Cooling tank for heat dissipation of materials

By designing a cooling tank with a double-layer structure, coolant is used in the bottom cavity and side cavity connected to the bottom cavity and the groove wall, the problem of slow material heat dissipation speed is solved, and efficient cooling and space-saving effects are achieved.

CN223147494UActive Publication Date: 2025-07-25SUZHOU PUMA NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202421465312.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-07-25
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

The heat dissipation speed of material particles is slow after drying and dehydration, so natural heat dissipation requires a large number of sites. The hot-cut air-cooling heat dissipation effect is poor, which is prone to adhesive material, resulting in low cooling efficiency.

Method used

A cooling tank with a double-layer structure is designed. The bottom and groove walls are both double-layered. The bottom cavity and the side cavity are connected to each other. Coolant is connected to the bottom cavity and the side cavity. The discharge port and the material barrier are arranged on the groove wall. The coolant is circulated to accelerate the cooling of the material.

Benefits of technology

Improve material cooling efficiency, reduce site demand, avoid material bonding, and achieve efficient material cooling effect.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223147494U_ABST
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Abstract

The utility model aims to provide a cooling tank for heat dissipation of materials, which solves the problem of material cooling and comprises a tank bottom, a tank wall and a cooling mechanism, the tank wall is arranged to surround the edge of the tank bottom, the tank bottom comprises an upper layer bottom and a lower layer bottom which are arranged at an interval, and a bottom cavity is formed between the upper layer bottom and the lower layer bottom; the groove wall comprises an outer wall and an inner wall which are arranged at an interval, and a side cavity is formed between the outer wall and the inner wall; the groove wall is provided with a discharge port for moving materials, the groove wall is movably provided with a striker plate, and the striker plate has two states of opening and closing the discharge port; the bottom cavity is communicated with the side cavity, the bottom cavity and the side cavity are used for containing cooling liquid, the groove bottom and the groove wall are both double-layer, the bottom cavity is communicated with the side cavity, and the cooling liquid is filled in the bottom cavity and the side cavity, so that materials on the groove bottom are cooled in an accelerated mode, the use efficiency of the cooling groove is high, and the problem of material cooling is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of material cooling, in particular to a cooling tank for material heat dissipation. Background Art

[0002] After the material particles are dried and dehydrated, especially the natural heat dissipation speed of polyolefin particles is slow, and natural heat dissipation requires enough space, while the area of the factory is limited. At present, the material is heat-cut and air-cooled for heat dissipation, and the heat dissipation effect is not good. When making soft materials, there is an easy sticking phenomenon during vacuum packaging. Therefore, auxiliary heat dissipation is needed to reduce the area as much as possible and improve the heat dissipation speed.

[0003] How to efficiently cool the material is the problem to be solved. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a cooling tank for material heat dissipation, which solves the problem of material cooling.

[0005] To achieve the above object, the technical solution adopted by the utility model is:

[0006] The utility model provides a cooling tank for material heat dissipation, including a tank bottom, a tank wall and a cooling mechanism. The tank wall is arranged around the edge of the tank bottom. It is characterized in that

[0007] The tank bottom includes an upper bottom, a lower bottom and pillars. The two ends of the pillars are respectively connected to the upper bottom and the lower bottom, and a bottom cavity is formed between the upper bottom and the lower bottom;

[0008] The tank wall includes an outer wall and an inner wall formed integrally, and a side cavity is formed between the outer wall and the inner wall;

[0009] An outlet for material movement is arranged on the tank wall, and a baffle is movably arranged on the tank wall. The baffle has two states of opening and closing the outlet;

[0010] The bottom cavity is communicated with the side cavity, and the bottom cavity and the side cavity are used for containing a coolant.

[0011] Optionally, the tank bottom is inclined, the tank wall is arranged to match the inclination of the tank bottom, and the outlet is located at the lower end of the inclined tank bottom.

[0012] Optionally, a folding plate is bent outward at the top end of the tank wall.

[0013] Optionally, a first guide plate and a second guide plate are arranged on the tank wall. The first guide plate and the second guide plate are respectively located on both sides of the outlet, and the baffle is slidably arranged on the first guide plate and the second guide plate.

[0014] Further, a first guiding groove is formed on the first guiding plate, and a second guiding groove is formed on the second guiding plate. The material blocking plate is slidably arranged in the first guiding groove and the second guiding groove.

[0015] Optionally, a material receiving table is provided in the extending direction of the groove bottom. The material receiving table is located outside the material discharging port, and a blanking port is arranged on the material receiving table.

[0016] Further, a surrounding wall is arranged at the edge of the material receiving table. The blanking port is located within the area enclosed by the surrounding wall, and two ends of the surrounding wall are respectively connected to the side walls on both sides of the material discharging port.

[0017] Optionally, the groove bottom contracts more and more towards the material discharging port.

[0018] Optionally, a plurality of brackets are arranged on the groove bottom, and universal wheels are arranged at the bottom ends of the brackets.

[0019] Optionally, a liquid inlet and a liquid outlet are arranged on the groove wall. The cooling mechanism includes a liquid tank and a circulation pump arranged in the liquid tank. The liquid inlet end and the liquid outlet end of the circulation pump are respectively provided with a liquid inlet pipe and a liquid outlet pipe. The liquid inlet pipe is communicated with the liquid outlet, and the liquid outlet pipe is arranged on the liquid port.

[0020] Due to the application of the above technical solution, the present utility model has the following advantages compared with the prior art:

[0021] In a cooling tank for material heat dissipation of the present utility model, since both the groove bottom and the groove wall are double-layered, the bottom cavity and the side cavity are communicated, and the bottom cavity and the side cavity are filled with cooling liquid, so that the materials on the groove bottom are cooled more quickly, and the use efficiency of the cooling tank is high. Therefore, the problem of material cooling is solved. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Some specific embodiments of the present utility model will be described in detail hereinafter with reference to the drawings in an exemplary but non-limiting manner. The same reference numerals in the drawings denote the same or similar components or parts. Those skilled in the art should understand that these drawings are not necessarily drawn to scale. In the drawings:

[0023] Figure 1 is a perspective view of a cooling tank for material heat dissipation according to a preferred embodiment of the present utility model;

[0024] Figure 2 is Figure 1 a rear top view of the part shown;

[0025] Figure 3 is Figure 1 a right view of the part shown;

[0026] Figure 4 is a cross-sectional view of the groove bottom and the groove wall.

[0027] Among them, the reference numerals are explained as follows:

[0028] 1. Bottom of the trough; 2. Trough wall; 3. Discharge port; 4. Baffle plate; 5. Folding plate; 6. Blank discharging port; 7. Support; 8. Universal wheel; 9. Blank discharging pipe; 10. Cooling mechanism; 11. Upper bottom; 12. Lower bottom; 13. Bottom cavity; 14. Material receiving table; 15. Enclosing wall; 16. Support column; 21. Outer wall; 22. Inner wall; 23. Side cavity; 25. Liquid inlet; 26. Liquid outlet; 27. Liquid inlet pipe; 28. Liquid outlet pipe; 31. First guide plate; 32. Second guide plate; 33. First guide groove; 34. Second guide groove; 101. Liquid tank; 102. Circulation pump. Detailed implementation manners

[0029] Next, the technical solutions of the present utility model will be clearly and completely described in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present utility model, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts belong to the scope of protection of the present utility model.

[0030] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0031] In addition, the technical features involved in different embodiments of the present utility model described below can be combined with each other as long as they do not conflict with each other.

[0032] As Figure 1 and Figure 2 and Figure 3 shown, it includes a bottom of the trough 1, a trough wall 2 and a cooling mechanism 10. The trough wall 2 is arranged around the edge of the bottom of the trough 1. The area enclosed by the trough wall 2 and the bottom of the trough 1 are jointly used to hold materials.

[0033] A discharge port 3 for material movement is arranged on the trough wall 2. The cooled material comes out from the discharge port 3. A baffle plate 4 is movably arranged on the trough wall 2. The baffle plate 4 has two states: opening and closing the discharge port 3. When the material is being cooled, the baffle plate 4 closes the discharge port 3. After the material is cooled, the baffle plate 4 opens the discharge port 3, and the cooled material comes out from the discharge port 3.

[0034] The bottom cavity 13 is connected to the side cavity 23. The bottom cavity 13 and the side cavity 23 are used to hold the coolant, and the coolant circulates within the bottom cavity 13 and the side cavity 23.

[0035] The bottom of the trough 1 is inclined, and the trough wall 2 is arranged to match the inclination of the bottom of the trough 1. Therefore, the bottom of the trough 1 has a high end and a low end, and the discharge port 3 is located at the low end of the inclined bottom of the trough 1. In this way, the cooled material automatically flows from the high end to the low end of the bottom of the trough 1.

[0036] At the top end of the trough wall 2, a folding plate 5 is bent outward. The folding plate 5 extends along the extending direction of the trough wall 2. The folding plate 5 plays a role in strengthening and supporting. When the folding plate 5 is subjected to an external force, the folding plate 5 can support to prevent the trough wall 2 from being extruded and deformed by the external force.

[0037] A first guide plate 31 and a second guide plate 32 are arranged on the trough wall 2. The first guide plate 31 and the second guide plate 32 are respectively located on both sides of the discharge port 3. The baffle plate 4 is slidably arranged on the first guide plate 31 and the second guide plate 32. When the material needs to be cooled, the baffle plate 4 slides downward to block the discharge port 3. After the material is cooled, the baffle plate 4 slides upward to open the discharge port 3, and the cooled material exits from the discharge port 3.

[0038] The first guide plate 31 has a first guide groove 33, and the second guide plate 32 has a second guide groove 34. The baffle plate 4 is slidably arranged in the first guide groove 33 and the second guide groove 34. In this way, the position of the baffle plate 4 is restricted within the first guide groove 33 and the second guide groove 34. When it is necessary to open the discharge port 3, the baffle plate 4 moves upward within the first guide groove 33 and the second guide groove 34. When it is necessary to close the discharge port 3, the baffle plate 4 moves downward within the first guide groove 33 and the second guide groove 34 until the bottom end of the baffle plate 4 abuts against the upper layer bottom 11.

[0039] On the extending direction of the bottom of the trough 1, there is a material receiving platform 14. The material receiving platform 14 is located outside the discharge port 3. The material exits from the discharge port 3 and then converges and falls onto the material receiving platform 14. A material dropping port 6 is arranged on the material receiving platform 14. Then the material drops from the material dropping port 6 again. A material dropping pipe 9 is arranged at the bottom end of the material dropping port 6. The material dropping port 6 is communicated with the material dropping pipe 9. Finally, the material exits from the material dropping pipe 9. The outlet end of the material dropping pipe 9 is butted against the collecting device, and the material dropping pipe 9 is arranged at a certain distance from the ground.

[0040] A surrounding wall 15 is arranged at the edge of the material receiving platform 14. The material dropping port 6 is located within the enclosed area of the surrounding wall 15. In this way, the material on the material receiving platform 14 will not fall. Both ends of the surrounding wall 15 are respectively connected to the side wall bodies on both sides of the discharge port 3, that is, both ends of the surrounding wall 15 are connected to the outer wall 21.

[0041] The width of the bottom of the trough 1 gradually contracts closer to the discharge port 3. The low end of the bottom of the trough 1 is in a contracted state. In this way, the material converges to the low end of the bottom of the trough 1 and is easy to flow out from the discharge port 3.

[0042] A plurality of brackets 7 are provided on the lower surface of the bottom of the tank 1. A universal wheel 8 is provided at the bottom end of the bracket 7. The bracket 7 is connected to the lower layer bottom 12. With the help of the universal wheel 8, the bottom of the tank 1 and the tank wall 2 can be pushed to move.

[0043] An inlet 25 and an outlet 26 are provided on the tank wall 2. The inlet 25 communicates with the side cavity 23, and the outlet 26 communicates with the bottom cavity 13. The cooling mechanism 10 includes a liquid tank 101 and a circulation pump 102 provided in the liquid tank 101. An inlet pipe 27 and an outlet pipe 28 are respectively provided at the liquid outlet end and the liquid inlet end of the circulation pump 102. The liquid tank 101 is filled with a coolant. The inlet pipe 27 is communicated with the inlet 25, and the outlet pipe 28 is communicated with the outlet 26. When the circulation pump 102 is turned on, the coolant circulates through the inlet pipe 27 and the outlet pipe 28, and thus circulates in the bottom cavity 13 and the side cavity 23.

[0044] As Figure 4 shown, the bottom of the tank 1 includes an upper layer bottom 11, a lower layer bottom 12 and a support column 16. A bottom cavity 13 is formed between the upper layer bottom 11 and the lower layer bottom 12. The two ends of the support column 16 are respectively connected to the upper layer bottom 11 and the lower layer bottom 12. The support column 16 plays a role in supporting the upper layer bottom 11. The number of the support columns 16 is set according to needs. The material is placed on the upper surface of the upper layer bottom 11, and the coolant is introduced into the bottom cavity 13.

[0045] The tank wall 2 includes an outer wall 21 and an inner wall 22 which are integrally formed. A side cavity 23 is formed between the outer wall 21 and the inner wall 22. The inner wall 22 contacts the material, and the coolant is introduced into the side cavity 23.

[0046] The above embodiments are only used to illustrate the technical concept and features of the present invention, and the purpose is to enable those who are familiar with this technology to understand the content of the present invention and implement it accordingly. It cannot be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit of the present invention should be covered within the protection scope of the present invention.

Claims

1. A cooling tank for heat dissipation of materials, comprising a tank bottom (1), a tank wall (2) and a cooling mechanism (10). The tank wall (2) is arranged around the edge of the tank bottom (1). It is characterized in that the tank bottom (1) includes an upper bottom (11), a lower bottom (12) and a support column (16). The two ends of the support column (16) are respectively connected to the upper bottom (11) and the lower bottom (12). A bottom cavity (13) is formed between the upper bottom (11) and the lower bottom (12); the tank wall (2) includes an outer wall (21) and an inner wall (22) formed integrally. A side cavity (23) is formed between the outer wall (21) and the inner wall (22); a discharge port (3) for material movement is arranged on the tank wall (2). A baffle plate (4) is movably arranged on the tank wall (2). The baffle plate (4) has two states of opening and closing the discharge port (3); the bottom cavity (13) is communicated with the side cavity (23). The bottom cavity (13) and the side cavity (23) are used for containing a coolant; the cooling mechanism (10) is used for supplying the coolant into the bottom cavity (13) and the side cavity (23).

2. The cooling tank for material heat dissipation according to claim 1, wherein the tank bottom (1) is arranged obliquely. The tank wall (2) is arranged obliquely matching the tank bottom (1). The discharge port (3) is located at the lower end of the inclined tank bottom (1).

3. The cooling tank for material heat dissipation according to claim 1, wherein a folding plate (5) is arranged at the top end of the tank wall (2) and bent outward.

4. The cooling tank for material heat dissipation according to claim 1, characterized in that, a first guide plate (31) and a second guide plate (32) are arranged on the tank wall (2). The first guide plate (31) and the second guide plate (32) are respectively located on both sides of the discharge port (3). The baffle plate (4) is slidably arranged on the first guide plate (31) and the second guide plate (32).

5. The cooling tank for material heat dissipation according to claim 4, characterized in that, a first guide groove (33) is formed on the first guide plate (31). A second guide groove (34) is formed on the second guide plate (32). The baffle plate (4) is slidably arranged in the first guide groove (33) and the second guide groove (34).

6. The cooling tank for material heat dissipation according to claim 1, characterized in that, a receiving platform (14) is arranged in the extending direction of the tank bottom (1). The receiving platform (14) is located outside the discharge port (3). A blanking port (6) is arranged on the receiving platform (14). A blanking pipe (9) is arranged at the bottom end of the blanking port (6).

7. The cooling tank for material heat dissipation according to claim 6, wherein, a surrounding wall (15) is arranged at the edge of the receiving platform (14). The blanking port (6) is located within the surrounding area of the surrounding wall (15). The two ends of the surrounding wall (15) are respectively connected to the side walls on both sides of the discharge port (3).

8. The cooling tank for material heat dissipation according to claim 1, characterized in that, the width of the tank bottom (1) shrinks gradually closer to the discharge port (3).

9. The cooling tank for material heat dissipation according to claim 1, characterized in that, a plurality of brackets (7) are arranged on the tank bottom (1). Universal wheels (8) are arranged at the bottom ends of the brackets (7).

10. The cooling tank for material heat dissipation according to claim 1, characterized in that, The liquid inlet (25) and the liquid outlet (26) are provided on the groove wall (2). The cooling mechanism (10) includes a liquid tank (101) and a circulation pump (102) arranged in the liquid tank (101). The liquid inlet end and the liquid outlet end of the circulation pump (102) are respectively provided with a liquid inlet pipe (27) and a liquid outlet pipe (28). The liquid outlet pipe (28) is communicated with the liquid outlet (26), and the liquid inlet pipe (27) is communicated with the liquid inlet (25).