Industrial furnace heat dissipation shell and shell preparation method

Through the combination of liquid cooling system and heat dissipation fan, the problem of poor heat dissipation of industrial furnace heat dissipation shell at high temperatures is solved, and the rapid and stable cooling effect is achieved, and the quality of the melted object is improved.

CN115479475BActive Publication Date: 2025-08-29CHANGSHU LINMAO MASCH EQUIP CO LTD
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Patent Information

Application Number
CN202211067125.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-01
Publication Date
2025-08-29
Estimated Expiration
2042-09-01

AI Technical Summary

Technical Problem

The existing industrial furnace heat dissipation shell has poor heat dissipation effect at high temperature critical values, resulting in large fluctuations in the furnace temperature and affecting the quality of the melted object.

Method used

The liquid cooling system is adopted, including a water storage tank, a water drain pump, a cooling component, a flow component, a heat dissipation component and a cooling component, which quickly cools down by circulating coolant, and uses a heat dissipation fan and a heat dissipation rod to increase stability.

Benefits of technology

It achieves rapid and stable cooling of industrial furnaces, reduces temperature fluctuations in the furnace, and improves the quality of the melted objects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an industrial furnace heat dissipation shell and a shell preparation method, which are applied in the field of heat dissipation shells. The present invention provides a shell body, a water supply mechanism and a circulation mechanism. When the coolant needs to be stored, the coolant can be stored in a water tank, and the refrigerator can cool the coolant in the water tank. When the coolant needs to be transported to the circulation mechanism, the water inlet pump will pump the coolant in the water storage component into the circulation mechanism. When the cooling component needs to be installed, the connecting frame will limit the flow component, the heat dissipation component and the cooling component, and the heat dissipation fan can cool the heat dissipation component to continuously cool the coolant. When the coolant needs to be transported to the heat dissipation component, the coolant will be pumped into the water inlet pipe by the water inlet pump, and then transported to the water supply pipe, and finally transported to the heat dissipation component. When the coolant is transmitted in the water supply pipe.
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Description

Technical Field

[0001] The present invention belongs to the field of heat dissipation housings, and in particular relates to an industrial furnace heat dissipation housing and a method for preparing the housing. Background Art

[0002] An industrial furnace is a thermal equipment that uses heat generated by fuel combustion or electrical energy conversion to heat materials or workpieces in industrial production. The heat dissipation shell of an industrial furnace is a shell used to dissipate heat from the industrial furnace.

[0003] At present, a Chinese invention with the announcement number CN108800951B discloses an adjustable heat dissipation device for an industrial heating furnace. This invention discloses an adjustable heat dissipation device for an industrial heating furnace, comprising a heating furnace, a heat dissipation top plate, a top fixing plate and a heat dissipation box. The bottom of the heating furnace is provided with a combustion furnace, and the upper surface of the heating furnace is provided with a heat dissipation top plate. In this device, a heat dissipation top plate is provided above the industrial heating furnace. The heat dissipation top plate can be selected to be attached to or not attached to the upper surface of the heating furnace according to actual needs, so as to achieve the purpose of heat dissipation of the heating furnace. When the temperature inside the heating furnace is too high, it plays a heat dissipation role, ensuring that the temperature inside the heating furnace will not be too high, and the temperature inside the heating furnace is within a stable temperature fluctuation range, ensuring the normal processing temperature of the surface treatment. After adding the heat dissipation top plate above the heating furnace, this device plays a role in cooling the heating furnace during initial heating or cooling when the temperature is too high during continuous heating. It can control the temperature inside the furnace to fluctuate within a certain range, and heat can be dissipated when the temperature exceeds the maximum value. It is easy to use.

[0004] Existing industrial furnace heat dissipation shells and shell preparation methods have the following disadvantages when dissipating heat from industrial furnace shells:

[0005] 1. Simple air cooling cannot quickly and effectively dissipate heat and cool down industrial furnaces at critical high temperatures;

[0006] 2. Heat dissipation in the furnace will cause large changes in the temperature range in the furnace, affecting the quality of the smelting objects in the furnace. Summary of the Invention

[0007] The purpose of the present invention is to provide an existing industrial furnace heat dissipation housing and a method for preparing the housing, which has the following advantages:

[0008] 1. Use liquid cooling to cool down the industrial furnace, which can effectively cool down the industrial furnace at the critical value to make it stable;

[0009] 2. The heat dissipated from the surface of the industrial furnace will not affect the temperature inside the furnace and cause significant changes.

[0010] The above technical objectives of the present invention are achieved through the following technical solutions: A device for preparing a heat dissipation shell of an industrial furnace, comprising a shell body, a water supply mechanism, a circulation mechanism and a connecting mechanism, wherein the water supply mechanism is bolted to the left side of the shell body, the circulation mechanism is bolted to the surface of the shell body, the connecting mechanism is bolted to the top of the shell body, the water supply mechanism comprises a water storage component and a water diversion component, the circulation mechanism comprises a cooling component, a flow component, a heat dissipation component and a cooling component, the connecting mechanism comprises a top pumping component and a top reinforcement component, the water storage component is bolted to the left side of the shell body, the water diversion component Bolted on both sides of the shell body, the cooling component is bolted on the top, rear side and both sides of the shell body, the flow component is clamped on the inner wall of the cooling component, the flow components on both sides are connected with the water diversion component, the heat dissipation component is clamped on the inner wall of the cooling component, the heat dissipation component is connected with the flow component, the cooling component is clamped on the inner wall of the cooling component, the cooling component is connected with the heat dissipation component, the cooling component on the left is connected with the flow component on the rear side, the cooling component on the rear side is connected with the flow component on the right side, the top water pumping component is connected to both sides of the top cooling component, and the top reinforcement component is bolted to the front side of the top cooling component.

[0011] By adopting the above technical solution, the shell body can be installed on an existing industrial furnace by setting up a shell body, a water supply mechanism, a circulation mechanism and a connecting mechanism. The water supply mechanism can provide coolant to the circulation mechanism, and the circulation mechanism can allow the coolant to cool the shell body. The cooled shell body can dissipate heat and cool the industrial furnace. The connecting mechanism can increase the stability of the connection between the circulation mechanism and the shell body, and allow the water supply mechanism to provide coolant to the circulation mechanism on the top of the shell body and cool the top of the shell body, thereby achieving the goal of cooling the front of the industrial furnace.

[0012] The present invention is further configured as follows: the water storage assembly includes a water tank and a refrigerator, the water tank is bolted to the left side of the shell body, and the refrigerator is bolted to the inner wall of the water tank.

[0013] By adopting the above technical solution, the coolant can be stored in the water tank by arranging the water storage component, and the refrigerator can cool the coolant in the water tank.

[0014] The present invention is further configured as follows: the water diversion assembly includes an inlet pump and an outlet pump, the inlet pump is bolted to the left side of the shell body, the outlet pump is bolted to the right side of the shell body, the input end of the inlet pump is connected to the right side of the water tank, and the output end of the outlet pump is connected to the rear side of the water tank.

[0015] By adopting the above technical solution and setting up a water diversion assembly, the water inlet pump can pump the coolant in the water storage assembly into the circulation mechanism, and then the water outlet pump can pump the coolant in the circulation mechanism back into the water storage assembly.

[0016] The present invention is further configured as follows: the cooling component includes a connecting frame and a heat dissipation fan, the connecting frame is bolted to the two sides, rear side and top of the shell body, and the front side of the connecting frame on both sides and the left side of the connecting frame on the rear side are bolted with a heat dissipation fan.

[0017] By adopting the above technical solution and setting a cooling component, the connecting frame can limit the flow component, heat dissipation component and cooling component, and the heat dissipation fan can cool the heat dissipation component, so that the coolant can be continuously cooled, so that the coolant can continue to maintain a low temperature after leaving the refrigeration of the refrigerator.

[0018] The present invention is further configured as follows: the flow component includes a water inlet pipe and a water delivery pipe, and the water inlet pipe on the left is connected to the water inlet pump.

[0019] By adopting the above technical solution and setting up a flow component, when the coolant needs to be transported to the heat dissipation component, the coolant will be pumped into the water inlet pipe through the water inlet pump, and then transported to the water supply pipe, and finally transported to the heat dissipation component. When the coolant is transmitted in the water supply pipe, the heated coolant will gradually cool down in the water supply pipe.

[0020] The present invention is further configured as follows: the heat dissipation assembly includes a heat dissipation pipe and a heat dissipation plate, the heat dissipation pipe is connected to the water supply pipe, and the heat dissipation plate is welded to the surface of the heat dissipation pipe.

[0021] By adopting the above technical solution and setting up a heat dissipation component, when the heated coolant needs to be dissipated on the way, the heat dissipation plate will be quickly fanned by the wind blown by the heat dissipation fan, and the heated coolant will be cooled, so that the coolant in the heat dissipation pipe can be kept at a certain low temperature.

[0022] The present invention is further configured as follows: the cooling assembly includes a cooling pipe and a cooling plate, the cooling pipe is connected to the heat dissipation pipe, the cooling plate is sleeved on the surface of the cooling pipe, the side of the cooling pipe close to the shell body is in contact with the shell body, and the cooling pipe on the right side is connected to the water outlet pump.

[0023] By adopting the above technical solution and setting up a cooling assembly, when the shell body needs to dissipate heat, the coolant in the cooling pipe can cool the cooling plate, and the cooled cooling plate will cool the shell body, thereby reducing the temperature of the shell body.

[0024] The present invention is further configured as follows: the top water pumping assembly includes a connecting angle plate and a top water pump, the output end of the top water pump is connected to the water inlet pipe at the top, the input end of the top water pump is connected to the cooling pipe on the left, the connecting angle plate is bolted to both sides of the top connecting frame, and the bottom of the connecting angle plate is bolted to the top of the connecting frames on both sides.

[0025] By adopting the above technical solution and setting up a top water pumping assembly, when it is necessary to cool the top of the shell body, the top water pump can pump the coolant in the water supply mechanism into the circulation mechanism at the top of the shell body, allowing the circulation mechanism at the top of the shell body to dissipate heat on the top of the shell body, and the connection between the angle plate and the circulation mechanism can increase the stability of the connection between the circulation mechanism and the shell body.

[0026] The present invention is further configured as follows: the top reinforcement assembly includes a supporting angle plate and a heat dissipation rod, the supporting angle plate is bolted to the front side of the top connection frame, and the heat dissipation rod is welded to the opposite side of the supporting angle plate.

[0027] By adopting the above technical solution and setting a top reinforcement component, when it is necessary to increase the stability of the connection between the circulation mechanism and the shell body, the stability of the connection between the circulation mechanism and the shell body can be increased by connecting the supporting angle plate to the shell body and the circulation mechanism, and when the heat dissipation rod comes into contact with the flowing air, the flowing air will drive the heat on the heat dissipation rod and the supporting angle plate, thereby being able to dissipate heat for the supporting angle plate.

[0028] A method for preparing a heat dissipation shell of an industrial furnace comprises the following steps:

[0029] S1. Shell Preparation: Measure the surface of the industrial furnace where the shell will be installed. Fabricate the shell to the appropriate size based on the measured dimensions. Install the water supply mechanism on the left side of the shell. Finally, install the circulation mechanism on both sides, top, and rear of the shell. Connect the water storage assembly to the water diversion assembly, then to the cooling assembly, then to the flow assembly, and finally to the heat dissipation assembly.

[0030] S2. Component reinforcement: Install the connecting mechanism on the circulation mechanism at the top of the shell body, connect the top pumping assembly to the circulation mechanism, connect the bottom of the connecting mechanism to the shell body, and connect the top reinforcement assembly to the top circulation mechanism.

[0031] In summary, the present invention has the following beneficial effects:

[0032] 1. By setting the shell body, water supply mechanism and circulation mechanism, when the coolant needs to be stored, the coolant can be stored in the water tank, and the refrigerator can cool the coolant in the water tank. When the coolant needs to be transported to the circulation mechanism, the water inlet pump will pump the coolant in the water storage component into the circulation mechanism. When the cooling component needs to be installed, the connecting frame will limit the flow component, the heat dissipation component and the cooling component, and the heat dissipation fan can cool the heat dissipation component to continuously cool the coolant. When the coolant needs to be transported to the heat dissipation component, the coolant will be pumped into the water inlet pipe through the water inlet pump, and then transported to the delivery pipe. The water pipe is finally transported to the heat dissipation component. When the coolant is transmitted in the water supply pipe, the heated coolant will gradually cool down in the water supply pipe. When the heated coolant needs to be dissipated on the way, the heat dissipation plate will be quickly fanned by the wind blown by the heat dissipation fan, and the heated coolant will be cooled, so that the coolant in the heat dissipation pipe can maintain a certain low temperature. When the shell body needs to be cooled, the coolant in the cooling pipe can cool the cooling plate. The cooled cooling plate will cool the shell body, thereby reducing the temperature of the shell body. By keeping the coolant at a low temperature, the stability of the shell body cooling can be improved, so that the industrial furnace can be cooled stably and quickly.

[0033] 2. By setting up a connecting mechanism, when it is necessary to cool down the top of the shell body, the top water pump can draw the coolant in the water supply mechanism into the circulation mechanism on the top of the shell body, so that the circulation mechanism on the top of the shell body can dissipate heat for the top of the shell body, and the connection between the connecting angle plate and the circulation mechanism can increase the stability of the connection between the circulation mechanism and the shell body. When it is necessary to increase the stability of the connection between the circulation mechanism and the shell body, the stability of the connection between the circulation mechanism and the shell body can be increased by connecting the supporting angle plate to the shell body and the circulation mechanism. When the heat dissipation rod is in contact with the flowing air, the flowing air will drive the heat on the heat dissipation rod and the supporting angle plate, thereby dissipating heat for the supporting angle plate, thereby increasing the stability of the connection between the circulation mechanism and the shell body. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0035] Figure 2 It is a schematic structural diagram of the housing body of the present invention;

[0036] Figure 3 It is a schematic structural diagram of the water storage component and the water diversion component of the present invention;

[0037] Figure 4 It is a schematic structural diagram of the circulation mechanism of the present invention;

[0038] Figure 5 It is a schematic structural diagram of the cooling component of the present invention;

[0039] Figure 6 It is a schematic structural diagram of the flow assembly of the present invention;

[0040] Figure 7 It is a schematic structural diagram of the heat dissipation assembly of the present invention;

[0041] Figure 8 It is a schematic structural diagram of the cooling assembly of the present invention;

[0042] Figure 9 It is a schematic structural diagram of the top pumping assembly and the top reinforcement assembly of the present invention;

[0043] Figure 10 It is a schematic diagram of the preparation method of the present invention.

[0044] Figure numerals: 1. Shell body; 2. Water supply mechanism; 201. Water storage component; 2011. Water storage tank; 2012. Refrigeration machine; 202. Water diversion component; 2021. Water inlet pump; 2022. Water outlet pump; 3. Circulation mechanism; 301. Cooling component; 3011. Connecting frame; 3012. Heat dissipation fan; 302. Flow component; 3021. Water inlet pipe; 3022. Water supply pipe; 303. Heat dissipation component; 3031. Heat dissipation pipe; 3032. Heat dissipation plate; 304. Cooling component; 3041. Cooling pipe; 3042. Cooling plate; 4. Connecting mechanism; 401. Top water pumping component; 4011. Connecting angle plate; 4012. Top water pump; 402. Top reinforcement component; 4021. Support angle plate; 4022. Heat dissipation rod. DETAILED DESCRIPTION

[0045] The present invention will be further described in detail below with reference to the accompanying drawings.

[0046] Example 1:

[0047] refer to Figure 1-8A device for preparing a heat dissipation shell of an industrial furnace includes a shell body 1, a water supply mechanism 2 and a circulation mechanism 3. The water supply mechanism 2 is bolted to the left side of the shell body 1, and the circulation mechanism 3 is bolted to the surface of the shell body 1. The water supply mechanism 2 includes a water storage component 201 and a water diversion component 202. The circulation mechanism 3 includes a cooling component 301, a flow component 302, a heat dissipation component 303 and a cooling component 304. The water storage component 201 is bolted to the left side of the shell body 1, the water diversion component 202 is bolted to both sides of the shell body 1, the cooling component 301 is bolted to the top, rear side and both sides of the shell body 1, the flow component 302 is clamped to the inner wall of the cooling component 301, and the flow components 302 on both sides are connected to the water diversion component 20 2 is connected, the heat dissipation component 303 is connected to the inner wall of the cooling component 301, the heat dissipation component 303 is connected to the flow component 302, the cooling component 304 is connected to the inner wall of the cooling component 301, the cooling component 304 is connected to the heat dissipation component 303, the cooling component 304 on the left is connected to the flow component 302 on the rear side, and the cooling component 304 on the rear side is connected to the flow component 302 on the right side. By arranging the shell body 1, the water supply mechanism 2 and the circulation mechanism 3, when it is necessary to store the coolant, the coolant can be stored in the water storage tank 2011, and the refrigerator 2012 can cool the coolant in the water storage tank 2011. When it is necessary to transport the coolant to the circulation mechanism 3, The water pump 2021 will pump the coolant in the water storage component 201 into the circulation mechanism 3. When the cooling component 301 needs to be installed, the connecting frame 3011 will limit the flow component 302, the heat dissipation component 303 and the cooling component 304, and the heat dissipation fan 3012 can cool the heat dissipation component 303, so that the coolant can be continuously cooled. When the coolant needs to be transported to the heat dissipation component 303, the coolant will be pumped into the water inlet pipe 3021 through the water inlet pump 2021, and then transported to the water supply pipe 3022, and finally transported to the heat dissipation component 303. The coolant is heated when it is transmitted in the water supply pipe 3022. The coolant will gradually cool down in the water supply pipe 3022. When the heated coolant needs to be dissipated on the way, the heat sink 3032 will be quickly fanned by the wind blown by the heat dissipation fan 3012, and the heated coolant will be cooled, so that the coolant in the heat dissipation pipe 3031 can maintain a certain low temperature. When the shell body 1 needs to be cooled, the coolant in the cooling pipe 3041 can cool the cooling plate 3042. The cooled cooling plate 3042 will cool the shell body 1, thereby reducing the temperature of the shell body 1. By keeping the coolant at a low temperature, the stability of the cooling of the shell body 1 can be improved, so that the industrial furnace can be cooled stably and quickly.

[0048] like Figure 3As shown, the water storage component 201 includes a water tank 2011 and a refrigerator 2012. The water tank 2011 is bolted to the left side of the shell body 1, and the refrigerator 2012 is bolted to the inner wall of the water tank 2011. By setting the water storage component 201, the coolant can be stored in the water tank 2011, and the refrigerator 2012 can cool the coolant in the water tank 2011.

[0049] like Figure 3 As shown, the water diversion component 202 includes an inlet pump 2021 and an outlet pump 2022. The inlet pump 2021 is bolted to the left side of the shell body 1, and the outlet pump 2022 is bolted to the right side of the shell body 1. The input end of the inlet pump 2021 is connected to the right side of the water tank 2011, and the output end of the outlet pump 2022 is connected to the rear side of the water tank 2011. By setting the water diversion component 202, the inlet pump 2021 can pump the coolant in the water storage component 201 into the circulation mechanism 3, and then the outlet pump 2022 can pump the coolant in the circulation mechanism 3 back into the water storage component 201.

[0050] like Figure 5 As shown, the cooling component 301 includes a connecting frame 3011 and a heat dissipation fan 3012. The connecting frame 3011 is bolted to the two sides, rear side and top of the shell body 1. The front side of the connecting frame 3011 on both sides and the left side of the connecting frame 3011 on the rear side are bolted with a heat dissipation fan 3012. By setting the cooling component 301, the connecting frame 3011 can limit the flow component 302, the heat dissipation component 303 and the cooling component 304, and the heat dissipation fan 3012 can cool the heat dissipation component 303, so that the coolant can be continuously cooled, so that the coolant can continue to maintain a low temperature after leaving the refrigeration of the refrigerator 2012.

[0051] like Figure 6 As shown, the flow component 302 includes a water inlet pipe 3021 and a water supply pipe 3022. The water inlet pipe 3021 on the left is connected to the water inlet pump 2021. By setting the flow component 302, when the coolant needs to be transported to the heat dissipation component 303, the coolant will be pumped into the water inlet pipe 3021 through the water inlet pump 2021 to pump the coolant in the water tank 2011 into the water inlet pipe 3021, and then transported to the water supply pipe 3022, and finally transported to the heat dissipation component 303. When the coolant is transmitted in the water supply pipe 3022, the heated coolant will gradually cool down in the water supply pipe 3022.

[0052] like Figure 7As shown, the heat dissipation component 303 includes a heat dissipation pipe 3031 and a heat dissipation plate 3032. The heat dissipation pipe 3031 is connected to the water supply pipe 3022, and the heat dissipation plate 3032 is welded to the surface of the heat dissipation pipe 3031. By setting the heat dissipation component 303, when the heated coolant needs to be dissipated on the way, the heat dissipation plate 3032 will be quickly fanned by the wind blown by the heat dissipation fan 3012, and the heated coolant will be cooled, so that the coolant in the heat dissipation pipe 3031 can be kept at a certain low temperature.

[0053] like Figure 8 As shown, the cooling assembly 304 includes a cooling pipe 3041 and a cooling plate 3042. The cooling pipe 3041 is connected to the heat dissipation pipe 3031. The cooling plate 3042 is sleeved on the surface of the cooling pipe 3041. The side of the cooling pipe 3041 close to the shell body 1 is in contact with the shell body 1. The cooling pipe 3041 on the right is connected to the water outlet pump 2022. By setting the cooling assembly 304, when the shell body 1 needs to dissipate heat, the coolant in the cooling pipe 3041 can cool the cooling plate 3042. The cooled cooling plate 3042 will cool the shell body 1, thereby reducing the temperature of the shell body 1.

[0054] A brief description of the usage process: the coolant is stored in the water tank 2011, and the refrigerator 2012 can cool the coolant in the water tank 2011. When the coolant needs to be transported to the circulation mechanism 3, the water inlet pump 2021 will pump the coolant in the water storage component 201 into the circulation mechanism 3. When the cooling component 301 needs to be installed, the connecting frame 3011 will limit the flow component 302, the heat dissipation component 303 and the cooling component 304, and the heat dissipation fan 3012 can cool the heat dissipation component 303, so that the coolant is continuously cooled. After that, the coolant will be pumped out of the water tank 2011 through the water inlet pump 2021. It enters the water inlet pipe 3021, and is then transported to the water supply pipe 3022, and finally transported to the heat dissipation component 303. When the coolant is transmitted in the water supply pipe 3022, the heated coolant will gradually cool down in the water supply pipe 3022. When it is necessary to dissipate the heat of the heated coolant on the way, the heat dissipation plate 3032 will be quickly fanned by the wind blown by the heat dissipation fan 3012, and the heated coolant will be cooled down, so that the coolant in the heat dissipation pipe 3031 can maintain a certain low temperature. When it is necessary to dissipate heat for the shell body 1, the coolant in the cooling pipe 3041 can cool the cooling plate 3042, and the cooled cooling plate 3042 will cool the shell body 1.

[0055] Example 2:

[0056] refer to Figure 9, an industrial furnace heat dissipation shell and a shell preparation method, including a connecting mechanism 4, the connecting mechanism 4 is bolted to the top of the shell body 1, the top pumping component 401 is connected to both sides of the top cooling component 301, and the top reinforcement component 402 is bolted to the front side of the top cooling component 301. By setting the connecting mechanism 4, when it is necessary to cool the top of the shell body 1, the top pumping pump 4012 can pump the coolant in the water supply mechanism 2 into the circulation mechanism 3 on the top of the shell body 1, so that the circulation mechanism 3 on the top of the shell body 1 can perform heat dissipation treatment on the top of the shell body 1, and the angle plate 4 is connected The connection between 011 and the circulation mechanism 3 can increase the stability of the connection between the circulation mechanism 3 and the shell body 1. When it is necessary to increase the stability of the connection between the circulation mechanism 3 and the shell body 1, the stability of the connection between the circulation mechanism 3 and the shell body 1 can be increased by connecting the supporting angle plate 4021 with the shell body 1 and the circulation mechanism 3. When the heat dissipation rod 4022 comes into contact with the flowing air, the flowing air will drive the heat on the heat dissipation rod 4022 and the supporting angle plate 4021, thereby being able to dissipate heat for the supporting angle plate 4021, thereby increasing the stability of the connection between the circulation mechanism 3 and the shell body 1.

[0057] like Figure 9 As shown, the top water pumping component 401 includes a connecting angle plate 4011 and a top water pump 4012, the output end of the top water pump 4012 is connected to the top water inlet pipe 3021, and the input end of the top water pump 4012 is connected to the cooling pipe 3041 on the left, the connecting angle plate 4011 is bolted to both sides of the top connecting frame 3011, and the bottom of the connecting angle plate 4011 is bolted to the top of the connecting frame 3011 on both sides. By setting the top water pumping component 401, when it is necessary to cool the top of the shell body 1, the top water pump 4012 can pump the cooling liquid in the water supply mechanism 2 into the circulation mechanism 3 on the top of the shell body 1, so that the circulation mechanism 3 on the top of the shell body 1 can perform heat dissipation treatment on the top of the shell body 1, and the connection between the connecting angle plate 4011 and the circulation mechanism 3 can increase the stability of the connection between the circulation mechanism 3 and the shell body 1.

[0058] like Figure 9 As shown, the top reinforcement component 402 includes a supporting angle plate 4021 and a heat dissipation rod 4022. The supporting angle plate 4021 is bolted to the front side of the top connecting frame 3011, and the heat dissipation rod 4022 is welded to the opposite side of the supporting angle plate 4021. By setting the top reinforcement component 402, when it is necessary to increase the stability of the connection between the circulation mechanism 3 and the shell body 1, the stability of the connection between the circulation mechanism 3 and the shell body 1 can be increased by connecting the supporting angle plate 4021 to the shell body 1 and the circulation mechanism 3, and when the heat dissipation rod 4022 comes into contact with the flowing air, the flowing air will drive the heat on the heat dissipation rod 4022 and the supporting angle plate 4021, thereby being able to dissipate heat for the supporting angle plate 4021.

[0059] Brief description of the usage process: When it is necessary to cool down the top of the shell body 1, the top water pump 4012 can draw the coolant in the water supply mechanism 2 into the circulation mechanism 3 on the top of the shell body 1, so that the circulation mechanism 3 on the top of the shell body 1 can dissipate heat for the top of the shell body 1, and the connection between the angle plate 4011 and the circulation mechanism 3 can increase the stability of the connection between the circulation mechanism 3 and the shell body 1. When it is necessary to increase the stability of the connection between the circulation mechanism 3 and the shell body 1, the stability of the connection between the circulation mechanism 3 and the shell body 1 can be increased by connecting the supporting angle plate 4021 to the shell body 1 and the circulation mechanism 3. When the heat dissipation rod 4022 comes into contact with the flowing air, the flowing air will drive the heat on the heat dissipation rod 4022 and the supporting angle plate 4021, thereby dissipating heat for the supporting angle plate 4021.

[0060] This specific embodiment is merely an explanation of the present invention and is not intended to limit the present invention. After reading this specification, those skilled in the art may make non-creative modifications to this embodiment as needed. However, as long as such modifications are within the scope of the claims of the present invention, they are protected by patent law.

Claims

1. A device for preparing a heat dissipation shell of an industrial furnace, comprising a shell body (1), a water supply mechanism (2), a circulation mechanism (3) and a connection mechanism (4), characterized in that: The water supply mechanism (2) is bolted to the left side of the shell body (1), the circulation mechanism (3) is bolted to the surface of the shell body (1), and the connection mechanism (4) is bolted to the top of the shell body (1). The water supply mechanism (2) includes a water storage component (201) and a water diversion component (202). The circulation mechanism (3) includes a cooling component (301), a flow component (302), a heat dissipation component (303) and a cooling component (304). The connection mechanism (4) includes a top pumping component (401) and a top reinforcement component (402). The water storage component (201) is bolted to the left side of the shell body (1), the water diversion component (202) is bolted to both sides of the shell body (1), the cooling component (301) is bolted to the top, rear side and both sides of the shell body (1), and the flow component (301) is bolted to the top, rear side and both sides of the shell body (1). The dynamic component (302) is clamped on the inner wall of the cooling component (301), the flow components (302) on both sides are connected to the water diversion component (202), the heat dissipation component (303) is clamped on the inner wall of the cooling component (301), the heat dissipation component (303) is connected to the flow component (302), the cooling component (304) is clamped on the inner wall of the cooling component (301), the cooling component (304) is connected to the heat dissipation component (303), the left cooling component (304) is connected to the flow component (302) on the rear side, and the rear cooling component (304) is connected to the flow component (302) on the right side, the top water pumping component (401) is connected to both sides of the top cooling component (301), and the top reinforcement component (402) is bolted to the front side of the top cooling component (301); The water storage assembly (201) comprises a water storage tank (2011) and a refrigerator (2012), wherein the water storage tank (2011) is bolted to the left side of the housing body (1), and the refrigerator (2012) is bolted to the inner wall of the water storage tank (2011); The water diversion assembly (202) comprises an inlet pump (2021) and an outlet pump (2022), wherein the inlet pump (2021) is bolted to the left side of the housing body (1), and the outlet pump (2022) is bolted to the right side of the housing body (1); the input end of the inlet pump (2021) is in communication with the right side of the water storage tank (211), and the output end of the outlet pump (2022) is in communication with the rear side of the water storage tank (2011); The cooling component (301) comprises a connecting frame (3011) and a heat dissipation fan (3012); the connecting frame (3011) is bolted to both sides, the rear side and the top of the housing body (1); the heat dissipation fan (3012) is bolted to the front side of the connecting frame (3011) on both sides and the left side of the connecting frame (3011) on the rear side; The flow component (302) includes a water inlet pipe (3021) and a water supply pipe (3022), and the water inlet pipe (3021) on the left side is connected to the water inlet pump (2021); The heat dissipation assembly (303) comprises a heat dissipation pipe (3031) and a heat dissipation plate (3032), the heat dissipation pipe (3031) is in communication with the water supply pipe (3022), and the heat dissipation plate (3032) is welded to the surface of the heat dissipation pipe (3031); The cooling assembly (304) comprises a cooling pipe (3041) and a cooling plate (3042), the cooling pipe (3041) is in communication with the heat dissipation pipe (3031), the cooling plate (3042) is sleeved on the surface of the cooling pipe (3041), the side of the cooling pipe (3041) close to the shell body (1) is in contact with the shell body (1), and the cooling pipe (3041) on the right side is in communication with the water outlet pump (2022); The top water pumping assembly (401) comprises a connecting angle plate (4011) and a top water pump (4012); the output end of the top water pump (4012) is in communication with the water inlet pipe (3021) at the top, and the input end of the top water pump (4012) is in communication with the cooling pipe (3041) on the left; the connecting angle plate (4011) is bolted to both sides of the top connecting frame (3011); and the bottom of the connecting angle plate (4011) is bolted to the top of the connecting frames (3011) on both sides; The top reinforcement assembly (402) includes a support angle plate (4021) and a heat dissipation rod (4022), wherein the support angle plate (4021) is bolted to the front side of the top connection frame (3011), and the heat dissipation rod (4022) is welded to the opposite side of the support angle plate (4021).

2. The method for using the device for preparing a heat dissipation shell of an industrial furnace according to claim 1, characterized in that: The following steps are involved: S1. Preparation of the shell: Measure the surface of the industrial furnace where the shell body (1) is to be installed, and then make a shell body (1) of the corresponding size according to the measured size, then install the water supply mechanism (2) on the left side of the shell body (1), and finally install the circulation mechanism (3) on both sides, the top and the rear side of the shell body (1), then connect the water storage component (201) with the water diversion component (202), then connect the water diversion component (202) with the cooling component (301), connect the cooling component (301) with the flow component (302), and finally connect the flow component (302) with the heat dissipation component (303); S2. Reinforcement of components: Install the connecting mechanism (4) on the circulation mechanism (3) at the top of the shell body (1), connect the top pumping assembly (401) with the circulation mechanism (3), then connect the bottom of the connecting mechanism (4) with the shell body (1), and connect the top reinforcement assembly (402) with the top circulation mechanism (3).

Citation Information

Patent Citations

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