Device for separating methionine from compound amino acid

By using a servo motor-driven gear system and an air pump blowing device, the problem of the semi-permeable membrane being fragile and easily damaged was solved, and the material was effectively dispersed, improving the anti-clogging effect and filtration capacity of the device.

CN223915123UActive Publication Date: 2026-02-17ZHANGSHU YIKANG PHARM CO LTD
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Patent Information

Application Number
CN202520333583.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-02-17
Estimated Expiration
2035-02-27

AI Technical Summary

Technical Problem

In existing devices for separating methionine from complex amino acids, the semi-permeable membrane is fragile and easily damaged when the lever is moved, resulting in poor anti-clogging effect and reduced filtration capacity.

Method used

A servo motor drives a gear system, and a high-speed airflow is blown onto the surface of the semi-permeable membrane by an air pump to prevent material from accumulating. The air pump is connected by an air guide pipe and a hose to disperse the material and protect the semi-permeable membrane.

Benefits of technology

This effectively avoids damage to the semi-permeable membrane and material accumulation, maintains filtration capacity, and improves the anti-clogging effect and service life of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of methionine preparation, in particular to a device for separating methionine from compound amino acid, which comprises a bottom plate, the device further comprises a base, an auxiliary gear, a servo motor, a driving gear, an air guide pipe, a connector, a hose and an air pump, a washing tank is arranged on the left side of the upper surface of the bottom plate, and a liquid outlet pipe is arranged on the bottom surface of the washing tank; by arranging the servo motor, the output end of the servo motor can drive the driving gear to rotate during operation, the driving gear can drive the auxiliary gear meshed with the driving gear to rotate synchronously during rotation, the auxiliary gear can drive the air guide pipe to rotate during rotation, and the air pump is started; the air pump can send high-speed air flow into the air guide pipe through the hose and blow the high-speed air flow out of the end opening of the air guide pipe, so that air is blown to the surface of the semi-permeable membrane, filtered materials are blown away, penetration of the semi-permeable membrane can be avoided, and meanwhile the problem that the filtering capacity is reduced due to the fact that the materials filtered by the semi-permeable membrane are gathered and accumulated is solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of methionine preparation, especially to a device for separating methionine from composite amino acid. BACKGROUND

[0002] Methionine is an important essential amino acid for animals, and methionine hydroxy analog can be converted into methionine in the animal body and play its nutritional role, which can also be used as a rumen bypass protein source for ruminants and an acidifier for piglet diets, can inhibit and kill bacteria, reduce heat stress, and reduce nitrogen excretion to protect the environment.

[0003] The existing device for separating methionine from composite amino acid usually uses a push rod to push the material on the surface of the semi-permeable membrane to achieve the effect of preventing blockage during use, but the semi-permeable membrane itself is relatively fragile, and the push rod can easily damage the semi-permeable membrane during movement.

[0004] Therefore, in view of the above-mentioned problems of the existing device for separating methionine from composite amino acid, a device for separating methionine from composite amino acid can be designed, which is provided with a servo motor, and the output end of the servo motor drives the driving gear to rotate during operation, the driving gear can drive the auxiliary gear meshing therewith to rotate synchronously, and the auxiliary gear can drive the air guide pipe to rotate during rotation, the air pump is started, the air pump can send high-speed airflow into the inside of the air guide pipe through the hose, and blow out from the port position of the air guide pipe, so as to blow the surface of the semi-permeable membrane, thereby blowing away the filtered material, which can avoid the semi-permeable membrane from being penetrated, and avoid the filtered material of the semi-permeable membrane from being accumulated, thereby reducing the filtering capacity. SUMMARY

[0005] In order to overcome the problem that the existing device for separating methionine from composite amino acid usually uses a push rod to push the material on the surface of the semi-permeable membrane to achieve the effect of preventing blockage during use, but the semi-permeable membrane itself is relatively fragile, and the push rod can easily damage the semi-permeable membrane during movement.

[0006] The technical solution of this utility model is as follows: a device for separating methionine from complex amino acids, including a base plate; it also includes a base, an auxiliary gear, a servo motor, a drive gear, an air guide pipe, a connector, a hose, and an air pump. A water washing tank is provided on the left side of the upper surface of the base plate, and a liquid outlet pipe is provided on the bottom surface of the water washing tank. A guide plate is provided on the right side of the upper surface of the base plate, and a guide groove is formed on the upper surface of the guide plate. A semi-permeable membrane is provided on the right side of the guide groove. A base is provided on the right side of the upper surface of the guide plate, and an auxiliary gear is rotatably connected to the upper surface of the base. A servo motor is provided on the right side of the upper surface of the base plate, and a drive gear is provided at the output end of the servo motor. The drive gear meshes with the auxiliary gear. An air guide pipe is provided in the middle of the upper surface of the auxiliary gear, and a connector is provided on the upper surface of the air guide pipe. One end of the hose is connected to the connector, and the other end of the hose is connected to the air pump. The bottom surface of the air pump is connected to the upper surface of the base plate.

[0007] Preferably, by setting a servo motor, its output end drives the drive gear to rotate during operation. When the drive gear rotates, it drives the auxiliary gear meshing with it to rotate synchronously. When the auxiliary gear rotates, it drives the air guide tube to rotate, activating the air pump. The air pump delivers high-speed airflow through the hose into the interior of the air guide tube and blows it out from the port of the air guide tube, thereby blowing air onto the surface of the semi-permeable membrane. This disperses the filtered material, preventing the semi-permeable membrane from permeating and avoiding the accumulation of filtered material, which would reduce the filtration capacity. This solves the problem that existing devices for separating methionine from complex amino acids typically use a lever to move the material on the surface of the semi-permeable membrane to achieve an anti-clogging effect. However, the semi-permeable membrane itself is relatively fragile, and the lever can easily damage the semi-permeable membrane when it is moved.

[0008] Preferably, a mounting bracket is provided on the right side of the upper surface of the washing tank, a drive motor is provided on the bottom surface of the mounting bracket, a drive gear is provided at the output end of the drive motor, and an agitator is rotatably connected through the middle of the top surface of the washing tank. A driven gear is provided on the top surface of the agitator, and the drive gear meshes with the driven gear.

[0009] Preferably, the bottom surface of the guide plate is provided with two symmetrical sliders, and the upper surface of the base plate is provided with a groove corresponding to the position of the slider, and the slider is slidably connected to the groove.

[0010] Preferably, a tie rod is provided on the front surface of the deflector, and the tie rod is fixed to the deflector by welding.

[0011] Preferably, a drain outlet is provided on the upper surface of the base plate at the side of the right-side chute, and a collection box is provided on the bottom surface of the base plate at the position corresponding to the drain outlet.

[0012] Preferably, casters are provided at the corners of the bottom surface of the collection box, and the casters are fixed to the collection box by external bolts.

[0013] Preferably, the bottom surface of the base plate is provided with support legs at the corners, and the bottom surface of the support legs is provided with pads.

[0014] The beneficial effects of this utility model are:

[0015] 1. By setting a servo motor, its output will drive the drive gear to rotate during operation. When the drive gear rotates, it can drive the auxiliary gear meshing with it to rotate synchronously. When the auxiliary gear rotates, it can drive the air guide tube to rotate, start the air pump, and send high-speed airflow into the interior of the air guide tube through the hose and blow it out from the port of the air guide tube, thereby blowing air onto the surface of the semi-permeable membrane, thus blowing away the filtered material. This can prevent the semi-permeable membrane from permeating and prevent the material filtered by the semi-permeable membrane from accumulating and causing a decrease in filtration capacity. This solves the problem that existing devices for the separation of methionine from complex amino acids usually use a lever to move the material on the surface of the semi-permeable membrane to achieve the anti-clogging effect. However, the semi-permeable membrane itself is relatively fragile, and the lever can easily damage the semi-permeable membrane when it is moved. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of a device for separating methionine from complex amino acids according to this utility model.

[0017] Figure 2 The diagram shown is a three-dimensional structural schematic of a water washing tank for separating methionine from complex amino acids according to this utility model.

[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the gas delivery tube of a device for separating methionine from complex amino acids according to this utility model.

[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the base plate of a device for separating methionine from complex amino acids according to this utility model.

[0020] Figure 5 The diagram shown is a three-dimensional structural schematic of a flow guide plate for separating methionine from complex amino acids according to this utility model.

[0021] Explanation of reference numerals in the attached drawings: 1. Base plate; 2. Washing tank; 3. Discharge pipe; 4. Guide plate; 5. Guide channel; 6. Semi-permeable membrane; 7. Base; 8. Auxiliary gear; 9. Servo motor; 10. Drive gear; 11. Air duct; 12. Connector; 13. Hose; 14. Air pump; 15. Mounting bracket; 16. Drive motor; 17. Drive gear; 18. Stirring rod; 19. Driven gear; 20. Slider; 21. Slide groove; 22. Tie rod; 23. Leakage port; 24. Collection box; 25. Casters; 26. Support leg; 27. Gasket. Detailed Implementation

[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0023] Please see Figures 1-5 This utility model provides an embodiment: a device for separating methionine from complex amino acids, including a base plate 1; it also includes a base 7, an auxiliary gear 8, a servo motor 9, a drive gear 10, an air guide pipe 11, a connector 12, a hose 13, and an air pump 14. A water washing tank 2 is arranged on the left side of the upper surface of the base plate 1, and a liquid outlet pipe 3 is arranged on the bottom surface of the water washing tank 2. A guide plate 4 is arranged on the right side of the upper surface of the base plate 1, and a guide groove 5 is formed on the upper surface of the guide plate 4. A semi-permeable membrane 6 is provided on the right side of the flow channel 5. A base 7 is provided on the right side of the upper surface of the flow guide plate 4. An auxiliary gear 8 is rotatably connected to the upper surface of the base 7. A servo motor 9 is provided on the upper surface of the base plate 1 on the right side of the flow guide plate 4. A drive gear 10 is provided at the output end of the servo motor 9. The drive gear 10 meshes with the auxiliary gear 8. An air guide pipe 11 is provided in the middle of the upper surface of the auxiliary gear 8. A connector 12 is provided on the upper surface of the air guide pipe 11. One end of the hose 13 is connected to the connector 12. The other end of the hose 13 is connected to an air pump 14. The bottom surface of the air pump 14 is connected to the upper surface of the base plate 1. By setting a servo motor 9, its output end will drive the drive gear 10 to rotate during operation. When the drive gear 10 rotates, it can drive the auxiliary gear 8 meshing with it to rotate synchronously. When the auxiliary gear 8 rotates, it can drive the air guide tube 11 to rotate. When the air pump 14 is started, the air pump 14 can send high-speed airflow through the hose 13 into the interior of the air guide tube 11 and blow it out from the port of the air guide tube 11, thereby blowing air onto the surface of the semi-permeable membrane 6, thereby blowing away the filtered material, which can prevent the semi-permeable membrane 6 from being permeated, and at the same time prevent the material filtered by the semi-permeable membrane 6 from accumulating and accumulating, which will reduce the filtration capacity. This solves the problem that in the existing devices for the separation of methionine from complex amino acids, a lever is usually used to move the material on the surface of the semi-permeable membrane 6 to achieve the anti-clogging effect. However, the semi-permeable membrane 6 itself is relatively fragile, and the lever is easy to damage the semi-permeable membrane 6 when it is moved.

[0024] Please seeFigures 1-5 In this embodiment, a mounting bracket 15 is provided on the right side of the upper surface of the washing tank 2. A drive motor 16 is provided on the bottom surface of the mounting bracket 15. A drive gear 17 is provided at the output end of the drive motor 16. A stirring rod 18 is rotatably connected through the middle of the top surface of the washing tank 2. A driven gear 19 is provided on the top surface of the stirring rod 18. The drive gear 17 meshes with the driven gear 19. By providing the drive motor 16, its output end can drive the drive gear 17 to rotate during operation. When the drive gear 17 rotates, it can drive the driven gear 19 meshing with it to rotate synchronously, thereby driving the stirring rod 18 to rotate. The stirring rod 18 rotates to improve the washing efficiency. Two symmetrical sliders 20 are provided on the bottom surface of the guide plate 4. A groove 21 is provided on the upper surface of the base plate 1 corresponding to the position of the sliders 20. The sliders 20 and the grooves 21 are slidably connected. By setting the sliders 20, it is easy for the staff to quickly connect and install the guide plate 4, and it is also easy to remove the guide plate 4 for cleaning. A pull rod 22 is provided on the front surface of the guide plate 4. The pull rod 22 is fixed to the guide plate 4 by welding. By setting the pull rod 22, the guide plate 4 can be pulled off from the upper surface of the base plate 1 when the pull rod 22 is pulled, which improves convenience.

[0025] Please see Figures 1-5 In this embodiment, a drain outlet 23 is provided on the upper surface of the base plate 1 at the side of the right sliding groove 21. A collection box 24 is provided on the bottom surface of the base plate 1 corresponding to the drain outlet 23. By setting the drain outlet 23 and the collection box 24, the filtered washing liquid will drip through the drain outlet 23 and be collected by the collection box 24 below, which is convenient for the staff to handle uniformly. The bottom surface corners of the collection box 24 are provided with casters 25. The casters 25 are fixed to the collection box 24 by external bolts. The casters 25 make it easy for the collection box 24 to move, making it easier for the staff to move the collection box 24. The bottom surface corners of the base plate 1 are provided with support legs 26. The bottom surface of the support legs 26 is provided with pads 27. By setting the support legs 26 and pads 27, the friction between the support legs and the ground can be increased, thereby improving the overall stability of the device.

[0026] During operation, the drive motor 16 drives the active gear 17 to rotate. The active gear 17 rotates synchronously with the driven gear 19, which in turn rotates the stirring rod 18, thereby improving the washing efficiency. The sliders 20 and 20- ...

[0027] Through the above steps, by setting the servo motor 9, its output end will drive the drive gear 10 to rotate during operation. When the drive gear 10 rotates, it can drive the auxiliary gear 8 meshing with it to rotate synchronously. When the auxiliary gear 8 rotates, it can drive the air guide tube 11 to rotate, start the air pump 14, and the air pump 14 can send high-speed airflow through the hose 13 into the interior of the air guide tube 11 and blow it out from the port of the air guide tube 11, thereby blowing air onto the surface of the semi-permeable membrane 6, thereby blowing away the filtered material, which can prevent the semi-permeable membrane 6 from being permeated, and at the same time prevent the material filtered by the semi-permeable membrane 6 from accumulating and accumulating, which would lead to a decrease in filtration capacity. This solves the problem that in the existing devices for the separation of methionine from complex amino acids, when using the device, a lever is usually used to move the material on the surface of the semi-permeable membrane 6 to achieve the anti-clogging effect. However, the semi-permeable membrane 6 itself is relatively fragile, and the lever is easy to damage the semi-permeable membrane 6 when it is moved.

Claims

1. An apparatus for separating methionine from a complex amino acid, comprising a base plate (1); characterized in that: It also includes a base (7), an auxiliary gear (8), a servo motor (9), a drive gear (10), an air duct (11), a connector (12), a hose (13), and an air pump (14). A water washing tank (2) is provided on the left side of the upper surface of the base plate (1), and a liquid outlet pipe (3) is provided on the bottom surface of the water washing tank (2). A guide plate (4) is provided on the right side of the water washing tank (2) on the upper surface of the base plate (1). A guide groove (5) is provided on the upper surface of the guide plate (4), and a semi-permeable membrane (6) is provided on the right side of the guide groove (5). A base (7) is provided on the right side of the upper surface of the guide plate (4). 7) The upper surface of the base plate (1) is rotatably connected to an auxiliary gear (8). The upper surface of the base plate (1) is located on the right side of the guide plate (4) and a servo motor (9) is provided. The output end of the servo motor (9) is provided with a drive gear (10). The drive gear (10) meshes with the auxiliary gear (8). The middle position of the upper surface of the auxiliary gear (8) is provided with an air guide pipe (11). The upper surface of the air guide pipe (11) is provided with a connector (12). The connector (12) is connected to one end of a hose (13). The other end of the hose (13) is connected to an air pump (14). The bottom surface of the air pump (14) is connected to the upper surface of the base plate (1).

2. The apparatus for separating methionine from complex amino acids according to claim 1, characterized in that: A mounting bracket (15) is provided on the right side of the upper surface of the washing tank (2). A drive motor (16) is provided on the bottom surface of the mounting bracket (15). A drive gear (17) is provided at the output end of the drive motor (16). A stirring rod (18) is rotatably connected through the middle of the top surface of the washing tank (2). A driven gear (19) is provided on the top surface of the stirring rod (18). The drive gear (17) meshes with the driven gear (19).

3. The apparatus for separating methionine from complex amino acids according to claim 1, characterized in that: The bottom surface of the guide plate (4) is provided with two symmetrical sliders (20), and the upper surface of the base plate (1) is provided with a groove (21) corresponding to the position of the slider (20). The slider (20) and the groove (21) are slidably connected.

4. The apparatus for separating methionine from complex amino acids according to claim 1, characterized in that: A tie rod (22) is provided on the front surface of the guide plate (4), and the tie rod (22) is fixed to the guide plate (4) by welding.

5. The apparatus for separating methionine from complex amino acids according to claim 3, characterized in that: A drain outlet (23) is provided on the upper surface of the base plate (1) at the side of the right side slide (21), and a collection box (24) is provided on the bottom surface of the base plate (1) corresponding to the drain outlet (23).

6. The apparatus for separating methionine from complex amino acids according to claim 5, characterized in that: The bottom surface of the collection box (24) is equipped with casters (25) at the corners, and the casters (25) are fixed to the collection box (24) by external bolts.

7. The apparatus for separating methionine from complex amino acids according to claim 1, characterized in that: Support legs (26) are provided at the corners of the bottom surface of the base plate (1), and gaskets (27) are provided on the bottom surface of the support legs (26).