A data center machine room
Patent Information
- Application Number
- CN202521385944.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-07-03
AI Technical Summary
[0005]本实用新型的目的在于提供一种数据中心机房,解决了数据中心局部过热的问题
[0011]本实用新型的一种数据中心机房包括服务器机柜和安装组件,所述安装组件包括服务器本体、送风通道、背板空调、门体和辅助构件,所述门体具有通风口,所述安装组件还包括防尘网,所述辅助构件包括温度传感器和湿度传感器,所述辅助构件还包括显示屏,所述服务器本体与所述服务器机柜固定连接,并位于所述服务器机柜内部,所述送风通道与所述服务器机柜连通,并位于所述服务器机柜的一侧,所述背板空调与所述送风通道固定连接,并位于所述送风通道的一侧,所述门体与所述服务器机柜转动连接,并位于所述服务器机柜的一侧,所述辅助构件与所述送风通道连接,在使用所述服务器本体时,所述服务器本体会产生热量,使用所述服务器本体的同时,启动所述背板空调和所述辅助构件,通过所述辅助构件对所述服务器本体温度进行检测,并通过所述辅助构件对所述服务器柜体内部湿度进行检测,所述辅助构件并对检测的温度数据和湿度数据进行显示,便于工作人员进行查看,外部空气通过所述背板空调降温后形成冷空气,并将冷空气吹入进所述送风通道,所述送风通道将冷空气导入进所述服务器机柜内部,所述服务器机柜内部的空气在通过所述通风口排出,所述送风通道使所述背板空调吹出风的冷空气精准吹在所述服务器本体上,对所述服务器本体进行一对一精准降温,使得所述服务器机柜内的每一个所述服务器本体都能最大化进行热交换,更有效的进行散热降温,从而使数据中心制冷效率得到更好的提高,而且能更有效的解决数据中心局部过热的问题。
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Figure CN224818401U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of digital information technology, and in particular to a data center computer room. Background Technology
[0002] Data centers are the core computing infrastructure supporting the digital economy. By centrally deploying servers, storage devices, and network systems, they carry out the data transmission, computing, and storage functions of the Internet infrastructure, and are gradually becoming one of the key infrastructures of modern society.
[0003] Traditional data center air conditioning systems generate cold air that can create opposing currents within enclosed aisles, easily forming cyclones and disrupting airflow. Furthermore, the further away a server rack is from the air conditioner, the longer and more turbulent the airflow becomes, resulting in less even contact with the heat source, especially at the top of the furthest racks. This makes them more prone to creating localized hotspots.
[0004] Traditional data centers are prone to localized hotspots in server racks, leading to abnormal temperature rise. Excessive localized temperatures can cause malfunctions, shorten lifespan, and consequently degrade network equipment performance, impacting data center efficiency. Summary of the Invention
[0005] The purpose of this invention is to provide a data center server room that solves the problem of localized overheating in data centers.
[0006] To achieve the above objectives, this utility model provides a data center computer room including server racks and installation components. The installation components include a server body, an air supply duct, a back panel air conditioner, a door, and auxiliary components. The server body is fixedly connected to the server rack and located inside the server rack. The air supply duct communicates with the server rack and is located on one side of the server rack. The back panel air conditioner is fixedly connected to the air supply duct and is located on one side of the air supply duct. The door is rotatably connected to the server rack and is located on one side of the server rack. The auxiliary components are connected to the air supply duct.
[0007] The door has a ventilation opening that extends through the door.
[0008] The installation assembly also includes a dustproof net, which is fixedly connected to the door body and located on one side of the door body.
[0009] The auxiliary components include a temperature sensor and a humidity sensor. The temperature sensor is fixedly connected to the server rack and is located inside the server rack. The humidity sensor is fixedly connected to the server rack and is located inside the server rack.
[0010] The auxiliary component also includes a display screen, which is fixedly connected to the server rack and located on one side of the server rack.
[0011] This utility model discloses a data center server room comprising a server rack and mounting components. The mounting components include a server body, an air supply duct, a backplane air conditioner, a door, and auxiliary components. The door has ventilation openings. The mounting components also include a dust filter. The auxiliary components include a temperature sensor and a humidity sensor, and a display screen. The server body is fixedly connected to the server rack and located inside the server rack. The air supply duct communicates with the server rack and is located on one side of the server rack. The backplane air conditioner is fixedly connected to the air supply duct and is located on one side of the air supply duct. The door is rotatably connected to the server rack and is located on one side of the server rack. The auxiliary components are connected to the air supply duct. When the server body is in use, it generates heat. Simultaneously, the backplane air conditioner and the backplane air conditioner are activated. The auxiliary components detect the temperature and humidity inside the server rack, and display the detected temperature and humidity data for easy viewing by staff. External air is cooled by the back panel air conditioner, forming cold air, which is then blown into the air supply duct. The air supply duct guides the cold air into the server rack, where it is then exhausted through the ventilation vents. The air supply duct ensures that the cold air from the back panel air conditioner is precisely directed onto each server unit, providing one-to-one precise cooling. This maximizes heat exchange for each server unit within the rack, resulting in more effective heat dissipation and cooling, thus improving the data center's cooling efficiency and effectively addressing the problem of localized overheating in the data center. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the overall structure of the data center computer room according to the first embodiment of this utility model.
[0014] Figure 2 This is a schematic diagram of the connection between the server body and the server rack in the data center computer room according to the first embodiment of this utility model.
[0015] Figure 3This is a schematic diagram of the connection between the temperature sensor in the data center and the server rack in the first embodiment of this utility model.
[0016] In the diagram: 101-Server rack, 102-Server body, 103-Air supply duct, 104-Back panel air conditioner, 105-Door, 106-Ventilation opening, 107-Dustproof net, 108-Temperature sensor, 109-Humidity sensor, 110-Display screen. Detailed Implementation
[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0018] The first embodiment of this application is as follows: Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of the data center server room according to the first embodiment of this utility model. Figure 2 This is a schematic diagram of the connection between the server body and the server rack in a data center computer room according to the first embodiment of this utility model. Figure 3 This is a schematic diagram of the connection between a temperature sensor and a server rack in a data center room according to the first embodiment of this utility model. The data center room includes a server rack 101 and an installation assembly. The installation assembly includes a server body 102, an air supply duct 103, a back panel air conditioner 104, a door 105, and auxiliary components. The door 105 has a ventilation opening 106. The installation assembly also includes a dustproof net 107. The auxiliary components include a temperature sensor 108 and a humidity sensor 109. The auxiliary components also include a display screen 110. The aforementioned solution solves the problem of localized overheating in the data center.
[0019] In this specific embodiment, when the server body 102 is in use, the server body 102 generates heat. Simultaneously, the back panel air conditioner 104 and the auxiliary components are activated. The auxiliary components detect the temperature of the server body 102 and the humidity inside the server cabinet. The auxiliary components also display the detected temperature and humidity data for easy viewing by staff. External air is cooled by the back panel air conditioner 104, forming cold air, which is then blown into the air supply duct 103. The air supply duct 103 introduces cold air into the server rack 101. The air inside the server rack 101 is then exhausted through the ventilation vent 106. The air supply duct 103 ensures that the cold air blown out by the back panel air conditioner 104 is precisely directed onto the server body 102, providing one-to-one precise cooling to the server body 102. This allows each server body 102 within the server rack 101 to maximize heat exchange and more effectively dissipate heat and cool down, thereby improving the cooling efficiency of the data center and more effectively solving the problem of localized overheating in the data center.
[0020] First, the server body 102 is fixedly connected to the server rack 101 and located inside the server rack 101. The air supply duct 103 communicates with the server rack 101 and is located on one side of the server rack 101. The back panel air conditioner 104 is fixedly connected to the air supply duct 103 and is located on one side of the air supply duct 103. The door 105 is rotatably connected to the server rack 101 and is located on one side of the server rack 101. The auxiliary components are connected to the air supply duct 103. The server body 102 is located inside the server rack 101. The air supply duct 103 is located on one side of the server rack 101. The back panel air conditioner 104 is located on the side of the air supply duct 103 away from the server rack 101. The back panel air conditioner 104 has a dust filter, and the air entering the back panel air conditioner is filtered through the dust filter. The door 105 is located on the side of the server rack 101 away from the air supply duct 103. When the server body 102 is in use, the server body 102 will generate heat, causing... While the server body 102 is in use, the back panel air conditioner 104 and the auxiliary components are activated. The auxiliary components detect the temperature of the server body 102 and the humidity inside the server rack. The auxiliary components also display the detected temperature and humidity data for easy viewing by staff. After the outside air is cooled by the back panel air conditioner 104, it becomes cold air and is blown into the air supply channel 103. The air supply channel 103 guides the cold air into the server rack 101. The air inside the server rack 101 is then exhausted through the vents 106. The air supply channel 103 ensures that the cold air blown out by the back panel air conditioner 104 is precisely directed onto the server body 102, providing one-to-one precise cooling for each server body 102 in the server rack 101. This maximizes heat exchange for each server body 102 in the server rack 101, resulting in more effective heat dissipation and cooling, thereby improving the cooling efficiency of the data center and more effectively solving the problem of localized overheating in the data center.
[0021] The ventilation opening 106 penetrates the door 105. There are multiple ventilation openings 106, which are opened on the door 105. The air entering the server rack 101 is discharged through the ventilation opening 106.
[0022] Secondly, the dustproof net 107 is fixedly connected to the door 105 and is located on one side of the door 105. The dustproof net 107 is located on the side of the door 105 away from the server rack 101 and covers the ventilation opening 106. The dustproof net 107 prevents dust from entering the server rack 101 through the ventilation opening 106.
[0023] Then, the temperature sensor 108 is fixedly connected to the server rack 101 and located inside the server rack 101; the humidity sensor 109 is fixedly connected to the server rack 101 and located inside the server rack 101. The temperature sensor 108 detects the temperature of the server body 102, and the humidity sensor 109 detects the humidity inside the server rack 101.
[0024] Finally, the display screen 110 is fixedly connected to the server rack 101 and located on one side of the server rack 101. The display screen 110 displays the detected temperature and humidity on one side of the server rack 101 for easy viewing by staff.
[0025] When using the data center server room of this embodiment, the server body 102 generates heat during operation. Simultaneously, the back panel air conditioner 104, the temperature sensor 108, and the humidity sensor 109 are activated. The temperature sensor 108 detects the temperature of the server body 102, and the humidity sensor 109 detects the humidity inside the server cabinet. The display screen 110 displays the detected temperature and humidity data for easy viewing by staff. External air is cooled by the back panel air conditioner 104, forming cold air, which is then... The air is blown into the air supply channel 103, which guides the cold air into the server rack 101. The air inside the server rack 101 is then exhausted through the vent 106. The air supply channel 103 ensures that the cold air blown out by the back panel air conditioner 104 is precisely directed onto the server body 102, providing one-to-one precise cooling to the server body 102. This allows each server body 102 within the server rack 101 to maximize heat exchange and more effectively dissipate heat, thereby improving the cooling efficiency of the data center and more effectively solving the problem of localized overheating in the data center.
[0026] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art will understand that all or part of the processes for implementing the above embodiments and equivalent variations made in accordance with the claims of this application are still within the scope of this application.
Claims
1. A data center server room, comprising server racks, characterized in that: It also includes installation components; The installation components include a server body, an air supply duct, a back panel air conditioner, a door, and auxiliary components. The server body is fixedly connected to the server rack and located inside the server rack. The air supply duct communicates with the server rack and is located on one side of the server rack. The back panel air conditioner is fixedly connected to the air supply duct and is located on one side of the air supply duct. The door is rotatably connected to the server rack. The auxiliary components are connected to the air supply duct.
2. The data center server room as described in claim 1, characterized in that: The door has a ventilation opening that extends through the door.
3. The data center server room as described in claim 1, characterized in that: The installation assembly also includes a dustproof net, which is fixedly connected to the door body and located on one side of the door body.
4. The data center server room as described in claim 1, characterized in that: The auxiliary components include a temperature sensor and a humidity sensor. The temperature sensor is fixedly connected to the server rack and is located inside the server rack. The humidity sensor is fixedly connected to the server rack and is located inside the server rack.
5. The data center server room as described in claim 4, characterized in that: The auxiliary component also includes a display screen, which is fixedly connected to the server rack and located on one side of the server rack.