups of heat dissipation slots 7 are provided on the outer sides of the connecting shell 5 and the monitoring cabinet body 1;

[0025] The heat dissipation component 6 is used to effectively dissipate heat inside the monitoring cabinet body 1. The heat dissipation component 6 consists of a movable shell 8, a cooling fan 9, a cooling pipe 10, a conduction block 11 and a water tank 12. The movable shell 8 is slidably connected to the inside of the connecting shell 5. Multiple groups of cooling fans 9 are located on the outside of the movable shell 8, the cooling pipe 10 is located inside the movable shell 8, multiple groups of conduction blocks 11 are located on the outside of the cooling pipe 10, and the water tank 12 is located inside the movable shell 8 and close to one end of the cooling pipe 10.

[0026] Furthermore, multiple groups of conduction blocks 11 are distributed at equal intervals on the outside of the cooling pipe 10, and the cooling pipe 10 is designed with a serpentine coil structure. When the coolant inside the water tank 12 is introduced into the cooling pipe 10, the cooling pipe 10 is cooled, and the low temperature dissipated by the cooling pipe 10 can be transferred through the multiple groups of conduction blocks 11.

[0027] Among them, multiple groups of cooling fans 9 are distributed at equal intervals on the outside of the movable shell 8. The cooling fans 9 are connected to the conduction block 11 through the connecting shell 5. A dustproof net 13 is provided on the outside of the monitoring cabinet main body 1 and inside the connecting shell 5. Starting the cooling fans 9 and cooperating with the conduction block 11 can introduce the low temperature emitted by the cooling pipe 10 into the interior of the monitoring cabinet main body 1, and perform heat dissipation treatment on the components inside the monitoring cabinet main body 1.

[0028] Secondly, a circulating pump is provided at one end of the water tank 12 close to the cooling pipe 10. The output end of the circulating pump is connected to the cooling pipe 10, and the input end of the circulating pump extends to the inside of the water tank 12. The circulating pump is started to introduce the coolant inside the water tank 12 into the inside of the cooling pipe 10. The introduced coolant flows inside the cooling pipe 10 and exchanges heat with the cooling pipe 10, so that the cooling pipe 10 can emit low temperature. The circulating coolant can be introduced into the inside of the water tank 12 again for circulation cooling, so that the cooling effect of the cooling pipe 10 is better.

[0029] Furthermore, a semiconductor refrigeration plate is provided inside the water tank 12, and a heat dissipation block 14 is provided at one end of the water tank 12 close to the semiconductor refrigeration plate. A heat dissipation cavity is provided at the end of the connecting shell 5 and the movable shell 8 close to the water tank 12. When the semiconductor refrigeration plate is started, the end of the semiconductor refrigeration plate away from the heat dissipation block 14 is the cooling end. The cooling end can cool the coolant inside the water tank 12. The heating end can conduct the heat emitted by the heating end to the outside of the connecting shell 5 through the heat dissipation block 14 and multiple groups of heat dissipation cavities to prevent affecting the operation of the cooling end.

[0030] Furthermore, movable grooves 15 are provided at both ends of the interior of the connecting shell 5, and the interior of the movable groove 15 is rotatably connected to a drive screw 16. The internal structure size of the movable groove 15 is designed to correspond to the external structure size of the movable shell 8. The movable shell 8 is connected to the drive screw 16 through the movable groove 15. By connecting the movable shell 8 to the movable groove 15, the movable shell 8 can be connected to the drive screw 16 inside the movable groove 15.

[0031] Furthermore, both ends of the movable shell 8 near the two sets of drive screws 16 are rotatably connected with a threaded barrel 17, and a threaded groove 18 is provided inside the threaded barrel 17. The threaded barrel 17 is connected to the drive screw 16 through the threaded groove 18, and the outer side of the drive screw 16 is fixedly connected to the driving end of the drive motor. The threaded groove 18 is connected to the drive screw 16, so that the threaded barrel 17 can be connected to the drive screw 16, and the drive motor is started to drive the drive screw 16 to rotate. The threaded barrel 17 is displaced through the threaded groove 18, and the movable shell 8 is displaced, so that the cooling fan 9 can be displaced. When the monitoring cabinet main body 1 generates heat during long-term operation, the heat inside the monitoring cabinet main body 1 can be quickly blown to the outside of the monitoring cabinet main body 1 by the up and down movement and rotation of the cooling fan 9.

[0032] In this embodiment, the implementation scenario is specifically as follows: in actual use, the semiconductor refrigeration plate is started, and the end of the semiconductor refrigeration plate away from the heat dissipation block 14 is the cooling end. The cooling end can cool the coolant inside the water tank 12, and the heating end can conduct the heat emitted by the heating end to the outside of the connecting shell 5 through the heat dissipation block 14 and multiple groups of heat dissipation cavities to prevent affecting the operation of the cooling end. The circulation pump is started to introduce the coolant inside the water tank 12 into the cooling pipe 10. The introduced coolant flows inside the cooling pipe 10 and exchanges heat with the cooling pipe 10, so that the cooling pipe 10 can emit low temperature. The circulating coolant can be introduced into the water tank 12 again for circulation cooling, so that the cooling The temperature tube 10 has a better cooling effect. Starting the cooling fan 9 and cooperating with the conduction block 11 can introduce the low temperature emitted by the cooling tube 10 into the interior of the monitoring cabinet main body 1, and perform heat dissipation treatment on the components inside the monitoring cabinet main body 1. Starting the drive motor drives the drive screw 16 to rotate, and the threaded barrel 17 is displaced through the threaded groove 18, driving the movable shell 8 to displace, so that the cooling fan 9 can be displaced. When the monitoring cabinet main body 1 generates heat after working for a long time, the cooling fan 9 can be moved up and down and rotated to quickly blow the heat inside the monitoring cabinet main body 1 to the outside of the monitoring cabinet main body 1. Compared with the existing monitoring device, the utility model can improve the overall practicality of the monitoring device through design.

[0033] Although the 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 variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A site protection monitoring device, comprising a monitoring cabinet body (1), characterized in that: The upper inner half of the monitoring cabinet body (1) is provided with a display (2), the middle inner half of the monitoring cabinet body (1) is provided with a monitoring machine (3), the lower inner half of the monitoring cabinet body (1) is provided with a communication server (4), the outer side of the monitoring cabinet body (1) is provided with a connecting shell (5), the interior of the connecting shell (5) is provided with a heat dissipation component (6), and the outer sides of the connecting shell (5) and the monitoring cabinet body (1) are both provided with multiple groups of heat dissipation slots (7); The heat dissipation component (6) is used to effectively dissipate heat inside the monitoring cabinet body (1). The heat dissipation component (6) consists of a movable shell (8), a heat dissipation fan (9), a cooling pipe (10), a conduction block (11) and a water storage tank (12). The movable shell (8) is slidably connected to the inside of the connecting shell (5). Multiple groups of the heat dissipation fans (9) are located outside the movable shell (8). The cooling pipe (10) is located inside the movable shell (8). Multiple groups of the conduction blocks (11) are located outside the cooling pipe (10). The water storage tank (12) is located inside the movable shell (8) and close to one end of the cooling pipe (10).

2. The ruins protection monitoring device according to claim 1, characterized in that: A plurality of groups of the conduction blocks (11) are distributed at equal intervals on the outside of the cooling tube (10), and the cooling tube (10) is designed in a serpentine coil structure.

3. The ruins protection monitoring device according to claim 1, characterized in that: A plurality of groups of cooling fans (9) are distributed at equal intervals on the outside of the movable shell (8); the cooling fans (9) are connected to the conduction block (11) via the connecting shell (5); and a dust screen (13) is provided on the outside of the monitoring cabinet body (1) and inside the connecting shell (5).

4. The ruins protection monitoring device according to claim 1, characterized in that: A circulation pump is provided at one end of the water storage tank (12) close to the cooling pipe (10), the output end of the circulation pump is connected to the cooling pipe (10), and the input end of the circulation pump extends into the interior of the water storage tank (12).

5. The ruins protection monitoring device according to claim 1, characterized in that: A semiconductor refrigeration plate is provided inside the water storage tank (12), a heat dissipation block (14) is provided at one end of the water storage tank (12) close to the semiconductor refrigeration plate, and a heat dissipation cavity is provided at one end of the connecting shell (5) and the movable shell (8) close to the water storage tank (12).

6. The ruins protection monitoring device according to claim 1, characterized in that: Both ends of the connecting shell (5) are provided with movable grooves (15), and a driving screw (16) is rotatably connected inside the movable groove (15). The internal structure size of the movable groove (15) is designed to correspond to the external structure size of the movable shell (8), and the movable shell (8) is connected to the driving screw (16) through the movable groove (15).

7. The ruins protection monitoring device according to claim 6, characterized in that: The movable shell (8) is rotatably connected to both ends of the two sets of driving screws (16) with threaded barrels (17). A threaded groove (18) is provided inside the threaded barrel (17). The threaded barrel (17) is connected to the driving screws (16) via the threaded groove (18). The outer side of the driving screws (16) is fixedly connected to the driving end of the driving motor.

Citation Information

Patent Citations

  • Ruins protection monitoring device

    CN220156779U