A novel network controller
By introducing an efficient heat dissipation mechanism and battery power supply into the network controller, the problems of poor heat dissipation and inability to work during power outages have been solved, achieving efficient heat dissipation and continuous power supply.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGDONG HUIKE INFORMATION TECH CO LTD
- Filing Date
- 2026-06-11
- Publication Date
- 2026-07-31
AI Technical Summary
The existing network controller has a simple heat dissipation structure, which is prone to heat accumulation and makes it inconvenient to replace the coolant, resulting in poor heat dissipation effect; it also lacks a backup power supply, which means it cannot work during power outages.
It adopts a high-efficiency heat dissipation mechanism, including a cooling shell, heat sink, partition plate, coolant temperature sensor, first-row fan, electronic cooling chip, etc., combined with battery power supply, to ensure normal operation during power outages.
This achieves efficient heat dissipation for the network controller, avoids heat buildup, ensures normal operation even during power outages, and improves the stability and reliability of the equipment.
Smart Images

Figure CN122497053A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of novel network controller technology, specifically to a novel network controller. Background Technology
[0002] The new network controller is an intelligent controller with downlink LoRa and RS485 signals, uplink 4G and network signals, edge computing capabilities, and self-upgrade capabilities. It can perform encrypted data communication, has a built-in large-capacity backup battery and large-capacity storage, and can continue to control the operation of devices in a small wireless network when there is no power supply or network outage.
[0003] A utility model patent with authorization number CN210298377U discloses a novel network controller. This technical solution involves a network controller body, a protective housing, a heat-conducting plate, a sliding rod, a sliding cylinder, a first spring, a connecting rod, a T-shaped slider, a T-shaped groove, a second spring, a heat sink, and a visible liquid level chamber. The heat generated by the network controller body during operation is conducted through the heat-conducting plate, and the heat conducted by the heat-conducting plate is then transferred to the coolant inside the protective housing for cooling and heat dissipation, thereby effectively improving the heat dissipation effect of the network controller body. However, the heat dissipation structure of the above technical solution is relatively simple, directly using a heat-conducting plate... Using coolant to dissipate heat from inside the controller can easily lead to heat buildup. When the internal heat of the controller is low, the heat dissipation effect through the heat plate and coolant is poor, and it cannot dissipate heat from inside the controller in a timely manner, resulting in poor applicability. Moreover, it is inconvenient to change the coolant during use, causing the coolant temperature to rise due to prolonged cooling, resulting in an insignificant cooling effect on the controller and reducing its performance. Furthermore, the above technical solution lacks a backup power supply, causing the network controller to shut down directly during power outages, making it impractical. Summary of the Invention
[0004] The purpose of this invention is to provide a novel network controller to solve the problems mentioned in the background section.
[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a novel network controller, including a base, wherein an exhaust mechanism and a high-efficiency heat dissipation mechanism are respectively arranged on the top of the base;
[0006] The high-efficiency heat dissipation mechanism includes two cooling shells and two heat dissipation cylinders. Each cooling shell has a partition plate and a coolant temperature sensor fixedly connected to its inner wall. Each partition plate has an electronic cooling chip fixedly connected to its inner wall. Each heat dissipation cylinder has a first-row fan fixedly connected to its inner wall. Each cooling shell has two heat dissipation plates snapped onto its inner wall. A heat-conducting plate is fixedly connected to the upper surface of every two heat dissipation plates. A first temperature sensor is located above the base. The exhaust mechanism includes two exhaust shells. A network controller body is located above the base. Each cooling shell has two clamping plates fixedly connected to its upper surface. Two batteries are fixedly connected to the inner bottom wall of the base. Each exhaust shell has two housings and a second temperature sensor fixedly connected to its inner wall. A second-row fan is fixedly connected to the inner wall of each housing. The network controller body is electrically connected to the coolant temperature sensor, the first-row fan, the first temperature sensor, the batteries, the second temperature sensor, the second-row fan, and the electronic cooling chip via wires.
[0007] Preferably, the bottom surface of each cooling shell is fixedly connected to the inner bottom wall of the base, and heat insulation protective pads are fixedly connected to the opposite sides of the two cooling shells, and the outer surface of each heat insulation protective pad is fixedly connected to the inner wall of the base.
[0008] By incorporating a heat-insulating protective pad, the impact of high-temperature gases on the base can be reduced, thereby increasing the heat insulation and protection effect.
[0009] Preferably, each of the cooling shells has a liquid injection pipe fixedly connected to its upper surface and a liquid outlet pipe fixedly connected to its back surface.
[0010] With both injection and discharge pipes, it is easy to add and drain coolant, achieving a good auxiliary effect.
[0011] Preferably, a liquid level scale plate is fixedly connected to the inner wall of each cooling shell, and a first dustproof net is fixedly connected to the inner wall of each heat sink.
[0012] The liquid level scale plate allows for easy observation of the coolant level inside the cooling shell, while the first dustproof mesh enhances the dustproof structure of the heat sink, preventing dust from entering the controller.
[0013] Preferably, the upper surface of each heat-conducting plate is in contact with the bottom surface of the network controller body, the outer surface of each heat sink and the outer surface of the first temperature sensor are fixedly connected to the inner wall of the network controller body, and several identical heat dissipation holes are opened on the opposite side of the two exhaust shells, and auxiliary handles are fixedly connected to both sides of the base.
[0014] The ventilation holes assist the second-row fans in cooling, and the handle allows for movement of the controller and cooling mechanism, increasing portability.
[0015] Preferably, the interior of each card plate is engaged with the outer surface of the network controller body, and two stabilizing members are fixedly connected to the side of the two batteries that are close to each other. The bottom surface of each stabilizing member is fixedly connected to the inner bottom wall of the base.
[0016] By incorporating stabilizing components, it is easy to add connections to the battery, thereby increasing its stability.
[0017] Preferably, the outer surface of each exhaust shell is fixedly connected to the inner wall of the cooling shell, the two exhaust shells are separated by one side and extend through the base to the outside of the base, the inner wall of each shell is fixedly connected with a second dustproof net, and the bottom surface of the base is fixedly connected with two sets of pads.
[0018] The base is equipped with feet to provide stable support and enhance stability. The second dust filter further improves dust protection inside the casing.
[0019] Compared with the prior art, the beneficial effects achieved by the present invention are:
[0020] Firstly, this invention, by incorporating a cooling shell, heat sink, partition plate, coolant temperature sensor, first exhaust fan, electronic cooling chip, first temperature sensor, heat conduction plate, and heat sink, enables efficient and direct heat dissipation of the network controller body, effectively reducing internal heat. The first temperature sensor detects the internal temperature of the network controller; when the temperature is too high, the controller first controls the first exhaust fan to expel the internal heat, initially dissipating heat and preventing heat buildup that could occur with direct cooling using the heat conduction plate and coolant. When the internal heat of the network controller is high, the heat is transferred directly to the coolant through the heat conduction plate and heat sink, where the coolant cools and eliminates the heat. Secondly, the electronic cooling chip maintains the coolant's low temperature, continuously cooling the internal heat of the network controller. This avoids the problem of inconvenient coolant replacement during use, which could lead to prolonged cooling and insufficient heat dissipation.
[0021] Secondly, this invention incorporates a storage battery connected to a network controller. The battery stores a certain amount of electricity and supplies power to the network controller. When the battery is connected to an external power source, the network controller can continue to use the power stored in the battery after the external power is cut off. This effectively increases the performance and avoids the problem of the network controller shutting down due to a lack of backup power during a power outage. Attached Figure Description
[0022] Figure 1 This is a three-dimensional structural diagram of the novel network controller of the present invention;
[0023] Figure 2 This is a three-dimensional structural diagram of the battery of the present invention;
[0024] Figure 3 This is a three-dimensional structural diagram of the heat sink of the present invention;
[0025] Figure 4 This is a three-dimensional structural schematic diagram of the heat sink of the present invention in cross-section;
[0026] Figure 5 This is a three-dimensional structural schematic diagram of the cooling shell of the present invention in cross-section;
[0027] Figure 6 This is a three-dimensional structural schematic diagram of the casing of the present invention in cross-section;
[0028] Figure 7 This is a three-dimensional structural schematic diagram of the electronic cooling chip of the present invention;
[0029] Figure 8 This is a three-dimensional structural diagram of the heat sink of the present invention.
[0030] The components include: 1. Base; 2. Exhaust mechanism; 201. Exhaust shell; 202. Card plate; 203. Second temperature sensor; 204. Battery; 205. Network controller body; 206. Housing; 207. Second exhaust fan; 3. High-efficiency heat dissipation mechanism; 301. Heat sink; 302. First exhaust fan; 303. Cooling shell; 304. Divider plate; 305. Electronic cooling chip; 306. Heat conduction plate; 307. Heat sink plate; 308. Coolant temperature sensor; 309. First temperature sensor; 4. Second dustproof net; 5. Heat dissipation holes; 6. Foot pad; 7. Liquid level scale plate; 8. Heat insulation pad; 9. Stabilizer; 10. Injection pipe; 11. Outlet pipe; 12. First dustproof net; 13. Auxiliary handle. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] Example 1
[0033] Please see Figure 1-8 The system includes a base 1, with an exhaust mechanism 2 and a high-efficiency heat dissipation mechanism 3 respectively installed on top of the base 1. The high-efficiency heat dissipation mechanism 3 includes two cooling shells 303 and two heat dissipation cylinders 301. Each cooling shell 303 has a partition plate 304 and a coolant temperature sensor 308 fixedly connected to its inner wall. Each partition plate 304 has an electronic cooling chip 305 fixedly connected to its inner wall. Each heat dissipation cylinder 301 has a first exhaust fan 302 fixedly connected to its inner wall. Each cooling shell 303 has two heat dissipation plates 307 snapped onto its inner wall. The upper surfaces of each pair of heat dissipation plates 307 are jointly fixedly connected to a heat-conducting plate 306. A first exhaust fan 302 is installed on top of the base 1. Temperature sensor 309, through cooling shell 303, heat sink 301, partition plate 304, coolant temperature sensor 308, first exhaust fan 302, electronic cooling chip 305, first temperature sensor 309, heat conduction plate 306, and heat sink 307, can conveniently and efficiently dissipate heat directly on the network controller, effectively reducing the internal heat of the network controller. This prevents the accumulation of heat inside the controller from being easily caused by directly using heat conduction plate 306 and coolant to dissipate heat from the controller. It also avoids the problem of inconvenient coolant replacement during use, which can lead to ineffective cooling of the controller.
[0034] The bottom surface of each cooling shell 303 is fixedly connected to the inner bottom wall of the base 1. The two cooling shells 303 are fixedly connected to the side away from each other with heat insulation pads 8. The outer surface of each heat insulation pad 8 is fixedly connected to the inner wall of the base 1. By setting the heat insulation pads 8, the influence of high temperature gas on the base 1 can be reduced and the heat insulation protection effect can be increased.
[0035] Each cooling shell 303 has a liquid injection pipe 10 fixedly connected to its upper surface and a liquid outlet pipe 11 fixedly connected to its back side. By providing the liquid injection pipe 10 and the liquid outlet pipe 11, it is possible to easily add and discharge coolant, thus achieving a better auxiliary effect.
[0036] Each cooling shell 303 has a liquid level scale plate 7 fixedly connected to its inner wall, and each heat sink 301 has a first dustproof net 12 fixedly connected to its inner wall. By setting the liquid level scale plate 7, the liquid level of the coolant inside the cooling shell 303 can be easily observed. By setting the first dustproof net 12, the dustproof structure of the heat sink 301 can be increased to prevent dust from entering the controller.
[0037] The specific implementation of this embodiment is as follows: First, the electronic cooling chip 305 and the first exhaust fan 302 are connected to the power supply. The first temperature sensor 309 can directly detect the internal temperature of the controller. When the detected temperature is high, the network controller directly controls the first exhaust fan 302 to run. The first exhaust fan 302 dissipates the internal heat of the network controller, initially cooling its interior. This prevents the heat from accumulating inside the network controller if the heat-conducting plate 306 is used to dissipate the internal heat with coolant. When the internal temperature of the network controller is high, the high heat can easily be dissipated through heat conduction. Plate 306 and heat sink 307 act directly in the coolant, cooling and eliminating the heat generated by the network controller through the coolant. During long-term cooling, the electronic cooling chip 305 can be used to cool the coolant, ensuring the coolant is at a low temperature and continuously dissipating and cooling the heat inside the network controller. This avoids the problem that the coolant temperature rises due to the inconvenience of changing the coolant during use, which would result in an insignificant cooling effect on the network controller. When the temperature is low, the operation of the first row fan 302 and the electronic cooling chip 305 can be stopped.
[0038] Example 2
[0039] Please see Figure 1-8The exhaust mechanism 2 includes two exhaust shells 201. A network controller body 205 is respectively installed above the base 1. Two clamping plates 202 are fixedly connected to the upper surface of each cooling shell 303. Two batteries 204 are fixedly connected to the inner bottom wall of the base 1. Two housings 206 and a second temperature sensor 203 are fixedly connected to the inner wall of each exhaust shell 201. A second exhaust fan 207 is fixedly connected to the inner wall of each housing 206. The network controller body 205 is connected to the coolant temperature sensor 308, the first exhaust fan 302, the first temperature sensor 309, the batteries 204, the second temperature sensor 203, the second exhaust fan 207, and the battery 204 via wires. The electronic cooling chip 305 is electrically connected to a battery 204, which in turn connects to the network controller. The battery 204 stores a certain amount of electricity and supplies power to the network controller. When the external power supply is interrupted, the network controller can continue to use the power stored in the battery 204, avoiding the problem of the network controller shutting down due to lack of backup power. The electronic cooling chip 305 is equipped with an exhaust shell 201, a second temperature sensor 203, and a second exhaust fan 207, which facilitates the dissipation of heat generated by the electronic cooling chip 305, promotes air circulation, and enhances the cooling effect of the electronic cooling chip 305.
[0040] The upper surface of each heat-conducting plate 306 is in contact with the bottom surface of the network controller body 205. The outer surface of each heat sink 301 and the outer surface of the first temperature sensor 309 are fixedly connected to the inner wall of the network controller body 205. Several identical heat dissipation holes 5 are opened on the opposite side of the two exhaust shells 201. Auxiliary handles 13 are fixedly connected to both sides of the base 1. By providing heat dissipation holes 5, the second row of fans 207 can be assisted in heat dissipation. By providing auxiliary handles 13, the position of the controller and heat dissipation mechanism can be moved, increasing portability.
[0041] The interior of each card plate 202 is snapped into the outer surface of the network controller body 205. Two stabilizing members 9 are fixedly connected to the side of the two batteries 204 that are close to each other. The bottom surface of each stabilizing member 9 is fixedly connected to the inner bottom wall of the base 1. By setting the stabilizing members 9, the connection of the batteries 204 can be easily increased, thereby increasing their stability.
[0042] The outer surface of each exhaust shell 201 is fixedly connected to the inner wall of the cooling shell 303. The two exhaust shells 201 are separated by one side, which passes through the base 1 and extends to the outside of the base 1. The inner wall of each housing 206 is fixedly connected with a second dustproof net 4. The bottom surface of the base 1 is fixedly connected with two sets of pads 6. By setting the pads 6, the base 1 can be stably supported, which can effectively increase the stability effect. By setting the second dustproof net 4, the dustproof effect inside the housing 206 can be easily increased.
[0043] The specific implementation of this embodiment is as follows: The storage battery 204 is directly connected to the network controller body 205 through a wire. The storage battery 204 can store a certain amount of electricity and supply power to the network controller body 205. When the storage battery 204 is connected to an external power source, the network controller body 205 can continue to use the power stored in the storage battery 204 after the external power source is cut off, avoiding the problem of the network controller body 205 shutting down directly due to lack of backup power during a power outage. During the operation of the electronic cooling chip 305, the heat dissipation end is prone to dissipating a lot of heat. The second temperature sensor 203 can monitor the temperature inside the space. When the detected temperature is too high, the second exhaust fan 207 can easily dissipate the heat generated by the electronic cooling chip 305, facilitate air circulation with the outside air, and increase the cooling effect of the electronic cooling chip 305.
[0044] The working principle of this invention is as follows: First, the electronic cooling chip 305, the first exhaust fan 302, and the second exhaust fan 207 are connected to a power source. The network controller body 205 can be used to set the normal internal temperature standard value, the standard internal temperature value of the cooling shell 303, and the standard coolant temperature value. When these values are too high, the network controller body 205 directly activates the first exhaust fan 302, the second exhaust fan 207, and the electronic cooling chip 305. The first temperature sensor 309 can directly monitor the internal heat of the controller. The network controller detects the temperature. When the detected temperature is high, the network controller directly controls the first fan 302 to run. The first fan 302 dissipates the heat inside the network controller, initially cooling it to prevent heat buildup from occurring if the heatsink 306 is used to dissipate heat directly from the network controller using coolant. When the internal temperature of the network controller is high, the heat can easily be transferred to the coolant through the heatsink 306 and heat sink 307, where the coolant cools and eliminates the heat generated by the network controller. During the cooling process, the coolant temperature sensor 308 can detect the coolant temperature. When the coolant temperature rises, the electronic cooling chip 305 can be used to cool the coolant, ensuring its low temperature and continuously dissipating heat from the network controller. During the operation of the electronic cooling chip 305, the heat sink easily dissipates a significant amount of heat. The second temperature sensor 203 can monitor the internal temperature of the space. When the detected temperature is too high, the second exhaust fan 207 can easily expel the heat generated by the electronic cooling chip 305, facilitating air circulation with the outside air and increasing the cooling effect of the electronic cooling chip 305. This avoids the problem of the coolant temperature rising due to prolonged cooling and heat dissipation caused by the inconvenience of coolant replacement during use. The increased temperature leads to ineffective cooling of the network controller. When the temperature is low, the operation of the first-row fan 302 and the electronic cooling chip 305 can be stopped. The battery 204 is directly connected to the network controller body 205 via wires. The battery 204 can store a certain amount of electricity and supply power to the network controller body 205. When the battery 204 is connected to an external power source, the network controller body 205 can continue to use the power stored in the battery 204 after the external power is cut off, avoiding the problem of the network controller body 205 shutting down directly due to lack of backup power during a power outage.
[0045] It should be noted that, in this document, relational terms such as "first" and "second" are used only 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 process, method, article, or apparatus.
[0046] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A novel network controller, comprising a base (1), characterized in that: An exhaust mechanism (2) and a high-efficiency heat dissipation mechanism (3) are respectively provided on the top of the base (1). The high-efficiency heat dissipation mechanism (3) includes two cooling shells (303) and two heat dissipation cylinders (301). Each cooling shell (303) has a partition plate (304) and a coolant temperature sensor (308) fixedly connected to its inner wall. Each partition plate (304) has an electronic cooling chip (305) fixedly connected to its inner wall. Each heat dissipation cylinder (301) has a first exhaust fan (302) fixedly connected to its inner wall. Each cooling shell (303) has two heat dissipation plates (307) snapped onto its inner wall. The upper surfaces of each pair of heat dissipation plates (307) are jointly fixedly connected to a heat-conducting plate (306). A first temperature sensor (309) is provided above the base (1). The exhaust mechanism (2) includes two exhaust shells (201). The base (1) has two exhaust shells (201) and a first exhaust sensor (309) above its upper surface. Above each of the cooling shells (303) are a network controller body (205). Two card plates (202) are fixedly connected to the upper surface of each cooling shell (303). Two batteries (204) are fixedly connected to the inner bottom wall of the base (1). Two housings (206) and a second temperature sensor (203) are fixedly connected to the inner wall of each exhaust shell (201). A second exhaust fan (207) is fixedly connected to the inner wall of each housing (206). The network controller body (205) is electrically connected to the coolant temperature sensor (308), the first exhaust fan (302), the first temperature sensor (309), the battery (204), the second temperature sensor (203), the second exhaust fan (207), and the electronic cooling chip (305) through wires.
2. The novel network controller according to claim 1, characterized in that: The bottom surface of each of the cooling shells (303) is fixedly connected to the inner bottom wall of the base (1). The two cooling shells (303) are fixedly connected to each other on the side away from each other, and the outer surface of each of the heat insulation pads (8) is fixedly connected to the inner wall of the base (1).
3. A novel network controller according to claim 1, characterized in that: Each of the cooling shells (303) has a liquid injection pipe (10) fixedly connected to its upper surface, and a liquid outlet pipe (11) fixedly connected to its back side.
4. A novel network controller according to claim 1, characterized in that: Each of the cooling shells (303) has a liquid level scale plate (7) fixedly connected to its inner wall, and each of the heat sinks (301) has a first dustproof net (12) fixedly connected to its inner wall.
5. A novel network controller according to claim 1, characterized in that: The upper surface of each heat-conducting plate (306) is in contact with the bottom surface of the network controller body (205). The outer surface of each heat sink (301) and the outer surface of the first temperature sensor (309) are fixedly connected to the inner wall of the network controller body (205). Several identical heat dissipation holes (5) are opened on the side of each of the two exhaust shells (201) that are far apart from each other. Auxiliary handles (13) are fixedly connected to both sides of the base (1).
6. A novel network controller according to claim 1, characterized in that: The interior of each of the card plates (202) is engaged with the outer surface of the network controller body (205). The two batteries (204) are fixedly connected to two stabilizing members (9) on their adjacent sides. The bottom surface of each stabilizing member (9) is fixedly connected to the inner bottom wall of the base (1).
7. A novel network controller according to claim 1, characterized in that: The outer surface of each of the exhaust shells (201) is fixedly connected to the inner wall of the cooling shell (303). The two exhaust shells (201) are separated by one side, which penetrates the base (1) and extends to the outside of the base (1). The inner wall of each of the housings (206) is fixedly connected with a second dustproof net (4). The bottom surface of the base (1) is fixedly connected with two sets of pads (6).