Cabinet device for cloud computing
By combining a sliding rail structure and a heat dissipation system with automatic fire extinguishing and explosion-proof design, the problems of inconvenient fixing and uneven heat dissipation of cloud computer cabinet equipment are solved, achieving stable and uniform heat dissipation and timely fire extinguishing, thus improving the stability and safety of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING SMART CLOUD TECHNOLOGY CO LTD
- Filing Date
- 2025-02-25
- Publication Date
- 2026-05-05
AI Technical Summary
Existing cloud computing cabinets are cumbersome to install and are not suitable for different sizes. Their simple heat dissipation systems lead to heat buildup, affecting equipment performance and lifespan. Furthermore, they lack effective fire and explosion protection measures.
The equipment is fixed by a sliding groove and rod structure, combined with a heat dissipation system consisting of an air inlet, a cooling fan, and an air outlet. It also integrates an automatic fire extinguishing system and an explosion-proof door design, and is equipped with a smoke detector and a solenoid valve to control the release of fire extinguishing dry powder. Buffer strips reduce impact force, and rubber strips increase friction.
It achieves stable fixation of equipment of different sizes, uniform heat dissipation, prevention of local overheating, timely fire extinguishing, protection of equipment and personnel safety, extension of equipment life, and reduction of equipment damage and data loss.
Smart Images

Figure CN224205433U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cloud computing technology, and in particular to a cloud computing rack device. Background Technology
[0002] With the rapid development of cloud computing technology, the scale of cloud computing data centers is constantly expanding. As the core equipment carrier of data centers, the performance and reliability of cloud computing racks are of paramount importance.
[0003] However, current server racks often employ simple fixing methods for cloud computing equipment, such as screw fixing or simple slot designs. These methods are cumbersome to install and remove equipment and cannot well accommodate equipment of different sizes. The rack's cooling system is usually quite simple, perhaps relying only on natural ventilation or simple fan cooling. Natural ventilation has limited cooling effectiveness; in situations with dense equipment and high operating power, it cannot effectively dissipate heat in a timely manner, leading to excessively high temperatures inside the rack. While simple fan cooling can improve airflow to some extent, it often suffers from uneven heat dissipation and unreasonable airflow design, easily causing localized overheating and affecting the performance and lifespan of cloud computing equipment. Utility Model Content
[0004] In view of the aforementioned problems in the existing technology, the main objective of this utility model is to provide a cloud computing rack device that addresses the shortcomings of existing racks, which often employ simple fixing methods for securing cloud computing equipment, such as screw fixing or simple slot designs. These methods are cumbersome to install and disassemble, and cannot adequately accommodate equipment of different sizes. The rack's cooling system is typically simple, often relying on natural ventilation or simple fan cooling. Natural ventilation has limited cooling effectiveness; in situations with dense equipment and high operating power, it cannot effectively dissipate heat in a timely manner, leading to excessively high internal temperatures within the rack. While simple fan cooling can enhance airflow to some extent, it often suffers from uneven heat dissipation and unreasonable airflow design, easily causing localized overheating and affecting the performance and lifespan of the cloud computing equipment.
[0005] The technical solution of this utility model is as follows: A cloud computing rack device includes a rack body. Placement plates are fixedly connected at equal intervals inside the rack body. Slide grooves are formed on both sides of the inner wall of the rack body above the placement plates. Slide rods are fixedly connected inside each slide groove. Two sliders are slidably connected to the outer sides of each slide rod. A connecting rod is rotatably connected to one side of each slider. A clamping plate is rotatably connected between the two corresponding connecting rods. A slot is formed inside the rack body on one side of the placement plates. Cooling fans are installed at equal intervals inside the slot. Air inlets are formed at equal intervals on the outer side of the rack body, and these air inlets communicate with the interior of the slot. Heat dissipation holes are formed at equal intervals on the inner wall of the rack body above the placement plates, and these heat dissipation holes communicate with the interior of the slot. Air outlets are formed on both sides of the rack body above the placement plates, and these air outlets communicate with the interior of the rack body.
[0006] The above technical solutions can adapt to cloud computing devices of different sizes, prevent the devices from shaking inside the cabinet, protect the device safety, and the heat dissipation system can effectively reduce the temperature inside the cabinet through the cooperation of air inlet, cooling fan, heat dissipation hole and air outlet, ensuring that the cloud computing devices operate in a suitable temperature environment, and improving the stability and service life of the devices.
[0007] In a preferred embodiment, a storage box is fixedly connected to the top of the cabinet, a connecting pipe is fixedly connected to the inside of the storage box, and a discharge pipe is fixedly connected at equal intervals to the bottom of the connecting pipe. The bottom of the discharge pipe extends into the interior of the empty slot. Fire extinguishing dry powder canisters are provided at equal intervals inside the storage box and on one side of the connecting pipe. The output ends of the fire extinguishing dry powder canisters are all connected to the connecting pipe.
[0008] The above technical solution integrates an automatic fire extinguishing system that can quickly release fire extinguishing dry powder in the event of a fire, effectively extinguishing the fire inside the cabinet, protecting cloud computing equipment from fire damage, and reducing the risk of equipment loss and data loss.
[0009] In a preferred embodiment, an explosion-proof door is provided on one side of the cabinet, and smoke detectors are installed at equal intervals on the side of the explosion-proof door closest to the cabinet. Solenoid valves are provided on the outer side of the exhaust pipe.
[0010] Through the above technical solutions, the explosion-proof door design can prevent the door from being blown open in the event of an explosion or fire inside the cabinet, protecting the safety of personnel outside. The smoke detector can promptly detect fires and issue an alarm, alerting staff to take action. The solenoid valve can control the release of fire extinguishing powder, improving the accuracy and timeliness of fire suppression.
[0011] In a preferred embodiment, a buffer strip is fixedly connected to the inner wall of the cabinet and to one side of the placement board, and the buffer strip is in contact with the explosion-proof door.
[0012] Through the above technical solutions, the buffer strip can reduce the impact force when the explosion-proof door is closed, prevent the explosion-proof door and cabinet from being damaged by frequent opening and closing, extend the service life of the equipment, and also reduce noise.
[0013] In a preferred embodiment, rubber strips are fixedly connected at equal intervals to the sides of the two clamping plates that are close to each other.
[0014] Through the above technical solution, the rubber strip can increase the friction between the clamping plate and the equipment, further stabilizing the equipment and preventing it from slipping. At the same time, the rubber strip can protect the surface of the equipment, preventing it from being scratched or damaged during the clamping process.
[0015] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0016] This invention adapts to cloud computing devices of different sizes, preventing them from shaking inside the cabinet and protecting their safety. The cooling system, through the coordination of air inlets, cooling fans, ventilation holes, and exhaust vents, effectively reduces the internal temperature of the cabinet, ensuring the cloud computing device operates in a suitable temperature environment, improving its stability and lifespan. An integrated automatic fire extinguishing system rapidly releases fire extinguishing powder in the event of a fire, effectively extinguishing the fire inside the cabinet, protecting the cloud computing device from fire damage, and reducing the risk of equipment loss and data loss. The explosion-proof door design prevents the door from being blown open in the event of an explosion or fire inside the cabinet, protecting the safety of personnel outside. A smoke detector can promptly detect fires and issue an alarm, reminding staff to take action. A solenoid valve controls the release of fire extinguishing powder, improving the accuracy and timeliness of fire suppression. A buffer strip reduces the impact force when the explosion-proof door closes, preventing damage to the explosion-proof door and cabinet due to frequent opening and closing, extending the equipment's lifespan, and reducing noise. Rubber strips increase the friction between the clamping plate and the equipment, further stabilizing the equipment and preventing slippage. Meanwhile, the rubber strips can protect the surface of the equipment and prevent it from being scratched or damaged during the clamping process. Attached Figure Description
[0017] Figure 1 This utility model provides a schematic diagram of the overall three-dimensional structure of a cloud computing rack device;
[0018] Figure 2 This utility model provides a bottom view structural diagram of a cloud computing rack device;
[0019] Figure 3 This utility model provides a cross-sectional side view of a cloud computing rack device;
[0020] Figure 4 This utility model provides a cross-sectional front view of a cloud computing rack device;
[0021] Figure 5 This utility model provides a cross-sectional three-dimensional structural diagram of a cloud computing rack device.
[0022] Legend: 1. Cabinet; 2. Slide rail; 3. Slide rod; 4. Slider; 5. Spring; 6. Placement plate; 7. Connecting rod; 8. Clamping plate; 9. Rubber strip; 10. Empty groove; 11. Cooling fan; 12. Heat dissipation hole; 13. Air inlet; 14. Air outlet; 15. Storage box; 16. Fire extinguishing dry powder canister; 17. Connecting pipe; 18. Discharge pipe; 19. Solenoid valve; 20. Buffer strip; 21. Explosion-proof door; 22. Smoke alarm. Detailed Implementation
[0023] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Example
[0024] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, this utility model provides a technical solution: it includes a cabinet 1, with placement plates 6 fixedly connected at equal intervals inside the cabinet 1. Slide grooves 2 are provided on both sides of the inner wall of the cabinet 1 above the placement plates 6. Slide rods 3 are fixedly connected inside the slide grooves 2. Two sliders 4 are slidably connected to the outer sides of the sliders 3. A connecting rod 7 is rotatably connected to one side of each slider 4. A clamping plate 8 is rotatably connected between the two corresponding connecting rods 7. A slot 10 is provided inside the cabinet 1 on one side of the placement plates 6. A cooling fan 11 is installed at equal intervals inside the slot 10. Air inlets 13 are provided at equal intervals on the outer side of the cabinet 1, and the air inlets 13 communicate with the interior of the slot 10. Heat dissipation holes 12 are provided at equal intervals on the inner wall of the cabinet 1 above the placement plates 6, and the heat dissipation holes 12 communicate with the interior of the slot 10. Air outlets 14 are provided on both sides of the cabinet 1 above the placement plates 6, and the air outlets 14 communicate with the interior of the cabinet 1.
[0025] In this embodiment, placement plates 6 are equidistantly arranged inside the cabinet 1 for placing cloud computing devices. Slide rods 3 are installed in the sliding grooves 2 on both sides of the inner wall of the cabinet 1. Slider blocks 4 on the slide rods 3 are connected to clamping plates 8 via connecting rods 7. When it is necessary to fix the device, the device is placed on the placement plate 6, and the slider 4 slides on the slide rod 3, causing the connecting rods 7 and clamping plates 8 to move, thus clamping and fixing the device. A cooling fan 11 is installed in the empty slot 10 inside the cabinet 1. External air is introduced through the air inlet 13 on the outside of the cabinet 1. The air enters the empty slot 10 through the air inlet 13, and the cooling fan 11 blows the air towards the device. The heat generated by the device is transferred to the empty slot 10 through the heat dissipation holes 12 on the inner wall of the cabinet 1, and finally discharged through the air outlets 14 on both sides of the cabinet 1.
[0026] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, a storage box 15 is fixedly connected to the top of the cabinet 1. A connecting pipe 17 is fixedly connected inside the storage box 15. A discharge pipe 18 is fixedly connected at equal intervals to the bottom of the connecting pipe 17. The bottom of the discharge pipe 18 extends into the interior of the empty trough 10. Fire extinguishing dry powder canisters 16 are provided at equal intervals inside the storage box 15 and on one side of the connecting pipe 17. The output ends of the fire extinguishing dry powder canisters 16 are all connected to the connecting pipe 17.
[0027] In this embodiment, the storage box 15 at the top of the cabinet 1 is equipped with a connecting pipe 17 and a discharge pipe 18, and the connecting pipe 17 is connected to the fire extinguishing dry powder canister 16. When a fire occurs, the dry powder in the fire extinguishing dry powder canister 16 enters the empty slot 10 inside the cabinet 1 through the connecting pipe 17 and the discharge pipe 18, and the dry powder diffuses in the empty slot 10, playing a role in extinguishing the fire.
[0028] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, an explosion-proof door 21 is provided on one side of the cabinet 1. Smoke detectors 22 are installed at equal intervals on the side of the explosion-proof door 21 close to the cabinet 1. Solenoid valves 19 are provided on the outside of the exhaust pipe 18.
[0029] In this embodiment, an explosion-proof door 21 is provided on one side of the cabinet 1, and a smoke detector 22 is installed on the explosion-proof door 21. When a fire occurs inside the cabinet 1 and smoke is generated, the smoke detector 22 detects the smoke and issues an alarm signal. At the same time, the solenoid valve 19 on the outside of the exhaust pipe 18 can be controlled as needed to release fire extinguishing dry powder.
[0030] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, a buffer strip 20 is fixedly connected to the inner wall of the cabinet 1 and to one side of the placement plate 6. The buffer strip 20 is in contact with the explosion-proof door 21.
[0031] In this embodiment, a buffer strip 20 is fixed on the inner wall of the cabinet 1 and on one side of the placement plate 6. When the explosion-proof door 21 is closed, the buffer strip 20 contacts the explosion-proof door 21 and plays a buffering role.
[0032] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, rubber strips 9 are fixedly connected at equal intervals on the sides of the two clamping plates 8 that are close to each other.
[0033] In this embodiment, rubber strips 9 are fixed at equal intervals on the sides of the two clamping plates 8 that are close to each other. When the clamping plates 8 clamp the cloud computing device, the rubber strips 9 come into contact with the surface of the device.
[0034] Working principle:
[0035] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, the cabinet 1 has equidistant placement plates 6 inside for placing cloud computing devices. Sliding rods 3 are installed in the sliding grooves 2 on both sides of the inner wall of the cabinet 1. The sliders 4 on the sliding rods 3 are connected to the clamping plates 8 via connecting rods 7. When it is necessary to fix the device, the device is placed on the placement plate 6, and the sliders 4 slide on the sliding rods 3, causing the connecting rods 7 and clamping plates 8 to move and clamp the device. A cooling fan 11 is installed in the empty slot 10 inside the cabinet 1. External air is introduced through the air inlet 13 on the outside of the cabinet 1. The air enters the empty slot 10 through the air inlet 13, and the cooling fan 11 blows the air towards the device. The heat generated by the device is transferred to the empty slot 10 through the heat dissipation holes 12 on the inner wall of the cabinet 1, and finally discharged through the air outlets 14 on both sides of the cabinet 1. A connecting pipe 17 and a discharge pipe 18 are installed in the storage box 15 at the top of the cabinet 1. The connecting pipe 17 is connected to the fire extinguishing dry powder canister 16. When a fire occurs, the dry powder in the fire extinguishing dry powder tank 16 enters the empty slot 10 inside the cabinet 1 through the connecting pipe 17 and the discharge pipe 18. The dry powder diffuses in the empty slot 10 and plays a role in extinguishing the fire.
[0036] An explosion-proof door 21 is provided on one side of the cabinet 1. A smoke detector 22 is installed on the explosion-proof door 21. When a fire occurs inside the cabinet 1 and smoke is generated, the smoke detector 22 detects the smoke and issues an alarm signal. At the same time, the solenoid valve 19 on the outside of the exhaust pipe 18 can be controlled as needed to release fire extinguishing dry powder. A buffer strip 20 is fixed on the inner wall of the cabinet 1 and on one side of the placement plate 6. When the explosion-proof door 21 is closed, the buffer strip 20 contacts the explosion-proof door 21 and plays a buffering role. Rubber strips 9 are fixed at equal intervals on the sides of the two clamping plates 8 that are close to each other. When the clamping plates 8 clamp the cloud computing equipment, the rubber strips 9 contact the surface of the equipment.
[0037] Finally, it should be noted that the above-described embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. A cloud computing server rack device, comprising a rack body (1), characterized in that: The cabinet (1) has a fixedly connected placement plate (6) at equal intervals inside. The inner walls of the cabinet (1) are provided with sliding grooves (2) on both sides above the placement plate (6). The sliding grooves (2) are fixedly connected with sliding rods (3). The outer sides of the sliding rods (3) are slidably connected with two sliders (4). The sliders (4) are rotatably connected with connecting rods (7) on one side. Clamping plates (8) are rotatably connected between the two connecting rods (7). The cabinet (1) has a slot (10) inside on one side of the placement plate (6). Cooling fans (11) are installed at equal intervals inside the empty slot (10). Air inlets (13) are opened at equal intervals on the outer side of the cabinet (1). All air inlets (13) are connected to the inside of the empty slot (10). All heat dissipation holes (12) are opened at equal intervals on the inner wall of the cabinet (1) and above the placement plate (6). All heat dissipation holes (12) are connected to the inside of the empty slot (10). All air outlets (14) are opened on both sides of the cabinet (1) and above the placement plate (6). All air outlets (14) are connected to the inside of the cabinet (1).
2. The cloud computing rack device according to claim 1, characterized in that: A storage box (15) is fixedly connected to the top of the cabinet (1). A connecting pipe (17) is fixedly connected inside the storage box (15). A discharge pipe (18) is fixedly connected at equal intervals to the bottom of the connecting pipe (17). The bottom of the discharge pipe (18) extends into the interior of the empty slot (10). Fire extinguishing dry powder canisters (16) are provided at equal intervals inside the storage box (15) and on one side of the connecting pipe (17). The output end of the fire extinguishing dry powder canisters (16) is connected to the connecting pipe (17).
3. A cloud computing rack device according to claim 2, characterized in that: An explosion-proof door (21) is provided on one side of the cabinet (1). Smoke detectors (22) are installed at equal intervals on the side of the explosion-proof door (21) close to the cabinet (1). Solenoid valves (19) are provided on the outside of the exhaust pipe (18).
4. A cloud computing rack device according to claim 1, characterized in that: A buffer strip (20) is fixedly connected to the inner wall of the cabinet (1) and to one side of the placement plate (6), and the buffer strip (20) is in contact with the explosion-proof door (21).
5. A cloud computing rack device according to claim 1, characterized in that: Rubber strips (9) are fixedly connected at equal intervals to the sides of the two clamping plates (8) that are close to each other.