Network equipment with efficient heat dissipation structure
By combining thermal pads and fins with a perforated structure and a cooling fan, the problem of poor heat dissipation in routers is solved, achieving efficient heat dissipation and improving the device's heat dissipation performance and lifespan.
Patent Information
- Application Number
- CN202520360228.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-03
AI Technical Summary
Existing routers suffer from poor air circulation and inadequate thermal conductivity of their heat dissipation materials, leading to heat buildup that affects device performance and lifespan.
The heat dissipation assembly uses a combination of thermal pads and fins, along with a perforated structure and a cooling fan, to increase the heat dissipation area and airflow, thereby improving heat conduction and radiation efficiency.
It effectively shortens the time heat stays in the equipment, increases heat dissipation pathways, improves heat dissipation efficiency, prevents heat accumulation, and extends equipment life.
Smart Images

Figure CN223957615U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to network equipment field, especially a kind of network equipment with high-efficiency heat dissipation structure. BACKGROUND
[0002] Router is a kind of network layer equipment for network interconnection and data forwarding, plays a vital role in network, and there is certain promotion space in the heat dissipation structure of present router. Part of router is compact inside space, and heat dissipation channel design is not reasonable enough, leading to air circulation is not smooth, and heat is easy to accumulate. At the same time, some routers control cost, and the heat dissipation material used has poor heat conduction performance, such as insufficient area of heat dissipation fin, so that the heat dissipation efficiency is greatly discounted. In addition, router is not interrupted for a long time, and continuously generates heat, which also increases the heat dissipation burden.
[0003] The conventional coping method is to improve the placement environment, such as placing in a well-ventilated place, avoiding blocking the heat dissipation hole, to increase air convection and assist heat dissipation. Users will also place small fans around the router to accelerate heat dissipation by forced air flow. However, only by improving the placement environment, when the router generates a large amount of heat, the heat dissipation effect is limited. Although the use of external fans can enhance heat dissipation, the fans will occupy additional space outside the router, so a new structure needs to be proposed to solve the above technical problems. UTILITY MODEL CONTENT
[0004] In view of the deficiencies in the prior art, the utility model aims to provide a network equipment with high-efficiency heat dissipation structure to solve the problems raised in the background art.
[0005] The utility model realizes the following technical scheme: a network equipment with high-efficiency heat dissipation structure, comprising: a network component and a heat dissipation component, four heat dissipation components for dissipating heat from the network equipment are installed on the upper surface of the network component, the network component includes a shell body for installing a signal antenna, a support is installed on the lower surface of the shell body, the heat dissipation component includes a heat-conducting patch for installing a fin piece, and the heat-conducting patch is installed on the upper surface of the shell body.
[0006] As a preferred embodiment, a protrusion is integrally formed at the center of the upper surface of the shell body, a network port is installed on the outer surface of the protrusion, the upper surface of the shell body is designed at an angle of 15 degrees, and a signal antenna is hingedly connected to each of the four corners of the upper surface of the shell body.
[0007] As a preferred embodiment, a router module is arranged inside the shell body, the router module is electrically connected to the signal antenna, the upper surface of the shell body is in a trapezoidal structure, and the trapezoidal structure is provided with four.
[0008] As a preferred implementation, the support includes a short rod and a support rod, one short rod is installed at each of the four corners of the lower surface of the shell body, and a threaded rod is integrally formed at the center of the upper surface of the support rod, and the support rod is screwed to the lower surface of the short rod through the threaded rod.
[0009] As a preferred implementation, the upper surface of the shell body is glued with four heat-conducting pads in a trapezoidal structure, the structure of the heat-conducting pad matches the trapezoidal structure, and the fin member is installed on the side surface away from the shell body.
[0010] As a preferred implementation, the fin member includes a fin plate, a plurality of fin bodies are recessed on the upper surface of the fin plate, the structure of the fin plate matches the structure of the heat-conducting pad, and the material of the fin plate is brass.
[0011] As a preferred implementation, the lower surface of the shell body is designed in a hollow structure, and one heat dissipation fan is installed at each of the four corners of the lower surface of the shell body, and the air inlet of the heat dissipation fan is aligned with the lower surface of the shell body.
[0012] After the above technical scheme is adopted, the network component has the following advantages: 1. The upper surface of the network component is provided with four sets of heat dissipation assemblies for dissipating heat of the network equipment. The heat dissipation assembly includes a heat-conducting pad for mounting a fin member. The upper surface of the shell body is provided with the heat-conducting pad. In use, the heat-conducting pad can quickly transfer the heat generated by the network component to the fin member. The network component generates a large amount of heat during operation. If the heat is not dissipated in time, the performance and service life of the network component will be affected. At this time, the good heat-conducting performance of the heat-conducting pad in combination with the fin member on the upper surface thereof can shorten the residence time of the heat in the network component, prevent heat accumulation, and increase the heat dissipation area and heat dissipation path through the four sets of heat dissipation assemblies. The multiple fin members can simultaneously absorb and dissipate the heat of the network component from different positions, accelerate the speed of heat dissipation into the surrounding air, and more effectively reduce the temperature of the network component compared with a single heat dissipation mode.
[0013] 2. The lower surface of the shell body is designed in a hollow structure, and one heat dissipation fan is installed at each of the four corners of the lower surface of the shell body. The air inlet of the heat dissipation fan is aligned with the lower surface of the shell body. In use, the fin member and other structures in the heat dissipation assembly increase the heat dissipation area, which is beneficial to heat radiation and conduction. At the same time, the heat dissipation fan at the bottom accelerates the flow of air, so that the air around the fin member can be updated faster, strengthening the heat exchange process, allowing heat to be transferred from the fin member to the air more quickly, and further improving the heat dissipation effect. BRIEF DESCRIPTION OF DRAWINGS
[0014] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings described below are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0015] Figure 1 It is a whole structure schematic view of the network equipment with high efficient heat radiation structure of the present application.
[0016] Figure 2 It is a schematic view of the fin piece of the network equipment with high efficient heat radiation structure of the present application.
[0017] Figure 3 It is a schematic view of the side structure of the network equipment with high efficient heat radiation structure of the present application.
[0018] Figure 4 It is a schematic view of the support rod of the network equipment with high efficient heat radiation structure of the present application.
[0019] In the figure, 100 - shell body, 101 - trapezoidal structure, 110 - protruding block, 120 - signal antenna, 130 - short rod, 140 - support rod, 141 - threaded rod;
[0020] 200 - heat conduction sticker, 210 - fin plate, 220 - fin body;
[0021] 300 - heat dissipation fan. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application.
[0023] Please refer to Figures 1 to 4 The present application provides a technical solution: a network equipment with high efficient heat radiation structure, comprising: a network component and a heat dissipation component, four groups of heat dissipation components for dissipating heat of the network equipment are installed on the upper surface of the network component, the network component comprises a shell body 100 for installing a signal antenna 120, a support piece is installed on the lower surface of the shell body 100, the heat dissipation component comprises a heat conduction sticker 200 for installing a fin piece, the heat conduction sticker 200 is installed on the upper surface of the shell body 100.
[0024] Please refer to Figures 1 to 4 , as the first embodiment of the utility model: the upper side surface center position of shell body 100 is integrally formed with protruding block 110, the outer side surface of protruding block 110 is installed with network cable port, the upper side surface of shell body 100 is designed to be inclined by 15 degrees, and one signal antenna 120 is dampedly hinged at each corner of the upper side surface of shell body 100 respectively;
[0025] The inside of shell body 100 is provided with a router module, and the router module is electrically connected with the signal antenna 120, and the upper side surface of shell body 100 is in trapezoidal structure 101, and the trapezoidal structure 101 is provided with four;
[0026] The support includes a short rod 130 and a support rod 140, and one short rod 130 is installed at each corner of the lower side surface of shell body 100, and a threaded rod 141 is integrally formed at the center position of the upper side surface of support rod 140, and support rod 140 is screwed on the lower side surface of short rod 130 through threaded rod 141;
[0027] In use, the user first takes out the support rod 140 and installs it on the lower side surface of the shell body 100 through the threaded rod 141 on the upper side surface, so that the shell body 100 is away from the ground through the support rod 140 and the short rod 130, and a gap is formed between the lower side surface of the shell body 100 and the ground. When the device is used, heat will be generated, which will be transmitted to the heat-conducting paste 200 at this time, so that the heat-conducting paste 200 transmits heat to the fin plate 210, and then the heat is transmitted to the fin body 220 by the fin plate 210, so that the heat is transmitted to the air by the fin piece, thereby dissipating heat. Since the heat-conducting paste 200 can quickly transmit the heat generated by the network component to the fin piece, a large amount of heat will be generated when the network component is running. If it is not dissipated in time, it will affect its performance and service life. At this time, the good heat-conducting performance of the heat-conducting paste 200 in combination with the fin piece on its upper side surface can shorten the residence time of heat in the network component, prevent heat accumulation, and increase the heat dissipation area and heat dissipation path of the four groups of heat dissipation components. And multiple fin pieces can simultaneously absorb and dissipate the heat of the network component from different positions, accelerate the speed of heat dissipation to the surrounding air, and compared with single heat dissipation mode, can more effectively reduce the temperature of the network component.
[0028] Please refer to Figures 1 to 4 , as the second embodiment of the utility model: the upper side surface of shell body 100 is glued with four heat-conducting pastes 200 through four trapezoidal structures 101, the structure of heat-conducting paste 200 matches with trapezoidal structure 101, and fin piece is installed on the side surface away from shell body 100 of heat-conducting paste 200;
[0029] The fin piece comprises a fin plate 210, and a plurality of fin bodies 220 are recessed on the upper side surface of the fin plate 210.
[0030] The lower side surface of the shell body 100 is designed in a hollow structure, and one heat dissipation fan 300 is installed at each of the four corners of the lower side surface of the shell body 100, and the air inlet of the heat dissipation fan 300 is aligned with the lower side surface of the shell body 100.
[0031] In use, when the operation steps of the first embodiment are performed, the user can start the heat dissipation fan 300 on the lower side surface of the shell body 100 (in actual use, the user can choose to connect the timer with the heat dissipation fan 300 so that the heat dissipation fan 300 can be started at a fixed time without the need for the user to manually start it, and the specific structure and connection principle are not described here), so that the heat dissipation fan 300 can rotate counterclockwise or clockwise, when the heat dissipation fan 300 rotates counterclockwise, the heat dissipation fan 300 can extract the hot air inside the shell body 100 through the hollow structure on the lower side surface of the shell body 100, thereby cooperating with the fin piece to dissipate heat, when the heat dissipation fan 300 rotates clockwise, the heat dissipation fan 300 will suck the air on the lower side surface of the shell body 100 into the shell body 100, so that the external cold air and the hot air inside the shell body 100 are mixed to reduce the temperature inside the shell body 100, thereby achieving the effect of heat dissipation, and if the heat dissipation fan 300 is damaged, the fin piece on the upper side surface of the shell body 100 can also be used for additional heat dissipation, which is convenient for the user to use, and the user can choose the way according to the actual situation, since the fin piece and other structures in the heat dissipation assembly increase the heat dissipation area, which is conducive to the radiation and conduction of heat, at the same time, the heat dissipation fan 300 at the bottom accelerates the flow of air, so that the air around the fin piece can be updated faster, the heat exchange process is strengthened, and the heat can be transferred to the air from the fin piece more quickly, thereby further improving the heat dissipation effect.
[0032] The above only describes the preferred embodiments of the present application, and is not intended to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A network device with a high-efficiency heat dissipation structure, comprising: A network component and a heat dissipation component, characterized in that four sets of heat dissipation components for heat dissipation of network devices are installed on the upper surface of the network component, the network component includes a housing body (100) for mounting a signal antenna (120), a support member is installed on the lower surface of the housing body (100), and the heat dissipation component includes a thermally conductive patch (200) for mounting fins, and a thermally conductive patch (200) is installed on the upper surface of the housing body (100).
2. The network device with a high-efficiency heat dissipation structure as described in claim 1, characterized in that: A protrusion (110) is integrally formed at the center of the upper surface of the outer shell body (100). A network cable port is installed on the outer surface of the protrusion (110). The upper surface of the outer shell body (100) is designed at a 15-degree angle. A signal antenna (120) is damped and hinged at each of the four corners of the upper surface of the outer shell body (100).
3. A network device with a high-efficiency heat dissipation structure as described in claim 2, characterized in that: The outer casing (100) is equipped with a router module, which is electrically connected to a signal antenna (120). The upper surface of the outer casing (100) is a trapezoidal structure (101), and four trapezoidal structures (101) are provided.
4. A network device with a high-efficiency heat dissipation structure as described in claim 3, characterized in that: The support includes a short rod (130) and a support rod (140). A short rod (130) is installed at each of the four corners of the lower surface of the outer shell body (100). A threaded rod (141) is integrally formed at the center of the upper surface of the support rod (140). The support rod (140) is threaded onto the lower surface of the short rod (130) through the threaded rod (141).
5. A network device with a high-efficiency heat dissipation structure as described in claim 4, characterized in that: The upper surface of the outer shell body (100) is bonded with four thermal conductive pads (200) by four trapezoidal structures (101). The structure of the thermal conductive pads (200) matches the trapezoidal structure (101). Fins are installed on the side surface of the thermal conductive pads (200) away from the outer shell body (100).
6. A network device with a high-efficiency heat dissipation structure as described in claim 5, characterized in that: The fin component includes a fin plate (210), and a plurality of fin bodies (220) are recessed on the upper surface of the fin plate (210). The structure of the fin plate (210) matches the structure of the thermal pad (200), and the material of the fin plate (210) is brass.
7. A network device with a high-efficiency heat dissipation structure as described in claim 6, characterized in that: The lower surface of the outer shell (100) has a hollow structure design. A cooling fan (300) is installed at each of the four corners of the lower surface of the outer shell (100). The air inlet of the cooling fan (300) is aligned with the lower surface of the outer shell (100).