Communication device

By using detachable connectors and a stepped recessed structure, combined with adjustment components, the design achieves highly convenient and stable connection of communication equipment, solving the problems of convenience and stability in the disassembly and assembly process of equipment in blockchain communication systems, and improving the reliability and flexibility of the system.

CN223942723UActive Publication Date: 2026-02-24CHINA MOBILE COMM CORP GUANGXI CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520387704.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2026-02-24
Estimated Expiration
2035-03-06

AI Technical Summary

Technical Problem

In blockchain communication systems, communication devices are difficult to assemble and disassemble with high convenience and connection stability, which affects the reliability and flexibility of the system.

Method used

By employing a detachable first connector and a second connector, combined with a stepped recessed structure and an adjustment component, a detachable and stable connection between the communication component and the fixed component is achieved. The stepped recessed structure and adjustment component ensure connection stability and convenient assembly/disassembly.

Benefits of technology

It achieves high convenience and connection stability in the disassembly and assembly process of communication equipment, improves the reliability and flexibility of the system, and is suitable for the automated execution and peer-to-peer communication of nodes in blockchain communication systems.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223942723U_ABST
    Figure CN223942723U_ABST
Patent Text Reader

Abstract

The embodiment of the utility model provides communication equipment. The communication device comprises a communication assembly, a fixing assembly and a connecting assembly located between the communication assembly and the fixing assembly in the first direction. The connecting assembly comprises a first connecting piece and a second connecting piece detachably connected to the first connecting piece, and the first connecting piece comprises a first concave part and a second concave part which are communicated with each other. The second connecting piece comprises a first sub-part and a second sub-part which are connected with each other in the first direction. The second sub-part is located in the second concave part, at least part of the first sub-part is located in the first concave part, the size of the second sub-part and the size of the second concave part in the second direction are both larger than the size of the first concave part in the second direction, and the second direction intersects with the first direction. According to the communication equipment provided by the embodiment of the utility model, the communication equipment has relatively high disassembly and assembly convenience and has certain connection stability at the same time.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the field of communication devices, and in particular relates to a communication device. Background Technology

[0002] A blockchain communication system is a new type of communication architecture that integrates blockchain technology. It utilizes the distributed ledger, encryption technology, consensus mechanism and other characteristics of blockchain to improve the security, reliability and efficiency of communication networks.

[0003] A blockchain communication system comprises multiple communication devices that communicate and connect with each other to form a complete blockchain communication system. To ensure the reliability of the blockchain communication system, it is inevitable that individual communication devices will need to be inspected, repaired, or replaced. Therefore, the communication devices as a whole must have both high ease of assembly and disassembly and a certain degree of connection stability. Utility Model Content

[0004] This utility model provides a communication device that offers both high ease of assembly and disassembly and a certain degree of connection stability.

[0005] This utility model provides a communication device. The communication device includes a communication component, a fixing component, and a connecting component located between the communication component and the fixing component along a first direction. The connecting component includes a first connector and a second connector detachably connected to the first connector. The first connector includes a first mounting surface and a connecting surface disposed opposite each other in the first direction. The connecting surface is recessed inward to form a first recess and a second recess that communicate with each other. The first recess is located on the side of the second recess closer to the connecting surface. The second connector includes a first sub-part and a second sub-part that communicate with each other in the first direction. A second mounting surface is provided on the side of the first sub-part away from the second sub-part. One side of the first mounting surface and the second mounting surface faces the communication component, and the other side faces the fixing component. The second sub-part is located within the second recess, and the first sub-part is at least partially located within the first recess. The dimensions of both the second sub-part and the second recess in the second direction are larger than the dimensions of the first recess in the second direction. The second direction intersects the first direction.

[0006] In one feasible implementation, the first recess and the second recess penetrate the first connector along one side of the third direction to form a connection port at one end of the first connector along the third direction, the size of the second connector in the third direction does not exceed the size of the first recess and the second recess in the third direction, and the third direction, the second direction and the first direction intersect each other; and / or, the size of the first recess and the second recess in the third direction is smaller than the size of the first connector in the third direction to form a blocking portion at one end of the first connector along the third direction, and the third direction, the second direction and the first direction intersect each other.

[0007] In one feasible implementation, the second mounting surface is connected to the communication component. The first sub-part includes a first portion connected to the second sub-part along a first direction and a second portion connected to the first portion and located away from the second sub-part along the first direction. The second mounting surface is located on the side of the second portion away from the first portion. The dimension of the second portion in the second direction is larger than the dimension of the first portion in the second direction.

[0008] In one feasible implementation, the communication device further includes an adjustment component connected between the fixed component and the connecting component along a first direction, the extension dimension of the adjustment component in the first direction being adjustable to adjust the distance between the connecting component and the fixed component.

[0009] In one feasible implementation, the adjustment assembly includes a first adjustment member connected to the fixed assembly and a second adjustment member connected to the connecting assembly, with the first adjustment member interconnected with the fixed assembly. The first adjustment member is rotatably configured to rotate around the fixed assembly in a third-dimensional direction, the second adjustment member is rotatably configured to rotate around the connecting assembly in a third-dimensional direction, and the first and second adjustment members are rotatably configured to rotate around the fixed assembly in a third-dimensional direction. The third direction, the second direction, and the first direction intersect each other.

[0010] In one feasible implementation, a rotating shaft is provided at one end of the first adjusting member connected to the second adjusting member, and the second adjusting member is rotatably connected to the rotating shaft. The adjusting assembly also includes a locking member, and the second adjusting member is provided with a locking hole along the radial direction of the rotating shaft. The locking member is at least partially located inside the locking hole and moves radially along the rotating shaft, and the locking member is capable of abutting against the rotating shaft along the radial direction of the rotating shaft.

[0011] In one feasible implementation, the fixing component includes a fixing wall and a protective wall connected to the periphery of the fixing wall in a first direction. The fixing wall and the protective wall enclose a protective cavity, and an adjusting component is connected to the fixing wall. The maximum extension dimension of the adjusting component in the first direction is greater than the extension dimension of the protective wall in the first direction, and the minimum extension dimension of the adjusting component in the first direction is less than the extension dimension of the protective wall in the first direction.

[0012] In one feasible implementation, the communication component includes a housing and a device body. A receiving cavity is formed inside the housing, and the device body is located inside the receiving cavity and spaced apart from a sidewall of the receiving cavity. The communication device also includes a heat dissipation assembly, which includes a heat sink located between the device body and the sidewall of the receiving cavity. The projection of the heat sink in a second direction at least partially overlaps the projection of the device body in the second direction.

[0013] In one feasible implementation, the heat dissipation assembly further includes a movable member located between the device body and the sidewall of the receiving cavity, the movable member being connected to the housing, and the heat dissipation component being connected to the movable member. The movable member moves along a second direction and / or a third direction to drive the heat dissipation component to move relative to the device body, wherein the third direction, the second direction, and the first direction intersect each other.

[0014] In one feasible implementation, the moving component includes a flexible component, and the heat dissipation assembly further includes a plurality of driving components spaced apart in a first direction between the device body and the sidewall of the receiving cavity. All driving components are connected to the housing, and the flexible component is circumferentially positioned in the first direction on the side opposite to the device body from the driving components. The driving components drive the flexible component and the heat dissipation component to reciprocate in a third direction.

[0015] In the communication device provided in this application embodiment, the communication component, as the core structural component of the communication device, mainly realizes the communication function of the communication device; the fixing component provides a stable and reliable position for the installation of the communication component; and the connecting component is connected to both the communication component and the fixing component, realizing a detachable connection between the communication component and the fixing component. Specifically, the connecting component includes a detachably connected first connecting member and a second connecting member, one of which is connected to the communication component, and the other is connected to the fixing component. The first connecting member includes a first recess and a second recess that are interconnected, and the second connecting member includes a first sub-part and a second sub-part that are interconnected, with the second sub-part located within the second recess, and at least a portion of the first sub-part located within the first recess. By utilizing the plug-in cooperation between the first sub-part and the first recess, and the second sub-part and the second recess, the connection and disassembly between the first connecting member and the second connecting member can be realized easily and efficiently, thereby realizing the connection and disassembly between the communication component and the fixing component. Furthermore, the extension dimensions of the second sub-part and the second recess in the second direction are both greater than the extension dimension of the first recess in the second direction. A stepped recess structure is formed at the adjacent positions between the first recess and the second recess. When the second sub-part is inside the second recess, the two side surfaces of the second sub-part in the first direction are restricted inside the second recess. The second sub-part cannot slide directly out of the first recess along the first direction, thereby restricting the relative position between the second sub-part and the second recess, and further restricting the relative position between the first connector and the second connector in the first direction, thereby improving the connection stability between the communication component and the fixed component. Attached Figure Description

[0016] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments of this utility model will be briefly introduced below. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1This is a first structural schematic diagram of a communication device provided in an embodiment of the present utility model;

[0018] Figure 2 This is a schematic diagram of the structure of an adjustment component and a first connector in a communication device provided by an embodiment of the present invention;

[0019] Figure 3 This is a schematic diagram of the structure of a communication component and a second connector in a communication device provided by an embodiment of this utility model;

[0020] Figure 4 This is a schematic diagram of the second structure of a communication device provided in an embodiment of the present utility model;

[0021] Figure 5 This is a schematic diagram of the structure of a communication component and a heat dissipation component in a communication device provided by an embodiment of this utility model.

[0022] Marker explanation:

[0023] 10. Communication components; 11. Housing; 111. Enclosure; 12. Equipment body;

[0024] 20. Fixing component; 21. Fixing wall; 22. Protective wall;

[0025] 30. Connecting component; 31. First connector; 311. First recess; 312. Second recess; 313. Connecting port; 314. Blocking part; 32. Second connector; 321. First sub-part; 3211. First portion; 3212. Second portion; 322. Second sub-part;

[0026] 40. Adjustment assembly; 41. First adjusting component; 411. Rotating shaft; 42. Second adjusting component; 43. Locking component;

[0027] 50. Heat dissipation assembly; 51. Heat sink; 52. Moving parts; 53. Driving parts;

[0028] M1, first mounting surface; M2, connecting surface; M3, second mounting surface;

[0029] X, first direction; Y, second direction; Z, third direction.

[0030] In the accompanying drawings, the same parts use the same reference numerals. The drawings are not drawn to scale. Detailed Implementation

[0031] The features and exemplary embodiments of various aspects of this utility model will now be described in detail. To make the objectives, technical solutions, and advantages of this utility model clearer, the following description, in conjunction with the accompanying drawings and specific embodiments, will provide a further detailed description. It should be understood that the specific embodiments described herein are intended only to explain this utility model and not to limit it. For those skilled in the art, this utility model can be implemented without some of these specific details. The following description of the embodiments is merely to provide a better understanding of this utility model by illustrating examples of it.

[0032] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising..." does not exclude the presence of additional identical elements in the process, method, article, or apparatus that includes said element.

[0033] A blockchain communication system is a new type of communication architecture that integrates blockchain technology. It utilizes the distributed ledger, encryption technology, consensus mechanism and other characteristics of blockchain to improve the security, reliability and efficiency of communication networks.

[0034] A blockchain communication system comprises multiple communication devices that communicate and connect with each other to form a complete blockchain communication system. To ensure the reliability of the blockchain communication system, it is inevitable that individual communication devices will need to be inspected, repaired, or replaced. This requires the communication devices to have high ease of disassembly and assembly while ensuring the stability of the connection and installation, thereby improving the flexibility of the communication devices during use.

[0035] In view of this, firstly, please refer to Figures 1 to 3This application provides a communication device. The communication device includes a communication component 10, a fixing component 20, and a connecting component 30 located between the communication component 10 and the fixing component 20 along a first direction X. The connecting component 30 includes a first connector 31 and a second connector 32 detachably connected to the first connector 31. The first connector 31 includes a first mounting surface M1 and a connecting surface M2 disposed opposite each other in the first direction X. The connecting surface M2 is recessed inward to form a first recess 311 and a second recess 312 that communicate with each other. The first recess 311 is located on the side of the second recess 312 closer to the connecting surface M2. The second connector 32 includes a first sub-part 321 and a second sub-part 322 that communicate with each other in the first direction X. A second mounting surface M3 is provided on the side of the first sub-part 321 away from the second sub-part 322. One of the first mounting surface M1 and the second mounting surface M3 faces the communication component 10, and the other faces the fixing component 20. The second sub-part 322 is located within the second recess 312, and the first sub-part 321 is at least partially located within the first recess 311. The dimensions of the second sub-part 322 and the second recess 312 in the second direction Y are both greater than the dimensions of the first recess 311 in the second direction Y. The second direction Y intersects with the first direction X.

[0036] The communication device provided in this application embodiment can be applied to a blockchain service system, acting as a node in the blockchain network to participate in the execution of smart contracts, thereby improving the system's automation level. Alternatively, the communication device can directly communicate point-to-point with other devices to improve communication efficiency and reduce communication latency. Alternatively, the communication device provided in this application embodiment can also be used in other wired or wireless communication systems, the specific application depending on the communication component 10 within the communication device.

[0037] Specifically, the communication device includes a communication component 10, a fixing component 20, and a connecting component 30 connecting the communication component 10 and the fixing component 20. The communication component 10, as the core structural component of the communication device, mainly realizes the communication function of the communication device; the fixing component 20 provides a stable and reliable position for the installation of the communication component 10; the connecting component 30 is connected to both the communication component 10 and the fixing component 20, thereby connecting and fixing the communication component 10 to the fixing component 20 to complete the installation and fixation of the communication component 10.

[0038] The connecting assembly 30 includes a detachably connected first connector 31 and a second connector 32. One of the first connector 31 and the second connector 32 is connected to the communication assembly 10, and the other is connected to the fixing assembly 20. When the first connector 31 and the second connector 32 are connected, the communication assembly 10 and the fixing assembly 20 form an integral structure to facilitate the normal functioning of the communication device. When the first connector 31 and the second connector 32 are separated, the communication assembly 10 and the fixing assembly 20 form a separate structure to facilitate inspection or maintenance of the communication assembly 10 by technicians.

[0039] In this embodiment, for ease of description and introduction, the first connector 31 is connected to the fixed component 20, and the second connector 32 is connected to the communication component 10 as an example. In other embodiments, the first connector 31 may also be connected to the communication component 10, and the second connector 32 may be connected to the fixed component 20.

[0040] The first connector 31 includes a first mounting surface M1 and a connecting surface M2 disposed opposite to each other in the first direction X. The first mounting surface M1 faces the fixing component 20, and the connecting surface M2 faces the communication component 10. The connecting surface M2 is recessed inward to form a first recess 311 and a second recess 312 that are interconnected. The first recess 311 is located on the side of the second recess 312 closer to the connecting surface M2. The second connector 32 includes a first sub-part 321 and a second sub-part 322 that are interconnected in the first direction X. The second sub-part 322 is located within the second recess 312, and at least a portion of the first sub-part 321 is located within the first recess 311. By utilizing the plug-in engagement between the first sub-part 321 and the first recess 311, and the second sub-part 322 and the second recess 312, the connection and disassembly between the first connector 31 and the second connector 32 can be achieved easily and efficiently, thereby realizing the connection and disassembly between the communication component 10 and the fixing component 20.

[0041] Furthermore, to limit the relative positions of the first connector 31 and the second connector 32 in the first direction X and improve the connection stability between the communication component 10 and the fixing component 20, the extension dimensions of the second sub-part 322 and the second recess 312 in the second direction Y are both greater than the extension dimension of the first recess 311 in the second direction Y. That is, a stepped recess structure is formed at adjacent positions between the first recess 311 and the second recess 312. When the second sub-part 322 is inside the second recess 312, both side surfaces of the second sub-part 322 in the first direction X are confined inside the second recess 312, preventing the second sub-part 322 from sliding directly out of the first recess 311 along the first direction X, thereby limiting the relative position between the second sub-part 322 and the second recess 312. Through the above arrangement, on the one hand, the relative arrangement of the first connector 31 and the second connector 32 in the first direction X can be limited; on the other hand, it can also provide a certain degree of guidance for the sliding of the first connector 31 and the second connector 32 along the third direction Z.

[0042] Preferably, the second sub-part 322 is disposed in abutment with the two side surfaces of the second recess 312 in the first direction X, or the second sub-part 322 and the second recess 312 form an interference fit in the first direction X.

[0043] The first sub-part 321 may be partially located inside the first recess 311, so that the communication component 10 and the first connector 31 are spaced apart in the first direction X, reducing the contact probability between the communication component 10 and the first connector 31 and reducing the wear of the first connector 31 on the communication component 10. Alternatively, the first sub-part 321 may be entirely located inside the first recess 311, with the communication component 10 and the first connector 31 in contact in the first direction X. When the communication component 10 is connected to the fixing component 20, the first connector 31 can provide a certain support for the communication component 10 on one side in the first direction X, thereby improving the support stability of the communication component 10.

[0044] Regarding the relative positional relationship between the first recess 311 and the second recess 312 in the second direction Y, the first recess 311 can be positioned at the middle of the second recess 312 in the second direction Y, forming a T-shaped structure. Correspondingly, the first sub-part 321 is also connected to the middle of the second sub-part 322 along the second direction Y, thereby achieving a connection between the first connector 31 and the second connector 32. Alternatively, the first recess 311 can be positioned at the edge of the second recess 312 in the second direction Y, forming an L-shaped structure. Correspondingly, the first sub-part 321 is also connected to the upper edge of the second sub-part 322 along the second direction Y, thereby achieving a connection between the first connector 31 and the second connector 32.

[0045] In summary, in the communication device provided in this application embodiment, the communication component 10, as the core structural component of the communication device, mainly realizes the communication function of the communication device; the fixing component 20 provides a stable and reliable position for the installation of the communication component 10; and the connecting component 30 is connected to both the communication component 10 and the fixing component 20, realizing a detachable connection between the communication component 10 and the fixing component 20. Specifically, the connecting component 30 includes a first connecting member 31 and a second connecting member 32 that are detachably connected. One of the first connecting member 31 and the second connecting member 32 is connected to the communication component 10, and the other is connected to the fixing component 20. The first connecting member 31 includes a first recess 311 and a second recess 312 that are interconnected. The second connecting member 32 includes a first sub-part 321 and a second sub-part 322 that are interconnected. The second sub-part 322 is located within the second recess 312, and at least a portion of the first sub-part 321 is located within the first recess 311. By utilizing the insertion and engagement between the first sub-part 321 and the first recess 311, as well as the second sub-part 322 and the second recess 312, the connection and disassembly between the first connector 31 and the second connector 32 can be achieved easily and efficiently, thereby realizing the connection and disassembly between the communication component 10 and the fixing component 20. Furthermore, the extension dimensions of the second sub-part 322 and the second recess 312 in the second direction Y are both greater than the extension dimension of the first recess 311 in the second direction Y. A stepped recess structure is formed at the adjacent positions between the first recess 311 and the second recess 312. When the second sub-part 322 is inside the second recess 312, the two side surfaces of the second sub-part 322 in the first direction X are restricted inside the second recess 312. The second sub-part 322 cannot slide directly out of the first recess 311 along the first direction X, thereby restricting the relative position between the second sub-part 322 and the second recess 312, and further restricting the relative position between the first connector 31 and the second connector 32 in the first direction X, thereby improving the connection stability between the communication component 10 and the fixing component 20.

[0046] In some embodiments, the first recess 311 and the second recess 312 pass through the first connector 31 on one side along the third direction Z to form a connection port 313 at one end of the first connector 31 along the third direction Z. The size of the second connector 32 in the third direction Z does not exceed the size of the first recess 311 and the second recess 312 in the third direction Z. The third direction Z, the second direction Y, and the first direction X intersect each other.

[0047] To facilitate the insertion of the second connector 32 and the first connector 31, the first recess 311 and the second recess 312 penetrate the first connector 31 on one side in the third direction Z. The first connector 31 forms a connection port 313 at the positions of the first recess 311 and the second recess 312 on the surface of the first connector 31 along the third direction Z. The second sub-part 322 and the first sub-part 321 correspond to the second recess 312 and the first recess 311 at the connection port 313. Then, the second sub-part 322 and the first sub-part 321 slide along the third direction Z inside the second recess 312 and the first recess 311 to realize the connection between the second connector 32 and the first connector 31, thereby realizing the connection between the communication component 10 and the fixed component 20.

[0048] Furthermore, in order to reduce the probability of the second connector 32 coming into contact with the external structure and causing the communication device to shake, the size of the second connector 32 in the third direction Z is set to not exceed the size of the first recess 311 and the second recess 312 in the third direction Z. When the second connector 32 is connected to the first connector 31, the second connector 32 can be located inside the first connector 31 along the third direction Z. The first connector 31 forms a protective enclosure for the second connector 32, thereby reducing the probability of the external structure coming into contact with the second connector 32.

[0049] In some embodiments, the connecting surface M2 is recessed inward to form a connecting notch that communicates with both the first recess 311 and the second recess 312. The projected area of ​​the second connector 32 in the first direction X is smaller than the projected area of ​​the connecting notch in the first direction X. At least a portion of the second sub-part 322 and the first sub-part 321 can correspond to the second recess 312 and the first recess 311 at the connecting notch, so as to connect the second connector 32 to the first connector 31.

[0050] In some embodiments, the dimensions of the first recess 311 and the second recess 312 in the third direction Z are smaller than the dimensions of the first connector 31 in the third direction Z, so that a blocking portion 314 is formed at one end of the first connector 31 along the third direction Z, and the third direction Z, the second direction Y and the first direction X intersect each other.

[0051] To limit the sliding of at least a portion of the second sub-part 322 and the first sub-part 321 within the second recess 312 and the first recess 311, and to facilitate determining the relative position between the second connector 32 and the first connector 31, the dimensions of the first recess 311 and the second recess 312 in the third direction Z are set to be smaller than the dimension of the first connector 31 in the third direction Z, thereby forming a blocking portion 314 at one end of the first recess 311 and the second recess 312 along the third direction Z. When the second sub-part 322 and the first sub-part 321 are partially inside the second recess 312 and the first recess 311, the second sub-part 322 and the first sub-part 321 are in contact with the blocking portion 314 in the third direction Z, thereby limiting the second sub-part 322 and the first sub-part 321 and ensuring the relative positional relationship between the first connector 31 and the second connector 32.

[0052] In some embodiments, the third direction Z is set to the vertical direction, the connection port 313 is located at the upper end along the vertical direction, and the blocking part 314 is located at the lower end along the vertical direction. When installing the communication component 10, technicians can use the gravity of the communication component 10 for assisted installation. After the communication component 10 is installed, its gravity allows it to contact the blocking part 314, thereby improving the stability of the communication component 10 connected to the fixing component 20.

[0053] In some embodiments, the second mounting surface M3 is connected to the communication component 10. The first sub-part 321 includes a first portion 3211 connected to the second sub-part 322 along a first direction X and a second portion 3212 connected to the first portion 3211 along the first direction X away from the second sub-part 322. The second mounting surface M3 is located on the side of the second portion 3212 away from the first portion 3211. The dimension of the second portion 3212 in the second direction Y is larger than the dimension of the first portion 3211 in the second direction Y.

[0054] To improve the connection stability between the second connector 32 and the communication component 10, the first sub-part 321 includes a first part 3211 and a second part 3212 that are connected to each other. The first part 3211 is connected to the second sub-part 322, and the second part 3212 is connected to the communication component 10. The size of the second part 3212 in the second direction Y is larger than the size of the first part 3211 in the second direction Y. The area of ​​the surface of the second part 3212 facing the communication component 10 is larger than the area of ​​the surface of the first part 3211 facing the communication component 10. By increasing the size of the second part 3212 in the second direction Y, the connection area M2 between the second connector 32 and the communication component 10 can be increased, thereby improving the connection stability between the second connector 32 and the communication component 10.

[0055] In some embodiments, the first connector 31 is provided with a plurality of first recesses 311 and second recesses 312, and the second connector 32 is provided with a plurality of second connectors. The plurality of second connectors 32 correspond one-to-one with the plurality of first recesses 311 and second recesses 312 to improve the connection stability between the communication component 10 and the first connector 31.

[0056] In some embodiments, the communication device further includes an adjustment component 40 connected between the fixed component 20 and the connecting component 30 along a first direction X, wherein the extension dimension of the adjustment component 40 in the first direction X is adjustable to adjust the distance between the connecting component 30 and the fixed component 20.

[0057] When communication equipment needs to be located in areas with limited space, an adjustment component 40 is provided between the fixing component 20 and the connecting component 30 to facilitate the connection between the first connector 31 and the second connector 32 and to facilitate the installation and fixation of the communication component 10. The adjustment component 40 can adjust the distance between the connecting component 30 and the fixing component 20. When the communication component 10 needs to be installed, the adjustment component 40 widens the distance between the connecting component 30 and the fixing component 20, so that the connecting component 30 is relatively far away from the fixing component 20, thereby creating a certain installation space. After the communication component 10 is installed, the adjustment component 40 narrows the distance between the connecting component 30 and the fixing component 20, so that the connecting component 30 is relatively close to the fixing component 20, thereby reducing the distance between the connecting component 30 and the fixing component 20 and reducing the probability of relative wobbling of the communication component 10 relative to the fixing component 20.

[0058] In some embodiments, the adjustment assembly 40 includes a first adjustment member 41 connected to the fixing assembly 20 and a second adjustment member 42 connected to the connecting assembly 30, with the first adjustment member 41 interconnected with the second adjustment member 42. The first adjustment member 41 is rotatably disposed around the fixing assembly 20 in the third direction Z, and the second adjustment member 42 is rotatably disposed around the connecting assembly 30 in the third direction Z. The third direction Z, the second direction Y, and the first direction X intersect each other.

[0059] To ensure the positional stability of the connecting component 30 relative to the fixed component 20, when the adjusting component 40 adjusts the distance between the connecting component 30 and the fixed component 20, the connecting component 30 only translates relative to the fixed component 20 in the first direction X. Similarly, when the communication component 10 is connected to the connecting component 30, it also only translates relative to the fixed component 20 in the first direction X to ensure the positional stability of the communication component 10.

[0060] The adjustment assembly 40 includes a first adjustment member 41 and a second adjustment member 42 that are rotatably connected in the Z-direction around the ring. During the relative rotation of the first adjustment member 41 and the second adjustment member 42, the included angle between the first adjustment member 41 and the second adjustment member 42 changes.

[0061] When the angle between the first adjusting member 41 and the second adjusting member 42 increases, the distance between the ends of the first adjusting member 41 and the second adjusting member 42 that are farther apart in the first direction X increases. Since the ends of the first adjusting member 41 and the second adjusting member 42 that are farther apart are respectively connected to the fixing component 20 and the connecting component 30, the distance between the fixing component 20 and the connecting component 30 in the first direction X increases, thereby increasing the distance between the communication component 10 and the fixing component 20 in the first direction X. When the angle between the first adjusting member 41 and the second adjusting member 42 decreases, the distance between the ends of the first adjusting member 41 and the second adjusting member 42 that are farther apart in the first direction X decreases, the distance between the fixing component 20 and the connecting component 30 in the first direction X decreases, thereby decreasing the distance between the communication component 10 and the fixing component 20 in the first direction X.

[0062] To ensure the smooth rotation of the first adjusting member 41 and the second adjusting member 42, the first adjusting member 41 is also circumferentially rotated in the Z-direction with the fixed component 20, and the second adjusting member 42 is also circumferentially rotated in the Z-direction with the connecting component 30, so as to ensure the smooth adjustment of the adjusting component 40.

[0063] In some embodiments, a rotating shaft 411 is provided at one end of the first adjusting member 41 and the second adjusting member 42, and the second adjusting member 42 is rotatably connected to the rotating shaft 411. The adjusting assembly 40 also includes a locking member 43, the second adjusting member 42 is provided with a locking hole in the radial direction of the rotating shaft 411, the locking member 43 is at least partially located inside the locking hole and moves radially along the rotating shaft 411, and the locking member 43 is capable of abutting against the rotating shaft 411 in the radial direction of the rotating shaft 411.

[0064] To ensure convenient and reliable locking of the adjustment assembly 40, the rotation between the first adjusting member 41 and the second adjusting member 42 is locked, thereby achieving overall locking of the adjustment assembly 40. The rotational connection between the first adjusting member 41 and the second adjusting member 42 is located at the center of the adjustment assembly 40. The locking member 43 locks the first adjusting member 41 and the second adjusting member 42, transmitting the locking force between the first adjusting member 41 and the fixing assembly 20, and between the second adjusting member 42 and the connecting assembly 30, thus reliably locking the adjustment assembly 40.

[0065] The second adjusting member 42 is sleeved around the rotating shaft 411 and rotates in the Z-direction around it. The second adjusting member 42 has a locking hole along the radial direction of the rotating shaft 411. At least a portion of the locking member 43 is located inside the locking hole and slides radially along the rotating shaft 411. When the locking member 43 is in contact with the rotating shaft 411, the friction between the locking member 43 and the rotating shaft 411 restricts the relative rotation between the second adjusting member 42 and the rotating shaft 411, thereby locking and fixing the first adjusting member 41 and the second adjusting member 42. When the locking member 43 disengages from the rotating shaft 411, the second adjusting member 42 can rotate relative to the rotating shaft 411, thereby rotating relative to the first adjusting member 41 and adjusting the distance between the connecting assembly 30 and the fixing assembly 20.

[0066] For example, the locking member 43 can be a screw or bolt, and the locking hole can be a threaded hole. When it is necessary to lock the first adjusting member 41 and the second adjusting member 42, the screw or bolt is inserted into the threaded hole and contacts the rotating shaft 411. When it is necessary to rotate the first adjusting member 41 and the second adjusting member 42, the screw or bolt is suspended out of the threaded hole and disengages from the rotating shaft 411.

[0067] In some embodiments, two sets of first adjusting members 41 and second adjusting members 42 are provided, and the two sets of first adjusting members 41 and second adjusting members 42 are mirror images of each other. The two sets of first adjusting members 41 and second adjusting members 42 jointly adjust the distance between the connecting component 30 and the fixing component 20 to improve the connection stability and adjustment stability between the connecting component 30 and the fixing component 20.

[0068] In some embodiments, the first adjusting member 41 and the second adjusting member 42 may also be configured to slide along the first direction X to adjust the distance between the fixing component 20 and the connecting component 30.

[0069] In some embodiments, the fixing component 20 includes a fixing wall 21 and a protective wall 22 connected around the periphery of the fixing wall 21 in the first direction X. The fixing wall 21 and the protective wall 22 enclose a protective cavity, and the adjusting component 40 is connected to the fixing wall 21. The maximum extension dimension of the adjusting component 40 in the first direction X is greater than the extension dimension of the protective wall 22 in the first direction X, and the minimum extension dimension of the adjusting component 40 in the first direction X is less than the extension dimension of the protective wall 22 in the first direction X.

[0070] In order to protect the communication component 10 and reduce the damage to the communication component 10 caused by external structures, the fixing component 20 includes a fixing wall 21 and a protective wall 22 connected to the periphery of the fixing wall 21 in the first direction X. The fixing wall 21 and the protective wall 22 enclose a protective cavity, and the communication component 10 is located inside the protective cavity.

[0071] Meanwhile, in order to reduce the impact of the protective wall 22 on the installation of the communication component 10, the maximum extension dimension of the adjusting component 40 in the first direction X is greater than the extension dimension of the protective wall 22 in the first direction X. When it is necessary to inspect, repair or install the communication component 10, the extension dimension of the adjusting component 40 in the first direction X is increased so that the communication component 10 is located outside the protective cavity, which is convenient for technicians to operate.

[0072] The minimum extension dimension of the adjustment component 40 in the first direction X is smaller than the extension dimension of the protective wall 22 in the first direction X. Under normal circumstances, the communication component 10 is located inside the protective cavity to ensure that the protective wall 22 provides a certain degree of protection for the communication component 10.

[0073] In some embodiments, please refer to Figures 4 to 5 The communication component 10 includes a housing 11 and a device body 12. A receiving cavity is formed inside the housing 11, and the device body 12 is located inside the receiving cavity and spaced apart from the sidewall of the receiving cavity. The communication device also includes a heat dissipation component 50, which includes a heat sink 51 located between the device body 12 and the sidewall of the receiving cavity. The projection of the heat sink 51 in the second direction Y at least partially overlaps with the projection of the device body 12 in the second direction Y.

[0074] The communication component 10 includes a housing 11 and a device body 12 located inside the housing 11. The housing 11 provides initial protection for the device body 12. As the core component of the communication device, the device body 12 inevitably generates heat during operation. When the temperature of the device body 12 rises, it will affect the normal operating performance of the device body 12. Therefore, a gap is created between the device body 12 and the cavity sidewall of the housing 11 to facilitate heat flow and rotation.

[0075] Furthermore, a heat sink 51 is provided between the device body 12 and the cavity sidewall of the receiving cavity. The heat sink 51 can dissipate the heat generated by the device body 12 during operation, thereby reducing the temperature of the device body 12. To ensure the heat dissipation efficiency of the heat sink 51, the heat sink 51 and the device body 12 are at least partially overlapped in the second direction Y. That is, the heat sink 51 is located on the periphery of the device body 12, and the heat sink 51 can directly correspond to the device body 12 to dissipate the heat generated by the device body 12.

[0076] In some embodiments, the heat sink 51 can be a cooling fan that blows air onto the device body 12 to dissipate heat through air cooling. Alternatively, the heat sink 51 can be a cold water pipe circulating cold water to dissipate heat from the device body 12 through water cooling.

[0077] In some embodiments, the heat dissipation assembly 50 further includes a movable member 52 located between the device body 12 and the sidewall of the receiving cavity. The movable member 52 is connected to the housing 11, and the heat dissipation member 51 is connected to the movable member 52. The movable member 52 moves along the second direction Y and / or the third direction Z to drive the heat dissipation member 51 to move relative to the device body 12. The third direction Z, the second direction Y, and the first direction X intersect each other.

[0078] In order to enable the heat sink 51 to dissipate heat from all sides of the device body 12, a movable member 52 is provided between the device body 12 and the side wall of the receiving cavity. The heat sink 51 is connected to the movable member 52. The movable member 52 moves along the second direction Y and / or the third direction Z, thereby driving the heat sink 51 to move relative to the device body 12, so that the heat sink 51 can correspond to different positions of the device body 12 and dissipate heat from different positions of the device body 12, thereby improving the heat dissipation efficiency of the device body 12.

[0079] In some embodiments, the movable member 52 includes a flexible member, and the heat dissipation assembly 50 further includes a plurality of driving members 53 spaced apart in a first direction X between the device body 12 and the sidewall of the receiving cavity. All driving members 53 are connected to the housing 11, and the flexible member is arranged in a first direction X around the side opposite to the device body 12 from the driving members 53. The driving members 53 drive the flexible member and the heat dissipation assembly 51 to reciprocate in a third direction Z.

[0080] To reduce the probability of damage to the heat sink 51 caused by the moving part 52, the heat sink 51 is connected to the flexible part. The flexibility of the flexible part reduces the damage to the heat sink 51 caused by the moving part 52. Furthermore, the heat dissipation assembly 50 also includes a driving part 53, which drives the flexible part to reciprocate along the third direction Z, thereby causing the heat sink 51 to reciprocate along the third direction Z, achieving multi-position heat dissipation of the device body 12. Preferably, the third direction Z corresponds to the length direction of the device body 12, so that the heat sink 51 reciprocates along the length direction of the device body 12 for heat dissipation.

[0081] In some embodiments, the flexible element can be a belt, and the heat sink 51 is disposed on the belt. Further, to improve the heat dissipation efficiency of the heat dissipation assembly 50, multiple heat sinks 51 are provided, spaced apart on the belt. The driving element 53 is a motor, which drives the belt to reciprocate. Alternatively, the heat dissipation assembly 50 may also include a transmission structure, where the output of the motor transmits power to the transmission structure, driving the moving element 52 to reciprocate. Exemplarily, the transmission structure can be a gear and rack structure.

[0082] In some embodiments, the sidewall of the housing 11 is provided with a plurality of vent holes that connect the receiving cavity with the external environment, so that the external environment and the inside of the receiving cavity are interconnected to form a circulating airflow, so that the heat dissipation component 50 can dissipate heat from the device body 12.

[0083] In some embodiments, the receiving cavity forms an opening on one side along the first direction X, and the housing 11 includes a closure 111 capable of opening or closing the opening of the receiving cavity. The closure 111 includes an observation area, which includes a transparent region, and the projection of the observation area in the first direction X at least partially overlaps with the projection of the device body 12 in the first direction X.

[0084] An opening is provided on one side of the receiving cavity, allowing the device body 12 to be installed into the receiving cavity during the initial installation phase. The sealing member 111 can close the opening, providing all-around protection for the device body 12 from the housing 11. To facilitate observation of the device body 12 by technicians, an observation area is provided on the sealing member 111, which includes a transparent area, allowing technicians to observe the interior of the receiving cavity through the transparent area.

[0085] The above description is merely a specific embodiment of this utility model. Those skilled in the art will understand that, for the sake of convenience and brevity, the specific working processes of the systems, modules, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here. It should be understood that the protection scope of this utility model is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this utility model, and these modifications or substitutions should all be covered within the protection scope of this utility model.

Claims

1. A communication device, characterized in that, The system includes a communication component, a fixing component, and a connection component located between the communication component and the fixing component along a first direction, the connection component comprising: The first connector includes a first mounting surface and a connecting surface disposed opposite each other in the first direction. The connecting surface is recessed inward to form a first recess and a second recess that communicate with each other. The first recess is located on the side of the second recess that is close to the connecting surface. The second connector is detachably disposed from the first connector. The second connector includes a first sub-part and a second sub-part connected in the first direction. A second mounting surface is provided on the side of the first sub-part away from the second sub-part. One of the first mounting surface and the second mounting surface faces the communication component, and the other faces the fixing component. The second sub-part is located within the second recess, the first sub-part is at least partially located within the first recess, and the dimensions of the second sub-part and the second recess in the second direction are both greater than the dimensions of the first recess in the second direction, and the second direction intersects the first direction.

2. The communication device according to claim 1, characterized in that, The first recess and the second recess penetrate the first connector along one side of the third direction to form a connection port at one end of the first connector along the third direction. The size of the second connector in the third direction does not exceed the size of the first recess and the second recess in the third direction. The third direction, the second direction and the first direction intersect each other. And / or, the dimensions of the first recess and the second recess in the third direction are smaller than the dimensions of the first connector in the third direction to form a blocking portion at one end of the first connector along the third direction, wherein the third direction, the second direction, and the first direction intersect each other.

3. The communication device according to claim 1, characterized in that, The second mounting surface is connected to the communication component; the first sub-part includes a first portion connected to the second sub-part along the first direction and a second portion connected to the first portion on a side away from the second sub-part along the first direction, and the second mounting surface is located on the side of the second portion away from the first portion; The second part has a larger dimension in the second direction than the first part has a larger dimension in the second direction.

4. The communication device according to claim 1, characterized in that, It also includes an adjustment component connected between the fixing component and the connecting component along the first direction, the extension dimension of the adjustment component in the first direction being adjustable to adjust the distance between the connecting component and the fixing component.

5. The communication device according to claim 4, characterized in that, The adjustment assembly includes a first adjustment member connected to the fixed assembly and a second adjustment member connected to the connecting assembly, wherein the first adjustment member and the second adjustment member are interconnected. The first adjusting member is rotatably arranged around the fixed component in a third direction, the second adjusting member is rotatably arranged around the connecting component in the same third direction, and the first adjusting member and the second adjusting member are rotatably arranged around the same third direction. The third direction, the second direction, and the first direction intersect each other.

6. The communication device according to claim 5, characterized in that, The first adjusting member is connected to the second adjusting member at one end with a rotating shaft, and the second adjusting member is rotatably connected to the rotating shaft; The adjusting assembly further includes a locking member. The second adjusting member has a locking hole arranged radially along the rotating shaft. The locking member is at least partially located inside the locking hole and moves radially along the rotating shaft. The locking member is capable of abutting against the rotating shaft radially.

7. The communication device according to claim 4, characterized in that, The fixing component includes a fixing wall and a protective wall connected to the periphery of the fixing wall in the first direction. The fixing wall and the protective wall enclose a protective cavity. The adjusting component is connected to the fixing wall. The maximum extension dimension of the adjustment component in the first direction is greater than the extension dimension of the protective wall in the first direction, and the minimum extension dimension of the adjustment component in the first direction is less than the extension dimension of the protective wall in the first direction.

8. The communication device according to claim 1, characterized in that, The communication component includes a housing and a device body. The housing has an internal cavity, and the device body is located inside the cavity and spaced apart from the side wall of the cavity. The communication device further includes a heat dissipation assembly, which includes a heat sink. The heat sink is located between the device body and the side wall of the receiving cavity, and the projection of the heat sink in the second direction at least partially overlaps with the projection of the device body in the second direction.

9. The communication device according to claim 8, characterized in that, The heat dissipation assembly further includes a movable component located between the device body and the side wall of the receiving cavity, the movable component being connected to the housing, and the heat dissipation component being connected to the movable component; The movable component moves along the second direction and / or the third direction to drive the heat sink to move relative to the device body, wherein the third direction, the second direction, and the first direction intersect each other.

10. The communication device according to claim 9, characterized in that, The moving component includes a flexible component, and the heat dissipation assembly further includes a plurality of driving components that are spaced apart in the first direction between the device body and the side wall of the receiving cavity. The plurality of driving components are all connected to the housing, and the flexible component is circumferentially disposed in the first direction on the side of the plurality of driving components away from the device body. The driving component drives the flexible component and the heat dissipation component to reciprocate along the third direction.