Internet of Things networking control device

By introducing heat absorption box, heat absorption pipe, heat sink pipe and turbine fan blade system into the IoT control device, the problem of degradation of heat sink efficiency is solved, and efficient cooling effect is achieved to ensure stable operation of the equipment.

CN223195028UActive Publication Date: 2025-08-05GUANGZHOU HERONG DIGITAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422139361.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-08-05
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

When existing IoT control devices continue to dissipate heat into the surrounding air, the efficiency of the heat sink will decrease due to the rise of the air, resulting in poor heat dissipation effect.

Method used

The heat absorption box, heat absorption pipe, heat dissipation pipe and turbine fan blade system are adopted to drive the fan blade to rotate through coolant circulation and magnetic turbine to achieve efficient heat dissipation.

Benefits of technology

Maintain the efficient heat dissipation efficiency of the coolant, prevent the equipment from overheating, and ensure the stable operation of the controller.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of Internet of Things, in particular to an Internet of Things networking control device which comprises a control device body, the top of the control device body is connected with a heat absorption box, and a cooling mechanism is arranged on the heat absorption box. The cooling liquid in the water storage box sequentially flows through the water outlet pipe, the heat absorption pipe and the heat dissipation pipe and then returns into the water storage box, so that circulation of the cooling liquid is formed, the heat absorption box transmits heat generated during operation of the control device body into the cooling liquid through the heat absorption pipe, and the heat absorption effect of the heat absorption box is kept; at the moment, when water flows into the turbine, the water flow pushes the turbine to drive the inner magnetic ring to rotate, and under the magnetic attraction effect of the inner magnetic ring and the outer magnetic ring, the outer magnetic ring drives the fan blades to rotate and blow the fan blades to the heat absorption pipe, so that heat is conveniently dissipated into air as soon as possible through air flow, and the efficient heat dissipation efficiency of cooling liquid is kept.
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Description

Technical Field

[0001] The utility model relates to the technical field of Internet of Things, in particular to an Internet of Things networking control device. Background Art

[0002] The Internet of Things is a network based on information carriers such as the Internet and traditional telecommunications networks, which allows all ordinary physical objects that can be independently addressed to be interconnected. The Internet of Things can connect ubiquitous terminal devices and facilities. The application of the Internet of Things has expanded to multiple industries, including security, control, electricity, transportation, environmental monitoring, etc. In the development history of control technology, it is closely related to the development of high-tech technologies such as computer technology, digital technology, and communication network technology. Now it is also related to the Internet of Things technology. The development of various emerging technologies has promoted the rapid development of controllers. The controller refers to the main command device that changes the wiring of the main circuit or control circuit and changes the resistance value in the circuit in a predetermined sequence to control the starting, speed regulation, braking and reversal of the motor. It is the "decision-making body" that issues commands, that is, it completes the coordination and command of the operation of the entire computer system. However, the processor in its controller generates a lot of heat during operation. If the heat is not dissipated in time, it is easy to cause equipment failure.

[0003] Prior art, such as publication number CN214014845U, provides an Internet of Things electronic control intelligent control device, including an outer box, a controller is provided in the outer box, the upper end of the controller is connected to the outer box via a support mechanism, a rotation cavity is provided in the bottom wall of the outer box, a double-headed threaded rod is rotatably connected in the rotation cavity, the double-headed threaded rod is connected to the controller via a clamping mechanism, a motor is provided on the right outer wall of the outer box, and a liquid storage tank is provided on the left outer wall of the outer box, and the liquid storage tank is connected to the controller via a heat dissipation mechanism. The utility model can timely and continuously absorb heat and cool the controller by providing a heat dissipation mechanism, maintain the operating temperature of the controller, and avoid problems caused by excessive temperature of the controller. By providing a support mechanism and a clamping mechanism, the stability of the controller can be maintained, ensuring that the heat exchange tube and the controller can always remain in contact, thereby enhancing their heat exchange performance.

[0004] The water pump pumps the coolant from the tank through the outlet via a suction pipe and into the heat exchange tube. The coolant then flows through the tube from top to bottom, absorbing heat and cooling the controller. Finally, it enters the tank through the end of the tube. The coolant in the tank is dissipated by the heat sink. The continuous operation of the water pump keeps the controller cool and safe. However, when the heat sink continuously dissipates heat into the surrounding air during use, the rising air will reduce the heat dissipation effect of the heat sink. In view of this, we propose an IoT-connected control device. Utility Model Content

[0005] The purpose of the utility model is to provide an Internet of Things networking control device, which solves the problem that when heat is continuously dissipated into the surrounding air, the heat dissipation effect of the heat sink will decrease when the surrounding air rises.

[0006] To achieve the above objectives, the present invention provides the following technical solutions:

[0007] An Internet of Things (IoT) control device comprises a control device body, a heat absorbing box is connected to the top of the control device body, and a cooling mechanism is provided on the heat absorbing box;

[0008] The cooling mechanism includes a heat absorption tube, which is connected to the bottom of the inner wall of the heat absorption box, a water storage box is connected to the left side of the front of the heat absorption box, a water pump is connected to the left side of the inner wall of the water storage box, and the water outlet end of the water pump is connected to the water outlet pipe, and the water outlet pipe is connected to one end of the heat absorption tube, the other end of the heat absorption tube is connected to the heat dissipation pipe through a connecting pipe, and the heat dissipation pipe is connected to the right side of the water storage box, the inner wall of the connecting pipe is rotatably connected to the inner magnetic ring, the inner wall of the inner magnetic ring is connected to the turbine, the outer wall of the connecting tube is rotatably connected to the outer magnetic ring, and the outer wall of the outer magnetic ring is connected to the fan blade.

[0009] Preferably, the heat absorbing tubes are distributed in a serpentine shape inside the heat absorbing box, and the inner wall of the heat absorbing box is connected with a heat conducting sheet, and the heat conducting sheet is connected to the outer wall of the heat absorbing tubes.

[0010] Preferably, the outer wall of the heat dissipation pipe is connected with heat dissipation fins, and the heat dissipation fins are evenly distributed laterally and are in the same direction as the blowing direction of the fan blades.

[0011] Preferably, an inner ring groove is formed on the inner wall of the connecting tube for embedding the inner magnetic ring, and an outer ring groove is formed on the outer wall of the connecting tube for embedding the outer magnetic ring.

[0012] Preferably, a pressurizing pipe is provided at a position of one end of the heat absorbing pipe corresponding to the connecting pipe, so as to increase the flow rate of the coolant.

[0013] Preferably, the top of the water storage box is connected to a sealing cover, and the top of the sealing cover is connected to a carrying handle.

[0014] Preferably, a filter plate is connected below the sealing cover, and the filter plate is arranged to be inclined, and the inclined surface extends to the bottom of the water storage box.

[0015] Preferably, a pocket plate is connected to the top of the filter plate at the lowest position of the inclined surface, and the pocket plate is in contact with the inner wall of the water storage box.

[0016] By means of the above technical solution, the present invention provides an Internet of Things (IoT) control device. It has at least the following beneficial effects:

[0017] 1. The coolant in the water storage box of the utility model flows through the water outlet pipe, the heat absorption pipe, the heat dissipation pipe in sequence, and then returns to the water storage box, thereby forming a coolant circulation, so that the heat absorption box transfers the heat generated when the control device body is in operation to the coolant through the heat absorption pipe to maintain the heat absorption effect of the heat absorption box. When the coolant flows through the connecting pipe at one end of the heat dissipation pipe, when the water flows through the turbine, the water flow will drive the turbine to drive the inner magnetic ring to rotate. Under the magnetic attraction between the inner magnetic ring and the outer magnetic ring, the outer magnetic ring will drive the fan blades to rotate and blow toward the heat absorption pipe, so as to facilitate the heat dissipation to the air as soon as possible through the air flow, so as to maintain the high heat dissipation efficiency of the coolant.

[0018] 2. The utility model adopts a detachable sealing cover, which is convenient for regular replacement or inspection of the coolant. The filter plate can intercept some impurities in the coolant, such as scale, to ensure the smooth flow of the pipeline. The inclined filter plate also has a large filtration area. By arranging a pocket plate at the lowest position of the inclined surface of the filter plate, the impurities intercepted by the filter plate can be taken out for cleaning each time the sealing cover is opened, so as to avoid excessive accumulation of impurities and clogging of the filter plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The accompanying drawings described herein are used to provide a further understanding of the present invention and constitute a part of this application:

[0020] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0021] Figure 2 It is a partial cross-sectional view of the utility model;

[0022] Figure 3 This is a diagram showing the internal structure of the water storage box in the present utility model;

[0023] Figure 4 This is a schematic diagram of the connection relationship between the connecting pipe and various components in the utility model.

[0024] In the figure: 1. Control device body; 2. Heat absorption box; 3. Cooling mechanism; 31. Water storage box; 311. Water pump; 312. Sealing cover; 313. Handle; 314. Filter plate; 315. Pocket plate; 32. Water outlet pipe; 33. Heat absorption pipe; 331. Heat conducting plate; 332. Pressurizing pipe; 34. Heat dissipation pipe; 341. Connecting pipe; 342. Inner magnetic ring; 3421. Inner ring groove; 343. Turbine; 344. Outer magnetic ring; 3441. Outer ring groove; 345. Fan blade; 35. Heat sink. DETAILED DESCRIPTION

[0025] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0026] Example 1

[0027] An Internet of Things networking control device, such as Figures 1-4 As shown, it includes a control device body 1, a heat absorption box 2 is connected to the top of the control device body 1, a cooling mechanism 3 is provided on the heat absorption box 2, the cooling mechanism 3 includes a heat absorption pipe 33, the heat absorption pipe 33 is connected to the bottom of the inner wall of the heat absorption box 2, the left side of the front of the heat absorption box 2 is connected to the water storage box 31, the left side of the inner wall of the water storage box 31 is connected to the water pump 311, and the water outlet end of the water pump 311 is connected to the water outlet pipe 32, and the water outlet pipe 32 is connected to one end of the heat absorption pipe 33, the other end of the heat absorption pipe 33 is connected to the heat dissipation pipe 34 through the connecting pipe 341, and the heat dissipation pipe 34 is connected to the right side of the water storage box 31, the inner wall of the connecting pipe 341 is rotatably connected to the inner magnetic ring 342, the inner wall of the inner magnetic ring 342 is connected to the turbine 343, the outer wall of the connecting pipe 341 is rotatably connected to the outer magnetic ring 344, and the outer wall of the outer magnetic ring 344 is connected to the fan blade 345.

[0028] Furthermore, by starting the water pump 311, the coolant in the water storage box 31 flows through the water outlet pipe 32, the heat absorption pipe 33, the heat dissipation pipe 34 in sequence, and then returns to the water storage box 31, thereby forming a circulation of the coolant, so that the heat absorption box 2 can transfer the heat generated when the control device body 1 is in operation to the coolant through the heat absorption pipe 33 to maintain the heat absorption effect of the heat absorption box 2. When the coolant flows through the connecting pipe 341 at one end of the heat dissipation pipe 34, the water flows through the turbine 343, and the water flow will drive the turbine 343 to drive the inner magnetic ring 342 to rotate. Under the magnetic attraction between the inner magnetic ring 342 and the outer magnetic ring 344, the outer magnetic ring 344 will drive the fan blades 345 to rotate and blow toward the heat absorption pipe 33, so as to facilitate the heat dissipation to the air as soon as possible through the air flow, so as to maintain the high heat dissipation efficiency of the coolant.

[0029] Example 2

[0030] like Figure 2 As shown, based on Example 1, preferably, the heat absorption tube 33 is distributed in a serpentine shape inside the heat absorption box 2, and the inner wall of the heat absorption box 2 is connected with a heat conducting sheet 331, and the heat conducting sheet 331 is connected to the outer wall of the heat absorption tube 33.

[0031] Furthermore, by providing the heat conducting sheet 331 and the serpentine distribution, the contact area between the heat absorbing tube 33 and the heat absorbing box 2 can be increased to improve the efficiency of heat transfer.

[0032] Example 3

[0033] like Figure 2 As shown, on the basis of Example 1, preferably, the outer wall of the heat pipe 34 is connected with a heat sink 35, and the heat sink 35 is evenly distributed laterally and is consistent with the blowing direction of the fan blades 345 to facilitate the formation of an air duct.

[0034] Furthermore, by providing the heat sink 35 , the contact area between the heat pipe 34 and the air can be increased, and the heat sink 35 is evenly distributed laterally and is in the same direction as the blowing direction of the fan blade 345 to facilitate the formation of an air duct and fully dissipate the heat of the heat sink 35 .

[0035] Example 4

[0036] like Figure 4 As shown, on the basis of Example 1, preferably, the inner wall of the connecting tube 341 is provided with an inner ring groove 3421 for embedding the inner magnetic ring 342, and the outer wall of the connecting tube 341 is provided with an outer ring groove 3441 for embedding the outer magnetic ring 344 to prevent the outer magnetic ring 344 from being offset.

[0037] Furthermore, by providing the inner ring groove 3421 and the outer ring groove 3441 , the outer magnetic ring 344 and the inner magnetic ring 342 can be prevented from being offset during rotation.

[0038] Example 5

[0039] like Figure 2 As shown, on the basis of Example 1, preferably, a pressurizing pipe 332 is provided at a position of one end of the heat absorbing pipe 33 corresponding to the connecting pipe 341 to increase the flow rate of the coolant.

[0040] Furthermore, by providing a pressure pipe 332 with a smaller inner diameter, the force exerted by the flowing water on the turbine 343 can be effectively increased.

[0041] Example 6

[0042] like Figure 3The top of the water storage box 31 is connected to a sealing cover 312, and the top of the sealing cover 312 is connected to a carrying handle 313. A detachable sealing cover 312 is used to facilitate replacement or inspection of the coolant. A filter plate 314 is connected to the bottom of the sealing cover 312. The filter plate 314 is inclined, and the inclined surface extends to the bottom of the water storage box 31. By setting the filter plate 314, some impurities in the coolant, such as scale, can be intercepted to ensure smooth flow of the pipeline. The inclined filter plate 314 also has a large filtering area. The top of the filter plate 314 is connected to a pocket plate 315 at the bottom of the inclined surface. The pocket plate 315 is fitted with the inner wall of the water storage box 31. By setting the pocket plate 315 at the bottom of the inclined surface of the filter plate 314, each time the sealing cover 312 is opened, the impurities intercepted by the filter plate 314 can be taken out for cleaning to avoid excessive accumulation of impurities and clogging of the filter plate 314.

[0043] In this embodiment, a detachable sealing cover 312 is used to facilitate regular replacement or inspection of the coolant, and by setting a filter plate 314, some impurities in the coolant, such as scale, can be intercepted to ensure the smooth flow of the pipeline. The inclined filter plate 314 also has a larger filtering area. By setting a pocket plate 315 at the lowest position of the inclined surface of the filter plate 314, each time the sealing cover 312 is opened, the impurities intercepted by the filter plate 314 can be taken out for cleaning to avoid excessive accumulation of impurities and clogging of the filter plate 314.

[0044] When the Internet of Things network control device of the present invention is in use, the water pump 311 is started to make the coolant in the water storage box 31 flow through the water outlet pipe 32, the heat absorption pipe 33, the heat dissipation pipe 34 in sequence, and then return to the water storage box 31, thereby forming a circulation of the coolant, so that the heat absorption box 2 can transfer the heat generated when the control device body 1 is in operation to the coolant through the heat absorption pipe 33, so as to maintain the heat absorption effect of the heat absorption box 2, and by providing the heat conductive sheet 331, the contact area between the heat absorption pipe 33 and the heat absorption box 2 can be increased, which can improve the efficiency of heat transfer. When the coolant flows through the connecting pipe 341 at one end of the heat dissipation pipe 34, when the water flows to the turbine 343, the water flow will drive the turbine 343 to drive the inner magnetic ring 342 to rotate. Under the magnetic attraction between the inner magnetic ring 342 and the outer magnetic ring 344, the outer magnetic ring 344 will drive the fan blades 345 to rotate and blow toward the heat absorption tube 33, so as to facilitate the heat dissipation into the air as quickly as possible through air flow, so as to maintain the high heat dissipation efficiency of the coolant. By setting the heat sink 35, the contact area between the heat dissipation tube 34 and the air can be increased, thereby improving the heat transfer efficiency. The use of a detachable sealing cover 312 is convenient for regular replacement or inspection of the coolant, and by setting the filter plate 314, some impurities in the coolant, such as scale, can be intercepted to ensure the smooth flow of the pipeline. The inclined filter plate 314 also has a larger filtering area. By setting the pocket plate 315 at the lowest position of the inclined surface of the filter plate 314, the impurities intercepted by the filter plate 314 can be taken out for cleaning each time the sealing cover 312 is opened, so as to avoid excessive accumulation of impurities and resulting in blockage of the filter plate 314.

[0045] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0046] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An Internet of Things networking control device, comprising a control device body (1), characterized in that: The top of the control device body (1) is connected to a heat absorption box (2), and a cooling mechanism (3) is provided on the heat absorption box (2); The cooling mechanism (3) includes a heat absorbing pipe (33), the heat absorbing pipe (33) is connected to the bottom of the inner wall of the heat absorbing box (2), the left side of the front of the heat absorbing box (2) is connected to a water storage box (31), the left side of the inner wall of the water storage box (31) is connected to a water pump (311), and the water outlet end of the water pump (311) is connected to a water outlet pipe (32), and the water outlet pipe (32) is connected to one end of the heat absorbing pipe (33), and the heat absorbing pipe (33) The other end is connected to a heat dissipation pipe (34) via a connecting pipe (341), and the heat dissipation pipe (34) is connected to the right side of the water storage box (31). The inner wall of the connecting pipe (341) is rotatably connected to an inner magnetic ring (342), and the inner wall of the inner magnetic ring (342) is connected to a turbine (343). The outer wall of the connecting pipe (341) is rotatably connected to an outer magnetic ring (344), and the outer wall of the outer magnetic ring (344) is connected to a fan blade (345).

2. The Internet of Things control device according to claim 1, characterized in that: The heat absorbing tube (33) is distributed in a serpentine shape inside the heat absorbing box (2), and the inner wall of the heat absorbing box (2) is connected to a heat conducting sheet (331), and the heat conducting sheet (331) is connected to the outer wall of the heat absorbing tube (33).

3. The Internet of Things control device according to claim 1, characterized in that: The outer wall of the heat dissipation pipe (34) is connected with heat dissipation fins (35), and the heat dissipation fins (35) are evenly distributed in the transverse direction and are aligned with the blowing direction of the fan blades (345).

4. The Internet of Things control device according to claim 1, characterized in that: The inner wall of the connecting tube (341) is provided with an inner ring groove (3421) for embedding the inner magnetic ring (342), and the outer wall of the connecting tube (341) is provided with an outer ring groove (3441) for embedding the outer magnetic ring (344).

5. The Internet of Things networking control device according to claim 1, characterized in that: A pressurizing pipe (332) is provided at a position of one end of the heat absorbing pipe (33) corresponding to the connecting pipe (341) for increasing the flow rate of the cooling liquid.

6. The Internet of Things control device according to claim 1, characterized in that: The top of the water storage box (31) is connected to a sealing cover (312), and the top of the sealing cover (312) is connected to a carrying handle (313).

7. The Internet of Things control device according to claim 6, characterized in that: A filter plate (314) is connected below the sealing cover (312), and the filter plate (314) is arranged to be inclined, with the inclined surface extending to the bottom of the water storage box (31).

8. The Internet of Things control device according to claim 7, characterized in that: The top of the filter plate (314) is connected to a pocket plate (315) at the lowest position of the inclined surface, and the pocket plate (315) is in contact with the inner wall of the water storage box (31).