Networking data security transmission system

By using transmission components to make the air-cooled heat dissipation parts move vertically up and down and swing alternately in the forward and reverse directions, the problem of limited air-cooled heat dissipation coverage is solved, and the heat dissipation effect of the network data security transmission system is improved.

CN223772396UActive Publication Date: 2026-01-06ZHENGZHOU AIRPORT XINGGANG GAS CO LTD
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Patent Information

Application Number
CN202520308968.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-06
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

In existing networked data security transmission systems, the coverage of air cooling is limited, resulting in poor heat dissipation for some devices, which needs to be improved.

Method used

The transmission element causes the air-cooled heat dissipation part to move vertically up and down repeatedly while oscillating alternately in the forward and reverse directions, thereby increasing the direct airflow coverage of the equipment and enhancing the heat dissipation effect.

Benefits of technology

It improves the heat dissipation effect of equipment within the networked data security transmission system, and enhances the heat dissipation coverage and efficiency of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a networking data security transmission system, which comprises a networking shell, heat dissipation nets are installed in through grooves in the left wall and the right wall of the networking shell, first sliding grooves are formed in the right ends of the front wall and the rear wall of the networking shell, and the networking data security transmission system further comprises an efficient heat dissipation mechanism. The efficient heat dissipation mechanism comprises sliding seats, first rotating shafts, a heat dissipation seat, a heat dissipation fan and a first transmission assembly, the sliding seats are slidably connected to the interiors of the first sliding grooves correspondingly, the opposite inner side faces of the two sliding seats are rotationally connected with the first rotating shafts through first bearings correspondingly, and the heat dissipation seat is arranged between the first rotating shafts; according to the networked data security transmission system, through the transmission element, the air cooling heat dissipation part can alternately swing in the forward direction and the reverse direction while vertically moving up and down in a reciprocating mode, the direct air cooling heat dissipation coverage range of heat dissipation airflow on equipment in the networked data security transmission system is enlarged, and the heat dissipation efficiency of the equipment in the networked data security transmission system is improved. Therefore, the heat dissipation effect of the device is improved.
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Description

Technical Field

[0001] This utility model relates to the field of Internet of Things (IoT) technology, specifically to a networked data security transmission system. Background Technology

[0002] The Internet of Things (IoT) is an information carrier based on the Internet, traditional telecommunications networks, etc. It enables all ordinary physical objects that can be independently addressed to form an interconnected network. Through the cooperation between various devices within the IoT, secure data transmission is achieved. During the operation of the secure data transmission system, a large amount of heat is generated. To avoid the heat interfering with the operation of the devices in the secure data transmission system, some secure data transmission systems have cooling fans installed inside the device and ventilation holes on the device casing. The operation of the cooling fans accelerates the circulation of cooling air inside the device, thereby achieving heat dissipation. However, the cooling fans in the secure data transmission system are fixed in position, and the coverage of air cooling within the secure data transmission system is limited. The air flow speed around devices outside the air cooling range is low, and heat dissipation needs to be achieved through local heat transfer. The heat dissipation effect of devices in this part of the secure data transmission system is limited, and there is room for improvement. Therefore, we propose a secure data transmission system. Utility Model Content

[0003] The technical problem to be solved by this utility model is to overcome the existing defects and provide a network data security transmission system. This device uses a transmission element to make the air-cooled heat dissipation part move vertically up and down and swing alternately in the forward and reverse directions. By increasing the direct air-cooling coverage of the heat dissipation airflow on the equipment in the network data security transmission system, the heat dissipation effect of the device itself is improved, which can effectively solve the problems in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a network data security transmission system, including a network housing, wherein heat dissipation mesh is installed in the through grooves on the left and right walls of the network housing, and a sliding groove is provided on the right end of the front and rear walls of the network housing, and also includes a high-efficiency heat dissipation mechanism.

[0005] High-efficiency heat dissipation mechanism: It includes a slide, a rotating shaft, a heat sink, a cooling fan, and a transmission component. The slides are slidably connected to the inside of the sliding groove. The inner sides of the two slides are rotatably connected to the rotating shaft via bearings. A heat sink is provided between the rotating shafts. Five evenly distributed cooling fans are installed inside the heat sink. A transmission component is provided between the rotating shaft and the network housing. This device, through the transmission element, enables the air-cooled heat dissipation part to move vertically up and down and swing alternately in the forward and reverse directions. By increasing the direct air-cooled heat dissipation coverage of the cooling airflow to the equipment in the network data security transmission system, the heat dissipation effect of the device itself is improved.

[0006] Furthermore, it also includes a microcontroller, which is located outside the network housing. The input terminal of the microcontroller is electrically connected to an external power supply, and the output terminal of the microcontroller is electrically connected to the input terminal of the cooling fan, making it convenient to control electrical components.

[0007] Furthermore, the transmission component one includes a lifting seat and a solid reciprocating screw. The solid reciprocating screw is rotatably connected to the right end between the upper and lower walls of the network housing via a bearing two. The outer side of the solid reciprocating screw is threaded with a lifting seat. Both the front and rear ends of the lifting seat are rotatably connected to the adjacent rotating shaft one via bearing three, so that the heat dissipation part in the network data security transmission system can move vertically up and down reciprocally.

[0008] Furthermore, the transmission component one also includes a U-shaped seat, a rack plate, a hollow reciprocating screw, a rotating shaft two, and a gear. The U-shaped seat is rotatably connected to the outer side of the rotating shaft one on the front side via a bearing four. The rack plate is slidably connected in a groove two on the right wall of the U-shaped seat. The hollow reciprocating screw is threadedly connected to the inside of the rack plate. The rotating shaft two is rotatably connected to the right end between the upper and lower walls of the network housing via a bearing five. The outer side of the rotating shaft two is slidably connected to the inner hole of the hollow reciprocating screw. A gear is provided on the outer side of the rotating shaft two on the front side. The gear meshes with the rack plate, allowing the heat dissipation parts in the network data security transmission system to swing alternately in the positive direction.

[0009] Furthermore, the transmission component one also includes a guide groove, which is opened on the outer side of the rotating shaft two. The interior of the hollow reciprocating screw is slidably connected to the guide groove through a guide bar, so that the rotating shaft two in the network data security transmission system can drive the hollow reciprocating screw to rotate synchronously.

[0010] Furthermore, the high-efficiency heat dissipation mechanism also includes pulleys and belts. The pulleys are respectively located on the upper outer side of the solid reciprocating screw and the second rotating shaft. The pulleys are connected by belt drive, so that the solid reciprocating screw and the second rotating shaft in the network data security transmission system rotate simultaneously.

[0011] Furthermore, a drive motor is provided on the upper right side of the network housing. The input end of the drive motor is electrically connected to the output end of the microcontroller, and the output shaft of the drive motor is fixedly connected to the upper end of the solid reciprocating screw, providing power for efficient heat dissipation inside the network data security transmission system.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This networked data security transmission system has the following advantages:

[0013] When the networked data security transmission system dissipates heat during operation, the slide, rotating shaft, heat sink, cooling fan, transmission component, pulley, belt, and drive motor enable the air-cooled heat dissipation part to move vertically up and down and swing alternately in the forward and reverse directions. This increases the direct air-cooling coverage of the heat dissipation airflow to the equipment within the networked data security transmission system, thereby improving the device's own heat dissipation effect. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the structure of this utility model;

[0015] Figure 2 This is a schematic diagram of the internal structure of this utility model;

[0016] Figure 3 This is a schematic diagram of the lifting seat structure of this utility model;

[0017] Figure 4 This is an enlarged structural diagram of point A in this utility model;

[0018] Figure 5 This is an enlarged structural diagram of section B of the present invention.

[0019] In the diagram: 1. Network casing, 2. Microcontroller, 3. Heat sink, 4. High-efficiency heat dissipation mechanism, 41. Slide, 42. Rotary shaft one, 43. Heat sink, 44. Heat dissipation fan, 45. Transmission component one, 451. Lifting seat, 452. Solid reciprocating screw, 453. U-shaped seat, 454. Rack plate, 455. Hollow reciprocating screw, 456. Rotary shaft two, 457. Guide groove, 458. Gear, 46. Pulley, 47. Belt, 5. Drive motor. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] Please see Figure 1-5 This embodiment provides a technical solution: a network data security transmission system, including a network housing 1. Heat dissipation mesh 3 is installed in the through grooves on the left and right walls of the network housing 1. A sliding groove is opened at the right end of the front and rear walls of the network housing 1. The network housing 1 is equipped with components such as a peripheral sensing interface, a central processing module, a communication access module, a hardware module, a firmware system module, an application module, a data module, and an actuator. The network data security transmission is achieved through the coordinated operation of these components. It also includes a high-efficiency heat dissipation mechanism 4.

[0022] High-efficiency heat dissipation mechanism 4: It includes a slide 41, a rotating shaft 42, a heat sink 43, a cooling fan 44, and a transmission assembly 45. The slides 41 are slidably connected to the inside of the slide groove. The inner surfaces of the two slides 41 are rotatably connected to the rotating shaft 42 through bearings. A heat sink 43 is provided between the rotating shafts 42. Five evenly distributed cooling fans 44 are installed inside the heat sink 43. The transmission assembly 45 is provided between the rotating shaft 42 and the network housing 1. It also includes a microcontroller 2, which is located outside the network housing 1. The input terminal of the microcontroller 2 is electrically connected to an external power supply, and the output terminal of the microcontroller 2 is electrically connected to the input terminal of the cooling fan 44. The transmission assembly 45 includes a lifting seat 451 and a solid reciprocating screw 452. The solid reciprocating screw 452 is rotatably connected to the right end between the upper and lower walls of the network housing 1 via bearing 2. A lifting seat 451 is threaded onto the outer side of the solid reciprocating screw 452. Both ends of the lifting seat 451 are rotatably connected to the adjacent rotating shaft 42 via bearing 3. The transmission assembly 45 also includes a U-shaped seat 453, a rack plate 454, a hollow reciprocating screw 455, a rotating shaft 456, and a gear 458. The U-shaped seat 453 is rotatably connected to the outer side of the rotating shaft 42 on the front side via bearing 4. The rack plate 454 is slidably connected within a groove 2 on the right wall of the U-shaped seat 453. The hollow reciprocating screw 455 is threaded onto the inside of the rack plate 454. The rotating shaft 456 is rotatably connected to the right end between the upper and lower walls of the network housing 1 via bearing 5. The outer side of the solid reciprocating screw 452 is slidably connected to the inner hole of the hollow reciprocating screw 455. A gear 458 is provided on the outer side of the second rotating shaft 456 on the front side. The gear 458 meshes with the rack plate 454. The transmission assembly 45 also includes a guide groove 457, which is located on the outer side of the second rotating shaft 456. The interior of the hollow reciprocating screw 455 is slidably connected to the guide groove 457 via a guide bar. The high-efficiency heat dissipation mechanism 4 also includes a pulley 46 and a belt 47. The pulley 46 is respectively located on the upper outer side of the solid reciprocating screw 452 and the second rotating shaft 456. The pulleys 46 are connected to each other via the belt 47. A drive motor 5 is located on the upper right side of the network housing 1. The input end of the drive motor 5 is electrically connected to the output end of the microcontroller 2. The output shaft of the drive motor 5 is connected to the solid reciprocating screw 456. The upper end of the lead screw 452 is fixedly connected. During the operation of the networked data security transmission system, the microcontroller 2 starts the cooling fan 44. The cooling fan 44 generates negative pressure, causing external airflow to pass through the heat dissipation mesh 3 on the right and be discharged through the heat dissipation mesh 3 on the left. At the same time, the microcontroller 2 starts the drive motor 5, causing its output shaft to drive the solid reciprocating lead screw 452 to rotate. The solid reciprocating lead screw 452 drives the slide 41 to slide vertically up and down along the slide groove through the threaded connection between it and the lifting seat 451. The slide 41 indirectly drives the cooling fan 44 to move vertically up and down through the rotating shaft 42, thereby adjusting the vertical displacement of the heat dissipation part of the device and improving the direct air-cooling coverage of the heat dissipation part for each device in the networked data security transmission system.This improves the device's heat dissipation. During this process, the front rotating shaft 42 drives the U-shaped seat 453 to move vertically adaptively. Through the meshing connection between the gear 458 and the rack plate 454, and the threaded connection between the rack plate 454 and the hollow reciprocating screw 455, the front rotating shaft 42 indirectly drives the hollow reciprocating screw 455 to slide vertically adaptively along the guide groove 457 via its own guide bar. As the heat dissipation part moves vertically up and down inside the device, the solid reciprocating screw 452, through the transmission between the pulley 46 and the belt 47, causes the second rotating shaft 456 to rotate. The two pulleys 46 have different belt drive diameters, thus achieving belt drive of the belt 47. The second rotating shaft 456, through the rotational engagement of the guide bar and the guide groove 457, drives the hollow reciprocating screw 455 to rotate around its own axis. The hollow reciprocating screw 455, through its threaded connection with the rack plate 454, causes the rack plate 454 to slide along the second sliding groove. The device slides vertically up and down repeatedly. When the rack plate 454 slides up along the second slide groove, the meshing connection between the rack plate 454 and the gear 458 causes the front rotating shaft 42 to drive the cooling fan 44 to rotate in the opposite direction around the axis of the rotating shaft 42. When the rack plate 454 slides down along the second slide groove, the cooling fan 44 rotates in the forward direction around the axis of the rotating shaft 42 through the same principle. This, in turn, causes the rack plate 454 to slide vertically up and down along the second slide groove, resulting in the cooling unit alternately rotating and oscillating in both directions around the axis of the rotating shaft 42. This increases the direct air-cooling coverage of the cooling unit for each device in the networked data security transmission system, further improving the device's own heat dissipation effect. Through transmission elements, the device allows the air-cooling unit to move vertically up and down repeatedly while oscillating in both directions, thereby increasing the direct air-cooling coverage of the cooling airflow for the devices within the networked data security transmission system, thus improving the device's own heat dissipation effect.

[0023] The working principle of the network data security transmission system provided by this utility model is as follows: The network housing 1 is internally equipped with components such as a peripheral sensing interface, a central processing module, a communication access module, a hardware module, a firmware system module, an application module, a data module, and actuators. These components coordinate to achieve secure network data transmission. During operation, the microcontroller 2 starts the cooling fan 44, which generates negative pressure, causing external airflow to pass through the right-side heat dissipation mesh 3 and be discharged through the left-side heat dissipation mesh 3. Simultaneously, the microcontroller 2 starts the drive motor 5, causing its output shaft to drive the solid reciprocating screw 452 to rotate. 52 drives the slide 41 to slide vertically up and down along the slide groove through the threaded connection between the lifting seat 451 and the lifting seat 451. The slide 41 indirectly drives the cooling fan 44 to move vertically up and down through the rotating shaft 42, thereby adjusting the vertical displacement of the heat dissipation part of the device, increasing the direct air cooling coverage of the heat dissipation part for each device in the device's intranet data security transmission system, and thus improving the device's own heat dissipation effect. During this process, the rotating shaft 42 on the front side drives the U-shaped seat 453 to move vertically adaptively. Through the meshing connection between the gear 458 and the rack plate 454 and the threaded connection between the rack plate 454 and the hollow reciprocating screw 455, the rotating shaft 453 on the front side moves vertically adaptively. 42 indirectly drives the hollow reciprocating screw 455 to slide vertically adaptively along the guide groove 457 via its own guide bar. During the vertical reciprocating movement of the heat dissipation part inside the device, the solid reciprocating screw 452 drives the rotating shaft 456 to rotate through the transmission between the pulley 46 and the belt 47. The belt drive diameters of the two pulleys 46 are different, thus realizing the belt drive of the belt 47. The rotating shaft 456 drives the hollow reciprocating screw 455 to rotate around its own axis through the rotational engagement of the guide bar and the guide groove 457. The hollow reciprocating screw 455 is threadedly connected to the rack plate 454, thus causing the rack plate 454 to slide vertically up and down along the slide groove 2. When the rack plate 454 slides upward along the second slide groove, the meshing connection between the rack plate 454 and the gear 458 causes the front rotating shaft 42 to drive the cooling fan 44 to rotate in the opposite direction around the axis of the rotating shaft 42. When the rack plate 454 slides downward along the second slide groove, the cooling fan 44 rotates in the forward direction around the axis of the rotating shaft 42 through the same principle. Then, the rack plate 454 slides vertically up and down along the second slide groove, causing the heat dissipation part to alternately rotate and swing in the forward and reverse directions around the axis of the rotating shaft 42. This increases the direct air cooling coverage of the heat dissipation part for each device in the network data security transmission system, further improving the heat dissipation effect of the device itself and making it convenient to use.

[0024] It is worth noting that the microcontroller 2 disclosed in the above embodiments can be an MSP430, the cooling fan 44 can be a DC5V cooling fan, and the drive motor 5 can be a Y80M1-2. The microcontroller 2 controls the operation of the cooling fan 44 and the drive motor 5 using methods commonly used in the prior art.

[0025] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A networking data security transmission system, comprising a networking shell (1), a heat dissipation net (3) is installed in the through slot of the left and right walls of the networking shell (1), a sliding groove one is formed at the right end of the front and back walls of the networking shell (1), characterized in that: It also includes high -efficient heat dissipation mechanism (4); High -efficient heat dissipation mechanism (4): it includes sliding seat (41), pivot one (42), heat dissipation seat (43), heat dissipation fan (44) and transmission assembly one (45), the sliding seat (41) is respectively connected in the inside of sliding groove one, the opposite inner side of two sliding seats (41) is rotatably connected with pivot one (42) through bearing one, and pivot one (42) is provided with a heat dissipation seat (43) between, the inside of heat dissipation seat (43) is installed with five evenly distributed heat dissipation fans (44), and transmission assembly one (45) is provided between pivot one (42) and networking shell (1).

2. The networked data security transmission system of claim 1, wherein: It also includes single-chip microcomputer (2), the single-chip microcomputer (2) is located in the outside of networking shell (1), and the input end of single-chip microcomputer (2) is electrically connected with external power supply, and the output end of single-chip microcomputer (2) is electrically connected with the input end of heat dissipation fan (44) respectively.

3. The networked data security transmission system of claim 2, wherein: The transmission assembly one (45) includes lifting seat (451) and solid reciprocating screw rod (452), the solid reciprocating screw rod (452) is rotatably connected between the upper and lower two walls of networking shell (1) right end through bearing two, and the outer side of solid reciprocating screw rod (452) is screw connected with lifting seat (451), and the front and rear ends of lifting seat (451) are rotatably connected with adjacent pivot one (42) through bearing three.

4. The networked data security transmission system of claim 3, wherein: The transmission assembly one (45) also includes U-shaped seat (453), rack plate (454), hollow reciprocating screw rod (455), pivot two (456) and gear (458), the U-shaped seat (453) is rotatably connected on the outer side of front pivot one (42) through bearing four, the sliding groove two formed in the right wall of U-shaped seat (453) is slidably connected with rack plate (454), the inside of rack plate (454) is screw connected with hollow reciprocating screw rod (455), and the right end between the upper and lower two walls of networking shell (1) is rotatably connected with pivot two (456) through bearing five, the outer side of pivot two (456) is slidably connected with the inner hole of hollow reciprocating screw rod (455), and the outer side of front pivot two (456) is provided with gear (458), and gear (458) is engagedly connected with rack plate (454).

5. The networked data security transmission system of claim 4, wherein: The transmission assembly one (45) also includes guide groove (457), and the outer side of pivot two (456) is provided with guide groove (457), and the inside of hollow reciprocating screw rod (455) is slidably connected with guide groove (457) through guide strip.

6. The networked data security transmission system of claim 4, wherein: The high -efficient heat dissipation mechanism (4) also includes pulley (46) and belt (47), the pulley (46) is respectively arranged on the outer side upper end of solid reciprocating screw rod (452) and pivot two (456), and the pulley (46) is drivingly connected through belt (47) between.

7. The networked data security transmission system of claim 3, wherein: The right upper end of networking shell (1) is provided with driving motor (5), and the input end of driving motor (5) is electrically connected with the output end of single-chip microcomputer (2), and the output shaft of driving motor (5) is fixedly connected with the upper end of solid reciprocating screw rod (452).