Server cabinet
By setting temperature detection components and drive components on the server cabinet door, the heat sink can be moved and the direction of the air outlet can be adjusted, which solves the problem of poor heat dissipation in the server cabinet, improves the heat dissipation effect in high-temperature areas and optimizes space utilization.
Patent Information
- Application Number
- CN202422839299.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-11-20
AI Technical Summary
The ventilation holes of existing server cabinets cannot flexibly and specifically dissipate heat in areas with higher temperatures, resulting in poor heat dissipation effects.
Multiple temperature detection components are set on the door of the server cabinet. Through the cooperation of the drive component and the heat sink, the movement of the heat sink and the adjustment of the air outlet direction are realized to dissipate heat in the high-temperature area in a targeted manner.
The heat dissipation effect of the high-temperature area in the server cabinet is improved, the installation space occupied in the cabinet is reduced, and the utilization rate of the cabinet is improved.
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Figure CN223488619U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of server rack technology, and more particularly to a server rack. Background Technology
[0002] A server rack is a cabinet used to install various electrical equipment, protect server equipment, maintain network security, and provide physical access control to server equipment.
[0003] Server equipment generates a significant amount of heat during operation, thus requiring an effective cooling system to maintain the server's operating temperature within a safe range. For example, server racks typically have ventilation openings on the sides or back to allow airflow within the rack, promoting heat dissipation and ensuring the server functions properly.
[0004] However, the vents cannot effectively target and dissipate heat to areas with high temperatures inside the server rack, resulting in poor heat dissipation. Utility Model Content
[0005] This application provides a server rack that can flexibly and specifically dissipate heat in areas with high temperatures within the server rack, thereby improving heat dissipation efficiency.
[0006] This application provides a server cabinet, including a cabinet body and a door, wherein the door is hinged to one side wall of the cabinet body, and ventilation openings are provided on the side walls of the cabinet body adjacent to or opposite to the door; it also includes:
[0007] At least two detection elements are connected to the door, and the detection elements are evenly distributed along the height of the door. The detection elements are used to detect the temperature inside the cabinet.
[0008] The drive assembly includes a first drive component, a second drive component, and a connector. The first drive component is connected to the door body, and the second drive component and the connector are both connected to the first drive component. Both the first drive component and the second drive component are communicatively connected to the detection component.
[0009] The heat dissipation component is connected to the connector and is set along the width of the door. The heat dissipation component is used to blow air into the cabinet.
[0010] The first drive unit is configured to drive the heat sink to move along the height direction of the door through the connector, so that the heat sink is close to the highest temperature inside the cabinet.
[0011] The second drive component is configured to connect with the connector to drive the heat sink to swing, so that the air outlet of the heat sink is directed toward the hottest part inside the cabinet.
[0012] In one possible implementation, the server cabinet provided in this application includes a first driving component comprising at least two linear guide rails, each linear guide rail being arranged parallel to the width direction of the door body, and a second driving component and a connecting component being connected to each linear guide rail, the connecting component being arranged along the width direction of the door body.
[0013] In one possible implementation, the server rack provided in this application includes linear guide rails comprising:
[0014] The guide rail is connected to the door body, and the extension direction of the guide rail is consistent with the height direction of the door body;
[0015] A slider is connected to the side of the guide rail away from the door body, and a second drive member and a connector are both connected to the side of the slider away from the guide rail. The slider is configured to slide along the extension direction of the guide rail to drive the connector to move toward the detection member with the highest measured temperature.
[0016] In one possible implementation, the server cabinet provided in this application has a groove in one of the guide rail and the slider, and a boss in the other. The extension direction of both the groove and the boss is consistent with the extension direction of the guide rail, and the boss is embedded in the groove.
[0017] In one possible implementation, the server cabinet provided in this application includes at least two electromagnet groups as the second driving component. Each electromagnet group is distributed in the height direction of the door body, and each electromagnet group is symmetrically arranged on both sides of the connector. Each electromagnet group corresponds to a detection component.
[0018] The electromagnet assembly is configured to operate when the temperature measured by its corresponding sensor is at its highest, thereby driving the connector to oscillate.
[0019] In one possible implementation, the server cabinet provided in this application includes at least two mounting bases as connectors, each corresponding to a linear guide rail. The mounting bases are hinged to a slider, and a heat sink is connected to the mounting base. The mounting bases are used to be attracted by an electromagnet assembly to swing relative to the slider.
[0020] In one possible implementation, the server cabinet provided in this application includes the following door body:
[0021] The door frame is hinged to the cabinet body;
[0022] The door panel is connected to the door frame, and an observation area is provided in the middle of the door panel;
[0023] A baffle, connected to the door panel, covers the observation area;
[0024] The door frame and door panel together form a receiving cavity that is connected to the interior of the cabinet. The detection components, drive components and heat dissipation components are all located inside the receiving cavity.
[0025] In one possible implementation, the server cabinet provided in this application has at least one heat dissipation area on the surface of the baffle, and a plurality of heat dissipation holes are provided in the heat dissipation area.
[0026] In one possible implementation, the server cabinet provided in this application has a transparent panel as the baffle.
[0027] In one possible implementation, the server rack provided in this application uses a temperature sensor as the detection component and a cooling fan as the heat dissipation component.
[0028] This application provides a server cabinet, including a cabinet body and a door, with the door hinged to the cabinet body. The cabinet body has ventilation openings. It also includes at least two detection elements, a drive assembly, and a heat sink. The detection elements are evenly distributed along the height of the door body. The drive assembly includes a first drive element, a second drive element, and a connector. The first drive element is connected to the door body, and the second drive element and the connector are both connected to the first drive element. Both the first and second drive elements are communicatively connected to the detection elements. The heat sink is connected to the connector and is positioned along the width of the door body. By placing multiple detection elements at different locations on the door body, the temperature at different locations inside the cabinet can be monitored to determine the area with the highest temperature. Combined with the drive assembly, the heat sink moves with the connector, driving it towards the area with the highest temperature inside the cabinet. The heat sink's air outlet blows air towards the area with the highest temperature, promoting airflow near the highest temperature area and achieving targeted heat dissipation for areas with high temperatures inside the cabinet, resulting in better heat dissipation. Furthermore, since the detection elements, drive assembly, and heat sink are all located on the door body, the installation space occupied inside the cabinet is reduced, helping to improve the utilization rate of the cabinet. Attached Figure Description
[0029] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.
[0030] Figure 1 This is a schematic diagram of the server rack structure provided in an embodiment of this application;
[0031] Figure 2 for Figure 1 A schematic diagram of the connection structure between the central gate body and the detection component, drive assembly, and heat dissipation component;
[0032] Figure 3 for Figure 2 A schematic diagram of the connection structure of the second driving component, connecting component, heat sink component and slider;
[0033] Figure 4 for Figure 2 A schematic diagram of the connection structure between the slider and the guide rail.
[0034] Explanation of reference numerals in the attached figures:
[0035] 100 - Cabinet body; 110 - Ventilation vent;
[0036] 200-Door body; 210-Door frame; 220-Door panel; 230-Baffle; 231-Heat dissipation area; 232-Heat dissipation hole; 240-Accommodation cavity;
[0037] 300 - Inspection Items;
[0038] 400-Drive assembly; 410-First drive element; 411-Guide rail; 4111-Groove; 412-Slider; 4121-Boss; 420-Second drive element; 421-Electromagnet assembly; 430-Connector; 431-Mounting base;
[0039] 500 - Heat sink.
[0040] The accompanying drawings have illustrated specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to specific embodiments. Detailed Implementation
[0041] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0042] Those skilled in the art should understand that these embodiments are merely for explaining the technical principles of this application and are not intended to limit the scope of protection of this application. Those skilled in the art can make adjustments as needed to adapt to specific application scenarios.
[0043] It should be noted that, in the description of this application, unless otherwise explicitly specified and limited, the terms "connected" and "linked" 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 an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0044] It should also be noted that the terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein.
[0045] Furthermore, in the embodiments of this application, the words "exemplary" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of words such as "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.
[0046] As can be seen from the background technology, a server cabinet is a cabinet used to install various electrical equipment in order to protect server equipment, maintain network security, and provide physical access control to server equipment.
[0047] Server equipment generates a significant amount of heat during operation, thus requiring an effective cooling system to maintain the server's operating temperature within a safe range. For example, server racks typically have ventilation openings on the sides or back to allow airflow within the rack, promoting heat dissipation and ensuring the server functions properly.
[0048] However, the vents cannot effectively target and dissipate heat to areas with high temperatures inside the server rack, resulting in poor heat dissipation.
[0049] To address this problem, this application provides a server cabinet, including a cabinet body and a door, the door being hinged to the cabinet body, and a heat dissipation vent on the cabinet body; it also includes at least two detection components, a drive assembly, and a heat dissipation component, each detection component extending along the height direction of the door body. Figure 2 The drive assembly includes a first drive component, a second drive component, and a connecting component. The first drive component is connected to the door body, and the second drive component and the connecting component are both connected to the first drive component. Both the first and second drive components are communicatively connected to the detection component. The heat dissipation component is connected to the connecting component and extends along the width direction of the door body. Figure 2The system features a (Central-to-X) orientation; by installing multiple sensors at different locations on the door, it can monitor the temperature at different points inside the cabinet to determine the hottest area. Combined with a drive assembly, the heat sink moves with the connecting parts, driving it towards the hottest area within the cabinet. The heat sink's air outlet blows air in the direction of the highest temperature, promoting airflow near the hottest area and achieving targeted heat dissipation for this high-temperature region, resulting in better heat dissipation. Furthermore, since the sensors, drive assembly, and heat sink are all located on the door, they reduce the installation space occupied within the cabinet, helping to improve the cabinet's utilization rate.
[0050] The following specific embodiments describe in detail the technical solution of the present application and how the technical solution of the present application solves the above-mentioned technical problems. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below in conjunction with the accompanying drawings.
[0051] The following is for reference. Figures 1 to 4 The server rack provided in the embodiments of this application is described in detail.
[0052] Figure 1 This is a schematic diagram of the server rack structure provided in an embodiment of this application; Figure 2 for Figure 1 A schematic diagram of the connection structure between the central gate body and the detection component, drive assembly, and heat dissipation component.
[0053] Combination Figure 1 and Figure 2 As shown, this embodiment provides a server cabinet, including a cabinet body 100 and a door 200. The door 200 is hinged to one side wall of the cabinet body 100, and heat dissipation vents 110 are provided on the side walls of the cabinet body 100 and the door 200, which are adjacent to or opposite to each other; it also includes:
[0054] At least two detection elements 300 are connected to the door 200. The detection elements 300 are evenly distributed along the height direction of the door 200. The detection elements 300 are used to detect the temperature inside the cabinet 100.
[0055] The drive assembly 400 includes a first drive member 410, a second drive member 420, and a connector 430. The first drive member 410 is connected to the door body 200. The second drive member 420 and the connector 430 are both connected to the first drive member 410. The first drive member 410 and the second drive member 420 are both communicatively connected to the detection member 300.
[0056] Heat sink 500 is connected to connector 430, and heat sink 500 is along the width direction of door body 200. Figure 2 The heat sink 500 is positioned in the X direction and is used to blow air into the cabinet 100.
[0057] The first drive unit 410 is configured to drive the heat sink 500 to move along the height direction of the door 200 via the connector 430, so that the heat sink 500 is close to the highest temperature inside the cabinet 100.
[0058] The second drive unit 420 is configured to connect to the connector 430 to drive the heat sink 500 to swing through the connector 430, so that the air outlet of the heat sink 500 is directed toward the highest temperature inside the cabinet 100.
[0059] The detection end of the detection element 300 faces inward towards the cabinet 100. The detection element 300 can be fixedly connected to the door 200 via screw-type connectors 430 or magnetic connectors 430. When using magnetic connection, the position of the detection element 300 can be flexibly adjusted according to actual needs, for example, corresponding to the position of a high-power server device inside the cabinet 100, so as to accurately obtain the ambient temperature of the corresponding area inside the cabinet 100.
[0060] The initial position of the heat sink 500 is preferably in the height direction of the door body 200. Figure 2 The middle part (in the Y direction) is arranged so that when the temperature measured by the detection element 300 above the heat sink 500 is the highest, the air blows upward; when the temperature measured by the detection element 300 below the heat sink 500 is the highest, the air blows downward.
[0061] In practice, after the detection component 300 measures the temperature of each area inside the cabinet 100, the first driving component 410 in the drive assembly 400 operates, driving the connecting component 430 and the heat sink 500 to move together to the position with the highest temperature; at the same time, the second driving component 420 also operates, connecting with the connecting component 430, causing the connecting component 430 to drive the heat sink 500 to swing, so that the air outlet of the heat sink 500 is directed towards the position with the highest temperature inside the cabinet 100, so as to blow air specifically on the high-temperature part, increase the air circulation near the highest temperature, and accelerate the heat dissipation.
[0062] For example, the communication connection between the first drive unit 410 and the second drive unit 420 and the detection unit 300 can be achieved through a controller built into or externally placed in the cabinet 100. The first drive unit 410, the second drive unit 420 and the detection unit 300 are all electrically connected to the controller. The controller is used to collect the detection results of the detection unit 300 and control the first drive unit 410 to move the heat sink 500 toward a high-temperature position inside the cabinet 100 according to the detection results, and control the second drive unit 420 to move the air outlet of the heat sink 500 toward a high-temperature position inside the cabinet 100.
[0063] In some embodiments, the first drive member 410 includes at least two linear guides, each linear guide being along the width direction of the door body 200. Figure 2 The second drive component 420 and the connecting component 430 are both connected to each linear guide rail in the width direction of the door body 200. Figure 2 (Central X direction) settings.
[0064] If the detection elements 300 are evenly distributed along the height direction of the door 200, then the location with the highest temperature inside the cabinet 100, as measured by the detection elements 300, will be reflected in the height direction of the cabinet 100. Figure 2 In the Y direction, by setting linear guides, it has the ability to move linearly, and can drive the connector 430 along the height direction of the cabinet 100. Figure 2 Move in the Y direction to bring the heat sink 500 closer to the hottest position inside the cabinet 100 and blow air specifically at that position.
[0065] In other embodiments, the first driving member 410 may also be a screw structure or a gear rack structure driven by a motor, etc. The movement of the connecting member 430 along the height direction of the door body 200 by means of threaded connection or gear meshing is within the protection scope of this application.
[0066] Figure 3 for Figure 2 A schematic diagram of the connection structure of the second driving component, connecting component, heat sink component and slider.
[0067] Combination Figure 3 As shown, in some embodiments, the linear guide includes:
[0068] Guide rail 411 is connected to door body 200, and the extension direction of guide rail 411 is parallel to the height direction of door body 200. Figure 2 Consistent with the Y-direction;
[0069] The slider 412 is connected to the side of the guide rail 411 facing away from the door body 200. The second drive member 420 and the connector 430 are both connected to the side of the slider 412 facing away from the guide rail 411. The slider 412 is configured to slide along the extension direction of the guide rail 411 to drive the connector 430 to move toward the detection member 300 with the highest measured temperature.
[0070] In specific implementation, taking two detection elements 300 as an example, the two detection elements 300 are preferably configured in the height direction of the door body 200. Figure 2In the upper and lower middle parts of the door 200 (in the Y direction), when the temperature measured by the detection element 300 in the upper middle part of the door 200 is higher, it indicates that the temperature of the part corresponding to the detection element 300 inside the cabinet 100 is the highest. The slider 412 moves along the guide rail 411 to the position of the detection element 300 in the upper middle mounting part of the door 200, so as to drive the heat sink 500 closer to the part with the highest current temperature, so that the heat sink 500 blows air into the upper middle part inside the cabinet 100.
[0071] When the temperature measured by the detection element 300 located in the lower middle part of the door 200 is high, it indicates that the temperature of the part corresponding to the detection element 300 inside the cabinet 100 is the highest. The slider 412 moves along the guide rail 411 to the position where the detection element 300 is installed in the lower middle part of the door 200, so as to drive the heat sink 500 to approach the part with the highest temperature, so that the heat sink 500 blows air into the lower middle part of the cabinet 100 for targeted heat dissipation inside the cabinet 100.
[0072] The slider 412 moves along the extension direction of the guide rail 411, thereby enabling the connector 430 to move along the height direction of the cabinet 100. Figure 2 For positioning and movement in the Y direction, a drive motor is installed inside the slider 412, which converts electrical energy into mechanical energy to move the slider 412 along the guide rail 411. A sensor or encoder can also be installed on the slider 412 to detect and control the position of the slider 412 on the guide rail 411, so as to correspond with the position of the detection element 300.
[0073] Figure 4 for Figure 2 A schematic diagram of the connection structure between the slider and the guide rail. (Combined with...) Figure 4 As shown, in some embodiments, one of the guide rail 411 and the slider 412 is provided with a groove 4111 and the other is provided with a boss 4121. The extending directions of both the groove 4111 and the boss 4121 are consistent with the extending direction of the guide rail 411, and the boss 4121 is embedded in the groove 4111.
[0074] Combination Figure 4 As shown, exemplarily, the groove 4111 is disposed on the guide rail 411, and the boss 4121 is disposed on the slider 412. The cross-sectional shapes of the groove 4111 and the boss 4121 are adapted and both are T-shaped, so that the boss 4121 can be embedded in the groove 4111 without falling out.
[0075] Furthermore, the cross-sectional shape of the groove 4111 and the boss 4121 can also be dovetail-shaped or other shapes, as long as they can connect the guide rail 411 and the slider 412 and are not easily separated. This application does not impose any restrictions on this.
[0076] In some embodiments, the second driving member 420 includes at least two electromagnet groups 421, each electromagnet group 421 being distributed along the height direction of the door body 200. Figure 2 In the Y direction, each electromagnet group 421 is symmetrically arranged on both sides of the connector 430, and the electromagnet group 421 corresponds one-to-one with the detection element 300.
[0077] The electromagnet assembly 421 is configured to operate when the temperature measured by its corresponding sensing element 300 is at its highest, so as to drive the connector 430 to swing.
[0078] The electromagnet assembly 421 may include at least two electromagnets, each corresponding to a linear guide rail and connected to the slider 412 of each linear guide rail, so as to move along the width direction of the door body 200. Figure 2 (In the X direction) it simultaneously adsorbs the connector 430, improving the adsorption effect.
[0079] For example, when there are two detection elements 300, the two detection elements 300 are preferably arranged in the height direction of the door body 200. Figure 2 In the upper and lower middle parts of the Y-direction, when the temperature measured by the detection component 300 located in the upper middle part of the door body 200 is high, the electromagnet group 421 located above the connector 430 is energized to attract the connector 430 and make it swing upward, thereby driving the heat sink 500 to swing upward, so that the air outlet of the heat sink 500 blows air upward accordingly.
[0080] When the temperature measured by the detection component 300 located in the lower middle part of the door body 200 is high, the electromagnet group 421 located below the connector 430 is energized to attract the connector 430 and make it swing downward, thereby driving the heat sink 500 to swing downward, so that the air outlet of the heat sink 500 blows air downward accordingly.
[0081] For example, each detection element 300 and each electromagnet assembly 421 can be corresponding by positional relationship, for example, located in the height direction of the door body 200 ( Figure 2 The detection element 300 in the upper part of the Y-direction corresponds to the electromagnet assembly 421 located above the mounting base 431, and is located in the height direction of the door body 200. Figure 2 The detection component 300 in the lower part of the Y direction corresponds to the electromagnet assembly 421 located above the mounting base 431.
[0082] By combining the first drive unit 410 and the second drive unit 420, when the detection unit 300 detects the location with the highest temperature inside the cabinet 100, the heat dissipation unit 500 can be driven to move to the vicinity of that location to provide targeted airflow, thereby promoting air circulation near the location with the highest temperature inside the cabinet 100 and achieving a rapid heat dissipation effect.
[0083] Combination Figure 2and Figure 3 As shown, in some embodiments, the connector 430 includes at least two mounting bases 431, each corresponding to a linear guide rail, and the mounting base 431 is hinged to the slider 412. The heat sink 500 is connected to the mounting base 431, and the mounting base 431 is used to be attracted by the electromagnet assembly 421 to swing relative to the slider 412.
[0084] The slider 412 has a connecting part on the side facing away from the guide rail 411. The mounting base 431 is hinged to the connecting part via a pivot. Electromagnetic groups 421 are distributed above and below the connecting part. When the electromagnet group 421 above the connecting part is energized, the generated magnetic force attracts the mounting base 431, causing it to swing upward; when the electromagnet group 421 below the connecting part is energized, the generated magnetic force attracts the mounting base 431, causing it to swing downward. The heat sink 500 is connected to the end of the mounting base 431 facing away from the slider 412. The air outlet of the heat sink 500 faces the cabinet 100, and the heat sink 500 is horizontally arranged in the width direction of the door frame 210. Figure 2 In the X direction, the heat sink 500 rotates with the mounting base 431 relative to the slider 412 to swing up or down, which can make its air outlet flip up and down, adjust the air blowing direction, and make the air blowing direction towards the highest temperature inside the cabinet 100.
[0085] In some embodiments, the door 200 includes: a door frame 210, hinged to the cabinet 100; a door panel 220 connected to the door frame 210, with an observation area in the middle of the door panel 220; a baffle 230 connected to the door panel 220 and covering the observation area; the door frame 210 and the door panel 220 together form a receiving cavity 240 communicating with the interior of the cabinet 100, and the detection element 300, the drive assembly 400 and the heat dissipation element 500 are all disposed in the receiving cavity 240.
[0086] One side of the door frame 210 is hinged to the cabinet 100, and the door 200 is provided with a handle groove on the side away from the hinge. The handle groove is opened on the side of the door panel 220 away from the cabinet 100.
[0087] Both the door frame 210 and the door panel 220 are made of metal to provide sufficient sturdiness for the door 200 and improve the protection of the cabinet 100. For example, the door frame 210 and the door panel 220 can be integrally formed and obtained through sheet metal processing.
[0088] Furthermore, the detection component 300, drive assembly 400, and heat dissipation component 500 are all located within the receiving cavity 240, which can reduce the installation space occupied within the cabinet 100 and help improve the utilization rate of the cabinet 100.
[0089] In some embodiments, at least one heat dissipation area 231 is provided on the surface of the baffle 230, and a plurality of heat dissipation holes 232 are provided in the heat dissipation area 231.
[0090] For example, there are two heat dissipation zones 231, which are distributed at the top and bottom of the baffle 230. By setting heat dissipation holes 232, under the blowing action of the heat dissipation component 500, convection can be formed between them and the heat dissipation vents 110 set on the cabinet 100, which accelerates the exchange rate of gas inside the cabinet 100 and the outside gas, and facilitates the discharge of heat.
[0091] Furthermore, a dustproof net can be installed on the side of the heat dissipation area 231 near the cabinet 100. The dustproof net can block dust and other impurities in the air from entering the cabinet 100 through the heat dissipation holes 232, thereby preventing dust from affecting the normal operation of the server equipment and further improving the protection effect on the equipment inside the cabinet 100.
[0092] In some embodiments, the baffle 230 is a transparent plate.
[0093] For example, the baffle 230 is made of glass. By providing a transparent door panel 220, staff can easily observe the operation of the equipment inside the cabinet 100, so as to take timely measures in case of abnormalities.
[0094] In addition, the detection component 300 and the drive component are both installed on the door panel 220 and can be hidden inside the door 200, which helps to improve the cleanliness of the server cabinet and also prevents accidental contact by personnel.
[0095] In some embodiments, the detection element 300 is a temperature sensor, and the heat sink 500 is a cooling fan.
[0096] It should be noted that the temperature sensor and the cooling fan are both known structural designs in the field, and will not be described in detail here.
[0097] In other embodiments, the heat sink 500 can also be an air pipe with multiple air outlets in its extension direction. The air pipe is connected to a fan or air pump located outside the cabinet 100 via a pipe, so that the gas generated by the fan and air pump enters the air pipe through the pipe and is ejected from the air outlets, which can further reduce the space occupied inside the cabinet 100.
[0098] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the utility model disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The description and examples are to be considered as exemplary only, and the true scope and spirit of the present application are indicated by the following claims.
[0099] It should be understood that the present application is not limited to the exact structure described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.
Claims
1. A server rack, characterized in that, The cabinet includes a cabinet body and a door, the door being hinged to one side wall of the cabinet body, and ventilation openings being provided on the side walls of the cabinet body adjacent to or opposite to the door; it also includes: At least two detection elements are connected to the door body, and each detection element is evenly distributed along the height direction of the door body. The detection elements are used to detect the temperature inside the cabinet. The drive assembly includes a first drive component, a second drive component, and a connector. The first drive component is connected to the door body, and the second drive component and the connector are both connected to the first drive component. The first drive component and the second drive component are both communicatively connected to the detection component. A heat dissipation component is connected to the connector, the heat dissipation component is arranged along the width direction of the door, and the heat dissipation component is used to blow air into the cabinet; The first drive unit is configured to drive the heat sink to move along the height direction of the door body via the connector, so that the heat sink is close to the highest temperature point inside the cabinet. The second drive component is configured to connect to the connector to drive the heat sink to swing through the connector, so that the air outlet of the heat sink is directed toward the hottest part inside the cabinet.
2. The server rack according to claim 1, characterized in that, The first driving component includes at least two linear guide rails, each of which is arranged parallel to the width direction of the door body. The second driving component and the connecting component are both connected to each of the linear guide rails, and the connecting component is arranged along the width direction of the door body.
3. The server rack according to claim 2, characterized in that, The linear guide rail includes: A guide rail is connected to the door body, and the extension direction of the guide rail is consistent with the height direction of the door body; A slider is connected to the side of the guide rail opposite to the door body. The second drive member and the connector are both connected to the side of the slider opposite to the guide rail. The slider is configured to slide along the extension direction of the guide rail to drive the connector to move toward the detection member with the highest measured temperature.
4. The server rack according to claim 3, characterized in that, One of the guide rail and the slider is provided with a groove, and the other is provided with a boss. The extending directions of the groove and the boss are both consistent with the extending direction of the guide rail, and the boss is embedded in the groove.
5. The server rack according to claim 3 or 4, characterized in that, The second driving component includes at least two electromagnet groups, each of which is distributed along the height direction of the door body and is symmetrically arranged on both sides of the connector. Each electromagnet group corresponds to one of the detection components. The electromagnet assembly is configured to operate when the temperature measured by the corresponding detection element is at its highest, so as to drive the connector to swing.
6. The server rack according to claim 5, characterized in that, The connector includes at least two mounting bases, each corresponding to a linear guide rail. The mounting base is hinged to the slider. The heat sink is connected to the mounting base. The mounting base is used to be attracted by the electromagnet assembly to swing relative to the slider.
7. The server rack according to any one of claims 1 to 4, characterized in that, The door body includes: The door frame is hinged to the cabinet body; A door panel is connected within the door frame, and an observation area is provided in the middle of the door panel; A baffle, connected to the door panel, and covering the observation area; The door frame and the door panel together form a receiving cavity that communicates with the interior of the cabinet, and the detection component, the drive assembly and the heat dissipation component are all disposed within the receiving cavity.
8. The server rack according to claim 7, characterized in that, The baffle has at least one heat dissipation area on its surface, and the heat dissipation area has several heat dissipation holes.
9. The server rack according to claim 7, characterized in that, The baffle is a transparent plate.
10. The server rack according to any one of claims 1 to 4, characterized in that, The detection component is a temperature sensor, and the heat dissipation component is a cooling fan.