Monitoring communication equipment storage cabinet

By installing cooling and shock-absorbing components in the storage cabinet of the monitoring and communication equipment, the problems of low heat dissipation efficiency and vibration impact are solved, achieving efficient cooling and stable equipment operation, and extending the service life of the equipment.

CN224124433UActive Publication Date: 2026-04-14GUANGDONG LINGKANG TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG LINGKANG TECH CO LTD
Filing Date
2025-03-12
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing monitoring and communication equipment storage cabinets have low heat dissipation efficiency, especially when stored at high density, local temperature rises, which can easily lead to equipment damage.

Method used

Cooling components, including cooling support frames and side-by-side cooling fans, are installed on the air intake channel of the storage cabinet. The air intake of the cooling fans faces outwards, and the air outlet faces the storage drawer, ensuring that cold air blows directly onto the equipment. The storage drawer is equipped with a porous structure to distribute airflow evenly, and shock-absorbing components are installed on the lower drawer to reduce the impact of vibration.

Benefits of technology

It improves cooling efficiency, avoids excessively high local temperatures, ensures that the equipment operates within a safe temperature range, reduces equipment damage and noise caused by vibration, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224124433U_ABST
    Figure CN224124433U_ABST
Patent Text Reader

Abstract

The utility model provides a monitoring communication equipment storage cabinet. The monitoring communication equipment storage cabinet comprises a cabinet body with an opening in one end, a guide rail installed on the side wall of the cabinet body, and storage drawers arranged on the guide rail in a sliding mode and used for containing monitoring communication equipment. The cabinet body further comprises an air outlet channel and an air inlet channel which are arranged at the top and the bottom of the cabinet body respectively. The monitoring communication equipment storage cabinet further comprises a cooling assembly arranged on the air inlet channel. The cooling assembly comprises a cooling supporting frame installed on the air inlet channel and two cooling fans installed on the cooling supporting frame side by side. The cooling fan further comprises an air inlet and an air outlet, the air inlet is formed in the side deviating from the storage drawer, and the air outlet is formed in the side facing the storage drawer. A plurality of cooling holes are formed in the storage drawer opposite to the air outlet; according to the monitoring communication equipment storage cabinet, it can be ensured that cold air can be directly blown to equipment, and the cooling efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of monitoring and communication equipment technology, and in particular to a monitoring and communication equipment storage cabinet. Background Technology

[0002] Monitoring and communication equipment generates a significant amount of heat during operation. If this heat is not effectively dissipated, it can lead to overheating, impacting the equipment's performance and lifespan. Existing storage cabinets often employ simple natural convection cooling, which is ineffective when the equipment generates substantial heat and cannot guarantee long-term stable operation. Furthermore, high-density storage can cause even more severe localized temperature increases, potentially leading to equipment damage. Utility Model Content

[0003] Therefore, the purpose of this utility model is to provide a monitoring and communication equipment storage cabinet with high cooling efficiency.

[0004] The present invention adopts the following technical solution:

[0005] A monitoring and communication equipment storage cabinet includes a cabinet body with an opening at one end, a guide rail mounted on the side wall of the cabinet body, and a storage drawer slidably mounted on the guide rail for placing monitoring and communication equipment. The cabinet body also includes an air outlet channel and an air inlet channel respectively disposed at the top and bottom of the cabinet body. The monitoring and communication equipment storage cabinet also includes a cooling assembly disposed on the air inlet channel. The cooling assembly includes a cooling support frame mounted on the air inlet channel and two cooling fans mounted side by side on the cooling support frame. The cooling fans also include an air inlet and an air outlet, with the air inlet facing away from the storage drawer and the air outlet facing the storage drawer. A plurality of cooling holes are disposed on the storage drawer opposite to the air outlet.

[0006] Furthermore, the storage drawer includes an upper drawer installed on one side of the air outlet channel and a lower drawer installed on one side of the air inlet channel, and both the upper drawer and the lower drawer are provided with a plurality of cooling holes.

[0007] Furthermore, the height of the lower drawer is greater than the height of the upper drawer; the monitoring and communication equipment storage cabinet also includes a shock-absorbing component installed on the lower drawer.

[0008] Furthermore, the shock-absorbing component includes a lower fixing member installed on the lower drawer, an elastic member installed on the lower fixing member, and an upper fixing member installed on the elastic member for holding the monitoring and communication equipment.

[0009] Furthermore, a buffer groove is provided on the lower fixing member, and a boss that mates with the buffer groove is provided on the upper fixing member opposite to the buffer groove; the boss is suspended in the buffer groove.

[0010] Furthermore, the buffer groove is divided into two sections, and the two sections of the buffer groove are respectively disposed on the lower fixing members on both sides of the elastic member; the boss is divided into two sections, and the two sections of the boss are respectively disposed on the upper fixing members on both sides of the elastic member.

[0011] Furthermore, a plurality of first rollers are provided on the cabinet on one side of the air intake channel, and the plurality of first rollers are arranged in a circumferential array on the cabinet.

[0012] Furthermore, a second roller is provided on the lower drawer near the air intake channel, and the second roller is located away from the cooling support frame; the free end of the second roller is flush with the free end of the first roller; and a receiving groove is provided on the cabinet opposite the first roller for the first roller to extend into.

[0013] Furthermore, a mounting bracket for securing the monitoring and communication equipment is provided on the lower drawer.

[0014] Furthermore, a dust cover with an opening on one side is provided on the air outlet duct, and the dust cover is installed on the air outlet duct.

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

[0016] The monitoring and communication equipment storage cabinet involved in this utility model has a cooling component installed on the air inlet channel, including a cooling support frame and two cooling fans arranged side by side, to ensure that cold air is blown directly onto the equipment; the air inlet of the cooling fan faces outward and the air outlet faces the storage drawer, ensuring that cold air can be blown directly onto the equipment and improving cooling efficiency. Attached Figure Description

[0017] Figure 1 This is a perspective view of a monitoring and communication equipment storage cabinet according to an embodiment of the present invention;

[0018] Figure 2 for Figure 1 A three-dimensional schematic diagram of the monitoring and communication equipment storage cabinet from another angle;

[0019] Figure 3 for Figure 1 A three-dimensional schematic diagram of the shockproof components of the storage cabinet for monitoring and communication equipment;

[0020] Figure 4 for Figure 1 A cross-sectional view of the shock-absorbing components of the storage cabinet for monitoring and communication equipment;

[0021] Figure 5 for Figure 1 Exploded view of the storage cabinet for the monitoring and communication equipment.

[0022] 10. Cabinet body; 20. Guide rail; 30. Storage drawer; 11. Air outlet; 12. Air inlet; 40. Cooling assembly; 41. Cooling support frame; 42. Cooling fan; 420. Air inlet; 421. Air outlet; 31. Cooling hole; 32. Upper drawer; 33. Lower drawer; 50. Shockproof assembly; 51. Lower fixing component; 52. Elastic component; 53. Upper fixing component; 510. Buffer groove; 530. Boss; 60. First roller; 70. Second roller; 13. Receiving groove; 330. Fixing frame; 80. Dust cover. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] In the description of this utility model, it should be noted that the terms "vertical direction," "up," "down," and "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, "first," "second," "third," and "fourth" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0025] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or a connection through an intermediate medium; and they can refer to the internal communication 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.

[0026] Please see Figures 1 to 5The present invention discloses a monitoring and communication equipment storage cabinet, comprising a cabinet body 10 with an opening at one end, a guide rail 20 mounted on the side wall of the cabinet body 10, and a storage drawer 30 slidably mounted on the guide rail 20 for placing monitoring and communication equipment. The cabinet body 10 also includes an air outlet duct 11 and an air inlet duct 12 respectively disposed at the top and bottom of the cabinet body 10. The monitoring and communication equipment storage cabinet also includes a cooling assembly 40 disposed on the air inlet duct 12. The cooling assembly 40 includes a cooling support frame 41 mounted on the air inlet duct 12, and two cooling fans 42 mounted side by side on the cooling support frame 41. The cooling fans 42 also include an air inlet 420 and an air outlet 421. The air inlet 420 is disposed on the side away from the storage drawer 30, and the air outlet 421 is disposed on the side facing the storage drawer 30. A plurality of cooling holes 31 are disposed on the storage drawer 30 opposite to the air outlet 421.

[0027] The working principle of the monitoring and communication equipment storage cabinet of this utility model is as follows: one end of the storage cabinet structure is open, which facilitates the placement and removal of monitoring and communication equipment; the top and bottom of the cabinet body 10 are provided with air outlet ducts 11 and air inlet ducts 12, thus forming a natural air circulation system; the air inlet duct 12 at the bottom introduces cold air, and the air outlet duct 11 at the top exhausts hot air, thereby achieving the effect of natural heat dissipation; the cooling component 40 is installed on the air inlet duct 12, mainly composed of a cooling support frame 41 and two cooling fans 42 arranged side by side; the air inlet 420 of the fan faces outward, that is, the side away from the storage drawer 30, while the air outlet 421 faces the storage drawer 30. This structure ensures that cold air can be blown directly onto the equipment, improving cooling efficiency; the storage drawer 30 opposite to the air outlet 421 has a porous structure. These holes serve as cooling holes 31, which facilitate the direct passage of cold air and full contact with the monitoring and communication equipment inside the cabinet, effectively removing the heat generated by the equipment; the porous structure can also evenly distribute airflow, avoid excessive local temperature, and keep the temperature inside the cabinet within a safe range.

[0028] Compared to existing technologies, the monitoring and communication equipment storage cabinet of this utility model has a cooling component 40 installed on the air inlet channel 12, including a cooling support frame 41 and two side-by-side cooling fans 42, ensuring that cold air is blown directly onto the equipment; the air inlet 420 of the cooling fan 42 faces outwards, and the air outlet 421 faces the storage drawer 30, ensuring that cold air can be blown directly onto the equipment, improving cooling efficiency; the porous structure on the storage drawer 30 opposite to the air outlet 421 ensures that the cold air is evenly distributed, avoiding excessively high local temperatures and keeping the temperature inside the cabinet within a safe range. Together with the air outlet channel 11 and air inlet channel 12 set at the top and bottom of the cabinet body 10, a natural air circulation system is formed, which helps with overall heat dissipation.

[0029] Please refer to Figure 1 and Figure 5The storage drawer 30 includes an upper drawer 32 installed on one side of the air outlet duct 11 and a lower drawer 33 installed on one side of the air inlet duct 12. Both the upper drawer 32 and the lower drawer 33 are provided with multiple cooling holes 31. By placing the upper drawer 32 on one side of the air outlet duct 11 and the lower drawer 33 on the other side of the air inlet duct 12, it is ensured that cold air entering from the bottom air inlet duct 12 is directly blown onto the equipment through the cooling holes 31 of the lower drawer 33, while hot air is subsequently exhausted through the cooling holes 31 of the upper drawer 32. This structure optimizes the airflow path, ensuring that cold air directly contacts the equipment in the shortest path, thus improving cooling efficiency. The multiple cooling holes 31 on both the upper drawer 32 and the lower drawer 33 allow cold air to be evenly distributed throughout the drawer, ensuring that each device receives effective cooling. The porous structure ensures even distribution of cold air, avoiding the problem of localized overheating. The cooling holes 31 on the upper drawer 32 and the lower drawer 33 further ensure the uniformity of airflow, enabling each device to operate under the same temperature conditions, thus improving the overall reliability of the equipment.

[0030] Please refer to Figure 2 and Figure 4The height of the lower drawer 33 is greater than the height of the upper drawer 32. The monitoring and communication equipment storage cabinet also includes shock-absorbing components 50 installed on the lower drawer 33. In this embodiment, there are four shock-absorbing components 50, which are respectively installed at the four corners of the lower drawer 33. The shock-absorbing components 50 include a lower fixing member 51 installed on the lower drawer 33, an elastic member 52 installed on the lower fixing member 51, and an upper fixing member 53 installed on the elastic member 52 for holding the monitoring and communication equipment. In this embodiment, the elastic member 52 is a rubber pad and a spring fitted on the rubber pad. One end of the rubber pad is installed on the lower fixing member 51 and the other end is installed on the upper fixing member 53. One end of the spring is installed on the lower fixing member 51 and the other end is installed on the upper fixing member 53. The monitoring and communication equipment is placed on the anti-vibration components 50 at the four corners of the lower drawer 33; this effectively reduces wear and damage caused by vibration during operation. This multi-layered anti-vibration structure includes a lower fixing component 51, an elastic component 52, and an upper fixing component 53, providing multi-level shock absorption and ensuring a more stable mechanical structure. The anti-vibration components 50 significantly reduce noise generated during operation, improving user comfort. The elastic component 52 further reduces noise levels by absorbing and dispersing vibration energy. The combined structure of the lower fixing component 51, elastic component 52, and upper fixing component 53 provides multi-level shock absorption. The lower fixing component 51 is used to fix the equipment to the lower drawer 33, and the elastic component 52 is located between the lower fixing component 51 and the upper fixing component 53. Between 3, vibration energy can be absorbed and dispersed. The upper fixing component 53 is used to fix and support the monitoring and communication equipment. This structure ensures that the equipment is minimally affected by vibration during operation. The anti-vibration component 50 ensures that the equipment remains stable during operation, reduces the failure rate caused by vibration, and improves the overall performance and reliability of the equipment. Because the lower drawer 33 is higher, there is more space for cold air to flow, which can form a more uniform airflow around the equipment and improve cooling efficiency. The height of the lower drawer 33 is greater than that of the upper drawer 32, which can prevent cold air from being quickly discharged directly from the cooling hole 31 of the lower drawer 33 without sufficient contact with the equipment. This ensures that the cold air has enough time to exchange heat with the equipment in the cabinet and improves the heat dissipation effect.

[0031] A buffer groove 510 is provided on the lower fixing member 51, and a boss 530 that mates with the buffer groove 510 is provided on the upper fixing member 53 opposite to the buffer groove 510; the boss 530 is suspended within the buffer groove 510. The structure of the buffer groove 510 on the lower fixing member 51 and the boss 530 on the upper fixing member 53 can form an effective shock absorption system; when the equipment is subjected to vibration, the boss 530 moves within the buffer groove 510, and the elastic material or structure of the buffer groove 510 absorbs and disperses the vibration energy, thereby significantly reducing the vibration transmitted to the equipment; by suspending the boss 530 within the buffer groove 510, the displacement of the equipment can be effectively limited, ensuring the stability of the equipment's position in the drawer. Even under significant vibration or impact, the equipment is less prone to displacement, reducing the risk of damage caused by displacement. The structure of the buffer groove 510 and the boss 530 effectively protects the mechanical structure of the equipment, reduces wear and loosening caused by vibration, and extends the service life of the equipment. This structure not only relies on the shock absorption effect of the elastic element 52, but also further enhances the shock absorption effect through the cooperation of the buffer groove 510 and the boss 530, providing multiple protections to ensure that the equipment remains stable under various operating conditions.

[0032] The buffer groove 510 consists of two sections, which are respectively disposed on the lower fixing members 51 on both sides of the elastic member 52; the boss 530 consists of two sections, which are respectively disposed on the upper fixing members 53 on both sides of the elastic member 52. The structure of the two buffer grooves 510 and the two bosses 530 provides multi-point support, allowing multiple points to simultaneously absorb and disperse vibration energy when the equipment is subjected to vibration. This multi-point damping effect can significantly improve the stability of the equipment and reduce the impact of vibration. The distribution of the two buffer grooves 510 and the bosses 530 makes the damping effect more uniform, avoiding the local stress concentration problem that may occur with single-point support, and further improving the damping performance of the equipment. The two bosses 530 are suspended in the two buffer grooves 510, which can effectively limit the displacement of the equipment in the drawer and ensure that the position of the equipment in the drawer is more stable. Even under large vibrations or impacts, the equipment is not easy to move, reducing the risk of damage caused by displacement. The structure of the two buffer grooves 510 and the bosses 530 not only provides damping in the vertical direction, but also provides additional support in the horizontal direction, ensuring the stability of the equipment in multiple directions, especially performing excellently in multi-axis vibration environments.

[0033] Please refer to Figure 2 and Figure 5Multiple first rollers 60 are installed on the cabinet 10 on one side of the air intake duct 12, arranged in a circumferential array on the cabinet 10. This circumferential array of first rollers 60 provides multi-point support, making the cabinet 10 more stable during movement. This structure reduces friction between the cabinet 10 and the ground, making movement easier and more flexible. The multi-roller structure evenly distributes the weight of the cabinet 10 across the rollers, preventing excessive pressure on any single roller, extending their lifespan, and reducing wear. The circumferential array of rollers ensures the cabinet 10 remains stable during movement, especially on uneven ground, where the multiple rollers better adapt to undulations, reducing swaying and tilting. The multi-roller structure also increases the contact area between the bottom of the cabinet 10 and the ground, increasing stability and reducing the risk of tipping over.

[0034] A second roller 70 is installed on the lower drawer 33 near the air intake duct 12, and the second roller 70 is positioned away from the cooling support frame 41. The free end of the second roller 70 is flush with the free end of the first roller 60. A receiving groove 13 is provided on the cabinet 10 opposite to the first roller 60 for the first roller 60 to extend into. The second roller 70 on the lower drawer 33, in conjunction with the first roller 60 on the cabinet 10, provides multi-point support, making the drawer smoother and easier to pull out and push back. The rollers reduce the friction between the drawer and the cabinet 10, making it easier for users to operate the drawer, especially in situations requiring frequent operation, such as equipment maintenance and repair. The flush position of the free ends of the second roller 70 and the first roller 60 ensures that the drawer is evenly stressed during pulling out and pushing back, avoiding tilting or jamming caused by single-point support. The multi-roller structure increases the stability of the drawer and reduces the risk of tipping over due to external interference or improper operation.

[0035] A mounting bracket 330 for securing monitoring and communication equipment is provided on the lower drawer 33. The mounting bracket 330 firmly secures the monitoring and communication equipment to the lower drawer 33, preventing displacement or detachment during movement or vibration, ensuring the stability and safety of the equipment. The mounting bracket 330 also reduces loosening or damage caused by vibration during operation, improving the reliability and lifespan of the equipment. The structure of the mounting bracket 330 makes the installation of the monitoring and communication equipment more convenient and quick; users can easily fix the equipment to the mounting bracket 330, improving installation efficiency. When maintenance or replacement is required, users can quickly disassemble the equipment on the mounting bracket 330 for necessary repairs or replacements, and then reinstall it, making the operation simple.

[0036] Please refer to Figure 1A dust cover 80 with an opening on one side is installed on the air outlet duct 11. The dust cover 80 effectively blocks external dust and debris from entering the air outlet duct 11, reducing dust accumulation inside the equipment and keeping it clean. Reducing dust accumulation prevents wear on internal components, extending the equipment's lifespan and maintenance cycle. The one-side opening of the dust cover 80 ensures smooth airflow through the air outlet duct 11, improving heat dissipation and preventing poor heat dissipation due to dust blockage. By effectively blocking dust, heat accumulation inside the air outlet duct 11 is reduced, maintaining stable operation of the equipment in high-temperature environments.

[0037] The above description merely illustrates the preferred technical solution of this utility model, and while the description is relatively specific and detailed, it should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and this utility model also intends to include these modifications and variations.

Claims

1. A storage cabinet for monitoring and communication equipment, characterized in that, The device includes a cabinet with an opening at one end, a guide rail mounted on the side wall of the cabinet, and a storage drawer slidably mounted on the guide rail for placing monitoring and communication equipment. The cabinet also includes an air outlet channel and an air inlet channel respectively located at the top and bottom of the cabinet. The monitoring and communication equipment storage cabinet also includes a cooling assembly mounted on the air inlet channel. The cooling assembly includes a cooling support frame mounted on the air inlet channel and two cooling fans mounted side by side on the cooling support frame. Each cooling fan includes an air inlet and an air outlet, with the air inlet facing away from the storage drawer and the air outlet facing the storage drawer. Multiple cooling holes are provided on the storage drawer opposite the air outlet.

2. The monitoring and communication equipment storage cabinet according to claim 1, characterized in that, The storage drawer includes an upper drawer installed on one side of the air outlet channel and a lower drawer installed on one side of the air inlet channel, and both the upper drawer and the lower drawer are provided with a plurality of cooling holes.

3. The monitoring and communication equipment storage cabinet according to claim 2, characterized in that, The height of the lower drawer is greater than the height of the upper drawer; the monitoring and communication equipment storage cabinet also includes a shock-absorbing component installed on the lower drawer.

4. The monitoring and communication equipment storage cabinet according to claim 3, characterized in that, The shock-absorbing component includes a lower fixing member installed on the lower drawer, an elastic member installed on the lower fixing member, and an upper fixing member installed on the elastic member for holding the monitoring and communication equipment.

5. The monitoring and communication equipment storage cabinet according to claim 4, characterized in that, The lower fixing member is provided with a buffer groove, and the upper fixing member opposite the buffer groove is provided with a boss that cooperates with the buffer groove; the boss is suspended in the buffer groove.

6. The monitoring and communication equipment storage cabinet according to claim 5, characterized in that, The buffer groove consists of two sections, which are respectively disposed on the lower fixing members on both sides of the elastic member; the boss consists of two sections, which are respectively disposed on the upper fixing members on both sides of the elastic member.

7. The monitoring and communication equipment storage cabinet according to claim 2, characterized in that, Multiple first rollers are provided on the cabinet on one side of the air intake channel, and the multiple first rollers are arranged in a circumferential array on the cabinet.

8. The monitoring and communication equipment storage cabinet according to claim 7, characterized in that, A second roller is provided on the lower drawer near the air intake channel, and the second roller is located away from the cooling support frame; the free end of the second roller is flush with the free end of the first roller; a receiving groove is provided on the cabinet opposite the first roller for the first roller to extend into.

9. The monitoring and communication equipment storage cabinet according to claim 2, characterized in that, The lower drawer is equipped with a mounting bracket for securing the monitoring and communication equipment.

10. The monitoring and communication equipment storage cabinet according to claim 1, characterized in that, A dust cover with an opening on one side is provided on the air outlet duct, and the dust cover is installed on the air outlet duct.