An information transmission device and an electronic device

By using a combined design of alloy protective shell, heat sink and thermally conductive silicone in the gateway, the problem of poor protection performance of the existing gateway shell is solved, and the enhanced protection and heat dissipation effect of the gateway is achieved.

CN118921577BActive Publication Date: 2025-06-10SHENZHEN HUALU YUNCHUANG TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411120831.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-06-10
Estimated Expiration
2044-08-15

AI Technical Summary

Technical Problem

The existing gateway shell has poor protection performance and is easily damaged when falling or collided, resulting in damage to internal motor components and inability to transmit data normally.

Method used

An alloy protective case is used, and a gateway body is placed in the middle of the interior. There are heat dissipation ports and support frames on both sides. Multiple groups of heat dissipation fins are fixed on the support frame, and the gateway body is clamped and fixed through a spring mechanism, and heat dissipation is performed with thermally conductive silicone.

Benefits of technology

It effectively enhances the protection performance of the gateway to prevent damage caused by drop or collision. At the same time, the design of heat sink and thermal silicone ensures the normal heat dissipation and operation of the gateway.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical fields of information transmission devices and electronic devices, and specifically, an information transmission device and an electronic device include: an alloy protective shell, in the middle of the interior of the alloy protective shell, a gateway body is placed, heat dissipation openings are provided on both sides of the alloy protective shell, a support frame is arranged inside the heat dissipation openings, multiple groups of heat dissipation fins are fixed on the support frame, and the outer sides of the heat dissipation fins extend into the heat dissipation openings; and an alloy protective shell, a first telescopic groove is provided at the top of the frame of the alloy protective shell, a first spring is arranged in the first telescopic groove, the top of the first spring is connected to a telescopic frame, and a telescopic top cover is arranged at the top of the telescopic frame; The beneficial effect is that in the present invention proposed, first, by pulling the connecting plate outwards, the connecting plate drives the telescopic piece to extrude the second spring through the third spring at the bottom of the telescopic column, so that the telescopic piece contracts into the second telescopic groove.
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Description

Technical Field

[0001] The present invention relates to the technical fields of information transmission devices and electronic devices, and particularly to an information transmission device and an electronic device. Background Art

[0002] Information transmission devices and electronic devices are an indispensable part of modern communication and information technology. These devices and apparatuses achieve data transmission and exchange through various communication protocols and technologies (such as 4G, 5G, Wi-Fi, Bluetooth, NFC, etc.). With the development of technology, new devices and transmission methods are constantly emerging.

[0003] In the prior art, a gateway is a network device used to connect different networks or subnets and forward data between them. Gateways play a very important role in network communication. With the development of the Internet of Things, intelligent gateways have also become popular, and they can connect and manage various intelligent devices.

[0004] However, the existing gateway housing has poor protection performance. When the gateway accidentally falls or collides with other objects, the gateway housing is very likely to be damaged. Seriously, it may even cause damage to the motor components inside the gateway, resulting in the inability to transmit data information normally. Summary of the Invention

[0005] The purpose of the present invention is to provide an information transmission device and an electronic device to solve the problems raised in the above background art.

[0006] To achieve the above purpose, the present invention provides the following technical solutions: an alloy protective shell, in the middle of the interior of the alloy protective shell is placed a gateway body, on both sides of the alloy protective shell are provided heat dissipation openings, inside the heat dissipation openings are provided support frames, on the support frames are fixed multiple groups of heat dissipation fins, and the outer sides of the heat dissipation fins extend into the heat dissipation openings; and an alloy protective shell, on the top of the frame of the alloy protective shell is provided a first telescopic groove, in the first telescopic groove is provided a first spring, the top of the first spring is connected to a telescopic frame, and on the top of the telescopic frame is provided a telescopic top cover; at the bottom of the alloy protective shell are provided support feet.

[0007] Preferably, the first spring can pull the telescopic frame through contraction, so that the telescopic top cover provided on the top of the telescopic frame contracts according to the height of the gateway body, clamping the gateway body in the alloy protective shell to prevent the gateway body from shaking in the alloy protective shell.

[0008] Preferably, both the bottom of the alloy protective shell and the inner bottom of the telescopic top cover are provided with heat-conducting silica gel, and the two groups of heat-conducting silica gel are closely attached to the upper and lower surfaces of the gateway body, and the heat-conducting silica gel can conduct the heat dissipated by the gateway body to dissipate heat from the gateway body.

[0009] Preferably, support frames are arranged on both inner sides of the alloy protective case. Multiple groups of heat sinks are arranged on the support frames. Second telescopic grooves are formed on the inner sides of the heat sinks. Second springs are arranged inside the second telescopic grooves. The inner sides of the second springs are connected to telescopic sheets, and the telescopic sheets are closely attached to both sides of the gateway body.

[0010] Preferably, the second spring can drive the telescopic sheet to expand and contract according to the width of the gateway body, so that the telescopic sheet is closely attached to both sides of the gateway body. The telescopic sheet can conduct and absorb the heat dissipated from both sides of the gateway body, and dissipate the heat from the heat dissipation ports through the heat sinks connected at the rear end.

[0011] Preferably, an extension groove is formed at the top of the second telescopic groove. A connecting column is arranged in the middle of the top of the telescopic sheet. The connecting column extends out of the extension groove. A third telescopic groove is formed in the middle of the connecting column. A third spring is arranged in the third telescopic groove. The top of the third spring is connected to a telescopic column, and the third spring can drive the telescopic column to expand and contract in the third telescopic groove.

[0012] Preferably, the top of the telescopic column is connected to a connecting plate. The connecting plate is connected to multiple groups of telescopic columns. The connecting plate can drive the telescopic sheet connected to the bottom of the connecting column to extrude the second spring through the telescopic column, so that the telescopic sheet contracts into the second telescopic groove.

[0013] Preferably, multiple groups of clamping grooves are formed on the extension groove. The telescopic column can drive the connecting plate to be clamped in the clamping grooves through the contraction of the third spring at the bottom, so that the connecting plate fixes the expansion and contraction of the telescopic sheet, and the telescopic sheet is closely attached to both sides of the gateway body.

[0014] An electronic device includes the above information transmission device.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] In the present invention, first, the connecting plate is pulled outwards, so that the connecting plate drives the telescopic sheet to extrude the second spring through the third spring at the bottom of the telescopic column, so that the telescopic sheet contracts into the second telescopic groove. When the connecting plate reaches the outermost clamping groove on the extension groove, the pulling of the connecting plate is released. The third spring at the bottom of the telescopic column starts to drive the telescopic column to contract, so that the connecting plate connected to the top of the telescopic column is clamped in the clamping groove, fixing the expansion and contraction of the telescopic sheet. Then, the telescopic top cover is pulled upwards, and then the gateway body is placed in the middle of the inner part of the alloy protective case. After the placement is completed, the pulling of the telescopic top cover is released. The first springs at the bottoms of the telescopic frames arranged around the telescopic top cover start to clamp the gateway body according to the telescopic top cover pulled by the gateway body, clamping the gateway body in the alloy protective case. At this time, the heat-conducting silica gel at the bottom of the alloy protective case and the inner bottom of the telescopic top cover closely adheres to the upper and lower surfaces of the gateway body, conducting the heat dissipated by the gateway body and simultaneously performing shock absorption and protection on the gateway body. Description of the Drawings

[0017] Figure 1 Schematic diagram of the three-dimensional structure of the present invention;

[0018] Figure 2 Schematic diagram of the three-dimensional structure of the alloy protective shell of the present invention;

[0019] Figure 3 is Figure 2 Enlarged schematic diagram of the structure at position A in

[0020] Figure 4 Schematic diagram of the sectional structure of the alloy protective shell of the present invention;

[0021] Figure 5 Schematic diagram of the sectional structure of the heat sink of the present invention;

[0022] Figure 6 is Figure 5 Enlarged schematic diagram of the structure at position B in

[0023] In the figure: alloy protective shell 1, telescopic top cover 2, telescopic frame 3, first telescopic groove 4, first spring 5, heat dissipation port 6, support frame 7, heat sink 8, support feet 9, thermal conductive silicone 10, telescopic sheet 11, second telescopic groove 12, second spring 13, protruding groove 14, card slot 15, connecting column 16, third telescopic groove 17, third spring 18, telescopic column 19, connecting plate 20, gateway body 21. Detailed implementation manners

[0024] In order to clearly and completely describe the objectives, technical solutions of the present invention and make the advantages more clearly understood, the following further details the embodiments of the present invention with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present invention, rather than all of the embodiments, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of the present invention.

[0025] Please refer to Figures 1 to 6, the present invention provides a technical solution: an alloy protective case 1, in the middle of the interior of the alloy protective case 1, a gateway body 21 is placed. On both sides of the alloy protective case 1, heat dissipation openings 6 are provided. Inside the heat dissipation openings 6, support frames 7 are arranged. On the support frames 7, multiple groups of heat dissipation fins 8 are fixed. The outer sides of the heat dissipation fins 8 extend into the heat dissipation openings 6; and the alloy protective case 1, on the top of the frame of the alloy protective case 1, a first telescopic groove 4 is provided. In the first telescopic groove 4, a first spring 5 is arranged. The top of the first spring 5 is connected to a telescopic frame 3. On the top of the telescopic frame 3, a telescopic top cover 2 is arranged; at the bottom of the alloy protective case 1, support feet 9 are provided. The first spring 5 can pull the telescopic frame 3 through contraction, so that the telescopic top cover 2 arranged on the top of the telescopic frame 3 contracts according to the height of the gateway body 21, clamping the gateway body 21 in the alloy protective case 1 to prevent the gateway body 21 from shaking in the alloy protective case 1; on the bottom of the alloy protective case 1 and the inner bottom of the telescopic top cover 2, heat-conducting silica gels 10 are simultaneously arranged. The two groups of heat-conducting silica gels 10 are closely attached to the upper and lower surfaces of the gateway body 21. The heat-conducting silica gels 10 can conduct the heat dissipated by the gateway body 21 to dissipate heat from the gateway body 21; on both sides inside the alloy protective case 1, support frames 7 are arranged. On the support frames 7, multiple groups of heat dissipation fins 8 are arranged. Inside the heat dissipation fins 8, second telescopic grooves 12 are provided. Inside the second telescopic grooves 12, second springs 13 are arranged. The inner sides of the second springs 13 are connected to telescopic sheets 11. The telescopic sheets 11 are closely attached to both sides of the gateway body 21; the second springs 13 can drive the telescopic sheets 11 to expand and contract according to the width of the gateway body 21, so that the telescopic sheets 11 are closely attached to both sides of the gateway body 21. The telescopic sheets 11 can conduct and absorb the heat dissipated from both sides of the gateway body 21 and dissipate it from the heat dissipation openings 6 through the heat dissipation fins 8 connected at the back end; on the top of the second telescopic groove 12, extension grooves 14 are provided. In the middle of the top of the telescopic sheet 11, a connecting column 16 is arranged. The connecting column 16 extends out from the extension groove 14. In the middle of the connecting column 16, a third telescopic groove 17 is provided. In the third telescopic groove 17, a third spring 18 is arranged. The top of the third spring 18 is connected to a telescopic column 19. The third spring 18 can drive the telescopic column 19 to expand and contract in the third telescopic groove 17; the top of the telescopic column 19 is connected to a connecting plate 20. The connecting plate 20 is connected to multiple groups of telescopic columns 19. The connecting plate 20 can drive the telescopic sheets 11 connected to the bottom of the connecting column 16 to squeeze the second spring 13 through the telescopic columns 19, so that the telescopic sheets 11 contract into the second telescopic grooves 12; on the extension grooves 14, multiple groups of clamping grooves 15 are provided. The telescopic column 19 can drive the connecting plate 20 to be clamped in the clamping grooves 15 through the contraction of the third spring 18, so that the connecting plate 20 fixes the expansion and contraction of the telescopic sheets 11, making the telescopic sheets 11 closely attached to both sides of the gateway body 21.

[0026] During actual use, first, pull the connecting plate 20 outwards, so that the connecting plate 20 drives the telescopic piece 11 to squeeze the second spring 13 through the third spring 18 at the bottom of the telescopic column 19, causing the telescopic piece 11 to contract into the second telescopic groove 12. When the connecting plate 20 reaches the outermost clamping groove 15 on the extension groove 14, release the pull on the connecting plate 20. The third spring 18 at the bottom of the telescopic column 19 starts to drive the telescopic column 19 to contract, so that the connecting plate 20 connected to the top of the telescopic column 19 is clamped in the clamping groove 15, fixing the expansion and contraction of the telescopic piece 11. Then, pull the telescopic top cover 2 upwards, and then place the gateway body 21 in the middle of the alloy protective shell 1. After placing it, release the pull on the telescopic top cover 2. The first spring 5 at the bottom of the telescopic frame 3 provided around the telescopic top cover 2 starts to clamp the gateway body 21 by pulling the telescopic top cover 2 according to the gateway body 21, clamping the gateway body 21 in the alloy protective shell 1. At this time, the heat-conducting silicone 10 at the bottom of the alloy protective shell 1 and the inner bottom of the telescopic top cover 2 is in close contact with the upper and lower surfaces of the gateway body 21, conducting the heat dissipated by the gateway body 21 and simultaneously providing shock absorption and protection for the gateway body 21. Then, pull the connecting plate 20 upwards again to disengage the connecting plate 20 from the clamping groove 15. At this time, the connecting plate 20 cancels the limit on the telescopic piece 11, and the telescopic piece 11 starts to expand and contract inwards through the second spring 13, so that the inner end of the telescopic piece 11 is in close contact with both sides of the gateway body 21. At the same time, the connecting plate 20 slides to the upper side of the corresponding clamping groove 15 according to the width of the gateway body 21. Then, the third spring 18 contracts to clamp the connecting plate 20 in the clamping groove 15, fixing the contraction of the telescopic piece 11, enabling the telescopic piece 11 to conduct the heat dissipated by the gateway body 21 to the heat sink 8 and dissipate it from the heat dissipation port 6. At the same time, the fixation of the telescopic piece 11 can clamp both sides of the gateway body 21 to prevent the gateway body 21 from shaking in the alloy protective shell 1.

[0027] Although the above describes the illustrative specific embodiments of the present application for the convenience of those skilled in the art to understand the present application, the present application is not limited to the scope of the specific embodiments. For those of ordinary skill in the art, as long as various changes are within the spirit and scope of the present application defined and determined by the appended claims, all application creations using the concept of the present application are within the scope of protection.

Claims

1. An information transmission device, characterized in that: include: An alloy protective shell (1), a gateway body (21) is placed in the middle of the alloy protective shell (1), heat dissipation openings (6) are provided on both sides of the alloy protective shell (1), a support frame (7) is provided on the inner side of the heat dissipation opening (6), a plurality of heat dissipation fins (8) are fixed on the support frame (7), and the outer sides of the heat dissipation fins (8) extend into the heat dissipation opening (6); and An alloy protective shell (1), wherein a first telescopic slot (4) is provided at the top of the frame of the alloy protective shell (1), a first spring (5) is provided in the first telescopic slot (4), the top of the first spring (5) is connected to the telescopic frame (3), and a telescopic top cover (2) is provided at the top of the telescopic frame (3); and a supporting foot (9) is provided at the bottom of the alloy protective shell (1); Support frames (7) are provided on both sides of the interior of the alloy protective shell (1), a plurality of groups of heat sinks (8) are provided on the support frames (7), a second telescopic slot (12) is provided on the inner side of the heat sink (8), a second spring (13) is provided inside the second telescopic slot (12), the inner side of the second spring (13) is connected to a telescopic sheet (11), and the telescopic sheet (11) is closely attached to both sides of the gateway body (21); The second telescopic slot (12) is provided with an extension slot (14) at the top, a connecting column (16) is provided at the middle of the top of the telescopic sheet (11), the connecting column (16) extends from the extension slot (14), a third telescopic slot (17) is provided at the middle of the connecting column (16), a third spring (18) is provided in the third telescopic slot (17), the top of the third spring (18) is connected to the telescopic column (19), and the third spring (18) can drive the telescopic column (19) to telescope into the third telescopic slot (17); The top of the telescopic column (19) is connected to a connecting plate (20), and the connecting plate (20) is connected to a plurality of groups of telescopic columns (19). The connecting plate (20) can drive the telescopic sheet (11) connected to the bottom of the connecting column (16) to press the second spring (13) through the telescopic column (19), so that the telescopic sheet (11) contracts into the second telescopic groove (12); The extension slot (14) is provided with a plurality of groups of clamping slots (15), and the telescopic column (19) can drive the connecting plate (20) to be clamped in the clamping slot (15) by the contraction of the third spring (18), so that the connecting plate (20) can fix the expansion and contraction of the expansion piece (11), so that the expansion piece (11) is closely attached to both sides of the gateway body (21).

2. An information transmission device according to claim 1, characterized in that: The first spring (5) can pull the telescopic frame (3) by contraction, so that the telescopic top cover (2) arranged on the top of the telescopic frame (3) contracts according to the height of the gateway body (21), and the gateway body (21) is clamped in the alloy protective shell (1), thereby preventing the gateway body (21) from shaking in the alloy protective shell (1).

3. An information transmission device according to claim 2, characterized in that: The bottom of the alloy protective shell (1) and the inner bottom of the telescopic top cover (2) are both provided with thermally conductive silicone (10), and the two groups of thermally conductive silicone (10) are closely attached to the upper and lower surfaces of the gateway body (21). The thermally conductive silicone (10) can conduct the heat emitted by the gateway body (21) to dissipate the heat of the gateway body (21).

4. An information transmission device according to claim 3, characterized in that: The second spring (13) can drive the expansion piece (11) to expand and contract according to the width of the gateway body (21), so that the expansion piece (11) is closely attached to both sides of the gateway body (21); the expansion piece (11) can conduct and absorb the heat emitted from both sides of the gateway body (21), and dissipate the heat from the heat dissipation port (6) through the heat sink (8) connected to the rear end.

5. An electronic device, characterized in that: An information transmission device comprising any one of claims 1 to 4 above.

Citation Information

Patent Citations

  • High-safety efficient heat dissipation shell of lithium ion battery

    CN213278185U

  • Heat dissipation type enhanced wireless router

    CN214315290U