Intermediate tank with efficient heat dissipation function
By setting an expansion boss in the intermediate tank and equipping it with a heat dissipation component, the problems of low heat dissipation efficiency and large cooling water consumption of the intermediate tank are solved, and the effects of efficient heat dissipation and water conservation are achieved.
Patent Information
- Application Number
- CN202423025511.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-09
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-12-09
AI Technical Summary
The existing intermediate tank has low heat dissipation efficiency and consumes a large amount of cooling water. It mainly relies on the heat exchange of cooling water and lacks other heat dissipation methods.
An expansion boss is set in the intermediate tank to increase the contact area between the inner tank wall and the liquid material, and a heat dissipation component is equipped, including an inner heat conduction plate, an outer heat conduction plate, heat dissipation fins and a reinforcement component, to improve the heat dissipation efficiency through heat conduction and air flow.
The heat dissipation efficiency of the intermediate tank is improved, the water consumption of cooling water is reduced, and the flexibility and heat dissipation effect of the heat dissipation components are enhanced.
Smart Images

Figure CN223408588U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of heat dissipation equipment, in particular to an intermediate tank with high-efficiency heat dissipation. Background Art
[0002] In industrial production, intermediate tanks, as important storage equipment, are widely used for the temporary storage of various liquid substances. During the temporary storage of some liquid substances, the intermediate tanks usually need to control and adjust their temperature, such as to reduce the temperature of high-temperature liquid substances.
[0003] At present, the most common cooling measures adopted by intermediate tanks are interlayer heat exchange methods. Cooling water is passed through the interlayer to exchange heat with the material in the tank to achieve the cooling effect. Although this heat exchange cooling method can meet the normal cooling operation requirements, its cooling and heat dissipation efficiency often depends only on the temperature of the cooling water. The cooling water can only be kept at a lower temperature than the temperature of the material in the tank by replacing the water liquid. There is no other heat dissipation path. Therefore, not only does it lead to low heat dissipation efficiency of the intermediate tank, but it also causes a large amount of cooling water to be used. Utility Model Content
[0004] The technical problem to be solved by the utility model is to provide an efficient heat dissipation intermediate tank which is matched with a heat guide and dissipation component and cooperates with cooling water to meet the heat dissipation requirements in response to the current status of the existing technology.
[0005] The utility model is achieved through the following technical solution: the utility model proposes an intermediate tank with high-efficiency heat dissipation, including a tank body, the tank body is composed of an outer tank wall and an inner tank wall, a cooling interlayer is provided between the outer tank wall and the inner tank wall, a storage cavity is provided in the inner tank wall, and the utility model is characterized in that an expansion boss is formed on the inner tank wall, the expansion boss is in an arc-shaped structure, and a heat dissipation component is also fixedly installed on the outer tank wall.
[0006] By adopting the above technical solution, the expansion boss can increase the contact area between the inner tank wall and the cooling interlayer, thereby improving the heat exchange efficiency. The heat dissipation component can absorb the water temperature of the cooling water in the cooling interlayer and guide the heat to the outside of the outer tank wall for dissipation, thereby improving the heat exchange effect of the cooling water.
[0007] Furthermore, the expansion boss is provided with a through hole, and there are a plurality of through holes.
[0008] By adopting the above technical solution, the through-hole can ensure the fluidity of the liquid in the storage cavity, while increasing the contact area between the liquid and the inner tank wall, thereby improving the heat exchange efficiency.
[0009] Furthermore, the heat dissipation assembly is composed of an inner heat conducting plate and an outer heat conducting plate, the inner heat conducting plate and the outer heat conducting plate are an integrally formed structure, and the inner heat conducting plate and the outer heat conducting plate pass through the outer tank wall and are sealed.
[0010] By adopting the above technical solution, the inner heat conducting plate can be used to absorb the temperature of the cooling water, and the outer heat conducting plate can be used to guide the heat absorbed by the inner heat conducting plate and dissipate it into the external air.
[0011] Furthermore, the inner heat conducting plate is located in the cooling interlayer, and the inner heat conducting plate is provided with circulation through holes, wherein there are a plurality of circulation through holes which are evenly distributed in the vertical direction.
[0012] By adopting the above technical solution, the flow perforations can ensure the fluidity of the cooling water in the cooling interlayer, thereby improving the heat exchange effect.
[0013] Furthermore, the outer heat conducting plate is located on the periphery of the outer tank wall, and side grooves are provided on the outer heat conducting plate. There are a plurality of side grooves evenly distributed vertically, and the side grooves are distributed in correspondence with the specific positions of the flow through holes.
[0014] By adopting the above technical solution, the side grooves can increase the fluidity of the air around the outer heat conducting plate, thereby improving the heat dissipation efficiency of the outer heat conducting plate.
[0015] Furthermore, heat dissipation fins are formed on both side walls of the outer heat conducting plate, and the heat dissipation fins and the side grooves are staggered.
[0016] By adopting the above technical solution, the heat dissipation fins can further diffuse the heat of the outer heat conducting plate, so that the heat can be dissipated more efficiently.
[0017] Furthermore, the heat dissipation component also includes a reinforcement component, which is composed of a connecting frame and a heat dissipation fan. A plurality of air ducts are evenly opened on the connecting frame, and the heat dissipation fan is detachably installed in the air ducts.
[0018] By adopting the above technical solution, the heat dissipation fan can absorb the surrounding air into the air duct and blow it toward the heat dissipation fins through the air duct, thereby further improving the heat dissipation efficiency of the heat dissipation fins.
[0019] Furthermore, the connecting frame and the outer tank wall are detachably connected.
[0020] By adopting the above technical solution, workers can selectively disassemble and assemble the reinforcement components.
[0021] Furthermore, a feed pipe and a circulating water inlet pipe are connected to the upper end of the tank body, and a discharge pipe and a circulating water discharge pipe are connected to the lower end of the tank body. The feed pipe and the discharge pipe are both located in the middle of the end face of the tank body, and the circulating water inlet pipe and the circulating water discharge pipe are located on both sides of the end face of the tank body, and are staggered and symmetrically distributed.
[0022] By adopting the above technical solution, the temporarily stored liquid material and cooling water can smoothly enter or discharge the intermediate tank, ensuring the stable use effect of the intermediate tank.
[0023] Compared with the prior art, the present invention has the following beneficial effects:
[0024] The utility model provides a heat dissipation component consisting of an inner heat conduction plate, circulation perforations, an outer heat conduction plate, side grooves and heat dissipation fins, and a reinforcement component consisting of a connecting frame, an air duct and a heat dissipation fan. When the intermediate tank adopts an interlayer heat exchange method for cooling treatment, the heat dissipation component can guide and dissipate the temperature of the cooling water, reduce the increase process of the cooling water temperature during heat transfer, thereby improving its heat exchange effect, and also reducing the water consumption of cooling water. In addition, the reinforcement component can be selectively used to further enhance the heat dissipation effect of the heat dissipation component. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a schematic structural diagram of an intermediate tank with high-efficiency heat dissipation according to the present invention;
[0026] Figure 2 This is a rear view of an intermediate tank with high efficiency heat dissipation according to the present invention;
[0027] Figure 3 This is a top cross-sectional view of an intermediate tank with high efficiency heat dissipation according to the present invention;
[0028] Figure 4 This is a high-efficiency heat dissipation intermediate tank described in the utility model. Figure 3 A side sectional view of
[0029] Figure 5 This is a high-efficiency heat dissipation intermediate tank described in the utility model. Figure 4 Schematic diagram of the structure of the inner tank wall of the separation tank;
[0030] Figure 6 This is a schematic diagram of the positional relationship between the reinforcement components and the heat dissipation fins in the intermediate tank with high-efficiency heat dissipation described in the utility model;
[0031] Figure 7 It is a horizontal view of the inner heat conducting plate and the outer heat conducting plate in the intermediate tank with high efficiency heat dissipation described in the utility model.
[0032] The following are the descriptions of the reference numerals:
[0033] 1. Tank body; 2. Heat dissipation assembly; 3. Reinforcement assembly; 4. Feed pipe; 5. Circulating water inlet pipe; 6. Discharge pipe; 7. Circulating water outlet pipe; 101. Outer tank wall; 102. Inner tank wall; 103. Storage cavity; 104. Cooling interlayer; 105. Expansion boss; 106. Through hole; 201. Inner heat conduction plate; 202. Circulation perforation; 203. Outer heat conduction plate; 204. Side groove; 205. Heat dissipation fins; 301. Connecting frame; 302. Air duct; 303. Heat dissipation fan. DETAILED DESCRIPTION
[0034] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0035] like Figure 1-Figure 3 As shown, in this embodiment, an intermediate tank with high efficiency in heat dissipation includes a tank body 1, which is composed of an outer tank wall 101 and an inner tank wall 102. A cooling interlayer 104 is provided between the outer tank wall 101 and the inner tank wall 102, and a storage cavity 103 is provided in the inner tank wall 102. The tank body 104 is characterized in that an expansion boss 105 is formed on the inner tank wall 102, and the expansion boss 105 is in an arc-shaped structure. A heat dissipation component 2 is also fixedly installed on the outer tank wall 101.
[0036] The embodiment of the present application solves the problem in the prior art that the heat dissipation method of the intermediate tank usually relies solely on the heat exchange operation of the cooling water, resulting in low heat dissipation efficiency of the intermediate tank and a large amount of cooling water usage, by providing an intermediate tank with high heat dissipation efficiency that is equipped with a heat guide and dissipation component to cooperate with cooling water to meet the heat dissipation needs. The overall idea of this embodiment to solve the above problems is: by providing an expansion boss 105 on the inner tank wall 102, the contact area between the inner tank wall 102 and the liquid inside it is increased, so that its heat can be transferred to the cooling water in the cooling interlayer 104 more quickly. At the same time, the heat dissipation component 2 can guide the heat absorbed by the cooling water in the cooling interlayer 104 and transmit it to the outside of the outer tank wall 101, and release it into the air outside the outer tank wall 101, thereby slowing down the increase in the water temperature of the cooling water during heat transfer, improving its heat dissipation effect, and also reducing the consumption of cooling water.
[0037] like Figure 3 and Figure 4 As shown, the expansion boss 105 is provided with a through hole 106 , and there are a plurality of through holes 106 ;
[0038] As an embodiment, the high-temperature liquid in the storage cavity 103 can flow through the expansion boss 105 through the through hole 106, thereby not only ensuring the liquid fluidity of the high-temperature liquid in the storage cavity 103, but also further increasing the contact area between the high-temperature liquid and the inner tank wall 102, further increasing its heat transfer effect.
[0039] like Figure 3-Figure 5 As shown, the heat dissipation assembly 2 is composed of an inner heat conducting plate 201 and an outer heat conducting plate 203. The inner heat conducting plate 201 and the outer heat conducting plate 203 are an integrally formed structure. The inner heat conducting plate 201 and the outer heat conducting plate 203 pass through the outer tank wall 101 and are sealed.
[0040] As an embodiment, the inner heat conducting plate 201 can absorb the heat of the cooling water in the cooling interlayer 104 and transfer it to the outer heat conducting plate 203 , which then guides the heat and releases it into the air outside the outer tank wall 101 .
[0041] like Figure 3-Figure 5 As shown, the inner heat conducting plate 201 is located in the cooling interlayer 104, and a plurality of circulation holes 202 are provided on the inner heat conducting plate 201, and the circulation holes 202 are evenly distributed in the vertical direction;
[0042] As an embodiment, the circulation holes 202 allow the cooling water in the cooling interlayer 104 to flow through, thereby ensuring the fluidity of the cooling water in the cooling interlayer 104 .
[0043] like Figure 3 、 Figure 5 and Figure 7 As shown, the outer heat conducting plate 203 is located on the periphery of the outer tank wall 101, and a side groove 204 is opened on the outer heat conducting plate 203. There are multiple side grooves 204 evenly distributed vertically, and the specific positions of the side grooves 204 and the flow through holes 202 are distributed in a corresponding manner;
[0044] As an embodiment, the side grooves 204 can increase the air flow around the outer heat conducting plate 203 to ensure its heat dissipation effect. At the same time, the side grooves 204 and the circulation through holes 202 are distributed in a corresponding manner, which can shorten the heat transfer distance of the materials of the inner heat conducting plate 201 and the outer heat conducting plate 203, making the heat conduction effect of the materials of the inner heat conducting plate 201 and the outer heat conducting plate 203 more efficient.
[0045] like Figure 3 、 Figure 5 and Figure 7 As shown, heat dissipation fins 205 are formed on both side walls of the outer heat conducting plate 203, and the heat dissipation fins 205 and the side grooves 204 are staggered;
[0046] As an implementation method, the heat dissipation fins 205 can further increase the contact area between the outer heat conducting plate 203 and the external air, thereby increasing the heat dissipation efficiency and effect of the outer heat conducting plate 203 .
[0047] like Figure 1 and Figure 6 As shown, the heat dissipation assembly 2 further includes a reinforcement assembly 3, which is composed of a connecting frame 301 and a heat dissipation fan 303. A plurality of air ducts 302 are evenly opened on the connecting frame 301, and the heat dissipation fan 303 is detachably installed in the air duct 302;
[0048] As an embodiment, the heat dissipation fan 303 can draw external air into the air duct 302 and blow it toward the external heat conduction plate 203 and the heat dissipation fins 205 through the air duct 302, thereby improving the air flow outside the outer tank wall 101 and further improving the heat dissipation efficiency of the heat dissipation fins 205.
[0049] like Figure 1 and Figure 6 As shown, the connecting frame 301 and the outer tank wall 101 are detachably connected;
[0050] As an implementation method, the reinforcement component 3 can be selectively disassembled and installed according to actual use requirements, thereby improving the use flexibility of the intermediate tank heat dissipation operation.
[0051] like Figure 1 and Figure 5 As shown, the upper end of the tank body 1 is plugged with a feed pipe 4 and a circulating water inlet pipe 5, and the lower end of the tank body 1 is plugged with a discharge pipe 6 and a circulating water discharge pipe 7. The feed pipe 4 and the discharge pipe 6 are both located in the middle of the end face of the tank body 1, and the circulating water inlet pipe 5 and the circulating water discharge pipe 7 are located on both sides of the end face of the tank body 1, in a staggered and symmetrical distribution;
[0052] As an embodiment, the feed pipe 4 and the discharge pipe 6 can be used for injecting or discharging liquid materials in the storage chamber 103, and the circulating water inlet pipe 5 and the circulating water discharge pipe 7 can be used for entering and discharging cooling water. The staggered distribution of the circulating water inlet pipe 5 and the circulating water discharge pipe 7 can make the flow process of the cooling water more closely fit the inner tank wall 102, thereby taking away more heat and improving the heat dissipation effect.
[0053] The specific implementation process of this embodiment is as follows: when in use, the staff can inject the liquid material that needs to be temporarily stored into the storage cavity 103 through the feed pipe 4, and inject cooling water into the cooling interlayer 104 through the circulating water inlet pipe 5. The cooling water entering the cooling interlayer 104 can absorb the temperature of the liquid material stored in the storage cavity 103 through the inner tank wall 102. At the same time, the inner heat conducting plate 201 can absorb the temperature of the cooling water and guide it to the outer heat conducting plate 203, so that the outer heat conducting plate 203 can guide the temperature to the outer surface of the outer tank wall 101. side, and evenly transmit it to the heat dissipation fins 205. The heat dissipation fins 205 can diffuse the heat of the outer heat conduction plate 203 to the surrounding environment more efficiently. At this time, the staff can selectively install the reinforcement component 3 on the periphery of the outer heat conduction plate 203 according to the actual heat dissipation needs, so that the heat dissipation fan 303 can draw external air into the air duct 302, and blow it to the outer heat conduction plate 203 and the heat dissipation fins 205 through the air duct 302, thereby improving the air flow outside the outer tank wall 101 and further improving the heat dissipation efficiency of the heat dissipation fins 205.
[0054] The above description of the disclosed embodiments will enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An intermediate tank with high heat dissipation efficiency, comprising a tank body (1), wherein the tank body (1) is composed of an outer tank wall (101) and an inner tank wall (102), a cooling interlayer (104) is provided between the outer tank wall (101) and the inner tank wall (102), and a storage cavity (103) is provided in the inner tank wall (102), characterized in that: An expansion boss (105) is formed on the inner tank wall (102), and the expansion boss (105) is in an arc-shaped structure. A heat dissipation component (2) is also fixedly mounted on the outer tank wall (101).
2. The high-efficiency heat dissipation intermediate tank according to claim 1, characterized in that: The expansion boss (105) is provided with a through hole (106), and there are a plurality of through holes (106).
3. The high-efficiency heat dissipation intermediate tank according to claim 1, characterized in that: The heat dissipation assembly (2) is composed of an inner heat conducting plate (201) and an outer heat conducting plate (203); the inner heat conducting plate (201) and the outer heat conducting plate (203) are an integrally formed structure; the inner heat conducting plate (201) and the outer heat conducting plate (203) penetrate the outer tank wall (101) and are sealed.
4. The high-efficiency heat dissipation intermediate tank according to claim 3, characterized in that: The inner heat conducting plate (201) is located in the cooling interlayer (104), and a circulation through hole (202) is provided on the inner heat conducting plate (201). There are a plurality of circulation through holes (202) that are evenly distributed in the vertical direction.
5. The high-efficiency heat dissipation intermediate tank according to claim 4, characterized in that: The outer heat conducting plate (203) is located on the periphery of the outer tank wall (101), and side grooves (204) are provided on the outer heat conducting plate (203). A plurality of the side grooves (204) are evenly distributed vertically, and the side grooves (204) are distributed in a corresponding manner to the specific positions of the circulation through holes (202).
6. The high-efficiency heat dissipation intermediate tank according to claim 5, characterized in that: Heat dissipation fins (205) are formed on both side walls of the outer heat conduction plate (203), and the heat dissipation fins (205) and the side grooves (204) are distributed in a staggered manner.
7. The high-efficiency heat dissipation intermediate tank according to claim 1, characterized in that: The heat dissipation assembly (2) further comprises a reinforcement assembly (3), the reinforcement assembly (3) comprising a connecting frame (301) and a heat dissipation fan (303), a plurality of air ducts (302) being evenly arranged on the connecting frame (301), and the heat dissipation fan (303) being detachably mounted in the air ducts (302).
8. The high-efficiency heat dissipation intermediate tank according to claim 7, characterized in that: The connecting frame (301) and the outer tank wall (101) are detachably connected.
9. The high-efficiency heat dissipation intermediate tank according to any one of claims 1 to 8, characterized in that: The upper end of the tank body (1) is plugged with a feed pipe (4) and a circulating water inlet pipe (5), and the lower end of the tank body (1) is plugged with a discharge pipe (6) and a circulating water outlet pipe (7). The feed pipe (4) and the discharge pipe (6) are both located in the middle of the end face of the tank body (1), and the circulating water inlet pipe (5) and the circulating water outlet pipe (7) are located on both sides of the end face of the tank body (1) and are staggered and symmetrically distributed.