Acrylamide storage tank

By introducing a combination of heat insulation and heat conduction components into the acrylamide storage tank, the problem of heat accumulation in existing equipment is solved, achieving effective heat insulation and rapid heat dissipation, and ensuring material quality.

CN223973135UActive Publication Date: 2026-03-06SICHUAN SHICHUANG POLYMER MATERIALS CO LTD
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Patent Information

Application Number
CN202520778403.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-03-06
Estimated Expiration
2035-04-23

AI Technical Summary

Technical Problem

Existing acrylamide storage devices cannot effectively insulate against heat and protect against light, causing heat to accumulate inside the storage tank and affecting the quality of the material.

Method used

An acrylamide storage tank with heat insulation and heat conduction components was designed. It adopts a combination structure of heat insulation pad, heat conduction block, heat conduction pipe and ventilation component. Heat is dissipated through heat conduction and ventilation, combined with heat insulation and light shielding functions to prevent heat accumulation.

Benefits of technology

This achieves effective thermal insulation and rapid heat dissipation in acrylamide storage tanks, preventing material deterioration and ensuring material quality.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223973135U_ABST
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Abstract

The utility model discloses an acrylamide storage tank in the technical field of acrylamide storage, which comprises a tank body of the storage tank, the bottom of the tank body is fixedly connected with a discharge pipe, a heat insulation part for heat insulation is embedded in the inner side wall of the tank body, and a heat conduction part for heat dissipation is mounted at the bottom of the tank body and penetrates into the inner side of the tank body. The bottom of the tank body is provided with a ventilation part used for heat dissipation, the tank body can store crystal-shaped and aqueous solution materials, the discharging pipe is obliquely arranged, the materials can be taken out by opening the control valve, the heat conduction part in the tank body can conduct heat in the tank body outwards, and then the ventilation part is used for blowing the heat conduction part for heat dissipation. The speed of air ventilation and heat dissipation is increased, and material deterioration caused by heat accumulation in the tank body is avoided.
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Description

Technical Field

[0001] This utility model relates to the field of acrylamide storage, specifically to an acrylamide storage tank. Background Technology

[0002] Acrylamide is a white crystalline solid at room temperature and pressure. It is the most important and simplest of the acrylamide series and can be used as a raw material for organic synthesis and polymer materials. It is mainly used in the production of various homopolymers and copolymers of polyacrylamide and can be widely used in petroleum extraction, textiles, fuels, coatings and daily chemical industries. The storage temperature should not exceed 35°C and it should not be stored with oxidants or reducing agents. Acrylamide is usually stored in storage tanks or packaging bags.

[0003] Existing storage devices have simple structures and are not effective for long-term storage of materials. They cannot provide insulation and light protection for the materials, and heat tends to accumulate inside the storage tank. The heat cannot be quickly dissipated, which can easily cause the materials to deteriorate and affect their subsequent normal use. Therefore, it is necessary to design an acrylamide storage tank to solve the above problems. Utility Model Content

[0004] The purpose of this invention is to provide an acrylamide storage tank to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an acrylamide storage tank, comprising a tank body, a discharge pipe fixedly connected to the bottom of the tank body, a heat insulation component embedded in the inner wall of the tank body for heat insulation, a heat-conducting component for heat dissipation installed at the bottom of the tank body and extending through the inner wall of the tank body, a ventilation component for heat dissipation installed at the bottom of the tank body, a control valve installed inside the discharge pipe near the top, and three circumferentially arranged support legs installed at the bottom of the tank body.

[0006] Preferably, the heat insulation component includes a heat insulation pad embedded in the inner wall of the tank, a vacuum cavity is formed inside the heat insulation pad, a heat insulation plate is fixedly connected inside the vacuum cavity, and the inner side of the heat insulation pad is filled with heat insulation material.

[0007] Preferably, the heat-conducting component includes a heat-conducting block that is bolted to the bottom of the tank, and the top of the heat-conducting block extends into the inside of the tank and is fixedly connected to a plurality of circumferentially arranged heat-conducting pipes.

[0008] Preferably, the ventilation component includes a housing that is bolted to the bottom of the tank, the bottom of the housing having a plurality of evenly arranged air inlets, the other side of the housing having a plurality of circumferentially arranged air outlets, and a fan installed on the housing on the side of the air inlets.

[0009] Preferably, the bottom of the heat-conducting block is fixedly connected with a plurality of uniformly arranged heat-conducting fins, and a plurality of uniformly arranged heat dissipation holes are opened on one side of the heat-conducting fins.

[0010] Preferably, a heat-conducting strip for conducting heat is fixedly connected to the inner side of the heat-conducting pipe.

[0011] Preferably, the heat pipe has a plurality of uniformly arranged heat-conducting grooves on its outer side.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] 1. The tank can store crystalline and aqueous materials. The discharge pipe is inclined, and the material can be taken out by opening the control valve. The heat-conducting components inside the tank can conduct heat outward, and the ventilation components can blow air to dissipate heat, thereby accelerating the air ventilation and heat dissipation rate and preventing heat accumulation inside the tank from causing material deterioration.

[0014] 2. The insulation pad is embedded in the inner side wall of the tank. The insulation pad can isolate the external temperature from affecting the internal temperature of the tank. The heat insulation plate inside the insulation pad divides the heat insulation material in the vacuum chamber into two areas. The heat insulation plate and the heat insulation material can isolate heat transfer. At the same time, the heat insulation plate and the insulation pad can shield the tank from light, so that the tank can store materials for a long time. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0016] Figure 2 This is a left-side sectional perspective view of the overall structure of this utility model;

[0017] Figure 3 The overall structure of this utility model Figure 2 Enlarged view of point A in the middle;

[0018] Figure 4 The overall structure of this utility model Figure 2 Enlarged view at point B in the middle;

[0019] Figure 5 This is a schematic diagram of the structure of the heat-conducting block, heat-conducting pipe, heat-conducting fins, heat dissipation holes, and heat-conducting groove in the overall structure of this utility model.

[0020] In the diagram: 1. Tank body; 2. Discharge pipe; 3. Support leg; 4. Insulation pad; 5. Vacuum chamber; 6. Heat insulation plate; 7. Heat-conducting block; 8. Heat-conducting pipe; 9. Shell; 10. Air inlet; 11. Air outlet; 12. Fan; 13. Heat-conducting fins; 14. Heat dissipation hole; 15. Heat-conducting strip; 16. Heat-conducting groove. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Example 1

[0023] Please refer to Figure 1-5 As shown, this utility model provides an acrylamide storage tank, including a tank body 1, a discharge pipe 2 fixedly connected to the bottom of the tank body 1, a heat insulation component for heat insulation embedded in the inner wall of the tank body 1, a heat conduction component for heat dissipation installed at the bottom of the tank body 1 and extending through into the inner side of the tank body 1, a ventilation component for heat dissipation installed at the bottom of the tank body 1, a control valve installed inside the discharge pipe 2 near the top, and three circumferentially arranged support legs 3 installed at the bottom of the tank body 1.

[0024] Furthermore, the tank 1 can store crystalline and aqueous materials. The discharge pipe 2 is inclined, and the material can be taken out by opening the control valve. The heat-conducting component inside the tank 1 can conduct heat outward from the inside of the tank 1, and then the heat-conducting component is cooled by blowing air through the ventilation component to accelerate the air ventilation and heat dissipation rate, so as to avoid the accumulation of heat inside the tank 1 and the deterioration of the material.

[0025] Specifically, the heat insulation component includes a heat insulation pad 4 embedded in the inner wall of the tank body 1, a vacuum cavity 5 opened inside the heat insulation pad 4, a heat insulation plate 6 fixedly connected inside the vacuum cavity 5, and heat insulation material filled inside the heat insulation pad 4.

[0026] The insulation pad 4 is embedded in the inner wall of the tank 1. The insulation pad 4 can isolate the external temperature from affecting the internal temperature of the tank. The heat insulation plate 6 inside the insulation pad 4 divides the heat insulation material in the vacuum chamber 5 into two areas. The heat insulation plate 6 and the heat insulation material can isolate heat transfer. At the same time, the heat insulation plate 6 and the insulation pad 4 can shield the tank 1 from light so that the tank 1 can store materials for a long time.

[0027] More specifically, the heat-conducting component includes a heat-conducting block 7 that is bolted to the bottom of the tank 1. The top of the heat-conducting block 7 extends into the inside of the tank 1 and is fixedly connected to a plurality of circumferentially arranged heat-conducting pipes 8. Heat-conducting strips 15 for conducting heat are fixedly connected to the inner side of the heat-conducting pipes 8, and a plurality of uniformly arranged heat-conducting grooves 16 are opened on the outer side of the heat-conducting pipes 8.

[0028] It should be added that the top of the heat pipe 8 is sealed to prevent material from entering the heat pipe 8. The heat-conducting block 7 has a "convex" cross-section and can install and fix the heat pipe 8. The heat-conducting block 7, heat pipe 8 and heat-conducting strip 15 are all made of metal. The heat pipe 8 acts as a heat transfer medium to transfer the heat inside the tank 1 to the heat-conducting block 7. The multiple heat-conducting grooves 16 on the outside of the heat pipe 8 can increase the contact area between the heat pipe 8 and the heat. The heat-conducting strip 15 can transfer the heat inside the heat pipe 8 to the heat-conducting block 7 to prevent the heat inside the tank 1 from accumulating and causing the material to deteriorate.

[0029] Furthermore, the ventilation component includes a housing 9 bolted to the bottom of the tank 1. The bottom of the housing 9 has a plurality of evenly arranged air inlets 10, and the other side of the housing 9 has a plurality of circumferentially arranged air outlets 11. A fan 12 is installed on the housing 9 on one side of the air inlets 10. The bottom of the heat-conducting block 7 is fixedly connected to a plurality of evenly arranged heat-conducting fins 13, and one side of the heat-conducting fins 13 has a plurality of evenly arranged heat dissipation holes 14.

[0030] The heat-conducting fins 13 conduct heat downwards from the bottom of the heat-conducting block 7. The fan 12 on one side of the housing 9 blows air into the housing 9 through the air inlet 10. The air entering the housing 9 flows through the heat dissipation holes 14 on the multiple heat-conducting fins 13. The air carries the heat on the heat-conducting fins 13 away from the housing 9 through the air outlet 11, thereby improving the ventilation and heat dissipation rate.

[0031] Working principle: First, the material is put into the tank 1 through the top of the tank 1. At this time, the heat insulation pad 4 isolates the external temperature from affecting the temperature inside the tube. At the same time, the heat insulation plate 6 inside the heat insulation pad 4 divides the heat insulation material in the vacuum chamber 5 into two areas. The heat insulation plate 6 and the heat insulation material can isolate heat transfer. At the same time, the heat insulation plate 6 and the heat insulation pad 4 can block the light from the tank 1. The heat inside the tank 1 is conducted to the heat block 7 through multiple heat conduction pipes 8. At the same time, the heat conduction strip 15 conducts the heat in the heat conduction pipes 8 to the heat block 7. Then the heat conduction block 7 conducts the heat to multiple heat conduction fins 13. Then the fan 12 is started to blow air into the shell 9 through the air inlet. Then the air flows through the heat dissipation holes 14 on the heat conduction fins 13 so that the air carries the heat away from the shell 9 through the air outlet 11.

[0032] The contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0033] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An acrylamide storage tank comprising a tank body (1) of the storage tank, characterized by: The bottom of the tank body (1) is fixedly connected with a discharge pipe (2), the inner side wall of the tank body (1) is embedded with a heat insulation piece for heat insulation, the bottom of the tank body (1) penetrates into the inner side of the tank body (1) and is provided with a heat conduction piece for heat dissipation, the bottom of the tank body (1) is provided with a ventilation piece for heat dissipation, the inner side of the discharge pipe (2) and close to the top is provided with a control valve, and the bottom of the tank body (1) is provided with three support legs (3) arranged in a circle.

2. An acrylamide storage tank according to claim 1, wherein: The heat insulation piece comprises a heat preservation pad (4) embedded in the inner side wall of the tank body (1), a vacuum cavity (5) is formed in the inner side of the heat preservation pad (4), a heat insulation plate (6) is fixedly connected to the inner side of the vacuum cavity (5), and the heat preservation pad (4) is filled with a heat insulation material.

3. An acrylamide storage tank according to claim 2, wherein: The heat conduction piece comprises a heat conduction block (7) mounted on the bottom of the tank body (1) by bolts, and a plurality of heat conduction pipes (8) arranged in a circle are fixedly connected to the top of the heat conduction block (7) and extend into the tank body (1).

4. An acrylamide storage tank according to claim 3, wherein: The ventilation piece comprises a shell (9) mounted on the bottom of the tank body (1) by bolts, a plurality of air inlet holes (10) are uniformly arranged on the bottom of the shell (9), a plurality of air outlet holes (11) are arranged on the other side of the shell (9), and a fan (12) is mounted on one side of the shell (9) and located at the air inlet hole (10).

5. An acrylamide storage tank according to claim 4, wherein: The bottom of the heat conduction block (7) is fixedly connected with a plurality of heat conduction fins (13) arranged uniformly, and a plurality of heat dissipation holes (14) are arranged on one side of the heat conduction fins (13).

6. An acrylamide storage tank according to claim 5, wherein: The inner side of the heat conduction pipe (8) is fixedly connected with a heat conduction strip (15) for heat conduction.

7. An acrylamide storage tank according to claim 6, wherein: The outer side of the heat conduction pipe (8) is provided with a plurality of heat conduction grooves (16) arranged uniformly.