Outdoor remote monitoring device with efficient heat dissipation function

By integrating collection, cooling, heat dissipation and return components in the remote monitoring device, using rainwater storage and airflow cooling, the problem of poor heat dissipation in the outdoor environment is solved, and efficient cooling effect is achieved.

CN223168354UActive Publication Date: 2025-07-29ZHENGZHOU CHUANGZHI SIYUAN MECHANICAL & ELECTRICAL EQUIPMENT CO LTD
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Patent Information

Application Number
CN202422448078.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-07-29
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

Traditional remote monitoring devices have poor heat dissipation in outdoor environments, resulting in abnormal operation of the equipment and shortened lifespan, making it difficult to meet the needs of efficient heat dissipation by natural or simple fan heat dissipation.

Method used

A device including collection, cooling, heat dissipation and reflow components is designed to utilize rainwater storage and extraction, combined with airflow cooling, to achieve recycling to improve heat dissipation efficiency.

Benefits of technology

Through rainwater cooling and airflow exchange, the cooling and heat dissipation efficiency of the monitor is improved, the effect of recycling is achieved, and the heat dissipation problem in outdoor environments is solved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of remote monitoring devices, in particular to an outdoor remote monitoring device with an efficient heat dissipation function. The utility model provides an outdoor remote monitoring device with an efficient heat dissipation function. The outdoor remote monitoring device comprises a monitor, a protective shell, a mounting base, a heat dissipation assembly, a heat conduction assembly, a collection assembly, a cooling assembly and a backflow assembly. Compared with the problems that a traditional remote monitoring device cannot meet the requirement for efficient heat dissipation in the outdoor environment in the using process, and consequently the cooling and heat dissipation efficiency is inconvenient to improve, when the remote monitoring device is used, rainwater can be stored and collected through a collecting assembly, and when heat in a monitor is too high, the rainwater can be collected through the collecting assembly; the cooling assembly is started to extract rainwater, meanwhile, when airflow generated by the heat dissipation assembly passes through the cooling assembly, the flowing airflow is cooled, when cold air is blown into the monitor, the interior of the monitor can be cooled, and then the cooling and heat dissipation efficiency can be improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of remote monitoring devices, in particular to a remote monitoring device with an efficient heat dissipation function outdoors. Background Art

[0002] In recent years, with the rapid development of computer, network, image processing and transmission technologies, video monitoring technology has also made great progress. Now video monitoring has been widely applied in various fields and is an important part of the security prevention system.

[0003] In the actual use process, the equipment often has poor heat dissipation due to harsh environments such as high temperature and humidity, which affects the normal operation and service life of the equipment. Traditional heat dissipation methods such as natural heat dissipation or simple fan heat dissipation are difficult to meet the requirements of efficient heat dissipation in outdoor environments, and thus it is inconvenient to improve the cooling and heat dissipation efficiency.

[0004] Therefore, in view of the problem of inconveniently improving the sand and stone separation efficiency, a remote monitoring device with an efficient heat dissipation function outdoors can be designed. First, rainwater can be stored and collected through a collection component. When the heat inside the monitor is too high, the cooling component can be started to extract the rainwater. At the same time, when the airflow generated by the heat dissipation component passes through the cooling component, the flowing airflow realizes cooling. When the cold air blows into the inside of the monitor, the inside of the monitor can be cooled down, and thus the cooling and heat dissipation efficiency can be improved. Summary of the Utility Model

[0005] In order to overcome the problem that in the process of using a remote monitoring device, the equipment often has poor heat dissipation due to harsh environments such as high temperature and humidity, which affects the normal operation and service life of the equipment. Traditional heat dissipation methods such as natural heat dissipation or simple fan heat dissipation are difficult to meet the requirements of efficient heat dissipation in outdoor environments, and thus it is inconvenient to improve the cooling and heat dissipation efficiency.

[0006] The technical solution of the utility model is: a remote monitoring device with an efficient heat dissipation function outdoors, including a monitor, a protective shell, an installation base, a heat dissipation component, a heat conduction component, a collection component, a cooling component and a reflux component; a monitor is arranged above the installation base, a protective shell is arranged outside the monitor, a heat dissipation component is arranged inside the monitor, a heat conduction component is arranged inside the monitor, a collection component is arranged above the protective shell, a cooling component is arranged inside the collection component, and a reflux component is arranged on one side of the collection component.

[0007] Preferably, when the remote monitoring device is in use, first, the rainwater can be stored and collected through the collection component. When the heat inside the monitor is too high, the cooling component can be activated to extract the rainwater. At the same time, when the airflow generated by the heat dissipation component passes through the cooling component, the flowing airflow can achieve cooling. When the cold air blows into the inside of the monitor, it can cool down the inside of the monitor, thereby improving the efficiency of cooling and heat dissipation. In addition, activating the reflux component can return the rainwater to the inside of the collection component, thus achieving the effect of recycling.

[0008] Preferably, the heat dissipation component includes a drive motor and a heat dissipation box; the heat dissipation box is arranged inside the monitor, and the drive motor is arranged inside the heat dissipation box; starting the drive motor can drive the drive shaft to rotate.

[0009] Preferably, the heat dissipation component further includes a drive shaft and a drive impeller; the output end of the drive motor is provided with the drive shaft, and one end of the drive shaft is provided with the drive impeller; starting the drive motor can drive the drive shaft to rotate, and the drive shaft can drive the drive impeller to rotate. Through the drive impeller, negative pressure can be generated inside the heat dissipation box, thereby driving the heat inside the monitor to exchange and flow with the outside air, and then achieving the effect of ventilation and heat dissipation.

[0010] Preferably, the heat conduction component includes a ventilation plate and heat conduction fins; the ventilation plate is arranged inside the monitor, there are two groups of ventilation plates, and multiple groups of heat conduction fins are arranged inside the ventilation plate; since the multiple groups of heat conduction fins are closely connected to the heat source of the monitor through high-efficiency heat conduction materials, the heat generated by the monitor can be quickly exported.

[0011] Preferably, the collection component includes a collection box, a collection frame and a filter plate; the collection box is arranged above the protective shell, the filter plate is arranged above the collection box, and the collection frame is arranged above the filter plate; when it rains outdoors, the rainwater flows into the inside of the collection box through the filter plate for storage.

[0012] Preferably, the cooling component includes a cooler and a liquid extraction pipe; the cooler is arranged inside the collection box, and the liquid extraction pipe is arranged on one side of the collection box; and the rainwater can be cooled through the cooler.

[0013] Preferably, the cooling assembly further includes a liquid extraction pump and a circulating cooling pipe; the liquid extraction pump is disposed outside the liquid extraction pipe, and one end of the liquid extraction pipe is provided with the circulating cooling pipe which is disposed inside the monitor; when the heat inside the monitor is too high, first, starting the liquid extraction pump can extract rainwater through the liquid extraction pipe, and then, the rainwater is transported through the liquid extraction pipe to the inside of the circulating cooling pipe. At the same time, when the airflow generated by the heat dissipation assembly passes through the circulating cooling pipe, the flowing airflow realizes cooling. When the cold air blows into the inside of the monitor, the inside of the monitor can be cooled down, thereby improving the efficiency of cooling and heat dissipation.

[0014] Preferably, the reflux assembly includes a reflux pipe and a reflux pump; one end of the circulating cooling pipe is provided with the reflux pipe, and the reflux pump is disposed outside the reflux pipe; in addition, starting the reflux pump can reflux and transport the rainwater through the reflux pipe to the inside of the collection box, thereby achieving the effect of recycling.

[0015] The beneficial effects of the present utility model are as follows:

[0016] 1. Compared with the traditional remote monitoring device during use, it is often affected by harsh environments such as high temperature and humidity, resulting in poor heat dissipation of the device, thus affecting the normal operation and lifespan of the device. Traditional heat dissipation methods such as natural heat dissipation or simple fan heat dissipation are difficult to meet the requirements of outdoor environments for efficient heat dissipation, and it is inconvenient to improve the efficiency of cooling and heat dissipation. When the remote monitoring device is in use, first, the rainwater can be stored and collected through the collection assembly. When the heat inside the monitor is too high, starting the cooling assembly can extract the rainwater, and at the same time, when the airflow generated by the heat dissipation assembly passes through the cooling assembly, the flowing airflow realizes cooling. When the cold air blows into the inside of the monitor, the inside of the monitor can be cooled down, thereby improving the efficiency of cooling and heat dissipation. In addition, starting the reflux assembly can reflux and transport the rainwater to the inside of the collection assembly, thereby achieving the effect of recycling.

[0017] 2. When it rains outdoors, the rainwater flows into the inside of the collection box through the filter plate for storage, and the rainwater can be cooled through the cooler. When the heat inside the monitor is too high, first, starting the liquid extraction pump can extract the rainwater through the liquid extraction pipe, and then, the rainwater is transported through the liquid extraction pipe to the inside of the circulating cooling pipe. At the same time, when the airflow generated by the heat dissipation assembly passes through the circulating cooling pipe, the flowing airflow realizes cooling. When the cold air blows into the inside of the monitor, the inside of the monitor can be cooled down, thereby improving the efficiency of cooling and heat dissipation. In addition, starting the reflux pump can reflux and transport the rainwater through the reflux pipe to the inside of the collection box, thereby achieving the effect of recycling.

[0018] 3. When the remote monitoring device is in use, starting the drive motor can drive the drive shaft to rotate, the drive shaft can drive the drive impeller to rotate, and through the drive impeller, negative pressure can be generated inside the heat dissipation box, thereby driving the heat inside the monitor to exchange and flow with the outside air. In addition, since multiple heat conduction fins are tightly connected to the heat source of the monitor through high-efficiency heat conduction materials, the heat generated by the monitor can be quickly exported, and thus the effect of ventilation and heat dissipation can be achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 FIG. 6 shows a first three-dimensional structural schematic diagram of a remote monitoring device with high-efficiency heat dissipation function outdoors according to the present invention;

[0020] Figure 2 FIG. 10 shows a first partial three-dimensional structural schematic diagram of a remote monitoring device with high-efficiency heat dissipation function outdoors according to the present invention;

[0021] Figure 3 FIG. 14 shows a second partial three-dimensional structural schematic diagram of a remote monitoring device with high-efficiency heat dissipation function outdoors according to the present invention;

[0022] Figure 4 FIG. 18 shows a third partial three-dimensional structural schematic diagram of a remote monitoring device with high-efficiency heat dissipation function outdoors according to the present invention;

[0023] Figure 5 FIG. 22 shows a fourth partial three-dimensional structural schematic diagram of a remote monitoring device with high-efficiency heat dissipation function outdoors according to the present invention;

[0024] DESCRIPTION OF THE REFERENCE NUMERALS: 1, monitor; 2, protective shell; 3, mounting base; 101, drive motor; 102, heat dissipation box; 103, drive shaft; 104, drive impeller; 201, ventilation plate; 202, heat conduction fin; 301, collection box; 302, collection frame; 303, filter plate; 401, cooler; 402, liquid suction pipe; 403, liquid suction pump; 404, circulating cooling pipe; 501, return pipe; 502, return pump. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0025] The present invention will be further described below with reference to the drawings and embodiments.

[0026] Please refer to Figures 1 - 5, the present utility model provides an embodiment: a remote monitoring device with efficient heat dissipation function outdoors, including a monitor 1, a protective shell 2, a mounting base 3, a heat dissipation component, a heat conduction component, a collection component, a cooling component and a reflux component; a monitor 1 is arranged above the mounting base 3, a protective shell 2 is arranged outside the monitor 1, a heat dissipation component is arranged inside the monitor 1, a heat conduction component is arranged inside the monitor 1, a collection component is arranged above the protective shell 2, a cooling component is arranged inside the collection component, and a reflux component is arranged on one side of the collection component.

[0027] Please refer to Figure 2 , the heat dissipation component includes a driving motor 101 and a heat dissipation box 102; a heat dissipation box 102 is arranged inside the monitor 1, and a driving motor 101 is arranged inside the heat dissipation box 102; starting the driving motor 101 can drive the driving shaft 103 to rotate; the heat dissipation component further includes a driving shaft 103 and a driving impeller 104; the output end of the driving motor 101 is provided with a driving shaft 103, and one end of the driving shaft 103 is provided with a driving impeller 104; starting the driving motor 101 can drive the driving shaft 103 to rotate, and the driving shaft 103 can drive the driving impeller 104 to rotate. Through the driving impeller 104, negative pressure can be generated inside the heat dissipation box 102, so as to drive the heat inside the monitor 1 to exchange and flow with the outside air, and then the effect of ventilation and heat dissipation can be achieved; the heat conduction component includes a ventilation plate 201 and heat conduction fins 202; a ventilation plate 201 is arranged inside the monitor 1, there are two groups of ventilation plates 201, and heat conduction fins 202 are arranged inside the ventilation plates 201, and there are multiple groups of heat conduction fins 202; because multiple groups of heat conduction fins 202 are closely connected to the heat source of the monitor 1 through high-efficiency heat-conducting materials, the heat generated by the monitor 1 can be quickly exported; the collection component includes a collection box 301, a collection frame 302 and a filter plate 303; a collection box 301 is arranged above the protective shell 2, a filter plate 303 is arranged above the collection box 301, and a collection frame 302 is arranged above the filter plate 303; when it rains outdoors, the rainwater flows into the inside of the collection box 301 through the filter plate 303 for storage.

[0028] Please refer to Figures 3 - 5, in this embodiment, the cooling assembly includes a cooler 401 and a liquid extraction pipe 402; the cooler 401 is arranged inside the collection box 301, and the liquid extraction pipe 402 is arranged on one side of the collection box 301; moreover, the rainwater can be cooled by the cooler 401; the cooling assembly further includes a liquid extraction pump 403 and a circulating cooling pipe 404; the liquid extraction pump 403 is arranged outside the liquid extraction pipe 402, one end of the liquid extraction pipe 402 is provided with the circulating cooling pipe 404, and the circulating cooling pipe 404 is arranged inside the monitor 1; when the heat inside the monitor 1 is too high, first, starting the liquid extraction pump 403 can extract the rainwater through the liquid extraction pipe 402, and then, the rainwater is transported to the inside of the circulating cooling pipe 404 through the liquid extraction pipe 402. At the same time, when the airflow generated by the heat dissipation assembly passes through the circulating cooling pipe 404, the flowing airflow is cooled, and when the cold air blows into the inside of the monitor 1, the inside of the monitor 1 can be cooled and the temperature can be reduced, thereby improving the efficiency of temperature reduction and heat dissipation; the reflux assembly includes a reflux pipe 501 and a reflux pump 502; one end of the circulating cooling pipe 404 is provided with the reflux pipe 501, and the reflux pump 502 is arranged outside the reflux pipe 501; in addition, starting the reflux pump 502 can reflux and transport the rainwater to the inside of the collection box 301 through the reflux pipe 501, thereby achieving the effect of recycling.

[0029] When the remote monitoring device is in use, starting the drive motor 101 can drive the drive shaft 103 to rotate, and the drive shaft 103 can drive the drive impeller 104 to rotate. By the drive impeller 104, negative pressure can be generated inside the heat dissipation box 102, thereby driving the heat inside the monitor 1 to exchange and flow with the outside air, and further achieving the effect of ventilation and heat dissipation.

[0030] In addition, since multiple heat conducting fins 202 are closely connected to the heat source of the monitor 1 through a high-efficiency heat conducting material, the heat generated by the monitor 1 can be quickly conducted out.

[0031] When it rains outdoors, the rainwater flows into the inside of the collection box 301 through the filter plate 303 for storage, and moreover, the rainwater can be cooled by the cooler 401.

[0032] When the heat inside the monitor 1 is too high, first, starting the liquid extraction pump 403 can extract the rainwater through the liquid extraction pipe 402, and then, the rainwater is transported to the inside of the circulating cooling pipe 404 through the liquid extraction pipe 402.

[0033] At the same time, when the airflow generated by the heat dissipation assembly passes through the circulating cooling pipe 404, the flowing airflow is cooled, and when the cold air blows into the inside of the monitor 1, the inside of the monitor 1 can be cooled and the temperature can be reduced, thereby improving the efficiency of temperature reduction and heat dissipation.

[0034] In addition, starting the reflux pump 502 can reflux and transport rainwater through the reflux pipe 501 to the inside of the collection tank 301, thereby achieving the effect of recycling.

[0035] Through the above steps, when the remote monitoring device is in use, first, the rainwater can be stored and collected by the collection component. When the temperature inside the monitor 1 is too high, the cooling component can be started to extract the rainwater. At the same time, when the airflow generated by the heat dissipation component passes through the cooling component, the flowing airflow realizes cooling. When the cold air blows into the inside of the monitor 1, it can cool down the inside of the monitor 1, thereby improving the efficiency of cooling and heat dissipation. In addition, starting the reflux component can reflux and transport the rainwater to the inside of the collection component, thereby achieving the effect of recycling.

[0036] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the purpose of the present invention.

Claims

1. A remote monitoring device with an efficient heat dissipation function for outdoor use, comprising a monitor (1); characterized in that: The device further comprises a protective shell (2), a mounting base (3), a heat dissipation component, a heat conduction component, a collection component, a cooling component and a reflux component; a monitor (1) is arranged above the mounting base (3), a protective shell (2) is arranged outside the monitor (1), a heat dissipation component is arranged inside the monitor (1), a heat conduction component is arranged inside the monitor (1), a collection component is arranged above the protective shell (2), a cooling component is arranged inside the collection component, and a reflux component is arranged on one side of the collection component.

2. The remote monitoring device with high-efficiency heat dissipation function outdoors according to claim 1, characterized in that: The heat dissipation component comprises a driving motor (101) and a heat dissipation box (102); the heat dissipation box (102) is arranged inside the monitor (1), and the driving motor (101) is arranged inside the heat dissipation box (102).

3. The remote monitoring device with efficient heat dissipation function outdoors according to claim 2, wherein: The heat dissipation component further comprises a driving shaft (103) and a driving impeller (104); the output end of the driving motor (101) is provided with the driving shaft (103), and one end of the driving shaft (103) is provided with the driving impeller (104).

4. The outdoor remote monitoring device with high-efficiency heat dissipation function according to claim 3, characterized in that: The heat conduction component comprises a ventilation plate (201) and a heat conduction sheet (202); the monitor (1) is provided with ventilation plates (201) in two groups; the ventilation plates (201) are provided with heat conduction sheets (202) in multiple groups.

5. The remote monitoring device with high-efficiency heat dissipation function outdoors according to claim 4, characterized in that: The collection assembly comprises a collection box (301), a collection frame (302) and a filter plate (303); the collection box (301) is arranged above the protective shell (2), the filter plate (303) is arranged above the collection box (301), and the collection frame (302) is arranged above the filter plate (303).

6. The outdoor remote monitoring device with high-efficiency heat dissipation function according to claim 5, characterized in that: The cooling assembly comprises a cooler (401) and a liquid extraction pipe (402); the cooler (401) is arranged inside the collecting box (301), and the liquid extraction pipe (402) is arranged on one side of the collecting box (301).

7. The remote monitoring device with high-efficiency heat dissipation function outdoors according to claim 6, characterized in that: The cooling assembly further comprises a liquid extraction pump (403) and a circulating cooling pipe (404); the liquid extraction pump (403) is arranged outside the liquid extraction pipe (402), a circulating cooling pipe (404) is arranged at one end of the liquid extraction pipe (402), and the circulating cooling pipe (404) is arranged inside the monitor (1).

8. The outdoor remote monitoring device with high-efficiency heat dissipation function according to claim 7, characterized in that: The reflux component comprises a reflux pipe (501) and a reflux pump (502); one end of the circulating cooling pipe (404) is provided with the reflux pipe (501), and the outside of the reflux pipe (501) is provided with the reflux pump (502).