Refrigerator for L-tyrosine production

By designing a refrigeration unit for L-tyrosine production with a rotating block and worm gear structure, the problem of tyrosine residue was solved, achieving complete discharge of tyrosine and preventing agglomeration, thus improving the efficiency of the refrigeration unit.

CN223976268UActive Publication Date: 2026-03-06TIANMEN JIXING BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-14
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

When existing freezers remove tyrosine, some tyrosine remains inside the freezer because tyrosine is in the form of fine powder.

Method used

A freezer for L-tyrosine production was designed. By setting up structures such as rotating blocks and worm gears, tyrosine is pushed and stirred, ensuring that tyrosine is completely discharged.

Benefits of technology

It effectively prevents tyrosine from clumping inside the freezer, ensuring complete discharge of tyrosine and improving the efficiency and practicality of the freezer.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a refrigerator for L-tyrosine production, which relates to the field of refrigerators for production, and comprises a base, a freezing bin is fixed at the top of the base, a second groove is formed in the inner wall of one end of the freezing bin, a guide block is fixed on one side of the inner wall of the freezing bin, a first groove is formed in one side of the guide block, and a second groove is formed in the other side of the guide block. A second groove is formed in the outer surface of the first groove, a second screw rod is arranged in the second groove, a rotating block is fixed to one side of the second screw rod, a screw block is connected to the outer surface of the second screw rod in a meshed mode, and a pushing plate is fixed to one side of the screw block. When the rotating block rotates, the second screw rod is driven to rotate, when the second screw rod rotates, the screw block is driven to rotate through meshing connection, when the screw block rotates, the pushing plate is driven to move, when the pushing plate moves, residual tyrosine is pushed to move, and the residual tyrosine is moved out of the freezing bin through the discharging groove.
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Description

Technical Field

[0001] This utility model relates to the field of production freezers, specifically a freezer for L-tyrosine production. Background Technology

[0002] Tyrosine is an important essential amino acid that plays a vital role in the metabolism, growth, and development of humans and animals. It is widely used in the food, feed, pharmaceutical, and chemical industries.

[0003] Existing patent CN214357926U discloses a raw material storage device for pharmaceutical research and development that facilitates storage and retrieval. In use, pharmaceutical raw materials are poured into the storage cylinder through a feed pipe. A stirring motor drives a stirring plate connected to the outer cylinder of a rotating rod to rotate, agitating the raw materials and preventing sedimentation. Simultaneously, a pump, through connected inlet and outlet pipes, extracts raw materials from the bottom of the storage cylinder and transports them to the top, preventing them from sinking. A temperature sensing tube monitors the internal temperature of the storage cylinder; if the temperature exceeds a certain threshold... The temperature controller activates the refrigeration unit to blow cold air into the duct, thus maintaining the raw materials at a low temperature for better storage. When feeding the raw materials, the container is placed on a pressure sensor, and the feeding valve is opened. The raw materials fall into the container through the valve and feeding pipe. The pressure sensor detects the weight of the container, and the pressure is displayed on a pressure indicator, allowing control over the amount of material fed. This facilitates storage and retrieval. The device prevents raw materials from settling, resulting in excellent storage performance and easy access, thus improving practicality and solving the problems of inconvenient storage and retrieval in existing storage devices.

[0004] Existing devices use a freezer to freeze and store tyrosine. When the stored tyrosine is removed, because tyrosine is in the form of fine powder, some tyrosine remains inside the freezer after removal. Utility Model Content

[0005] The purpose of this invention is to provide a freezer for L-tyrosine production, in order to solve the problem that tyrosine is in the form of fine powder, resulting in some tyrosine remaining inside the freezer after removal.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a freezer for L-tyrosine production, comprising a base, a freezing chamber fixed to the top of the base, the base fixing the freezing chamber, a second groove formed on the inner wall of one end of the freezing chamber, a guide block fixed to one side of the inner wall of the freezing chamber, a first groove formed on one side of the guide block, a second screw disposed inside the second groove, a rotating block fixed to one side of the second screw, the rotating block rotating to drive the second screw to rotate, and the rotating block being located on one side of the freezing chamber, a screw block meshing with the outer surface of the second screw, the second screw rotating to drive the screw block to rotate through the meshing connection, and the screw block penetrating one end of the second groove, a push plate fixed to one side of the screw block, the screw block rotating to drive the push plate to move, and the push plate being located inside the first groove.

[0007] As a further embodiment of this utility model: an electric motor is installed on the top of the freezing chamber, a freezer is installed on one side of the top of the freezing chamber, the freezing chamber fixes the freezer, and the freezer is located on one side of the electric motor. A discharge chute is opened on one side of the freezing chamber for discharging material, and the discharge chute is located at one end of the rotating block.

[0008] As a further embodiment of this utility model: a fixing plate is fixed to one side of the freezing chamber, the freezing chamber fixes the fixing plate, and the fixing plate is located on the top of the rotating block. A pump body is installed on the top of the fixing plate, and the fixing plate fixes the pump body.

[0009] As a further embodiment of this utility model: a first air duct is fixed to the top of the pump body, and the other end of the first air duct is fixedly connected to the refrigeration unit, thereby fixing the pump body and the refrigeration unit together through the first air duct.

[0010] As a further improvement of this utility model: a second air duct is fixed to the bottom of the pump body, and the other end of the second air duct passes through one side of the freezer compartment, and the second air duct cooler transmits heat to the interior of the freezer compartment.

[0011] As a further embodiment of this utility model: a fixed column is fixed to the output end of the motor, and the fixed column rotates when the motor rotates, and the fixed column passes through the top of the freezer compartment. A fixed block is fixed to the bottom of the fixed column, and the fixed block rotates when the fixed column rotates. A second fixed rod is fixed to the bottom of the fixed block, and the second fixed rod rotates when the fixed block rotates. Limiting grooves are provided on both sides of the second fixed rod.

[0012] As a further embodiment of this utility model: a worm gear is provided inside the fixed block, and a worm is meshed with one side of the outer surface of the worm gear. When the worm rotates, it drives the worm gear to rotate through the meshing connection, and the worm passes through one side of the fixed block. A first screw is fixed to the bottom of the worm gear. When the worm gear rotates, it drives the first screw to rotate, and the first screw is located inside the second fixed rod. Multiple sets of screw rings are meshed with the outer surface of the first screw. When the first screw rotates, it drives the multiple sets of screw rings to move through the meshing connection. First fixed rods are fixed on both sides of the screw rings. When the screw rings move, they drive the first fixed rods to move, and the first fixed rods pass through the interior of the limiting groove. A stirring rod is fixed to one side of the first fixed rod. When the first fixed rod moves, it drives the stirring rod to move.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. By setting a rotating block, the rotating block rotates, which drives the second screw to rotate. When the second screw rotates, it drives the screw block to rotate through the meshing connection. When the screw block rotates, it drives the push plate to move. When the push plate moves, it pushes the residual tyrosine to move. The residual tyrosine moves out of the interior of the freezer through the discharge chute.

[0015] 2. By setting a worm gear, when the worm gear rotates, it drives the worm wheel to rotate through the meshing connection. When the worm wheel rotates, it drives the first screw to rotate. When the first screw rotates, it drives multiple sets of screw rings to move through the meshing connection. When the screw rings move, they drive the first fixed rod to move. When the first fixed rod moves, it drives the stirring rod to move. When the stirring rod moves, it stirs the tyrosine at different heights to prevent the tyrosine from clumping. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the overall internal structure of this utility model;

[0018] Figure 3 This is a schematic diagram of the structure shown in Figure A;

[0019] Figure 4 This is a schematic diagram of the structure of the second screw of this utility model.

[0020] In the diagram: 1. Base; 2. Freezing chamber; 3. Discharge chute; 4. Fixing plate; 5. Pump body; 6. First air duct; 7. Freezer; 8. Motor; 9. Fixing column; 10. Stirring rod; 11. Rotating block; 12. First groove; 13. Guide block; 14. Push plate; 15. Fixing block; 16. Worm gear; 17. Threaded ring; 18. First fixing rod; 19. First screw; 20. Worm wheel; 21. Second screw; 22. Threaded block; 23. Second groove; 24. Second air duct; 25. Limiting groove; 26. Second fixing rod. 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] Please see Figure 1 , 4 In this embodiment of the present invention, a freezer for L-tyrosine production includes a base 1, a freezing chamber 2 fixed to the top of the base 1, the base 1 fixing the freezing chamber 2, a second groove 23 being provided on the inner wall of one end of the freezing chamber 2, a guide block 13 being fixed to one side of the inner wall of the freezing chamber 2, a first groove 12 being provided on one side of the guide block 13, a second screw 21 being provided inside the second groove 23, a rotating block 11 being fixed to one side of the second screw 21, the rotating block 11 driving the second screw 21 to rotate when rotating, and the rotating block 11 being located on one side of the freezing chamber 2, a screw block 22 being meshed with the outer surface of the second screw 21, the second screw 21 driving the screw block 22 to rotate through the meshing connection when rotating, and the screw block 22 penetrating one end of the second groove 23, a push plate 14 being fixed to one side of the screw block 22, the screw block 22 driving the push plate 14 to move when rotating, and the push plate 14 being located inside the first groove 12;

[0023] Rotation is achieved by rotating the rotating block 11, which in turn drives the second screw 21 to rotate.

[0024] Please refer to this carefully. Figure 1A motor 8 is installed on the top of the freezer compartment 2. A freezer 7 is installed on one side of the top of the freezer compartment 2. The freezer compartment 2 fixes the freezer 7, and the freezer 7 is located on one side of the motor 8. A discharge chute 3 is opened on one side of the freezer compartment 2. The discharge chute 3 is used for discharging material, and the discharge chute 3 is located at one end of the rotating block 11. A fixing plate 4 is fixed on one side of the freezer compartment 2. The freezer compartment 2 fixes the fixing plate 4, and the fixing plate 4 is located on the top of the rotating block 11. A pump body 5 is installed on the top of the fixing plate 4, and the fixing plate 4 fixes the pump body 5.

[0025] The freezer compartment 2 is fixed to the fixing plate 4, and the fixing plate 4 is fixed to the pump body 5.

[0026] In this embodiment: the rotating block 11 is rotated, and when the rotating block 11 rotates, it drives the second screw 21 to rotate. When the second screw 21 rotates, it drives the screw block 22 to rotate through the meshing connection. When the screw block 22 rotates, it drives the push plate 14 to move.

[0027] Please refer to this carefully. Figure 1 , 2 The top of the pump body 5 is fixed with a first air duct 6, and the other end of the first air duct 6 is fixedly connected to the freezer 7. The pump body 5 and the freezer 7 are fixedly connected through the first air duct 6. The bottom of the pump body 5 is fixed with a second air duct 24, and the other end of the second air duct 24 passes through one side of the freezer compartment 2. The second air duct 24 transmits coolant to the interior of the freezer compartment 2.

[0028] The pump body 5 is fixedly connected to the chiller 7 through the first air duct 6.

[0029] Please refer to this carefully. Figure 2 , 3A fixed post 9 is fixed to the output end of the motor 8. When the motor 8 rotates, it drives the fixed post 9 to rotate. The fixed post 9 penetrates the top of the freezer compartment 2. A fixed block 15 is fixed to the bottom of the fixed post 9. When the fixed post 9 rotates, it drives the fixed block 15 to rotate. A second fixed rod 26 is fixed to the bottom of the fixed block 15. When the fixed block 15 rotates, it drives the second fixed rod 26 to rotate. Limiting grooves 25 are opened on both sides of the second fixed rod 26. A worm gear 20 is provided inside the fixed block 15. A worm 16 is meshed with one side of the outer surface of the worm gear 20. When the worm 16 rotates, it drives the worm gear 20 to rotate through the meshing connection. A first screw 19 is fixed to the bottom of the worm gear 20 through one side of the fixed block 15. When the worm gear 20 rotates, it drives the first screw 19 to rotate. The first screw 19 is located inside the second fixed rod 26. Multiple sets of screw rings 17 are meshed on the outer surface of the first screw 19. When the first screw 19 rotates, it drives the multiple sets of screw rings 17 to move through the meshing connection. First fixed rods 18 are fixed on both sides of the screw rings 17. When the screw rings 17 move, they drive the first fixed rods 18 to move. The first fixed rods 18 penetrate the interior of the limiting groove 25. A stirring rod 10 is fixed on one side of the first fixed rod 18. When the first fixed rod 18 moves, it drives the stirring rod 10 to move.

[0030] When the motor 8 rotates, it drives the fixed column 9 to rotate. When the fixed column 9 rotates, it drives the fixed block 15 to rotate. When the fixed block 15 rotates, it drives the second fixed rod 26 to rotate.

[0031] In this embodiment: when the worm 16 rotates, it drives the worm wheel 20 to rotate through the meshing connection. When the worm wheel 20 rotates, it drives the first screw 19 to rotate. When the first screw 19 rotates, it drives multiple sets of screw rings 17 to move through the meshing connection.

[0032] Working principle: Rotating the rotating block 11 causes the second screw 21 to rotate. When the second screw 21 rotates, it drives the screw block 22 to rotate through the meshing connection. When the screw block 22 rotates, it drives the push plate 14 to move. When the push plate 14 moves, it pushes the residual tyrosine to move.

[0033] The worm gear 16 is rotated, and when the worm gear 16 rotates, it drives the worm wheel 20 to rotate through the meshing connection. When the worm wheel 20 rotates, it drives the first screw 19 to rotate. When the first screw 19 rotates, it drives multiple sets of screw rings 17 to move through the meshing connection. When the screw rings 17 move, they drive the first fixed rod 18 to move. When the first fixed rod 18 moves, it drives the stirring rod 10 to move.

[0034] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A refrigerator for L-tyrosine production comprising a base (1), characterized in that, The top of the base (1) is fixed with a freezing bin (2), the inner wall of one end of the freezing bin (2) is provided with a second groove (23), one side of the inner wall of the freezing bin (2) is fixed with a guide block (13), one side of the guide block (13) is provided with a first groove (12), the inside of the second groove (23) is provided with a second screw rod (21), one side of the second screw rod (21) is fixed with a rotating block (11), and the rotating block (11) is located at one side of the freezing bin (2), the outer surface of the second screw rod (21) is engagedly connected with a screw block (22), and one end of the screw block (22) penetrates the second groove (23), one side of the screw block (22) is fixed with a push plate (14), and the push plate (14) is located in the inside of the first groove (12).

2. The chiller for producing L-tyrosine according to claim 1, characterized by The top of the freezing bin (2) is provided with a motor (8), one side of the top of the freezing bin (2) is provided with a freezer (7), and the freezer (7) is located at one side of the motor (8), one side of the freezing bin (2) is provided with a discharge chute (3), and the discharge chute (3) is located at one end of the rotating block (11).

3. The chiller for producing L-tyrosine according to claim 1, characterized by One side of the freezing bin (2) is fixed with a fixed plate (4), and the fixed plate (4) is located at the top of the rotating block (11), and the top of the fixed plate (4) is provided with a pump body (5).

4. The chiller for producing L-tyrosine according to claim 3, characterized by The top of the pump body (5) is fixed with a first air pipe (6), and the other end of the first air pipe (6) is fixedly connected with the freezer (7).

5. The chiller for producing L-tyrosine according to claim 3, wherein The bottom of the pump body (5) is fixed with a second air pipe (24), and the other end of the second air pipe (24) penetrates one side of the freezing bin (2).

6. The chiller for producing L-tyrosine according to claim 2, characterized by The output end of the motor (8) is fixed with a fixed column (9), and the fixed column (9) penetrates the top of the freezing bin (2), the bottom of the fixed column (9) is fixed with a fixed block (15), the bottom of the fixed block (15) is fixed with a second fixed rod (26), and the two sides of the second fixed rod (26) are provided with limiting grooves (25).

7. The chiller for producing L-tyrosine according to claim 6, wherein The inside of the fixed block (15) is provided with a worm wheel (20), one side of the outer surface of the worm wheel (20) is engagedly connected with a worm (16), and the worm (16) penetrates one side of the fixed block (15), the bottom of the worm wheel (20) is fixed with a first screw rod (19), and the first screw rod (19) is located in the inside of the second fixed rod (26), the outer surface of the first screw rod (19) is engagedly connected with a plurality of screw rings (17), the two sides of the screw ring (17) are fixed with a first fixed rod (18), and the first fixed rod (18) penetrates the inside of the limiting groove (25), and one side of the first fixed rod (18) is fixed with a stirring rod (10).