Connecting structure, connecting assembly and machine room temperature and humidity monitoring equipment

By designing the connecting structure of the slide chute, limiting parts and elastic parts, the problem of cumbersome disassembly and unstable structure at the fixed location is solved, the equipment is easy to install and disassemble, and the structure is maintained.

CN222937588UActive Publication Date: 2025-06-03BEIJING 21VIANET DATA CENT
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Patent Information

Application Number
CN202421874493.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-06-03
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

The disassembly and assembly process of the temperature and humidity detector in the prior art is complicated, and the structure at the fixed position is unstable after multiple disassembly.

Method used

A connecting structure is designed, including a sliding groove, a limiting member and an elastic member. Through the fitting of the sliding groove and the slot, the bumps can be embedded and slide smoothly, achieving easy installation and disassembly, and ensuring the stability of the structure through the fitting of the elastic parts and a limiting member.

Benefits of technology

It realizes the simplicity of the disassembly and assembly process of the temperature and humidity detector, avoids the problem of unstable structure at the fixed position after multiple disassembly, and ensures stable connection and convenient maintenance of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of temperature and humidity monitoring equipment, and provides a connecting structure, a connecting assembly and machine room temperature and humidity monitoring equipment. An end opening is formed in one end, in the length direction, of the sliding groove, and a side opening is formed in the other side, opposite to the first component, of the sliding groove. Clamping edges extending towards the inner side of the sliding groove are formed on the two sides of the side opening; the limiting component comprises a limiting part and an elastic piece which are elastically connected; under the driving of the elastic piece, at least part of the limiting part is located in the sliding groove to form a stopping block, and the limiting part can slide to be staggered with the sliding groove. Compared with the prior art, the temperature and humidity detector is convenient to disassemble and assemble, the first component does not need to be disassembled in the disassembly process, and the structural stability of the joint of the first component and the wall is not affected.
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Description

Technical Field

[0001] The utility model relates to the technical field of temperature and humidity monitoring equipment, in particular to a connection structure, a connection component and a computer room temperature and humidity monitoring equipment. Background Art

[0002] With the rapid development of information technology, as the core area for data storage, processing and transmission, the stability of the environment in the computer room is crucial. The temperature and humidity in the computer room are key factors affecting the performance, lifespan and data security of equipment. Excessive or too low temperature may cause equipment overheating, performance degradation, and even lead to failures; while too high humidity may cause equipment to get damp, short circuit and other problems. Therefore, it is particularly important to monitor and control the temperature and humidity in the computer room in real time.

[0003] In the related art, temperature and humidity detectors are generally fixedly installed on the wall by bolts and other components.

[0004] However, using the above related technology, when it is necessary to repair and upgrade the monitoring equipment, the fixing part often needs to be disassembled. The disassembly and assembly process is relatively cumbersome, and the structure of the fixing part will become unstable after multiple disassembly. Content of the Utility Model

[0005] The utility model provides a connection structure, a connection component and a computer room temperature and humidity monitoring equipment, which are used to solve the defect that the disassembly and assembly process of the temperature and humidity detector in the prior art is relatively cumbersome, and the structure of the fixing part will become unstable after multiple disassembly, and has the advantages of convenient disassembly and assembly, and the structure of the fixing part will not become unstable after multiple disassembly.

[0006] The utility model provides a connection structure, including: a chute and a limiting component arranged on a first component;

[0007] One end of the chute along the length direction is provided with an end opening, and a side opening is arranged on the other side relative to the first component; both sides of the side opening are formed into card edges extending towards the inner side of the chute;

[0008] The limiting component includes a limiting part and an elastic member, and the elastic member is elastically connected with the limiting part; driven by the elastic member, at least part of the limiting part is located in the chute to form a stop, and the limiting part can slide and be misaligned with the chute.

[0009] The utility model provides a connection structure, further including a card slot arranged on the first component, the card slot extends along the depth direction of the chute and is communicated with the chute, and the limiting part is slidably embedded in the card slot.

[0010] The utility model provides a connection structure, and a through first groove and a second groove are arranged on the limiting part;

[0011] The first groove penetrates through both sides of the limiting part along the length direction of the sliding groove, and its width is not less than the width of the sliding groove.

[0012] The second groove is arranged on the other side of the limiting part relative to the first component and corresponds to the side opening of the sliding groove in position. The width of the second groove is not less than the width of the side opening.

[0013] The first groove can correspond to the sliding groove as the limiting part slides, so that the limiting part is misaligned with the sliding groove.

[0014] The present utility model provides a connection structure. The elastic member includes a spring; one end of the spring is connected to the bottom surface of the clamping groove, and the other end is connected to the other side of the limiting part relative to the second groove.

[0015] The present utility model provides a connection structure. A cylindrical receiving groove is arranged on the bottom surface of the clamping groove corresponding to the position of the spring, and the end of the spring is fixedly connected to the bottom surface of the receiving groove.

[0016] The present utility model provides a connection structure. A guide post is fixedly connected to the other side of the limiting part relative to the second groove. A guide hole is arranged at the bottom of the clamping groove corresponding to the position of the guide post, and the guide post is slidably inserted into the guide hole.

[0017] The present utility model provides a connection structure. There are multiple guide posts, and the multiple guide posts are symmetrically arranged around the center of the limiting part. Multiple guide holes are arranged corresponding to the guide posts.

[0018] According to a connection assembly provided by the present utility model, it is used to connect a first component and a second component; the connection assembly includes the connecting piece as described in any one of the above on the first component, and a convex block connected to the second component.

[0019] The cross-sectional shape of the convex block is adapted to the cross-sectional shape of the sliding groove on the first component, and the convex block is slidably fitted into the sliding groove.

[0020] The present utility model further provides a computer room temperature and humidity monitoring device, including a fixing plate, a temperature and humidity detector, and the above connection assembly for connecting the fixing plate and the temperature and humidity detector.

[0021] The fixing plate forms the first component, and the connection structure is arranged on the fixing plate; the temperature and humidity detector forms the second component, and the convex block is arranged on the temperature and humidity detector.

[0022] According to the computer room temperature and humidity monitoring device provided by the present utility model, a plurality of heat dissipation through holes are formed on the fixing plate.

[0023] According to the temperature and humidity monitoring device for computer rooms provided by the present utility model, fixing feet are connected to opposite sides of the fixing plate, and the fixing feet are arranged at an angle with the fixing plate; one end of the fixing foot far from the fixing plate is connected to an installation plate, and positioning holes are formed in the installation plate.

[0024] For the connection structure, connection component and temperature and humidity monitoring device for computer rooms provided by the present utility model, when connecting a temperature and humidity detector, a convex block adapted to the cross-sectional shape of the sliding groove can be connected to the temperature and humidity detector. During installation, first, a first component is fixedly connected to a wall by using connection components such as bolts, and then the convex block on the temperature and humidity detector is inserted into the end opening of the sliding groove. At the same time, the limiting part is pressed, and the limiting part slides and is misaligned with the sliding groove, so that the convex block can be smoothly inserted into the sliding groove. And under the constraint of the clamping edge, the convex block can only slide along the length direction of the sliding groove and cannot escape from the sliding groove. After the convex block slides to a predetermined position, the limiting part is released, and at least part of the limiting part enters the sliding groove under the driving of the elastic member to form a stop, preventing the convex block from detaching from the end opening of the sliding groove; during disassembly, the limiting part is pressed to be misaligned with the sliding groove, and then the temperature and humidity detector is pulled in the direction of the opening end of the sliding groove. The convex block slides towards the opening end of the sliding groove and finally escapes from the opening end of the sliding groove, completing the disassembly of the temperature and humidity detector. Compared with the related art, the disassembly and assembly of the temperature and humidity detector are relatively convenient, and the first component does not need to be disassembled during the disassembly process, and the structural stability of the connection between the first component and the wall will not be affected. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions in the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0026] Figure 1 It is a schematic structural diagram of a temperature and humidity monitoring device for a computer room with a connection structure and a connection component provided by an embodiment of the present utility model.

[0027] Figure 2 It is a schematic structural diagram of a sliding groove and a clamping groove provided by an embodiment of the present utility model.

[0028] Figure 3 It is a schematic structural diagram of a limiting part provided by an embodiment of the present utility model.

[0029] Figure 4 It is a schematic structural diagram of a fixing plate with a convex block provided by an embodiment of the present utility model.

[0030] Reference numerals:

[0031] 10. Slide groove; 100. Clamping edge; 11. Limiting component; 110. Limiting part; 1100. First groove; 1101. Second groove; 111. Elastic member; 12. Card slot; 13. Accommodating groove; 14. Guide post; 15. Guide hole; 20. Bump; 30. Fixed plate; 300. Heat dissipation through hole; 31. Temperature and humidity detector; 32. Fixed foot; 33. Mounting plate; 330. Positioning hole. Detailed implementation manners

[0032] To make the objectives, technical solutions and advantages of the present utility model clearer, the technical solutions in the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the present utility model. Apparently, the described embodiments are some but not all of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present utility model without making creative efforts belong to the scope of protection of the present utility model.

[0033] To facilitate the understanding of the connection structure, connection components and computer room temperature and humidity monitoring equipment provided by the present utility model, first, its application background will be introduced. As the core area for data storage, processing and transmission, the stability of the environment in the computer room is crucial. The temperature and humidity in the computer room are key factors affecting the performance, lifespan and data security of equipment. Therefore, it is particularly important to monitor and control the temperature and humidity in the computer room in real time.

[0034] In the related art, temperature and humidity detectors are generally fixedly installed on the wall using components such as bolts.

[0035] However, when using the above related technology, when it is necessary to repair and upgrade the monitoring equipment, it is often necessary to disassemble the fixed part. The disassembly and assembly process is relatively cumbersome, and the structure of the fixed part will become unstable after multiple disassembly operations.

[0036] Based on the above problems, the present utility model provides a connection structure, connection components and computer room temperature and humidity monitoring equipment, which have the advantages of convenient disassembly and assembly, and the structure of the fixed part will not become unstable after multiple disassembly operations.

[0037] The following will be combined with Figures 1 - 4 to describe the connection structure, connection components and computer room temperature and humidity monitoring equipment of the present utility model.

[0038] Refer to Figures 1 to 3, a connection structure, comprising a chute 10 and a limiting component 11 provided on a first component; wherein, one end of the chute 10 in the length direction is provided with an end opening, and a side opening is provided on the other side relative to the first component, and on both sides of the side opening of the chute 10, there are formed clamping edges 100 extending towards the inside of the chute 10; the limiting component 11 includes a limiting portion 110 and an elastic member 111, the elastic member 111 is elastically connected to the limiting portion 110, and driven by the elastic member 111, at least part of the limiting portion 110 is located in the chute 10 to form a stop, and the limiting portion 110 can slide to be misaligned with the chute 10.

[0039] In a specific application scenario, for example, when connecting a temperature and humidity detector 31, a convex block 20 adapted to the cross-sectional shape of the chute 10 can be connected to the temperature and humidity detector 31. During installation, first, a connection component such as a bolt is used to fixedly connect the first component to the wall, and then the convex block 20 on the temperature and humidity detector 31 is inserted from the end opening of the chute 10. At the same time, the limiting portion 110 is pressed, and the limiting portion 110 slides to be misaligned with the chute 10, so that the convex block 20 can be smoothly inserted into the chute 10. And under the constraint of the clamping edges 100, the convex block 20 can only slide along the length direction of the chute 10 and cannot escape from the chute 10. After the convex block 20 slides to a predetermined position, the limiting portion 110 is released, and driven by the elastic member 111, at least part of the limiting portion 110 enters the chute 10 to form a stop, preventing the convex block 20 from detaching from the end opening of the chute 10.

[0040] During disassembly, the limiting portion 110 is pressed to be misaligned with the chute 10, and then the temperature and humidity detector 31 is pulled in the direction of the opening end of the chute 10. The convex block 20 slides towards the opening end of the chute 10 and finally escapes from the opening end of the chute 10, completing the disassembly of the temperature and humidity detector 31. Compared with the related art, the disassembly and assembly of the temperature and humidity detector 31 are relatively convenient, and the first component does not need to be disassembled during the disassembly process, and the structural stability of the connection between the first component and the wall will not be affected.

[0041] In a specific embodiment of the present utility model, the chute 10 is provided as a T-shaped groove, which is formed on the first member and penetrates one side of the first member, forming an open end of the chute 10; a clamping groove 12 is formed on the first member, and the clamping groove 12 extends along the depth direction of the chute 10 and communicates with the chute 10, and the limiting portion 110 is slidably embedded in the clamping groove 12. The elastic force direction of the elastic member 111 is parallel to the extending direction of the clamping groove 12. Specifically, one end of the elastic member 111 is connected to the bottom of the clamping groove 12, and the other end is connected to the limiting portion 110. Under the elastic force of the elastic member 111, at least part of the limiting portion 110 can be located in the area where the clamping groove 12 and the chute 10 intersect, thereby forming a stop to prevent the convex block 20 from disengaging from the open end of the chute 10; and by pressing the limiting portion 110 to disengage the limiting portion 110 from the intersecting area of the clamping groove 12 and the chute 10, the limiting portion 110 is misaligned with the chute 10, and the convex block 20 can enter and exit the chute 10 normally.

[0042] In a specific embodiment of the present utility model, a through first groove 1100 and a second groove 1101 are provided on the limiting portion 110; wherein, the first groove 1100 penetrates both sides of the limiting portion 110 along the length direction of the chute 10, and the width of the first groove 1100 is not less than the width of the chute 10; the second groove 1101 is provided on the other side of the limiting portion 110 relative to the first member and corresponds to the side opening of the chute 10 in position, and the width of the second groove 1101 is not less than the width of the side opening of the chute 10; the first groove 1100 can correspond to the chute 10 as the limiting portion 110 slides, so that the limiting portion 110 is misaligned with the chute 10. When installing the temperature and humidity detector 31, the convex block 20 enters from the end opening of the chute 10 and passes through the first groove 1100 on the limiting portion 110 and is embedded in the chute 10; after the installation is completed, under the action of the elastic member 111, the limiting portion 110 is driven to slide, the first groove 1100 is misaligned with the chute, and a part of the limiting portion 110 is located in the chute 10 to form a stop to prevent the convex block 20 from disengaging from the end opening of the chute 10.

[0043] In a specific embodiment of the present utility model, the size of the first groove 1100 is the same as the size of the chute 10, the size of the second groove 1101 is the same as the size of the side opening of the chute 10, and the size of the limiting portion 110 is the same as the size of the clamping groove 12. When the first groove 1100 corresponds to the chute 10, the surface of the limiting portion 110 provided with the second groove 1101 is flush with the outer surface of the clamping edge 100 on the chute 10.

[0044] In a specific embodiment of the present utility model, the elastic member 111 can be a spring. One end of the spring is connected to the bottom surface of the card slot 12, and the other end is connected to the other side of the limiting portion 110 relative to the second slot 1101. Through the spring, an elastic connection between the limiting portion 110 and the first member is achieved. When the spring is in a relaxed state, the first slot 1100 on the limiting portion 110 is misaligned with the sliding slot 10, so that the limiting portion 110 forms a stop in the sliding slot 10. When the spring is in a compressed state, the first slot 1100 on the limiting portion 110 corresponds to the sliding slot 10. In addition, under the connection action of the spring, the limiting portion 110 can be prevented from completely disengaging from the card slot 12.

[0045] Specifically, a cylindrical receiving groove 13 is provided on the bottom surface of the card slot 12 at a position corresponding to the spring. The end of the spring is fixedly connected to the bottom surface of the receiving groove 13. When the spring is in a compressed state, the receiving groove 13 can provide a receiving space for the compressed spring, so that the other side of the limiting portion 110 relative to the second slot 1101 fits against the bottom surface of the card slot 12.

[0046] To improve the stability and smoothness of the sliding of the limiting portion 110, referring to Figure 2 and Figure 3 , a guide post 14 is fixedly connected to the other side of the limiting portion 110 relative to the second slot 1101. A guide hole 15 is provided at the bottom of the card slot 12 at a position corresponding to the guide post 14. The guide post 14 is slidably inserted into the guide hole 15. During the sliding process of the limiting portion 110, the inserted and matched guide post 14 and guide hole 15 can constrain and guide the sliding of the limiting portion 110, making the sliding of the limiting portion 110 more stable and smooth.

[0047] The guide post 14 is cylindrical and there are multiple guide posts 14, and the multiple guide posts 14 are symmetrically arranged around the center of the limiting portion 110. It can be understood that according to the shape of the limiting portion 110 and different actual requirements, the number and arrangement positions of the guide posts 14 will also be different, and the number and arrangement positions of the guide holes 15 can be adaptively adjusted based on the number and positions of the guide posts 14.

[0048] In this embodiment, four guide posts 14 can be provided. The four guide posts 14 are fixed at the four corners of the limiting portion 110. The guide posts 14 and the limiting portion 110 can be fixed by welding or integrally formed, and can be specifically selected according to actual requirements, and no specific limitation is made in this embodiment; correspondingly, four guide holes 15 are provided, and the four guide holes 15 are respectively located at the four corners of the bottom surface of the card slot 12. The guide holes 15 can be set as blind holes or through holes, and specifically need to be set according to the length of the guide posts 14 and the thickness of the first member.

[0049] Next, the connection assembly provided by the present utility model will be described. The connection assembly described below can be mutually corresponding and referred to the connection structure described above.

[0050] Refer to Figures 1 to 4 , a connecting component for connecting a first member and a second member; the connecting component includes the above-mentioned connecting structure provided on the first member and a bump 20 connected to the second member; wherein, the cross-sectional shape of the bump 20 is adapted to the cross-sectional shape of the sliding groove 10, and the bump 20 can be inserted into the sliding groove 10 from the end opening of the sliding groove 10 and slidably engaged with the sliding groove 10.

[0051] In order to improve the connection stability, on the first member, two sets of the above-mentioned connecting structures of the structure can be arranged side by side. Correspondingly, two sets of bumps 20 are connected side by side on the second connecting structure, and the two sets of bumps 20 are respectively connected to the connecting structures at the corresponding positions.

[0052] It should be noted that the above-mentioned connecting component can be used for, but is not limited to, the installation of the temperature and humidity detector 31. The embodiments of the present invention do not limit its application in other fields.

[0053] The following describes the computer room temperature and humidity monitoring device provided by the present invention. The computer room temperature and humidity monitoring device described below can be mutually corresponding and referred to the connecting structure and the connecting component described above.

[0054] Refer to Figures 1 to 4 , a computer room temperature and humidity monitoring device, including a fixing plate 30, a temperature and humidity detector 31, and the above-mentioned connecting component for connecting the fixing plate 30 and the temperature and humidity detector 31; wherein, the fixing plate 30 is formed as the above-mentioned first member, the above-mentioned connecting structure is provided on the fixing plate 30, the temperature and humidity detector 31 is formed as the above-mentioned second member, and the bump 20 is connected to the temperature and humidity detector 31.

[0055] Specifically, the sliding groove 10 and the clamping groove 12 of the connecting structure are opened on the plate surface of the fixing plate 30. Among them, the top of the sliding groove 10 passes through the top of the fixing plate 30, and the bottom extends to a position close to 2-3 cm from the bottom of the fixing plate 30; the limiting member 11 is installed in the clamping groove 12; the front surface of the temperature and humidity detector 31 is provided with components such as a display screen and buttons, and the bump 20 is connected to the back surface of the temperature and humidity detector 31. By connecting the bump 20 to the connecting structure, the connection of the temperature and humidity detector 31 on the fixing plate 30 is realized.

[0056] In a specific embodiment of the present invention, two sets of the above-mentioned connecting structures are arranged side by side on the fixing plate 30; two sets of bumps 20 are fixedly connected to the back surface of the temperature and humidity detector 31, and the two sets of bumps 20 are respectively engaged with the sliding grooves 10 at the corresponding positions.

[0057] In a specific embodiment of the present utility model, a plurality of heat dissipation through holes 300 are formed on the fixing plate 30. Specifically, the heat dissipation through holes 300 are strip-shaped holes, and the plurality of heat dissipation through holes 300 are arranged side by side between the two groups of chutes 10. During the working process, the temperature and humidity detector 31 can effectively dissipate heat through the heat dissipation through holes 300, which is beneficial to extending the service life of the temperature and humidity detector 31.

[0058] It can be understood that the heat dissipation through holes 300 include but are not limited to the structures or forms listed above, and other structures or forms of heat dissipation through holes 300 are equally applicable, and can be flexibly designed according to actual needs.

[0059] In a specific embodiment of the present utility model, fixing feet 32 are connected to opposite sides of the fixing plate 30. The fixing feet 32 are arranged at an angle with the fixing plate 30. One end of the fixing foot 32 away from the fixing plate 30 is connected to a mounting plate 33, and a positioning hole 330 is formed on the mounting plate 33. Specifically, the fixing feet 32 and the fixing plate 30, and the mounting plate 33 and the fixing feet 32 can be fixed by welding, or can be connected by connecting members such as bolts, or can be integrally formed, and can be specifically selected according to actual needs.

[0060] During installation, the mounting plate 33 is made to fit the wall, and bolts and other members are used to pass through the positioning hole 330 to connect the mounting plate 33 to the wall. The presence of the fixing feet 32 leaves a gap between the fixing plate 30 and the wall, ensuring the heat dissipation space of the temperature and humidity detector 31 and facilitating installation and disassembly.

[0061] It should be noted that, on the premise of no conflict, the technical features in the embodiments of the present utility model can be combined.

[0062] The innovative point of the present utility model lies in that when connecting the temperature and humidity detector 31, a convex block 20 with a cross-sectional shape adapted to that of the sliding groove 10 can be connected to the temperature and humidity detector 31. During installation, first, connect and fix the first component to the wall using connecting components such as bolts. Then, insert the convex block 20 on the temperature and humidity detector 31 into the sliding groove 10 from the end opening of the sliding groove 10. At the same time, press the limiting part 110, and the limiting part 110 slides and is misaligned with the sliding groove 10, enabling the convex block 20 to smoothly enter the sliding groove 10. And under the constraint of the clamping edge 100, the convex block 20 can only slide along the length direction of the sliding groove 10 and cannot escape from the sliding groove 10. After the convex block 20 slides to the predetermined position, release the limiting part 110. Driven by the elastic member 111, at least part of the limiting part 110 enters the sliding groove 10 to form a stop, preventing the convex block 20 from detaching from the end opening of the sliding groove 10. During disassembly, press the limiting part 110 to make it misaligned with the sliding groove 10, and then pull the temperature and humidity detector 31 in the direction of the opening end of the sliding groove 10. The convex block 20 slides towards the opening end of the sliding groove 10 and finally escapes from the opening end of the sliding groove 10, completing the disassembly of the temperature and humidity detector 31. Compared with the related art, the disassembly and assembly of the temperature and humidity detector 31 are more convenient, and the first component does not need to be disassembled during the disassembly process, and the structural stability of the connection between the first component and the wall will not be affected.

[0063] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present utility model and are not intended to limit them; although the present utility model has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present utility model.

Claims

1. A connection structure, characterized in that: include: A slide groove (10) and a limiting component (11) arranged on the first component; The slide groove (10) is provided with an end opening at one end along the length direction, and a side opening is provided at the other side relative to the first component; both sides of the side opening are formed into clamping edges (100) extending toward the inside of the slide groove (10); The limiting component (11) comprises a limiting portion (110) and an elastic member (111), wherein the elastic member (111) is elastically connected to the limiting portion (110); driven by the elastic member (111), at least a portion of the limiting portion (110) is located in the slide groove (10) to form a stop, and the limiting portion (110) can slide to be misaligned with the slide groove (10).

2. The connection structure according to claim 1, characterized in that: It also includes a clamping groove (12) arranged on the first component, the clamping groove (12) extending along the depth direction of the slide groove (10) and penetrating the slide groove (10), and the limiting portion (110) is slidably embedded in the clamping groove (12).

3. The connection structure according to claim 2, characterized in that: The limiting portion (110) is provided with a first groove (1100) and a second groove (1101) which are connected through each other; The first groove (1100) passes through both sides of the limiting portion (110) along the length direction of the slide groove (10) and has a width not less than the width of the slide groove (10); The second groove (1101) is arranged on the other side of the limiting portion (110) relative to the first member and corresponds to the side opening of the sliding groove (10), and the width of the second groove (1101) is not less than the width of the side opening; The first groove (1100) can correspond to the slide groove (10) as the limiting portion (110) slides, so that the limiting portion (110) and the slide groove (10) are misaligned.

4. The connection structure according to claim 3, characterized in that: The elastic member (111) comprises a spring; one end of the spring is connected to the bottom surface of the slot (12), and the other end is connected to the other side of the limiting portion (110) relative to the second slot (1101).

5. The connection structure according to claim 4, characterized in that: A columnar accommodating groove (13) is provided on the bottom surface of the clamping groove (12) at a position corresponding to the spring, and an end of the spring is fixedly connected to the bottom surface of the accommodating groove (13).

6. The connection structure according to claim 3, characterized in that: A guide column (14) is fixedly connected to the other side of the limiting portion (110) relative to the second groove (1101), and a guide hole (15) is provided at the bottom of the slot (12) corresponding to the position of the guide column (14), and the guide column (14) can be slidably inserted into the guide hole (15).

7. A connection assembly, characterized in that: Used to connect a first component and a second component; the connecting assembly comprises: a connecting structure according to any one of claims 1 to 6 arranged on the first component, and a protrusion (20) connected to the second component; The cross-sectional shape of the protrusion (20) is adapted to the cross-sectional shape of the slide groove (10) on the first component, and the protrusion (20) can be slidably engaged in the slide groove (10).

8. A temperature and humidity monitoring device for a computer room, characterized in that: It comprises a fixing plate (30), a temperature and humidity detector (31), and a connecting assembly as claimed in claim 7 for connecting the fixing plate (30) and the temperature and humidity detector (31); The fixing plate (30) is formed as the first component, and the connecting structure is arranged on the fixing plate (30); the temperature and humidity detector (31) is formed as the second component, and the protrusion (20) is arranged on the temperature and humidity detector (31).

9. The computer room temperature and humidity monitoring device according to claim 8, characterized in that: The fixing plate (30) is provided with a plurality of heat dissipation through holes (300).

10. The computer room temperature and humidity monitoring device according to claim 8, characterized in that: The fixing plate (30) is connected to fixing feet (32) on two opposite sides, and the fixing feet (32) are arranged at an angle with the fixing plate (30); one end of the fixing foot (32) away from the fixing plate (30) is connected to a mounting plate (33), and a positioning hole (330) is provided on the mounting plate (33).