Tower type container with heat preservation structure

By introducing insulation, heating, and mixing mechanisms into the tower container, automated temperature regulation and uniform mixing of the medium are achieved, solving the problem of temperature fluctuations inside the tower container and improving the stability of the process and product quality.

CN223619348UActive Publication Date: 2025-12-02LIAONING XINCHENG PETROCHEMICAL EQUIPMENT MANUFACTURING CO LTD
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Patent Information

Application Number
CN202520055589.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2025-12-02
Estimated Expiration
2035-01-10

AI Technical Summary

Technical Problem

Existing tower containers in industries such as chemical and petroleum lack insulation structures, resulting in large internal temperature fluctuations that affect the stability of processes and product quality.

Method used

A tower-type container with a heat preservation and heating mechanism and a mixing mechanism was designed. The temperature is automatically regulated by a temperature sensor and a control module. The temperature inside the container is kept stable by using a heat preservation box and heating wire. The medium is uniformly mixed by a motor-driven stirring rod and scraper.

Benefits of technology

It effectively maintains the stability of the internal temperature of the container, ensuring the stability of the process and product quality. Through the design of automated control and mixing mechanism, it improves the reliability of the process and the consistency of the product.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of advanced manufacturing and automation, and discloses a tower type container with a heat preservation structure, which comprises a tower type container body. Through the heat preservation heating mechanism, a heat preservation box in the heat preservation part is used for heat preservation, so that water in the heating box is heated through a heating wire, and when a temperature sensor detects that the temperature in the tower type container body and the temperature in the heat preservation box exceed the lowest temperature of the temperature sensor, the temperature sensor sends a signal to a control module; when the temperature of the heat preservation box is lower than the lowest temperature again, the control template opens a one-way valve II, and cooled water enters a circulating box through a connecting pipe; and then the one-way valve I is opened to flow back to the heating box for the next round of heating and heat preservation, so that the tower type container body is in a continuous heat preservation state and is kept at a proper temperature when needed.
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Description

Technical Field

[0001] This utility model relates to the field of advanced manufacturing and automation technology, specifically a tower-type container with a heat-insulating structure. Background Technology

[0002] Insulated tower containers are widely used in petroleum, chemical, and coal chemical industries. Many processes in these industries require specific temperature conditions to maintain reaction rates, product quality, and safety. Therefore, tower containers need to have good insulation performance to reduce heat loss and maintain stable internal temperatures.

[0003] Compared with existing technologies: Tower containers are often used in separation and purification processes in industries such as chemical, petroleum, and pharmaceutical. These processes often have strict temperature requirements. Tower containers without insulation are easily affected by the external ambient temperature, resulting in large internal temperature fluctuations. Such temperature fluctuations can affect the stability of the process, potentially leading to unstable product quality or even the production of substandard products.

[0004] Therefore, a tower-type container with a heat-insulating structure is proposed. Utility Model Content

[0005] The purpose of this invention is to provide a tower-type container with a heat-insulating structure to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a tower-type container with a heat-insulating structure, comprising a tower-type container body, a discharge port connected to the left side of the tower-type container body, a temperature sensor penetrating the inner wall of the tower-type container body, a control module provided on the front side of the tower-type container body, a heat-insulating and heating mechanism provided on the outer side of the tower-type container body, and a mixing mechanism provided on the inner side of the tower-type container body.

[0007] The heat preservation and heating mechanism includes a heat preservation section and a heating section;

[0008] The heating element is located on the rear side of the heat preservation element;

[0009] The mixing mechanism includes a drive unit and a mixing unit;

[0010] The mixing section is located on the outer end face of the drive section.

[0011] Preferably, the insulation section includes an insulation box, the inner side of which is fixedly connected to the outer end face of the tower container body, a conveying pipe is connected to the outer end face of the insulation box, and a water pump is connected to the right end face of the conveying pipe.

[0012] Preferably, a heating box is provided on the right end face of the water pump, and a heating wire is provided through the inner side of the heating box, and the heating wire is movably connected to the heating box.

[0013] Preferably, the heating unit includes a one-way valve, the front end of which is connected to the rear end of the heating box, a branch pipe is connected to the rear end of the one-way valve, and a circulation box is connected to the left end of the branch pipe.

[0014] Preferably, a connecting pipe is provided on the front end face of the circulation box, and a one-way valve is provided on the front end face of the connecting pipe. The one-way valve is connected to the rear end face of the insulation box, and the insulation effect is achieved through the insulation part and the heating part in the insulation and heating mechanism.

[0015] Preferably, the drive unit includes an L-shaped plate located on the top surface of the tower container body, the L-shaped plate being fixedly connected to the tower container body, and a motor being provided on the inner side of the L-shaped plate, the motor being fixedly connected to the L-shaped plate.

[0016] Preferably, the motor output end face is provided with a rotating rod, the rotating rod is fixedly connected to the motor, the rotating rod passes through the tower container body and extends to the inner side, and the rotating rod is rotatably connected to the inner wall of the tower container body through a bearing seat.

[0017] Preferably, the mixing section includes a stirring rod located on the outer end face of the rotating rod, the stirring rod being fixedly connected to the rotating rod, a vertical plate being provided on the outer end face of the stirring rod, the vertical plate being fixedly connected to the stirring rod, and a scraper being provided on the outer end face of the vertical plate, the inner side of the scraper being fixedly connected to the outer side of the vertical plate. Through the driving section and the mixing section in the mixing mechanism, the mixing effect is achieved.

[0018] Compared with the prior art, the beneficial effects of this utility model are: this tower-type container with a heat-insulating structure,

[0019] 1) The insulation and heating mechanism uses the insulation box in the insulation section for insulation, thereby heating the water inside the heating box using heating wires. When the temperature sensor detects that the temperature of the tower container body and the insulation box exceeds the minimum temperature of the temperature sensor, the temperature sensor sends a signal to the control module, causing the control module to open the water pump, which draws hot water from the heating box and puts it into the insulation box through the delivery pipe for heating and insulation. However, when the temperature of the insulation box falls below the minimum temperature again, the control module opens the second check valve, allowing the cooled water to enter the circulation box through the connecting pipe, and then opens the first check valve to return it to the heating box for the next round of heating and insulation, thereby keeping the tower container body in a continuous state of insulation and ensuring that it maintains an appropriate temperature when needed.

[0020] 2) Through the mixing mechanism, the motor in the drive unit drives the rotating rod, which in turn drives the stirring rod. The stirring rod drives the vertical plate and scraper to mix and scrape at the same time, so as to promote the uniform mixing or reaction of the internal medium. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural schematic diagram of the present utility model;

[0022] Figure 2 This is a three-dimensional cross-sectional view of the overall structure of this utility model;

[0023] Figure 3 This is a top-view perspective of the overall heat preservation and heating structure of this utility model;

[0024] Figure 4 This is a three-dimensional cross-sectional view of the overall heat preservation and heating structure of this utility model;

[0025] Figure 5 This is a three-dimensional schematic diagram of the hybrid structure of this utility model.

[0026] In the diagram: 1. Tower container body; 2. Insulation and heating mechanism; 21. Insulation section; 22. Heating section; 211. Insulation box; 212. Conveying pipe; 213. Water pump; 214. Heating box; 215. Heating wire; 221. One-way valve I; 222. Branch pipe; 223. Circulation box; 224. Connecting pipe; 225. One-way valve II; 3. Mixing mechanism; 31. Drive section; 32. Mixing section; 311. L-shaped plate; 312. Motor; 313. Rotating rod; 321. Stirring rod; 322. Vertical plate; 323. Scraper. Detailed Implementation

[0027] 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.

[0028] Example 1:

[0029] Please see Figures 1-4 This utility model provides a technical solution: a tower container with a heat preservation structure, including a tower container body 1, a discharge port connected to the left side of the tower container body 1, a temperature sensor through the inner wall of the tower container body 1, a control module on the front side of the tower container body 1, a heat preservation and heating mechanism 2 on the outer side of the tower container body 1, and a mixing mechanism 3 on the inner side of the tower container body 1.

[0030] The heat preservation and heating mechanism 2 includes a heat preservation part 21 and a heating part 22;

[0031] The heating element 22 is located on the rear side of the heat preservation element 21;

[0032] The mixing mechanism 3 includes a drive unit 31 and a mixing unit 32;

[0033] The mixing section 32 is located on the outer end face of the driving section 31.

[0034] The insulation section 21 includes an insulation box 211. The inner side of the insulation box 211 is fixedly connected to the outer end face of the tower container body 1. A conveying pipe 212 is connected to the outer end face of the insulation box 211, and a water pump 213 is connected to the right end face of the conveying pipe 212.

[0035] A heating box 214 is provided on the right end face of the water pump 213. A heating wire 215 is provided through the inner side of the heating box 214 and is movably connected to the heating box 214.

[0036] The heating unit 22 includes a one-way valve 221. The front end of the one-way valve 221 is connected to the rear end of the heating box 214. A branch pipe 222 is connected to the rear end of the one-way valve 221. A circulation box 223 is connected to the left end of the branch pipe 222.

[0037] A connecting pipe 224 is provided on the front end face of the circulation box 223. A one-way valve 225 is provided on the front end face of the connecting pipe 224. The one-way valve 225 is connected to the rear end face of the insulation box 211.

[0038] Furthermore, in this embodiment, the insulation and heating mechanism 2 utilizes the insulation box 211 within the insulation section 21 for insulation treatment. Heating wire 215 begins heating the water inside the heating box 214. A temperature sensor monitors the temperature of the tower container body 1 and the insulation box 211. When the temperature sensor detects that the temperature exceeds the set minimum temperature, it sends a signal to the control module. Upon receiving the signal, the control module activates the water pump 213, which draws hot water from the heating box 214. The hot water is then transported to the insulation box 211 through the delivery pipe 212 to heat and insulate the tower container body 1. When the temperature inside the insulation box 211 falls below the set minimum temperature again, the control module receives the signal from the temperature sensor again. The control module opens the second check valve 225, allowing the cooling water to enter the circulation box 223 through the connecting pipe 224. Subsequently, the control module opens the first check valve 221, allowing the water in the circulation box 223 to flow back to the heating box 214. The water flowing back to the heating box 214 is heated again by the heating wire 215. The heated hot water is then transported back to the insulation box 211 through the water pump 213 and the delivery pipe 212. This process is continuously cyclical to ensure that the tower container body 1 remains in an insulation state.

[0039] Furthermore, in this embodiment, the insulation and heating mechanism 2 utilizes the insulation box 211 in the insulation section 21 for insulation, thereby using the heating wire 215 to heat the water inside the heating box 214. When the temperature sensor detects that the temperature inside the tower container body 1 and the insulation box 211 exceeds the minimum temperature of the temperature sensor, the temperature sensor sends a signal to the control module, causing the control module to open the water pump 213, which draws hot water from the heating box 214 and enters the insulation box 211 through the delivery pipe 212 for heating and insulation. However, when the temperature of the insulation box 211 falls below the minimum temperature again, the control module opens the second check valve 225, allowing the cooled water to enter the circulation tank 223 through the connecting pipe 224, and then opens the first check valve 221 to return it to the heating box 214 for the next round of heating and insulation, thereby keeping the tower container body 1 in a continuous state of insulation and ensuring that it maintains an appropriate temperature when needed.

[0040] Example 2:

[0041] Please see Figure 1 Figure 2 , Figure 5 Furthermore, based on Embodiment 1, the following is obtained: the drive unit 31 includes an L-shaped plate 311, the L-shaped plate 311 is located on the top surface of the tower container body 1, the L-shaped plate 311 is fixedly connected to the tower container body 1, and a motor 312 is provided on the inner side of the L-shaped plate 311, the motor 312 is fixedly connected to the L-shaped plate 311.

[0042] A rotating rod 313 is provided on the output end face of the motor 312. The rotating rod 313 is fixedly connected to the motor 312. The rotating rod 313 passes through the tower container body 1 and extends to the inner side. The rotating rod 313 is rotatably connected to the inner wall of the tower container body 1 through a bearing seat.

[0043] The mixing section 32 includes a stirring rod 321, which is located on the outer end face of the rotating rod 313 and is fixedly connected to the rotating rod 313. Each outer end face of the stirring rod 321 is provided with a vertical plate 322, which is fixedly connected to the stirring rod 321. Each outer end face of the vertical plate 322 is provided with a scraper 323, and the inner side of the scraper 323 is fixedly connected to the outer side of the vertical plate 322.

[0044] Furthermore, in this embodiment, the mixing mechanism 3 utilizes the motor 312 in the drive unit 31. When the motor 312 is started, it generates rotational power, causing the motor 312 to drive the rotating rod 313. The rotating rod 313 starts to rotate under the drive of the motor 312. The stirring rod 321 is connected to the rotating rod 313, so the stirring rod 321 also rotates with the rotating rod 313. The rotation of the stirring rod 321 drives the movement of the vertical plate 322 and the scraper 323. Under the drive of the stirring rod 321, the vertical plate 322 and the scraper 323 stir the medium in the container. At the same time, the design of the scraper 323 enables it to scrape off the residual medium on the inner wall of the container.

[0045] Furthermore, in this embodiment, the mixing mechanism 3 utilizes the motor 312 in the drive unit 31 to drive the rotating rod 313, which in turn drives the stirring rod 321. The stirring rod 321 then drives the vertical plate 322 and the scraper 323 to mix and scrape simultaneously, thereby promoting the uniform mixing or reaction of the internal medium.

[0046] In use, materials are fed into the tower container body 1 through the inlet. The material is then insulated by the insulation and heating mechanism 2, using the insulation box 211 within the insulation section 21. Heating wire 215 heats the water inside the heating box 211. A temperature sensor monitors the temperature inside the tower container body 1 and the insulation box 211. When the temperature sensor detects that the temperature exceeds the set minimum temperature, it sends a signal to the control module. Upon receiving the signal, the control module activates the water pump 213, which draws hot water from the heating box 214. The hot water is then transported to the insulation box 211 through the delivery pipe 212 to heat and insulate the tower container body 1. When the temperature inside the insulation box 211 falls below the set minimum temperature again, the control module receives the signal from the temperature sensor again and opens the second check valve 225, allowing the cooling water to enter the circulation tank 223 through the connecting pipe 224. Subsequently, the control module opens the first check valve 221, allowing the circulation tank to... Water in 223 flows back to heating box 214. The water in heating box 214 is heated again by heating wire 215. The heated hot water is then transported to insulation box 211 through water pump 213 and delivery pipe 212. This process is continuously repeated to ensure that the tower container body 1 is kept in an insulated state. When mixing is required, the mixing mechanism 3 uses motor 312 in drive unit 31. When motor 312 starts, it generates rotational power, causing motor 312 to drive rotating rod 313. Rotating rod 313 starts to rotate under the drive of motor 312. Stirring rod 321 is connected to rotating rod 313, so stirring rod 321 also rotates with rotating rod 313. The rotation of stirring rod 321 drives vertical plate 322 and scraper 323 to move. Under the drive of stirring rod 321, vertical plate 322 and scraper 323 stir the medium in the container. At the same time, the design of scraper 323 enables it to scrape off residual medium on the inner wall of the container.

[0047] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A tower-type container with a heat-insulating structure, comprising a tower-type container body (1), characterized in that: The left side of the tower container body (1) is connected to a discharge port, the inner wall of the tower container body (1) is connected to a temperature sensor, the front side of the tower container body (1) is connected to a control module, the outer side of the tower container body (1) is connected to a heat preservation and heating mechanism (2), and the inner side of the tower container body (1) is connected to a mixing mechanism (3). The heat preservation and heating mechanism (2) includes a heat preservation part (21) and a heating part (22); The heating part (22) is located on the rear side of the heat preservation part (21); The mixing mechanism (3) includes a driving part (31) and a mixing part (32); The mixing section (32) is located on the outer end face of the driving section (31).

2. A tower-type container with a heat-insulating structure according to claim 1, characterized in that: The insulation section (21) includes an insulation box (211), the inner side of which is fixedly connected to the outer end face of the tower container body (1), and a conveying pipe (212) is connected to the outer end face of the insulation box (211), and a water pump (213) is connected to the right end face of the conveying pipe (212).

3. A tower-type container with a heat-insulating structure according to claim 2, characterized in that: A heating box (214) is provided on the right end face of the water pump (213), and a heating wire (215) is provided through the inner side of the heating box (214), and the heating wire (215) is movably connected to the heating box (214).

4. A tower-type container with a heat-insulating structure according to claim 3, characterized in that: The heating unit (22) includes a one-way valve (221), the front end of which is connected to the rear end of the heating box (214), a branch pipe (222) is connected to the rear end of the one-way valve (221), and a circulation box (223) is connected to the left end of the branch pipe (222).

5. A tower-type container with a heat-insulating structure according to claim 4, characterized in that: The front end of the circulation box (223) is connected to a connecting pipe (224), and the front end of the connecting pipe (224) is provided with a one-way valve (225), which is connected to the rear end of the insulation box (211).

6. A tower-type container with a heat-insulating structure according to claim 1, characterized in that: The drive unit (31) includes an L-shaped plate (311), which is located on the top surface of the tower container body (1). The L-shaped plate (311) is fixedly connected to the tower container body (1). A motor (312) is provided on the inner side of the L-shaped plate (311), and the motor (312) is fixedly connected to the L-shaped plate (311).

7. A tower-type container with a heat-insulating structure according to claim 6, characterized in that: The output end face of the motor (312) is provided with a rotating rod (313), the rotating rod (313) is fixedly connected to the motor (312), the rotating rod (313) passes through the tower container body (1) and extends to the inner side, and the rotating rod (313) is rotatably connected to the inner wall of the tower container body (1) through a bearing seat.

8. A tower-type container with a heat-insulating structure according to claim 7, characterized in that: The mixing section (32) includes a stirring rod (321), which is located on the outer end face of the rotating rod (313). The stirring rod (321) is fixedly connected to the rotating rod (313). Each outer end face of the stirring rod (321) is provided with a vertical plate (322), which is fixedly connected to the stirring rod (321). Each outer end face of the vertical plate (322) is provided with a scraper (323), and the inner side of the scraper (323) is fixedly connected to the outer side of the vertical plate (322).