High-F-value corn oligopeptide separation equipment

By using a combination of filter mesh and partition plate in the high F value corn oligopeptide separation equipment, the problem of impurity remixing caused by the equipment's lack of discharge function is solved, and the effective purification of enzymatic solution and the improvement of finished product quality is achieved.

CN222901383UActive Publication Date: 2025-05-27ZHONGCI HEALTH PROD TECH DEV CO LTD
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Patent Information

Application Number
CN202421783869.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-05-27
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

The existing high-F value corn oligopeptide separation equipment lacks the function of discharge, which causes the enzymatic decomposition liquid to easily mix with the enzymatic decomposition liquid again after it is separated from the impurities, affecting the quality of the finished product.

Method used

A high-F value corn oligopeptide separation device is designed, using a combination of a filter and a partition plate. After centrifugation, impurities remain on the filter network. The partition plate is separated and opened after the filter network, so that the separated enzymatic liquid falls into the collection box, and the partition plate is driven by a micro motor to rotate to achieve effective separation of impurities and collection of enzymatic liquid.

Benefits of technology

It effectively prevents the remix of the enzymatic solution and impurities, ensures the purification of the enzymatic solution and the improvement of the finished product quality, and realizes the equipment's discharge function.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of high-F-value oligopeptide production equipment, in particular to high-F-value corn oligopeptide separation equipment. According to the technical scheme, the high-F-value corn oligopeptide separation equipment comprises a workbench, a supporting frame is welded to the middle of the top of the workbench, a connecting rotating shaft is arranged in the middle of the top of the supporting frame, the top end of the connecting rotating shaft is sleeved with a connecting ring, connecting rods are welded to the periphery of the connecting ring, and two arc-shaped clamping plates are symmetrically welded to one end of each connecting rod; a conical separation barrel is arranged between the two arc-shaped clamping plates, a connecting pipe is welded to the bottom of the conical separation barrel, a filter screen is arranged at the bottom of the conical separation barrel corresponding to the connecting pipe, and a partition plate is arranged in the connecting pipe. According to the utility model, the filter screen is arranged, so that impurities are remained on the filter screen after the enzymolysis feed liquid is centrifuged, and the partition plate is opened after the impurities are separated by the filter screen, so that the separated enzymolysis feed liquid falls into the collecting box, and the impurities are prevented from being mixed with the enzymolysis feed liquid again after the enzymolysis feed liquid is separated from the impurities.
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Description

Technical Field

[0001] The utility model relates to the technical field of high F value oligopeptide production equipment, in particular to high F value corn oligopeptide separation equipment. Background Art

[0002] High F value oligopeptides refer to a class of oligopeptides composed of 3 to 7 amino acid residues, in which the content of branched-chain amino acids is higher than that of aromatic amino acids. The general process flow of production and preparation is: animal and plant protein to pretreatment to enzymatic hydrolysis to enzyme inactivation to debittering to AAA removal to desalting to separation and purification to concentration to drying to finished product. It can be extracted from animals and plants such as soy protein, fish protein, casein, corn protein, sunflower protein, etc.

[0003] Common high F value corn oligopeptide separation equipment only includes separation function, which can separate the enzymatic hydrolysis liquid, but lacks discharge function. It cannot guarantee that the impurities will not be re-mixed with the enzymatic hydrolysis liquid after the enzymatic hydrolysis liquid is separated from the impurities. It is easy for the impurities to settle at the bottom of the enzymatic hydrolysis liquid after the enzymatic hydrolysis liquid is separated. When the personnel pour out the enzymatic hydrolysis liquid, the impurities will be re-mixed with the enzymatic hydrolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0004] Therefore, the problem that the above-mentioned high F value corn oligopeptide separation equipment lacks a discharge function and cannot ensure that the impurities will not be re-mixed with the enzymatic hydrolysis liquid after being separated from the impurities needs to be solved urgently to improve the use scenarios of the high F value corn oligopeptide separation equipment. Utility Model Content

[0005] In order to overcome the common high F value corn oligopeptide separation equipment, the discharge function is lacking, and it cannot guarantee that the impurities will not be re-mixed with the enzymatic hydrolysis liquid after the enzymatic hydrolysis liquid is separated from the impurities. It is easy for the impurities to settle at the bottom of the enzymatic hydrolysis liquid after the enzymatic hydrolysis liquid is separated. When the personnel pour out the enzymatic hydrolysis liquid, the impurities will be re-mixed with the enzymatic hydrolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0006] The technical solution of the utility model is: a high F value corn oligopeptide separation equipment, including a workbench, four supporting feet are symmetrically welded at the four corners of the bottom of the workbench, a supporting frame is welded in the middle of the top of the workbench, a connecting shaft is arranged in the middle of the top of the supporting frame, four snap grooves are arranged at equal intervals on the top of the connecting shaft, a connecting ring is sleeved on the top of the connecting shaft, a connecting rod is welded around the connecting ring, two arc-shaped splints are symmetrically welded at one end of the connecting rod, a conical separation cylinder is arranged in the middle of the two arc-shaped splints, a connecting pipe is welded at the bottom of the conical separation cylinder, a filter screen is arranged at the position of the bottom of the conical separation cylinder corresponding to the connecting pipe, and a partition plate is arranged inside the connecting pipe.

[0007] Preferably, a filter is provided so that impurities in the enzymolysis liquid remain on the filter after centrifugation, and the partition plate is opened after the filter separates the impurities, so that the separated enzymolysis liquid falls into the collecting box, ensuring that the impurities will not be re-mixed with the enzymolysis liquid after separation from the impurities, so as to solve the problem that the common high F value corn oligopeptide separation equipment only includes a separation function and can separate the enzymolysis liquid, but lacks a discharge function, and cannot ensure that the impurities will not be re-mixed with the enzymolysis liquid after separation from the impurities. It is easy for the impurities to settle at the bottom of the enzymolysis liquid after the separation operation of the enzymolysis liquid. When the personnel pour out the enzymolysis liquid, the impurities will be re-mixed with the enzymolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0008] Preferably, a driving motor is arranged inside the support frame at a position corresponding to the connecting shaft, and the bottom end of the connecting shaft passes through the support frame and is connected to the output end of the driving motor. When the driving motor is started, the driving motor drives the connecting shaft to rotate.

[0009] Preferably, four snap blocks are arranged at equal intervals on the inner side of the connecting ring corresponding to the snap groove, and the snap blocks are snapped into the inside of the snap groove. The rotating connecting shaft drives the connecting rod to rotate horizontally with the connecting shaft as the center axis through the connecting ring.

[0010] Preferably, a limit cover is provided at the top end of the connecting shaft corresponding to the position of the connecting ring, and the bottom end of the limit cover is screwed into the interior of the connecting shaft and fixed therein. The position of the connecting ring is limited by the limit cover to prevent the connecting ring from detaching from the connecting shaft due to inertia during rotation.

[0011] Preferably, the two arc-shaped clamps are fixed by fixing bolts, and limiting rings are welded around the conical separation cylinder at the positions of the arc-shaped clamps. The conical separation cylinder is placed in the middle of the two arc-shaped clamps, and then the two arc-shaped clamps are connected by fixing bolts. The fixing bolts can be adjusted so that the two arc-shaped clamps can clamp the conical separation cylinder. When the connecting rod rotates, it drives the conical separation cylinder to rotate, thereby centrifuging the enzymatic hydrolysis liquid in the conical separation cylinder.

[0012] Preferably, a sealing gasket is provided around the partition plate, and a micro motor is provided on the side of the connecting tube at a position corresponding to the partition plate. The output end of the micro motor passes through the connecting tube and is connected to the partition plate. After the enzymatic hydrolysis liquid in the conical separation cylinder is centrifuged, the impurities are precipitated on the top of the filter screen. Then the micro motor is started, and the micro motor drives the partition plate to rotate, so that the two side edges of the partition plate are away from the inner wall of the connecting tube. At this time, the separated enzymatic hydrolysis liquid falls into the inside of the collection box due to gravity, and the impurities remain on the top of the filter screen.

[0013] Preferably, a collecting box is welded to the bottom end of the connecting tube, and a drain port is provided at the bottom of the collecting box. When personnel need to use the enzymolysis liquid after separation, they only need to open the drain port to discharge it. The impurities on the top of the filter screen can be discharged from the conical separation cylinder by simply turning the conical separation cylinder upside down, thereby realizing the discharge function and preventing the impurities from settling at the bottom of the enzymolysis liquid after the enzymolysis liquid is separated. When the personnel pour out the enzymolysis liquid, the impurities will be re-mixed with the enzymolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0014] Beneficial effects of the utility model:

[0015] 1. By setting a filter screen, impurities in the enzymolysis liquid remain on the filter screen after centrifugation, and the partition plate is opened after the filter screen separates the impurities, so that the separated enzymolysis liquid falls into the collection box, ensuring that the impurities will not be re-mixed with the enzymolysis liquid after the enzymolysis liquid is separated from the impurities, so as to solve the problem that the common high F value corn oligopeptide separation equipment only includes a separation function, which can separate the enzymolysis liquid, but lacks a discharge function, and cannot ensure that the impurities will not be re-mixed with the enzymolysis liquid after the enzymolysis liquid is separated from the impurities. It is easy for the impurities to settle at the bottom of the enzymolysis liquid after the enzymolysis liquid is separated. When the personnel pour out the enzymolysis liquid, the impurities will re-mix with the enzymolysis liquid along the flow direction of the liquid, affecting the quality of the finished product;

[0016] 2. After the enzymatic hydrolysis liquid in the conical separation cylinder is centrifuged, the impurities are deposited on the top of the filter screen, and then the micro motor is started, which drives the partition plate to rotate, so that the two sides of the partition plate are away from the inner wall of the connecting pipe. At this time, the separated enzymatic hydrolysis liquid falls into the inside of the collection box due to gravity, and the impurities remain on the top of the filter screen. When the personnel need to use the separated enzymatic hydrolysis liquid, they only need to open the drain port to discharge it. The impurities on the top of the filter screen can be discharged from the conical separation cylinder by simply turning the conical separation cylinder upside down, thus realizing the discharge function. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 What is shown is a three-dimensional structural schematic diagram of a high F value corn oligopeptide separation device of the utility model;

[0018] Figure 2 What is shown is a three-dimensional structural schematic diagram of a driving component of a high F value corn oligopeptide separation device of the utility model;

[0019] Figure 3 What is shown is a schematic diagram of the explosion structure of a connection assembly of a high F value corn oligopeptide separation device of the utility model;

[0020] Figure 4 What is shown is a schematic diagram of the three-dimensional cross-sectional structure of a conical separation cylinder of a high F value corn oligopeptide separation device of the utility model.

[0021] In the figure: 1. workbench; 2. supporting feet; 3. supporting frame; 4. driving motor; 5. connecting shaft; 6. snap groove; 7. connecting rod; 8. connecting ring; 9. snap block; 10. limiting cover; 11. arc-shaped clamping plate; 12. fixing bolt; 13. conical separation cylinder; 14. limiting ring; 15. filter screen; 16. connecting pipe; 17. partition plate; 18. sealing gasket; 19. micro motor; 20. collecting box; 21. drain port. DETAILED DESCRIPTION

[0022] The utility model is further described below in conjunction with the accompanying drawings and embodiments.

[0023] See also Figure 1-4 The utility model provides an embodiment: a high F value corn oligopeptide separation device, comprising a workbench 1, four supporting feet 2 are symmetrically welded at the four corners of the bottom of the workbench 1, a supporting frame 3 is welded in the middle of the top of the workbench 1, a connecting shaft 5 is arranged in the middle of the top of the supporting frame 3, four snap grooves 6 are arranged at equal intervals on the top of the connecting shaft 5, a connecting ring 8 is sleeved on the top of the connecting shaft 5, a connecting rod 7 is welded around the connecting ring 8, two arc-shaped splints 11 are symmetrically welded at one end of the connecting rod 7, a conical separation cylinder 13 is arranged in the middle of the two arc-shaped splints 11, a connecting pipe 16 is welded at the bottom of the conical separation cylinder 13, a filter screen 15 is arranged at the position of the bottom of the conical separation cylinder 13 corresponding to the connecting pipe 16, and a partition plate 17 is arranged inside the connecting pipe 16.

[0024] See also Figure 1-4 In this embodiment, a driving motor 4 is provided at a position corresponding to the connecting shaft 5 inside the support frame 3, and the bottom end of the connecting shaft 5 passes through the support frame 3 and is connected to the output end of the driving motor 4. After the centrifugal separation of the enzymatic hydrolysis liquid in the conical separation cylinder 13 is completed, the impurities are deposited on the top of the filter screen 15, and then the micro motor 19 is started. The micro motor 19 drives the partition plate 17 to rotate, so that the two side edges of the partition plate 17 are away from the inner wall of the connecting pipe 16. At this time, the separated enzymatic hydrolysis liquid falls to the inside of the collecting box 20 due to gravity, and the impurities remain on the top of the filter screen 15. When the personnel need to use the separated enzymatic hydrolysis liquid, they only need to open the drain port 21 to discharge it. The impurities on the top of the filter screen 15 can be discharged from the conical separation cylinder 13 by simply inverting the conical separation cylinder 13 to complete the discharge work.

[0025] See also Figure 1-4In this embodiment, a driving motor 4 is arranged at a position corresponding to the connecting shaft 5 inside the support frame 3, and the bottom end of the connecting shaft 5 passes through the support frame 3 and is connected to the output end of the driving motor 4. Four snap blocks 9 are arranged at equal intervals on the inner side of the connecting ring 8 corresponding to the position of the snap groove 6. The snap blocks 9 are snapped into the inside of the snap groove 6. A limiting cover 10 is arranged at a position corresponding to the connecting ring 8 at the top of the connecting shaft 5. The bottom end of the limiting cover 10 is screwed into the inside of the connecting shaft 5 and fixed. The two arc-shaped clamping plates 11 are fixed by fixing bolts 12. A limiting ring 14 is welded to the position of the arc-shaped clamping plates 11 around the conical separation cylinder 13. A sealing gasket 18 is arranged around the partition plate 17. A micro motor 19 is arranged on the side of the connecting pipe 16 corresponding to the position of the partition plate 17. The output end of the micro motor 19 passes through the connecting pipe 16 and is connected to the partition plate 17. A collecting box 20 is welded to the bottom end of the connecting pipe 16. The collecting box A drain port 21 is provided at the bottom of 20. After the enzymolysis liquid in the conical separation cylinder 13 is centrifuged, the impurities are deposited on the top of the filter screen 15, and then the micro motor 19 is started. The micro motor 19 drives the partition plate 17 to rotate, so that the two side edges of the partition plate 17 are away from the inner wall of the connecting pipe 16. At this time, the separated enzymolysis liquid falls to the inside of the collecting box 20 due to gravity, and the impurities remain on the top of the filter screen 15. When personnel need to use the separated enzymolysis liquid, they only need to open the drain port 21 to discharge it. The impurities on the top of the filter screen 15 can be discharged from the conical separation cylinder 13 by simply inverting the conical separation cylinder 13, thereby realizing the discharge function and preventing the impurities from being deposited at the bottom of the enzymolysis liquid after the enzymolysis liquid is separated. When the personnel pour out the enzymolysis liquid, the impurities will be re-mixed with the enzymolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0026] When working, the personnel pour the enzymatic hydrolyzed liquid into the interior of the conical separation cylinder 13, and then place the conical separation cylinder 13 in the middle of the two arc-shaped clamping plates 11, and then connect the two arc-shaped clamping plates 11 through the fixing bolts 12. The fixing bolts 12 can be adjusted so that the two arc-shaped clamping plates 11 can clamp the conical separation cylinder 13, and start the driving motor 4. The driving motor 4 drives the connecting shaft 5 to rotate. The rotating connecting shaft 5 drives the connecting rod 7 to rotate horizontally with the connecting shaft 5 as the central axis through the connecting ring 8. When the connecting rod 7 rotates, it drives the conical separation cylinder 13 to rotate, so that the enzymatic hydrolyzed liquid in the conical separation cylinder 13 is centrifuged. After the enzymolysis liquid in the conical separation cylinder 13 is centrifuged, the impurities are deposited on the top of the filter screen 15, and then the micro motor 19 is started. The micro motor 19 drives the partition plate 17 to rotate, so that the two side edges of the partition plate 17 are away from the inner wall of the connecting tube 16. At this time, the separated enzymolysis liquid falls to the inside of the collection box 20 due to gravity, and the impurities remain on the top of the filter screen 15. When the personnel need to use the separated enzymolysis liquid, they only need to open the drain port 21 to discharge it. The impurities on the top of the filter screen 15 can be discharged from the conical separation cylinder 13 by simply turning the conical separation cylinder 13 upside down, thereby realizing the discharge function.

[0027] Through the above steps, the filter screen 15 is set so that the impurities of the enzymolysis liquid remain on the filter screen 15 after the centrifugal operation, and the partition plate 17 is opened after the filter screen 15 separates the impurities, so that the separated enzymolysis liquid falls into the collecting box 20, ensuring that the impurities will not be re-mixed with the enzymolysis liquid after the enzymolysis liquid is separated from the impurities, so as to solve the problem that the common high F value corn oligopeptide separation equipment only includes a separation function and can separate the enzymolysis liquid, but lacks a discharge function, and cannot ensure that the impurities will not be re-mixed with the enzymolysis liquid after the enzymolysis liquid is separated from the impurities. It is easy for the impurities to settle at the bottom of the enzymolysis liquid after the enzymolysis liquid is separated. When the personnel pour out the enzymolysis liquid, the impurities will be re-mixed with the enzymolysis liquid along the flow direction of the liquid, affecting the quality of the finished product.

[0028] The embodiments of the present invention are described in detail above in conjunction with the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the purpose of the present invention.

Claims

1. A high F value corn oligopeptide separation device, comprising a workbench (1), characterized in that: Four supporting legs (2) are symmetrically welded at the four corners of the bottom of the workbench (1); a supporting frame (3) is welded in the middle of the top of the workbench (1); a connecting shaft (5) is arranged in the middle of the top of the supporting frame (3); four buckle grooves (6) are arranged at equal intervals on the top of the connecting shaft (5); a connecting ring (8) is sleeved on the top of the connecting shaft (5); a connecting rod (7) is welded around the connecting ring (8); two arc-shaped clamping plates (11) are symmetrically welded at one end of the connecting rod (7); a conical separation cylinder (13) is arranged in the middle of the two arc-shaped clamping plates (11); a connecting pipe (16) is welded at the bottom of the conical separation cylinder (13); a filter screen (15) is arranged at the position of the bottom of the conical separation cylinder (13) corresponding to the connecting pipe (16); and a partition plate (17) is arranged inside the connecting pipe (16).

2. A high F value corn oligopeptide separation device according to claim 1, characterized in that: A driving motor (4) is arranged inside the supporting frame (3) at a position corresponding to the connecting shaft (5), and the bottom end of the connecting shaft (5) passes through the supporting frame (3) and is connected to the output end of the driving motor (4).

3. A high F value corn oligopeptide separation device according to claim 1, characterized in that: Four snap-in blocks (9) are arranged at equal intervals on the inner side of the connection ring (8) at positions corresponding to the snap-in grooves (6), and the snap-in blocks (9) are snapped into the interior of the snap-in grooves (6).

4. A high F value corn oligopeptide separation device according to claim 1, characterized in that: A limit cover (10) is arranged at the top end of the connecting shaft (5) corresponding to the position of the connecting ring (8), and the bottom end of the limit cover (10) is screwed into the interior of the connecting shaft (5) for fixation.

5. A high F value corn oligopeptide separation device according to claim 1, characterized in that: The two arc-shaped clamping plates (11) are fixed by fixing bolts (12), and a limiting ring (14) is welded around the conical separation cylinder (13) at positions corresponding to the arc-shaped clamping plates (11).

6. A high F value corn oligopeptide separation device according to claim 1, characterized in that: A sealing pad (18) is arranged around the partition plate (17), a micro motor (19) is arranged on the side of the connecting pipe (16) at a position corresponding to the partition plate (17), and an output end of the micro motor (19) passes through the connecting pipe (16) and is connected to the partition plate (17).

7. A high F value corn oligopeptide separation device according to claim 1, characterized in that: A collecting box (20) is welded to the bottom end of the connecting pipe (16), and a liquid discharge port (21) is provided at the bottom of the collecting box (20).