Communication machine room with modularized energy-saving air conditioner

Through a modular energy-saving air conditioning system and intelligent thermostat, combined with the ventilation network port, side heat dissipation plate and air control mechanism, the heat dissipation problem during high temperature of the cabinet is solved, and the rapid cooling of the cabinet body and flexible control of the overall cooling of the computer room is realized.

CN120302608AInactive Publication Date: 2025-07-11CHENGDU ZHONGDA JIACHUANG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510474824.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional machine room air conditioners cannot effectively and quickly dissipate heat when the cabinet is high in temperature, resulting in unsatisfactory heat dissipation effect of the cabinet.

Method used

The modular energy-saving air conditioning system is adopted, combined with an intelligent thermostat and a wind control mechanism. By setting ventilation network ports and side heat dissipation plates on the top and sides of the cabinet body, the air flow is controlled using the Bernoulli principle, and the air flow rate and direction of the air conditioning are adjusted by combining the V-shaped movable plate and telescopic part to achieve accurate and rapid cooling of the cabinet body.

Benefits of technology

It improves the cooling effect of the cabinet body in high temperature state, realizes rapid cooling protection for the cabinet body, and enhances the flexibility and accuracy of the overall cooling of the computer room.

✦ Generated by Eureka AI based on patent content.

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Abstract

The communication machine room with the modularized energy-saving air conditioner is applied to the technical field of energy-saving communication machine rooms and comprises a plurality of machine cabinet bodies, a plurality of heat exchange assemblies, an air control mechanism and an intelligent temperature controller, the heat exchange assemblies are installed in the machine cabinet bodies respectively, and side through openings are formed in the two sides of a heat exchange chamber respectively; the side heat dissipation plates on the cabinet body are arranged towards the side through holes in the corresponding heat exchange assemblies; the air control mechanism comprises a plurality of V-shaped movable plates vertically arranged at the air outlet of the heat exchange chamber, a regulation and control shaft mounted in the middle of the V-shaped movable plates, and a telescopic piece I mounted in the heat exchange chamber; the intelligent temperature controller is provided with a temperature monitoring module, a cooling regulation and control module and an early warning module, by adopting the above structure, the heat generated by the cabinet body is detected and compared with the temperature in the machine room in real time, the cooling mode of the heat exchange assembly is flexibly controlled, the overall cooling of the machine room is adjusted to the accurate and rapid cooling of the cabinet body, and the cooling efficiency of the machine room is improved. And the cabinet body is well protected.
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Description

Technical Field

[0001] The present invention relates to a communication machine room, in particular to a communication machine room with a modular energy-saving air conditioner in the technical field of energy-saving communication machine rooms. Background Art

[0002] With the advent of the big data era, there are more and more data centers, and the demand for computer room air conditioners is increasing. Many old computer rooms also urgently need to be upgraded and renovated. However, the space in the computer room is limited, and traditional computer room air conditioners are large in size, troublesome to carry and install, and cannot meet the requirements of computer room renovation. Nowadays, the utilization rate of the space in the computer room is also getting higher and higher, requiring the computer room air conditioner to be as small as possible in size, small in floor area, and have good heat dissipation effect.

[0003] The invention patent with the publication number of CN104566661B discloses a modular computer room air conditioner, which includes at least one set of high-efficiency heat exchange modules, as well as an independent external compressor module and a rotary electrical box. The high-efficiency heat exchange module includes a frame and an evaporator arranged in a "V" shape at the upper part of the frame. An air inlet channel space and an air outlet channel space are respectively arranged above and below the evaporator to form an air flow channel, and the air flow flows through the evaporator from top to bottom after heat exchange under the action of a fan; the evaporators are collected through a collecting pipe, and the collecting pipe is arranged outside the air flow channel to ensure that the air flow cross-sectional areas before and after passing through the evaporator are the same. It can reduce the air flow resistance to the greatest extent and improve the refrigeration effect. At the same time, the equipment is modularized, which is convenient for the fan to adjust the position according to needs, and is convenient for the expansion, disassembly and maintenance of the computer room air conditioner.

[0004] When implemented in the above manner, although it is convenient to install the air conditioner in the computer room and the installation scenario has less restrictions, when actually used in the communication computer room, an independent space needs to be reserved for installing the heat exchange component. The cold air generated by the heat exchange component cools the entire computer room to prevent the cabinet from operating in a high-temperature environment. However, the heat generated by the cabinet in the computer room is usually concentrated inside the cabinet. The traditional heat exchange component can achieve a good cooling effect for the interior of the computer room. When the cabinet emits high temperature, it cannot effectively control the cold air to quickly dissipate heat from the cabinet body, resulting in an unsatisfactory heat dissipation effect of the cabinet. Summary of the Invention

[0005] Aiming at the above-mentioned prior art, the technical problem to be solved by the present invention is that the heat generated by the cabinet in the computer room is usually concentrated inside the cabinet. The traditional heat exchange component can achieve a good cooling effect for the interior of the computer room. When the cabinet emits high temperature, it cannot effectively control the cold air to quickly dissipate heat from the cabinet body, resulting in an unsatisfactory heat dissipation effect of the cabinet.

[0006] To solve the above problems, the present invention provides a communication machine room with a modular energy-saving air conditioner, including:

[0007] Multiple cabinet bodies are evenly divided into multiple groups and installed in the computer room. A ventilation vent is provided at the top of the heat-generating end of the cabinet body. A side heat dissipation plate is provided on the side of the heat-generating end of the cabinet body. Heat exchange through grooves are formed on the side heat dissipation plate. An internal temperature sensor is installed inside the cabinet body;

[0008] Multiple heat exchange components are installed in each group of cabinet bodies, and cabinet bodies are provided on both sides of the heat exchange components. A heat exchange chamber is provided at the refrigerating end of the heat exchange component. An air outlet is provided at the front end of the heat exchange chamber. A flow sensor is installed at the air outlet. Side openings are formed on both sides of the heat exchange chamber, and the side heat dissipation plates on the cabinet bodies are arranged towards the side openings on the corresponding heat exchange components;

[0009] An air control mechanism includes multiple V-shaped movable plates vertically arranged at the air outlet of the heat exchange chamber, a regulation shaft installed in the middle of the V-shaped movable plates, and a first telescopic member installed inside the heat exchange chamber. Horizontal grooves matching the regulation shaft are formed on the inner walls of the upper and lower ends of the heat exchange chamber. Longitudinal grooves are longitudinally formed at the front ends of the horizontal grooves. Both sides of each V-shaped movable plate slide along the longitudinal grooves through sliders. A connection frame is installed at the output end of the first telescopic member. The first telescopic member is used to drive the connection frame to move along the horizontal groove. Each regulation shaft is rotatably connected to the connection frame;

[0010] An intelligent temperature controller is installed in the computer room. A temperature monitoring module, a cooling regulation module, and an early warning module are provided on the intelligent temperature controller. The input end of the temperature detection module is respectively connected to the internal temperature sensor and the external temperature sensor in a signal manner. The output end of the temperature detection module is respectively connected to the temperature regulation module and the early warning module in a signal manner. The input end of the temperature regulation module is connected to the flow sensor in a signal manner. The output end of the temperature regulation module is connected to the first telescopic member in a signal manner.

[0011] In the above communication computer room with a modular energy-saving air conditioner, the amount of heat generated by the cabinet body is detected and compared with the temperature in the computer room in real time, and the cooling mode of the heat exchange component is flexibly controlled, so as to adjust the overall cooling of the computer room to accurately and quickly cool the cabinet body, which plays a better protective role for the cabinet body.

[0012] As a further improvement of the present application, the opening of the V-shaped movable plate is arranged towards the air outlet of the heat exchange chamber, and the upper and lower ends of the connection frame slide along the corresponding horizontal grooves.

[0013] As a further improvement of the present application, the side openings are vertically arranged. Multiple side heat dissipation plates are provided on the side heat dissipation plate of each cabinet body, and the multiple side heat dissipation plates are vertically arranged.

[0014] As a further improvement of the present application, a second telescopic member is installed inside each cabinet body through a mounting plate. The output end of the second telescopic member is connected to the side heat dissipation plate. The second telescopic member is used to drive the side heat dissipation plate to move, and a distance sensor corresponding to the side heat dissipation plate is installed in the heat exchange chamber.

[0015] As another improvement of the present application, a strong cooling module is also provided on the intelligent temperature controller. The input end of the strong cooling module is respectively signal-connected to the temperature control module and the distance sensor, and the output end of the strong cooling module is signal-connected to the second telescopic member.

[0016] As a supplement to another improvement of the present application, each side heat dissipation plate is horizontally slidably connected to the cabinet body through a plug rod, and a plurality of vertical heat exchange through grooves are formed on each side heat dissipation plate.

[0017] As a supplement to another improvement of the present application, a dust removal brush moving along the upper surface is provided at the top of each ventilation opening. A screw rod is provided on one side of the dust removal brush. The screw rod is threadedly connected to the dust removal brush. A driving member is installed at the end of the screw rod. The driving member is used to drive the screw rod to rotate, and the output end of the strong cooling module is signal-connected to the dust removal brush.

[0018] As another improvement of the present application, a storage groove is provided at one end of the ventilation opening. The opening of the storage groove faces the dust removal brush, and the storage groove is detachably connected to the top of the cabinet body.

[0019] In summary, by installing the heat exchange component in the cabinet body group, the cabinet body can be effectively cooled. Utilizing Bernoulli's principle, when the cold air generated by the heat exchange component cools the computer room, the heat in the cabinet body is synchronously taken away. The cold air with a lower temperature in the computer room will enter the cabinet body through the ventilation opening, synchronously cooling the cabinet body. By setting an intelligent temperature controller, when the internal temperature of the cabinet body is too high and exceeds the preset value, the V-shaped movable plate can be controlled to fully unfold, blocking the air outlet of the heat exchange chamber. At this time, the cold air in the heat exchange chamber will flow towards the heat exchange through grooves on both sides through the side ports, enter the cabinet body, and be discharged through the ventilation opening, enabling the cold air generated by the heat exchange chamber to directly enter the cabinet body, quickly reducing the high temperature inside the cabinet body, improving the cooling effect on the cabinet body in a high-temperature state, having a good protective effect on the cabinet body, thereby detecting the amount of heat generated by the cabinet body and comparing it with the temperature in the computer room in real time, flexibly controlling the cooling mode of the heat exchange component, adjusting from cooling the entire computer room to precisely and quickly cooling the cabinet body, and having a good protective effect on the cabinet body. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 Schematic diagram of the installation of the cabinet body and the heat exchange component inside the computer room in the first and second embodiments of the present application;

[0021] Figure 2 Schematic diagram of the positions of the cabinet body and the heat exchange component in the first and second embodiments of the present application;

[0022] Figure 3 Schematic diagram of the internal structure of the heat exchange chamber in the first and second embodiments of the present application;

[0023] Figure 4 Schematic diagram of the control principle of the intelligent temperature controller in the first embodiment of the present application;

[0024] Figure 5 Schematic diagram of the positions of the horizontal groove and the vertical groove in the first and second embodiments of the present application;

[0025] Figure 6 Schematic diagram when the V-shaped movable plate is folded in the first and second embodiments of the present application;

[0026] Figure 7 Schematic diagram after the V-shaped movable plate is unfolded in the heat exchange chamber in the first and second embodiments of the present application;

[0027] Figure 8 Schematic diagram after the V-shaped movable plate is unfolded in the first and second embodiments of the present application;

[0028] Figure 9 Schematic diagram when the side heat dissipation plate moves in the first and second embodiments of the present application;

[0029] Figure 10 Schematic diagram of the positions of the side heat dissipation plate and the telescopic member two in the first and second embodiments of the present application;

[0030] Figure 11 Schematic diagram of the positions of the ventilation net opening and the dust removal brush in the first and second embodiments of the present application;

[0031] Figure 12 Schematic diagram of the control principle of the intelligent temperature controller in the second embodiment of the present application.

[0032] Description of the reference numerals in the figure:

[0033] 1. Cabinet body; 2. Heat exchange component; 3. Intelligent temperature controller; 4. Flow sensor; 5. Ventilation net opening; 6. Side heat dissipation plate; 7. Heat exchange through groove; 8. Heat exchange chamber; 9. Side through port; 10. V-shaped movable plate; 11. Regulation shaft; 12. Horizontal groove; 13. Vertical groove; 14. Connection frame; 15. Telescopic member one; 16. Telescopic member two; 17. Mounting plate; 18. Inner temperature sensor; 19. Dust removal brush; 20. Storage groove; 21. Screw; 22. Driving member; 23. Outer temperature sensor; 24. Distance sensor. Detailed implementation manners

[0034] The following will make a detailed description of two implementation manners of the present application in conjunction with the accompanying drawings.

[0035] The first implementation manner:

[0036] Figures 1 - 10 A communication computer room with a modular energy-saving air conditioner is shown, which includes a plurality of cabinet bodies 1, a plurality of heat exchange components 2, an air control mechanism, and an intelligent temperature controller 3. The cabinet bodies 1 are evenly divided into multiple groups and installed in the computer room. The multiple cabinet bodies 1 are arranged in multiple groups in the computer room, effectively utilizing the space of the computer room and improving the heat dissipation effect. A ventilation net opening 5 is provided at the top of the heat-generating end of the cabinet body 1, and a side heat dissipation plate 6 is provided on the side of the heat-generating end of the cabinet body 1. The heat generated by the cabinet body 1 can be discharged from the side heat dissipation plate 6 or the ventilation net opening 5. The heat generated by the cabinet body 1 is circulated and discharged through the ventilation net opening 5 and the side heat dissipation plate 6. A heat exchange through groove 7 is provided on the side heat dissipation plate 6. An internal temperature sensor 18 is installed inside the cabinet body 1 for detecting the heat of the cabinet body 1.

[0037] In addition, please refer to Figure 2 and Figure 3 , the heat exchange component 2 is installed in each group of cabinet bodies 1, and cabinet bodies 1 are provided on both sides of the heat exchange component 2, which can effectively dissipate heat and cool down the cabinet bodies 1. The heat exchange component 2 is a common component of an air conditioner in the prior art and is used in cooperation with an independent external compressor module. The heat exchange component 2 generates cold air and cools the indoor space. This is well-known prior art to those skilled in the art and is not within the protection scope of the present application. The specific structure and working principle thereof will not be elaborated herein. A heat exchange chamber 8 is provided at the refrigerating end of the heat exchange component 2, and an air outlet is provided at the front end of the heat exchange chamber 8. The cold air discharged from the refrigerating end of the heat exchange component 2 enters the heat exchange chamber 8 and is discharged into the computer room through the air outlet on the heat exchange chamber 8 to cool the inside of the computer room. A flow sensor 4 is installed at the air outlet. Side openings 9 are provided on both sides of the heat exchange chamber 8, and the side heat dissipation plate 6 on the cabinet body 1 faces the side opening 9 on the corresponding heat exchange component 2. When the cold air passes through the inside of the heat exchange chamber 8 and is discharged from the air outlet, using Bernoulli's principle, the air flow on the side of the side opening 9 will move in the direction of the cold air flow, thereby discharging the hot air inside the cabinet body 1 into the side opening 9 through the heat exchange through groove 7 and discharging it along with the cold air. The cold air with a lower temperature in the computer room will enter the cabinet body 1 through the ventilation net opening 5 to dissipate heat from the cabinet body 1, so that when the heat exchange component 2 cools the overall computer room, the heat inside the cabinet body 1 is simultaneously extracted, and the air in the computer room enters the cabinet body 1, improving the cooling effect on the cabinet body 1.

[0038] It is worth mentioning that, please refer to Figure 3 and Figures 5 - 8, the air control mechanism includes multiple V-shaped movable plates 10 vertically arranged at the air outlet of the heat exchange chamber 8, a regulation shaft 11 installed in the middle of the V-shaped movable plates 10, and a first telescopic member 15 installed in the heat exchange chamber 8. The cold air flow rate at the heat exchange chamber 8 can be adjusted by adjusting the unfolded area of the V-shaped movable plates 10. When the cold air flow rate at the heat exchange chamber 8 is relatively fast, using Bernoulli's principle, the cooling rate inside the computer room can be increased synchronously, and at the same time, the hot air of the cabinet body 1 can quickly flow through the heat exchange through slots 7 to the side ports 9, increasing the cooling effect on the cabinet body 1. Transverse slots 12 matching the regulation shaft 11 are provided on the inner walls at the upper and lower ends of the heat exchange chamber 8. Longitudinal slots 13 are longitudinally provided at the front ends of the transverse slots 12. Both sides of each V-shaped movable plate 10 slide along the longitudinal slots 13 through sliders. The output end of the first telescopic member 15 is installed with a connection frame 14. The first telescopic member 15 is used to drive the connection frame 14 to move along the transverse slots 12. The first telescopic member 15 is preferably a telescopic motor or a pneumatic cylinder. Each regulation shaft 11 is rotatably connected to the connection frame 14. When it is necessary to increase the unfolded area of the V-shaped movable plates 10, by controlling the first telescopic member 15 to extend, the connection frame 14 and the regulation shaft 11 are pushed to move along the transverse slots 12. At this time, both sides of the V-shaped movable plates 10 corresponding to the regulation shaft 11 will move along the longitudinal slots 13, thereby gradually unfolding the V-shaped movable plates 10, as Figure 7 and Figure 8 shown. On the contrary, by controlling the first telescopic member 15 to shorten, the V-shaped movable plates 10 can be controlled to gradually fold, reducing the unfolded area of the V-shaped movable plates 10;

[0039] Through the above design, when the internal temperature of the cabinet body 1 is too high and exceeds the preset value, the V-shaped movable plates 10 can be controlled to be fully unfolded at this time. The air outlet of the heat exchange chamber 8 is blocked. At this time, the cold air in the heat exchange chamber 8 will flow towards the heat exchange through slots 7 on both sides through the side ports 9, and enter the cabinet body 1, and be discharged through the ventilation mesh openings 5, so that the cold air generated by the heat exchange chamber 8 directly enters the cabinet body 1, quickly reducing the high temperature inside the cabinet body 1, improving the cooling effect on the cabinet body 1 in a high-temperature state, and having a good protective effect on the cabinet body 1.

[0040] In addition, the intelligent temperature controller 3 is installed in the computer room. The intelligent temperature controller 3 is provided with a temperature monitoring module, a cooling regulation module and a warning module. The input ends of the temperature detection module are respectively signal-connected to the internal temperature sensor 18 and the external temperature sensor 23. The output end of the temperature detection module is respectively signal-connected to the temperature regulation module and the warning module. The input end of the temperature regulation module is signal-connected to the flow sensor 4. The output end of the temperature regulation module is signal-connected to the first telescopic member 15. When the cold air generated by the heat exchange assembly 2 is used to cool the interior of the computer room, the cold air is discharged from the air outlet of the heat exchange chamber 8. During this process, the external temperature sensor 23 sends the detected temperature data inside the computer room to the temperature detection module. The internal temperature sensor 18 sends the temperature data inside the cabinet body 1 to the temperature detection module. The temperature detection module judges the temperature difference between the temperature inside the computer room and the temperature inside the cabinet body 1 based on the received temperature data. When the temperature difference between the two is within the preset range (the normal range of the temperature difference between the two is preset in the temperature detection module), the temperature detection module judges that the temperature environment inside the computer room can normally cool the heat generated by the cabinet body 1; when the temperature difference between the two exceeds the preset range, the temperature detection module judges that the temperature environment inside the computer room cannot effectively cool the heat generated by the cabinet body 1 and needs to improve the cooling effect. At this time, the temperature detection module sends a warning signal of high temperature warning to the warning module to remind the staff. At the same time, the temperature detection module sends a quick cooling signal to the temperature regulation module. At this time, the temperature regulation module controls the first telescopic member 15 to work. The first telescopic member 15 synchronously controls the V-shaped movable plate 10 to fully expand, so that the cold air generated by the heat exchange chamber 8 directly enters the cabinet body 1 to quickly cool the high temperature inside the cabinet body 1. The flow sensor 4 sends the detected air flow data to the temperature regulation module in real time. The temperature regulation module can detect the direction of the air flow and judge whether most of the cold air flows into the cabinet body 1; when the temperature detection module judges that the temperature difference has returned to the preset range, it sends a temperature normal signal to the temperature regulation module. The temperature regulation module controls the first telescopic member 15 to reset, so as to detect the amount of heat generated by the cabinet body 1 and compare it with the temperature inside the computer room in real time, and flexibly control the cooling mode of the heat exchange assembly 2, adjusting from cooling the whole computer room to precisely and quickly cooling the cabinet body 1, which plays a good role in protecting the cabinet body 1.

[0041] Preferably, the opening of the V-shaped movable plate 10 faces the air outlet of the heat exchange chamber 8. When the computer room is cooled normally, the influence of the V-shaped movable plate 10 on the cold air flow can be reduced, and the cold air effect on the computer room can be improved. The upper and lower ends of the connecting frame 14 are slidably arranged along the corresponding transverse grooves 12 respectively, which is convenient to control the stable movement of the connecting frame 14, so as to synchronously control the displacement of multiple regulating shafts 11. The side through ports 9 are arranged vertically. There are multiple upper side heat dissipation plates 6 on each cabinet body 1, and the multiple side heat dissipation plates 6 are arranged vertically, so that the gas can flow smoothly between the heat exchange through grooves 7 on the side heat dissipation plates 6 and the side through ports 9, and the cooling effect on the cabinet body 1 is improved.

[0042] The second implementation mode:

[0043] Figures 9 - 12 A shown communication computer room with a modular energy-saving air conditioner is different from the first implementation mode in that a second telescopic member 16 is installed inside each cabinet body 1 through a mounting plate 17. The output end of the second telescopic member 16 is connected to the side heat dissipation plate 6. The second telescopic member 16 is used to drive the side heat dissipation plate 6 to move. The second telescopic member 16 is preferably a telescopic motor or a pneumatic cylinder. When the cold air flows into the interior of the cabinet body 1 through the heat exchange through grooves 7 on the side heat dissipation plate 6, in order to improve the inlet efficiency of the cold air, the second telescopic member 16 can be controlled to work to push the side heat dissipation plate 6 towards the side through port 9. As Figure 9 shown, there are more gaps between the outer ring of the side heat dissipation plate 6 and the cabinet body 1, so as to improve the inlet efficiency of the cold air and the heat dissipation effect on the cabinet body 1. A distance sensor 24 corresponding to the side heat dissipation plate 6 is installed in the heat exchange chamber 8. The distance sensor 24 is used to detect the moving position of the side heat dissipation plate 6, so as to judge the size of the gap between the outer ring of the side heat dissipation plate 6.

[0044] It is worth mentioning that a strong cooling module is also arranged on the intelligent temperature controller 3. The input end of the strong cooling module is respectively connected to the temperature regulation module and the distance sensor 24 in signal. The output end of the strong cooling module is connected to the second telescopic member 16 in signal. When the temperature detection module sends a rapid cooling signal to the temperature regulation module, the temperature detection module will judge whether the temperature in the cabinet body 1 exceeds the temperature threshold according to the temperature data fed back by the internal temperature sensor 18. When it is judged that the temperature exceeds the temperature threshold, it is judged that the temperature in the cabinet body 1 is too high. At this time, the temperature regulation module sends a strong cooling signal to the strong cooling module, and the strong cooling module will control the second telescopic member 16 to work to push the side heat dissipation plate 6 to move, increasing the gap between the outer ring of the side heat dissipation plate 6. At the same time, the strong cooling module judges the position of the side heat dissipation plate 6 according to the distance data fed back by the distance sensor 24, and controls the side heat dissipation plate 6 to move to a preset position, improving the inlet efficiency of the cold air and performing rapid cooling treatment on the cabinet body 1.

[0045] Preferably, each side heat dissipation plate 6 is horizontally slidably connected to the cabinet body 1 through a plug rod. A plurality of vertical heat exchange through grooves 7 are formed in each side heat dissipation plate 6, which can stably control the movement of the side heat dissipation plate 6 and enable the side heat dissipation plate 6 to be stably butted against the shell of the cabinet body 1.

[0046] In this embodiment, a dust removal brush 19 moving along the upper surface is provided at the top of each ventilation opening 5. A screw rod 21 is provided on one side of the dust removal brush 19. The screw rod 21 is threadedly connected to the dust removal brush 19. A driving member 22 is installed at the end of the screw rod 21. The driving member 22 is used to drive the screw rod 21 to rotate. The driving member 22 is preferably a motor or a pneumatic motor. The output end of the strong cooling module is signal-connected to the dust removal brush 19. When the cold air generated by the heat exchange assembly 2 cools the computer room normally, the air in the computer room will enter the cabinet body 1 through the ventilation opening 5, and more dust will accumulate outside the ventilation opening 5. While purifying the air inside the computer room synchronously, in order to prevent the reverse blowing air flow from blowing the dust accumulated on the ventilation opening 5 into the computer room, when the temperature detection module sends a rapid cooling signal to the temperature control module, the temperature control module will send a dust collection signal to the strong cooling module. The strong cooling module will control the driving member 22 to work. The driving member 22 drives the screw rod 21 to rotate, thereby driving the dust removal brush 19 to move to collect the dust outside the ventilation opening 5 to one side. A storage groove 20 is provided at one end of the ventilation opening 5. The opening of the storage groove 20 faces the dust removal brush 19. The storage groove 20 is detachably connected to the top of the cabinet body 1. The dust removal brush 19 pushes the dust towards the storage groove 20 and is collected by the storage groove 20. The storage groove 20 can be removed and cleaned regularly to avoid dust pollution inside the computer room. Thus, while rapidly cooling the cabinet body 1, the problem of dust diffusion collected on the ventilation opening 5 is solved synchronously.

[0047] Combined with the current actual requirements, the above-mentioned implementation manner adopted by this application, the protection scope is not limited to this. Within the knowledge scope of those skilled in the art, various changes made without departing from the concept of this application still fall within the protection scope of the present invention.

Claims

1. A communication machine room with a modular energy-saving air conditioner, characterized in that Including: A plurality of cabinet bodies (1), which are evenly divided into multiple groups and installed in the computer room. At the top of the heat-generating end of the cabinet body (1), there is a ventilation opening (5). On the side of the heat-generating end of the cabinet body (1), there is a side heat dissipation plate (6). The side heat dissipation plate (6) is provided with a heat exchange through groove (7). An internal temperature sensor (18) is installed inside the cabinet body (1). A plurality of heat exchange components (2), which are installed in each group of cabinet bodies (1). And on both sides of the heat exchange component (2), there are cabinet bodies (1). The refrigerating end of the heat exchange component (2) is provided with a heat exchange chamber (8). At the front end of the heat exchange chamber (8), there is an air outlet. A flow sensor (4) is installed at the air outlet. Side openings (9) are provided on both sides of the heat exchange chamber (8). And the side heat dissipation plate (6) on the cabinet body (1) is arranged towards the side opening (9) on the corresponding heat exchange component (2). An air control mechanism, which includes a plurality of V-shaped movable plates (10) vertically arranged at the air outlet of the heat exchange chamber (8), a regulation shaft (11) installed in the middle of the V-shaped movable plate (10), and a first telescopic member (15) installed in the heat exchange chamber (8). Transverse grooves (12) matching the regulation shaft (11) are provided on the inner walls at the upper and lower ends of the heat exchange chamber (8). A longitudinal groove (13) is longitudinally provided at the front end of the transverse groove (12). Both sides of each V-shaped movable plate (10) slide along the longitudinal groove (13) through sliders. The output end of the first telescopic member (15) is installed with a connecting frame (14). The first telescopic member (15) is used to drive the connecting frame (14) to move along the transverse groove (12). Each regulation shaft (11) is rotatably connected to the connecting frame (14). An intelligent temperature controller (3), which is installed in the computer room. The intelligent temperature controller (3) is provided with a temperature monitoring module, a cooling regulation module, and an early warning module. The input end of the temperature detection module is respectively signal-connected to the internal temperature sensor (18) and the external temperature sensor (23). The output end of the temperature detection module is respectively signal-connected to the temperature regulation module and the early warning module. The input end of the temperature regulation module is signal-connected to the flow sensor (4). The output end of the temperature regulation module is signal-connected to the first telescopic member (15).

2. The communication computer room with a modular energy-saving air conditioner according to claim 1, characterized in that: The opening of the V-shaped movable plate (10) is arranged towards the air outlet of the heat exchange chamber (8). The upper and lower ends of the connecting frame (14) are slidably arranged along the corresponding transverse grooves (12).

3. A communication machine room with a modular energy-saving air conditioner according to claim 1, characterized in that: The side opening (9) is vertically arranged. There are multiple side heat dissipation plates (6) on each cabinet body (1), and the multiple side heat dissipation plates (6) are vertically arranged.

4. A communication machine room with a modular energy-saving air conditioner according to claim 1, characterized in that: Inside each cabinet body (1), a second telescopic member (16) is installed through a mounting plate (17). The output end of the second telescopic member (16) is connected to the side heat dissipation plate (6). The second telescopic member (16) is used to drive the side heat dissipation plate (6) to move. A distance sensor (24) corresponding to the side heat dissipation plate (6) is installed in the heat exchange chamber (8).

5. A communication computer room with a modular energy-saving air conditioner according to claim 4, characterized in that: A strong cooling module is also provided on the intelligent temperature controller (3). The input end of the strong cooling module is respectively signal-connected to the temperature control module and the distance sensor (24), and the output end of the strong cooling module is signal-connected to the second telescopic member (16).

6. The communication machine room with a modular energy-saving air conditioner according to claim 4, characterized in that: Each of the side heat dissipation plates (6) is horizontally slidably connected to the cabinet body (1) through a plug rod, and a plurality of vertical heat exchange through grooves (7) are formed on each of the side heat dissipation plates (6).

7. A communication machine room with a modular energy-saving air conditioner according to claim 5, characterized in that: A dust removal brush (19) moving along the upper surface is provided at the top of each ventilation mesh opening (5). A screw rod (21) is provided on one side of the dust removal brush (19). The screw rod (21) is threadedly connected to the dust removal brush (19). A driving member (22) is installed at the end of the screw rod (21). The driving member (22) is used to drive the screw rod (21) to rotate, and the output end of the strong cooling module is signal-connected to the dust removal brush (19).

8. A communication machine room with a modular energy-saving air conditioner according to claim 7, characterized in that: A storage groove (20) is provided at one end of the ventilation mesh opening (5). The opening of the storage groove (20) faces the dust removal brush (19), and the storage groove (20) is detachably connected to the top of the cabinet body (1).

Citation Information

Patent Citations

  • A modular computer room air conditioner

    CN104566661B