Temperature and humidity detection equipment of intelligent calculation center machine room
The design of the limit slot and locking structure simplifies the installation and disassembly process of the temperature and humidity detector, solves the time-consuming and labor-intensive problem of traditional installation methods, and improves maintenance efficiency.
Patent Information
- Application Number
- CN202422493665.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-15
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-10-15
AI Technical Summary
In the prior art, the installation method of existing temperature and humidity detectors in the computer room of the intelligent computing center is time-consuming and labor-intensive, and maintenance is inconvenient, which affects maintenance efficiency.
The design of the limit slot and locking structure is adopted, and the shell mounting base is matched to achieve quick installation and removal without tools. The cooperation of the limit block and the locking block simplifies the installation process.
It enables rapid installation and disassembly of temperature and humidity detection equipment, improves maintenance efficiency, and meets the efficient management needs of the intelligent computing center computer room.
Smart Images

Figure CN223376675U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of temperature and humidity detection, and in particular to a temperature and humidity detection device for an intelligent computing center computer room. Background Art
[0002] In the sophisticated and environmentally demanding environment of an intelligent computing center's computer room, regulating indoor humidity is crucial. Excessively high humidity can lead to poor heat dissipation, impacting computing efficiency and stability; while excessively low humidity can cause dry air, adversely affecting the complex electronic equipment within the room and the respiratory systems of maintenance personnel. Therefore, accurate and real-time monitoring of temperature and humidity within the room is crucial, making temperature and humidity detectors indispensable.
[0003] However, traditional temperature and humidity monitors face challenges in intelligent computing center computer rooms. They are often mounted high on walls to more comprehensively monitor the temperature and humidity conditions throughout the room. However, this mounting method typically uses bolts to secure the monitors. If the monitors need maintenance or replacement, maintenance personnel must use tools to remove the bolts one by one. This process is time-consuming and labor-intensive, significantly reducing maintenance efficiency and hindering the efficient management and operation of the computer room.
[0004] Given these issues, it's urgent to innovate and optimize the installation and maintenance of temperature and humidity monitors. An ideal solution should simplify the installation process while facilitating subsequent maintenance and replacement, ensuring the intelligent computing center maintains a consistently optimal temperature and humidity environment, providing stable and reliable support for high-performance computing. Utility Model Content
[0005] In response to the problems existing in the prior art, the present invention provides a temperature and humidity detection device for an intelligent computing center computer room, comprising:
[0006] A housing, wherein a temperature and humidity detector and a locking structure are provided inside the housing, and a limiting groove is provided on the back of the housing;
[0007] A mounting base is installed in the computer room of the intelligent computing center, with slots installed on both sides of the mounting base and a limit block provided at the bottom of the mounting base;
[0008] During the process of aligning the limiting block with the limiting groove and installing the housing to the mounting base, the limiting block pushes the locking structure to extend toward both sides of the housing and into the locking groove to complete the locking.
[0009] Preferably, the locking structure includes:
[0010] An extension mechanism, with locking blocks installed at both ends of the extension mechanism;
[0011] The driving mechanism is in contact with the extending mechanism, and the limiting block pushes the driving mechanism in the process of entering the limiting groove to drive the extending mechanism to extend to both sides of the shell, so as to extend the locking block into the slot to complete the locking.
[0012] Preferably, the stretching mechanism comprises:
[0013] A fixed shaft, the fixed shaft being mounted on the bottom of the housing, the fixed shaft being sleeved with two rotating rods rotating around the fixed shaft, the rotating rods being in contact with the driving mechanism, and each rotating rod being provided with a slider at one end and a rotating shaft at the other end;
[0014] Two mounting rods, each of which has a slide groove, one end of each mounting rod being mounted on a rotating shaft of one of the rotating rods, a slider of the other rotating shaft sliding in the slide groove, and a locking block being mounted on a side of the mounting rod;
[0015] When the limiting block enters the limiting groove, the driving structure drives the angle between the two rotating rods to decrease, thereby driving the mounting rod to extend toward both sides of the housing, so as to extend the locking block into the slot to complete the locking.
[0016] Preferably, the driving mechanism includes:
[0017] A driving shaft, wherein a driving block is sleeved on the driving shaft, and the driving block is provided with a driving rod extending into the limiting groove, and an upper surface of the driving block is provided with an arc surface, and the arc surface abuts against the extension mechanism;
[0018] When the limit block enters the limit slot, the limit block pushes the driving rod to drive the arc surface on the driving block to rotate, thereby driving the extending mechanism to extend to both sides of the shell, so as to extend the locking block into the slot to complete the locking.
[0019] Preferably, the arc surface on the driving block is eagle-beak shaped.
[0020] Preferably, the shell is made of electromagnetic shielding material.
[0021] Preferably, the mounting plate and the locking block are connected by elastic material.
[0022] The above technical solution has the following advantages or beneficial effects: through the cooperation of the locking structure in the shell and the mounting base, the entire installation process and disassembly process can be completed in one step by simply pushing or pressing. The installation process is quick and convenient, and does not require additional tools and complicated processes. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 This is a front view of the housing of a temperature and humidity detection device for an intelligent computing center computer room in a preferred embodiment of the present invention;
[0024] Figure 2 This is a rear view of the housing in a preferred embodiment of the present invention;
[0025] Figure 3 This is a structural diagram of the mounting base in a preferred embodiment of the present utility model;
[0026] Figure 4 This is a structural diagram of the extension mechanism and the driving mechanism when the housing has not yet been pushed into the mounting base in a preferred embodiment of the present invention;
[0027] Figure 5 This is a structural diagram of the extension mechanism and the drive mechanism when the housing has been pushed into the mounting base in a preferred embodiment of the present invention;
[0028] Figure 6 This is a side structural diagram of the driving structure when the housing has not yet been pushed into the mounting base in a preferred embodiment of the present utility model;
[0029] Figure 7 This is a schematic side structural diagram of the driving structure when the shell has been pushed into the mounting base in a preferred embodiment of the present utility model. DETAILED DESCRIPTION
[0030] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments. The present invention is not limited to this embodiment, and other embodiments may also fall within the scope of the present invention as long as they conform to the main purpose of the present invention.
[0031] In a preferred embodiment of the present invention, based on the above-mentioned problems existing in the prior art, a temperature and humidity detection device for an intelligent computing center computer room is provided, comprising:
[0032] The housing 1 has a temperature and humidity detector 2 and a locking structure 3 disposed therein, and a limiting groove 11 is provided on the back of the housing 1;
[0033] The mounting base 4 is installed in the computer room of the intelligent computing center. The mounting base 4 has slots 41 on both sides and a limit block 42 at the bottom.
[0034] When the limiting block 42 is aligned with the limiting groove 11 and the housing 1 is mounted on the mounting base 4 , the limiting block 42 pushes the locking structure 3 to extend toward both sides of the housing 1 and into the locking groove 41 to complete the locking.
[0035] Furthermore, in this embodiment, the locking structure 3 includes:
[0036] Extension mechanism 31, with locking blocks 311 installed at both ends of the extension mechanism 31;
[0037] The driving mechanism 32 abuts against the extending mechanism 31 , and the limiting block 42 pushes the driving mechanism 32 in the process of entering the limiting groove 11 to drive the extending mechanism 31 to extend toward both sides of the housing 1 , so as to extend the locking block 311 into the card slot 41 to complete the locking.
[0038] Specifically, in this embodiment, the mounting base 4 is first installed at a measuring point in the computer room of the intelligent computing center. It is generally recommended to place the measuring point in the center of the computer room or in a representative area to ensure that the measurement data can reflect the average temperature and humidity conditions of the entire computer room. Avoid setting the measuring point near direct sunlight, heating equipment, cooling equipment, or other areas that may generate heat radiation or airflow interference. For temperature detection equipment, it is generally recommended to install it at a position about 1.2 meters from the ground; for humidity detection equipment, it is recommended to install it at a position about 1.5 meters from the ground to reduce the impact of ground airflow on the measurement results. Figure 1 As shown, a temperature and humidity detector 12 is provided in the housing 1, and a display screen and operation buttons of the temperature and humidity detector 12 are exposed from the housing.
[0039] Then, the housing 1 with the temperature and humidity detector is installed in the mounting base 4, as shown in FIG. Figure 2 and Figure 3 As shown, two limit grooves 11 are provided on the back of the shell 1, and a limit block 42 is provided at the bottom of the mounting base. During the installation process, the limit block 42 is aligned with the limit groove 11 and the shell is pushed into the mounting base 4. The limit block 42 pushes the driving mechanism 32 to drive the extending mechanism 31 to extend, so that the locking block 311 is extended into the slot 41 of the mounting base 4 to complete the installation; the overall structure is simple, and the entire installation process only requires the operator to push the shell 1 into the mounting base 4, and the operation is easy. When it is necessary to disassemble the shell 1 with the temperature and humidity detector, it is only necessary to press the locking block 311 in the slot 41 along the X direction toward the inside of the mounting base 4 to remove it, and the disassembly is also simple and quick.
[0040] The cooperation between the limiting block 42 and the limiting groove 42 can ensure that the position of the housing 1 in the mounting base 4 is fixed. Figure 3 locking block 311 extends into the slot 42 for locking, ensuring that no displacement occurs in the Y and Z directions, the overall fixing effect is good.
[0041] In a preferred embodiment of the present invention, the extension mechanism 31 includes:
[0042] The fixed shaft 312 is mounted on the bottom of the housing 1. Two rotating rods 313 are sleeved on the fixed shaft 312 and rotate around the fixed shaft 312. The rotating rods 313 are in contact with the driving mechanism 32. One end of each rotating rod 313 is provided with a slider 314, and the other end is provided with a rotating shaft 315.
[0043] Two mounting rods 316, each having a slot 317 formed therein. One end of each mounting rod 316 is mounted on the rotating shaft 314 of one rotating rod 313, while the slider 314 of the other rotating shaft 315 slides in the slot 317. A locking block 311 is mounted on the side of each mounting rod 316;
[0044] When the limiting block 42 enters the limiting groove 11 , the driving structure 32 drives the angle between the two rotating rods 314 to decrease, thereby driving the installation rods 316 to extend toward both sides of the housing 1 , so as to extend the locking block 311 into the slot 41 to complete the locking.
[0045] Furthermore, in this embodiment, the driving mechanism 32 includes:
[0046] A driving shaft 321 is provided with a driving block 322 sleeved thereon. The driving block 322 is provided with a driving rod 323 extending into the limiting groove 42. The upper surface of the driving block 321 is provided with an arc surface 324, which abuts against the extension mechanism 31.
[0047] When the limiting block 41 enters the limiting groove 11, the limiting block 42 pushes the driving rod 323 to drive the arc surface 324 on the driving block 322 to rotate, thereby driving the extending mechanism 31 to extend to both sides of the shell 1, so as to extend the locking block 311 into the card slot 41 to complete the locking.
[0048] Specifically, in this embodiment, Figure 4 and Figure 5 As shown, the structure of the extension mechanism 31 and the driving mechanism 32 at the bottom of the housing 1 is shown. Figure 4 The middle shows the state of the extension mechanism 31 and the drive mechanism 32 before the mounting base 4 is pushed in. Figure 5 It is in the state of having been pushed into the mounting base 4 and locked.
[0049] Furthermore, the extension mechanism 31 in this embodiment adopts two crossed rotating shafts 313 to form a scissor-type extension mechanism 31. By changing the angle between the two rotating shafts 313, the two mounting rods 316 can be driven to move closer / away. Specifically, when the angle becomes larger, the slider 314 in the slide groove 317 moves upward, and the mounting rod 316 moves toward the inside of the shell 1 (the mounting rods 316 on both sides approach each other), driving the locking block 311 to retract toward the inside of the shell 1; when the angle becomes smaller, the slider 314 in the slide groove 317 moves downward, and the mounting rod 316 moves toward the outside of the shell 1 (the mounting rods 316 on both sides move away from each other), driving the locking block 311 to extend toward the inside of the shell 1.
[0050] The extension of the extension mechanism 31 is driven by the driving mechanism 32. Figure 6 and Figure 7 As shown, Figure 6 This is the state of the driving mechanism 32 when the housing has not yet been pushed into the mounting base 4. Figure 7 The driving mechanism 32 is in a state where the housing 1 has been pushed into the mounting base 4 and locked;
[0051] When the limiting block 42 enters the limiting groove 11, the limiting block 42 abuts against and pushes the driving rod 323, and the driving block 322 rotates around the driving shaft 321. Then, the arc surface 324 on the upper surface of the driving block 322 lifts the rotating shaft 313 (the driving mechanism is composed of Figure 6 The shape of Figure 7 The angle between the two rotating shafts 313 becomes smaller, the slider 314 in the slide groove 317 moves downward, and the mounting rod 316 moves toward the outside of the housing 1 (the mounting rods 316 on both sides move away from each other), driving the locking block 311 to retract toward the inside of the housing 1 (the extension mechanism is formed by the Figure 4 The shape of Figure 5 Finally, the locking blocks 311 are fully inserted into the slots 41 on both sides of the mounting base 4 and locked, completing the installation of the housing 1.
[0052] When the housing 1 needs to be removed from the mounting base 4, the operator presses the locking block 311 with both hands from the outside of the mounting base 4. At this time, the internal driving mechanism 32 and the extension mechanism 31 complete the opposite action of the limit block 42 in the process of entering the limit groove 11, that is, the mounting rod 316 moves toward the inside of the housing 1, the slider 314 in the slide groove 317 moves upward, and the angle between the two rotating shafts 313 increases (the extension mechanism 31 is moved by Figure 5 The shape of Figure 4 The arc surface 324 of the driving block 322 in the driving structure 32 is pressed down, the driving block 322 rotates around the driving shaft 321, and the driving rod 323 pushes the limiting block 42 to push the limiting block 42 out of the limiting groove 11 (the driving mechanism 32 is formed by Figure 7 The shape of Figure 6to complete the disassembly.
[0053] As can be seen from this embodiment, through the cooperation of the locking structure 3 and the mounting base 4 in the housing 1, the entire installation process and disassembly process can be completed in one step by simply pushing or pressing. The installation process is quick and convenient, and does not require additional tools and complicated processes.
[0054] In a preferred embodiment of the present invention, the arc surface 324 on the driving block 322 is hawk-beak-shaped.
[0055] Specifically, such as Figure 6 and Figure 7 As shown, the arc surface 324 on the driving block 322 is eagle-beak-shaped. Under the premise of pushing the driving rod 323 the same distance, the eagle-beak-shaped arc surface 324 can lift the rotating shaft 313 in the extension mechanism 31 to a higher distance than the arc surfaces 324 of other shapes. Therefore, in this embodiment, the eagle-beak-shaped arc surface is preferably used, but in other embodiments, arc surfaces of other shapes can be used as secondary shapes as a substitute.
[0056] In a preferred embodiment of the present invention, the housing 1 is made of electromagnetic shielding material.
[0057] Specifically, in this embodiment, since there are many electronic equipment and instruments in the computer room of the intelligent computing center, in order to avoid the electromagnetic interference generated by these electronic equipment on the temperature and humidity detector in the shell, the shell 1 made of electromagnetic shielding material is selected to shield the external electromagnetic signal interference, so that the detection is more accurate.
[0058] In a preferred embodiment of the present invention, the mounting plate 316 and the locking block 311 are connected by elastic material.
[0059] Specifically, in this embodiment, the mounting plate 316 and the locking block 311 are connected by elastic material to avoid excessive force during the installation process, which may cause damage to the overall structure.
[0060] The above are only preferred embodiments of the present invention and do not limit the implementation methods and protection scope of the present invention. Those skilled in the art should be aware that all solutions obtained by equivalent substitutions and obvious changes made using the contents of this specification and illustrations should be included in the protection scope of the present invention.
Claims
1. A temperature and humidity detection device for an intelligent computing center computer room, characterized in that: include: A housing, wherein a temperature and humidity detector and a locking structure are provided inside the housing, and a limiting groove is provided on the back of the housing; A mounting base is installed in the computer room of the intelligent computing center, with slots provided on both sides of the mounting base and a limit block provided at the bottom of the mounting base; During the process of aligning the limiting block with the limiting groove and installing the housing to the mounting base, the limiting block pushes the locking structure to extend toward both sides of the housing and into the locking groove to complete the locking.
2. The temperature and humidity detection device according to claim 1, characterized in that: The locking structure comprises: An extension mechanism, with locking blocks installed at both ends of the extension mechanism; The driving mechanism is in contact with the extending mechanism, and the limiting block pushes the driving mechanism in the process of entering the limiting groove to drive the extending mechanism to extend to both sides of the shell, so as to extend the locking block into the slot to complete the locking.
3. The temperature and humidity detection device according to claim 2, characterized in that: The stretching mechanism comprises: A fixed shaft, the fixed shaft being mounted on the bottom of the housing, the fixed shaft being sleeved with two rotating rods rotating around the fixed shaft, the rotating rods being in contact with the driving mechanism, and each rotating rod being provided with a slider at one end and a rotating shaft at the other end; Two mounting rods, each of which has a slide groove, one end of each mounting rod being mounted on the rotating shaft of one of the rotating rods, the slider of the other rotating rod sliding in the slide groove, and the locking block being mounted on the side of the mounting rod; When the limiting block enters the limiting groove, the driving mechanism drives the angle between the two rotating rods to decrease, thereby driving the mounting rod to extend toward both sides of the housing, so as to extend the locking block into the slot to complete the locking.
4. The temperature and humidity detection device according to claim 2, characterized in that: The driving mechanism comprises: A driving shaft, wherein a driving block is sleeved on the driving shaft, and the driving block is provided with a driving rod extending into the limiting groove, and an upper surface of the driving block is provided with an arc surface, and the arc surface abuts against the extension mechanism; When the limit block enters the limit slot, the limit block pushes the driving rod to drive the arc surface on the driving block to rotate, thereby driving the extending mechanism to extend to both sides of the shell, so as to extend the locking block into the slot to complete the locking.
5. The temperature and humidity detection device according to claim 4, characterized in that: The arc surface on the driving block is in an eagle-beak shape.
6. The temperature and humidity detection device according to claim 1, characterized in that: The shell is made of electromagnetic shielding material.
7. The temperature and humidity detection device according to claim 3, characterized in that: The mounting rod and the locking block are connected by using elastic material.