Highland barley proteolysis constant-temperature circular reaction device

By combining a water pump circulation system with cooling water, the problem of inaccurate temperature control in the enzymatic hydrolysis device was solved, enabling precise temperature regulation during the enzymatic hydrolysis process and improving the efficiency of enzymatic hydrolysis.

CN224133066UActive Publication Date: 2026-04-17QINGHAI ZANGHEYUAN QINGHAI BARLEY RESOURCE DEVELOPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGHAI ZANGHEYUAN QINGHAI BARLEY RESOURCE DEVELOPMENT CO LTD
Filing Date
2025-05-07
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing enzymatic hydrolysis devices cannot achieve precise temperature control, especially in the process of enzymatic hydrolysis, which cannot achieve rapid heating and cooling adjustment, thus affecting the efficiency of enzymatic hydrolysis.

Method used

By combining a water pump circulation system and cooling water, precise temperature control of the enzymatic hydrolysis material is achieved. The temperature regulation under constant temperature reaction conditions is achieved by using a fan and a heating mechanism.

Benefits of technology

It achieves precise temperature control during enzymatic hydrolysis, ensuring improved hydrolysis efficiency, and enables rapid heating and slow cooling to meet the temperature requirements of the enzymatic hydrolysis reaction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a highland barley proteolysis constant-temperature circular reaction device which comprises a fixed barrel, a mounting barrel is fixed on the side of the fixed barrel, a motor seat is fixed on the side of the mounting barrel, an exhaust fan is fixed in the motor seat, a rotating seat is movably mounted at the top of the fixed barrel, an exhaust hole is formed in the rotating seat, and a motor is fixed on the motor seat. And a barrel body is fixedly mounted in the fixed barrel. According to the highland barley proteolysis constant-temperature circular reaction device, when a material needs to be cooled to control the temperature required by the reaction, the material is pumped out from the interior of the barrel body through the water pump and then enters the interior of the barrel body through the top after being pumped out for circular reaction, and in the pumping and moving process of the water pump, cooling water enters the cooling seat; cooling water flows on the side of the ring seat, adsorption cooling is carried out on the temperature of the material in the ring seat after flowing is completed, and accurate control over the temperature is achieved in the material circulating moving process.
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Description

Technical Field

[0001] This utility model relates to the field of enzymatic hydrolysis equipment, specifically a constant temperature circulating reaction device for barley enzymatic hydrolysis. Background Technology

[0002] Barley protein requires enzymatic hydrolysis during processing. The hydrolysis time, temperature, and concentration of the hydrolysate significantly affect the hydrolysis efficiency of barley protein. Therefore, it is necessary to rapidly adjust the hydrolysis temperature to provide a suitable temperature for the hydrolysis reaction. The optimal temperature for barley protein hydrolysis is 50℃, so it is necessary to adjust the temperature rapidly. During the hydrolysis process, biological enzymes can only produce high hydrolysis efficiency when they act at their most suitable temperature. Many studies require that the entire hydrolysis process be completed under constant temperature conditions, which further necessitates precise temperature control.

[0003] According to the patent document with publication number CN207002736U, a constant temperature enzymatic hydrolysis reaction vessel is disclosed. In this technical solution, thermometer holes are distributed on both sides of the main body of the enzymatic hydrolysis reaction vessel, which is conducive to the detection of the temperature in different areas inside the main body of the enzymatic hydrolysis reaction vessel. A heating wire is set between the outer wall and the inner wall of the enzymatic hydrolysis reaction vessel to heat the inside of the main body of the enzymatic hydrolysis reaction vessel, which is beneficial to the enzymatic hydrolysis reaction. However, although the above technical solution completes the heating of the inside of the vessel, it cannot accurately and slowly cool down or heat up the temperature during the subsequent heat dissipation. In addition, it cannot realize the cyclic reaction of materials, which is inconvenient in use. Utility Model Content

[0004] To address the shortcomings of existing technologies, the purpose of this invention is to provide a constant-temperature circulating reaction device for barley protein hydrolysis, thereby solving the problems mentioned in the background art. This invention features a novel structure. When it is necessary to cool the material to control the reaction temperature, a water pump extracts the material from the inside of the tank. After extraction, the material re-enters the tank through the top for circulating reaction. During the pumping and moving process, cooling water enters the cooling seat and flows along the side of the ring seat. This flow adsorbs and cools the material inside the ring seat, achieving precise temperature control during the material's circulating movement.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a constant temperature circulating reaction device for barley protein hydrolysis, comprising a fixed barrel, an installation barrel fixed to the side of the fixed barrel, a motor base fixed to the side of the installation barrel, an exhaust fan fixed inside the motor base, a rotating seat movably mounted on the top of the fixed barrel, an exhaust hole on the rotating seat, a barrel body fixedly mounted inside the fixed barrel, a drive motor and a feed hopper fixedly mounted on the top of the barrel body, an inlet pipe and an extraction pipe fixedly mounted on the side of the barrel body, a water pump fixedly mounted between the extraction pipe and the inlet pipe, and a cooling seat fixedly mounted on the extraction pipe.

[0006] Furthermore, a cooling seat is fixed to the extraction tube, a water inlet pipe is fixed to the top of the cooling seat, and a drain pipe is fixed to the bottom of the cooling seat.

[0007] Furthermore, a support column and a discharge pipe are fixed at the bottom of the barrel, and an opening is opened at the top of the fixed barrel, which is matched with an exhaust port.

[0008] Furthermore, a cavity is formed between the fixed bucket and the bucket body, and a heating mechanism is fixedly installed inside the cavity. An air inlet is formed on the fixed bucket, and the air inlet is distributed on the side of the heating mechanism.

[0009] Furthermore, a ring tube is fixed inside the barrel, the ring tube is fixed to one end of the liquid inlet pipe, a fixing pipe is fixed on the ring tube, and a liquid inlet hole is opened on the fixing pipe.

[0010] Furthermore, a rotating column is rotatably installed inside the barrel, and a stirring rod is welded onto the rotating column. The stirring rod is movably installed on the side of the fixed tube, and one end of the rotating column is fixed to the drive motor.

[0011] Furthermore, a ring seat is fixed inside the cooling seat, and a baffle is fixed to the side of the ring seat.

[0012] Furthermore, a partition plate is fixed between the ring seat and the cooling seat, and the partition plate is fixedly installed between the water inlet pipe and the water outlet pipe.

[0013] The beneficial effects of this utility model are:

[0014] This is a constant-temperature circulating reaction device for barley protein hydrolysis. When it is necessary to cool the material to control the reaction temperature, a water pump extracts the material from the inside of the tank. After extraction, the material re-enters the tank through the top for circulating reaction. During the pumping and moving process, cooling water enters the cooling seat and flows along the side of the ring seat. The flow completes the adsorption and cooling of the material inside the ring seat, achieving precise temperature control during the material's circulating movement.

[0015] This is a constant-temperature circulating reaction device for barley protein hydrolysis. The rotating seat rotates on top of the fixed barrel. When the exhaust port on the rotating seat is aligned with the opening, the airflow blown into the fixed barrel by the exhaust fan is discharged upward from the exhaust port. The airflow reduces the temperature of the heating mechanism, ensuring a constant temperature for the reaction of the materials inside the barrel. By adjusting the exhaust gap between the opening and the exhaust port, the internal temperature is slowly reduced, thereby ensuring the required temperature.

[0016] This is a constant temperature circulating reaction device for barley protein hydrolysis. In the later stage, the rotating seat is rotated, and the exhaust hole and opening on the rotating seat are misaligned. After the misalignment, the air inside the fixed barrel cannot be discharged upward. During the initial heating, the airflow causes the temperature on the heating mechanism to be quickly and evenly filled to the side of the barrel, which facilitates rapid heating in the early stage. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of a constant-temperature circulating reaction device for barley protein hydrolysis according to the present invention.

[0018] Figure 2 This is a schematic diagram of the structure of the constant temperature circulating reaction device for barley protein hydrolysis according to this utility model after the rotating seat is moved upward;

[0019] Figure 3 This is a schematic diagram of the internal structure of the barrel of the constant temperature circulating reaction device for barley protein hydrolysis according to this utility model;

[0020] Figure 4 This is a top view cross-sectional structural diagram of the barrel of a constant-temperature circulating reaction device for barley protein hydrolysis according to this utility model.

[0021] Figure 5 This is a schematic diagram of the internal structure of the cooling seat of a constant-temperature circulating reaction device for barley protein hydrolysis according to this utility model.

[0022] In the diagram: 1. Fixed bucket; 2. Mounting bucket; 3. Motor base; 4. Extraction pipe; 5. Cooling base; 6. Water inlet pipe; 7. Drain pipe; 8. Water pump; 9. Liquid inlet pipe; 10. Bucket body; 11. Rotating seat; 12. Exhaust port; 13. Drive motor; 14. Feed hopper; 15. Support column; 16. Discharge pipe; 17. Opening; 18. Cavity; 19. Heating mechanism; 20. Ring pipe; 21. Fixed pipe; 22. Liquid inlet; 23. Rotating column; 24. Exhaust fan; 25. Air inlet; 26. Stirring rod; 27. Ring seat; 28. Baffle plate; 29. ​​Divider plate. Detailed Implementation

[0023] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0024] Please see Figures 1 to 5 This utility model provides a technical solution: a constant temperature circulating reaction device for barley protein hydrolysis, including a fixed barrel 1, an installation barrel 2 fixed to the side of the fixed barrel 1, a motor base 3 fixed to the side of the installation barrel 2, an exhaust fan 24 fixed inside the motor base 3, a rotating seat 11 movably installed on the top of the fixed barrel 1, an exhaust hole 12 opened on the rotating seat 11, a barrel body 10 fixedly installed inside the fixed barrel 1, a drive motor 13 and a feed hopper 14 fixedly installed on the top of the barrel body 10, an inlet pipe 9 and an extraction pipe 4 fixedly installed on the side of the barrel body 10, a water pump 8 fixedly installed between the extraction pipe 4 and the inlet pipe 9, a cooling seat 5 fixedly installed on the extraction pipe 4, a water inlet pipe 6 fixedly installed on the top of the cooling seat 5, a drain pipe 7 fixedly installed on the bottom of the cooling seat 5, cold water enters the cooling seat 5 through the water inlet pipe 6, the water moves around inside the cooling seat 5 once and then is discharged, thereby realizing the circulation and replacement of cooling water and cooling for use.

[0025] In this embodiment, a support column 15 and a discharge pipe 16 are fixed at the bottom of the barrel 10. An opening 17 is opened at the top of the fixed barrel 1, which cooperates with the exhaust port 12. A cavity 18 is opened between the fixed barrel 1 and the barrel 10. A heating mechanism 19 is fixedly installed inside the cavity 18. The heating mechanism 19 is a cylinder. An electric heating wire is fixedly installed inside the cylinder. When the electric heating wire is energized, it generates the temperature required for enzymatic hydrolysis. An air inlet 25 is opened on the fixed barrel 1. The air inlet 25 is distributed on the side of the heating mechanism 19. A ring pipe 20 is fixed inside the barrel 10. The ring pipe 20 is fixed at one end of the liquid inlet pipe 9. A fixing pipe 21 is fixed on the ring pipe 20. A liquid inlet 22 is opened on the fixing pipe 21. The material inside the liquid inlet 22 is sprayed out. When spraying, the stirring rod 26 rotates to quickly stir the sprayed material, so that the temperature between the materials is evenly distributed.

[0026] In this embodiment, a rotating column 23 is rotatably installed inside the barrel 10, and a stirring rod 26 is welded onto the rotating column 23. The stirring rod 26 is movably installed on the side of the fixed pipe 21. One end of the rotating column 23 is fixed to the drive motor 13. A ring seat 27 is fixed inside the cooling seat 5, and a baffle plate 28 is fixed on the side of the ring seat 27. A partition plate 29 is fixed between the ring seat 27 and the cooling seat 5. The partition plate 29 is fixedly installed between the water inlet pipe 6 and the water outlet pipe 7. The partition plate 29 realizes the separation of water inlet and water outlet. After the water rotates around the ring seat 27 once, it is blocked by the partition plate 29 and discharged from the inside of the water outlet pipe 7, thereby realizing the effective heat absorption and cooling of the cooling water.

[0027] In use, the device injects barley protein liquid into the barrel 10 through the feed hopper 14, seals the top of the feed hopper 14, and rotates the rotating seat 11 on the fixed barrel 1. When the rotating seat 11 rotates, the exhaust port 12 and the opening 17 are staggered, and the inner wall of the rotating seat 11 seals the opening 17. Initially, the heating mechanism 19 is activated to raise the temperature. After heating, the exhaust fan 24 blows air inward, and the airflow rapidly fills the sides of the barrel 10 with the heat from the heating mechanism 19, thus achieving uniform heating of different locations within the barrel 10. During heating, the drive motor 13 is activated to rotate the rotating column 23 and the stirring rod 26. The rotation of the stirring rod 26 causes the internal material to tumble, achieving heating. The internal temperature is monitored in real time by an internal temperature sensor, which is a mature existing technology and can be directly used within this application. When cooling is required, the rotating seat 11 is rotated, and the exhaust port 12 on the rotating seat 11... Aligned with opening 17, exhaust fan 24 blows air inward, and the airflow exhausts the heat from heating mechanism 19 and the side of barrel 10 to the outside, thereby cooling the inside of barrel 10. When slow cooling is required, rotating seat 11 controls the gap between exhaust port 12 and opening 17 to control the exhaust speed, thereby achieving a constant temperature reaction inside barrel 10. When faster cooling is required, water pump 8 is started, and the material is drawn out from inside barrel 10 through water pump 8. After being drawn out, it enters the inside of barrel 10 through the top for circulation reaction. During the process of water pump 8 drawing and moving, cooling water enters cooling seat 5. Cooling water flows on the side of ring seat 27. Baffle 28 adsorbs the high temperature inside ring seat 27 while blocking the cooling water, reducing the flow speed of cooling water. The flow of cooling water adsorbs and cools the temperature of the material inside ring seat 27. Precise temperature control is achieved during the material circulation process.

[0028] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0029] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A kind of enzyme hydrolysis constant temperature cycle reaction device of highland barley protein, including fixed barrel (1), it is characterized in that: The fixed barrel (1) is fixed with an installation barrel (2) on its side. The installation barrel (2) is fixed with a motor base (3) on its side. An exhaust fan (24) is fixed inside the motor base (3). A rotating seat (11) is movably installed on the top of the fixed barrel (1). An exhaust hole (12) is opened on the rotating seat (11). A barrel body (10) is fixedly installed inside the fixed barrel (1). A drive motor (13) and a feed hopper (14) are fixed on the top of the barrel body (10). An inlet pipe (9) and an extraction pipe (4) are fixedly installed on the sides of the barrel body (10). A water pump (8) is fixedly installed between the extraction pipe (4) and the inlet pipe (9). A cooling seat (5) is fixedly installed on the extraction pipe (4).

2. The device according to claim 1, wherein the device is a device for the enzymatic constant temperature cyclic reaction of highland barley protein. A cooling seat (5) is fixed on the extraction tube (4), a water inlet pipe (6) is fixed on the top of the cooling seat (5), and a drain pipe (7) is fixed on the bottom of the cooling seat (5).

3. The device according to claim 1, wherein the device is a device for enzymatic constant temperature cyclic reaction of highland barley protein. The bottom of the barrel (10) is fixed with a support column (15) and a discharge pipe (16), and the top of the fixed barrel (1) has an opening (17) that matches the exhaust port (12).

4. The device according to claim 1, wherein the device is a device for the enzymatic constant temperature cyclic reaction of highland barley protein. A cavity (18) is formed between the fixed barrel (1) and the barrel body (10). A heating mechanism (19) is fixedly installed inside the cavity (18). An air inlet (25) is formed on the fixed barrel (1). The air inlet (25) is distributed on the side of the heating mechanism (19).

5. The device according to claim 1, wherein the device is a device for enzymatic constant temperature cyclic reaction of highland barley protein. The barrel (10) has a ring pipe (20) fixed inside. The ring pipe (20) is fixed to one end of the liquid inlet pipe (9). A fixing pipe (21) is fixed on the ring pipe (20), and a liquid inlet hole (22) is opened on the fixing pipe (21).

6. The device according to claim 1, wherein the device is a device for enzymatic constant temperature cyclic reaction of highland barley protein. The barrel (10) is rotatably mounted with a rotating column (23), and a stirring rod (26) is welded on the rotating column (23). The stirring rod (26) is movably mounted on the side of the fixed tube (21), and one end of the rotating column (23) is fixed on the drive motor (13).

7. The device according to claim 1, wherein the device is a device for enzymatic constant temperature cyclic reaction of highland barley protein. The cooling seat (5) has an inner ring seat (27) fixed inside, and a baffle plate (28) is fixed on the side of the ring seat (27).

8. The device according to claim 7, wherein the device is a device for the enzymatic constant temperature cyclic reaction of highland barley protein. A partition plate (29) is fixed between the ring seat (27) and the cooling seat (5), and the partition plate (29) is fixedly installed between the water inlet pipe (6) and the drain pipe (7).

Citation Information

Patent Citations

  • Constant temperature enzymolysis retort

    CN207002736U