A high-yield production and processing equipment for collagen tripeptide

By designing a high-yield production and processing equipment for collagen tripeptides including enzymatic lysis tanks, filter cans and temporary storage tanks, and using a complex stirring and filtration structure, the problem of collagen and impurities not degraded after enzymatic lysis is solved, the filtration speed and efficiency of collagen is improved, and the high-yield production of collagen tripeptides is achieved.

CN119193314BActive Publication Date: 2025-05-06SHANGHAI QINGYAN BOSHI BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411732649.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-05-06
Estimated Expiration
2044-11-29

AI Technical Summary

Technical Problem

After the existing collagen tripeptide production and processing equipment, there are still undegraded collagen and impurities in the enzymatic lysis tank, resulting in waste of resources. The existing stirring device has a single function, affecting the filtration speed and efficiency of collagen.

Method used

A high-yield production and processing equipment for collagen tripeptides including enzymatic lysis tanks, filter cans and temporary storage tanks are designed. The flow tube is used to connect the enzymatic lysis tanks and filter cans, and a rotatable filter cartridge and agitating shaft are provided in the filter cans. The surface of the agitating shaft is equipped with a slide chute and a slide plate. The rotating blocks, the first rotating shaft and the slide rail device are used to make the agitating leaves swing back and forth when rotating, so as to achieve effective flat and rolling movement of the unenzymatic collagen and other impurities.

Benefits of technology

Through the design of this equipment, the filtration speed and efficiency of collagen is improved, resource waste is reduced, and the high yield production of collagen tripeptide is achieved.

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Abstract

The present invention discloses a high-yield production and processing equipment for collagen tripeptide, belonging to the technical field of collagen tripeptide production and processing. A high-yield production and processing equipment for collagen tripeptide, comprising an enzymolysis tank, a filtration tank and a temporary storage tank, and a flow guide tube is fixedly installed between the enzymolysis tank and the filtration tank and between the filtration tank and the temporary storage tank, a treatment tank is arranged on one side of the filtration tank, and a rotatable filter cylinder is arranged inside the treatment tank. The high-yield production and processing equipment for collagen tripeptide, through the stirring blades rotating with the stirring shaft, and the stirring blades swinging back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, can flatten the accumulated incompletely enzymolyzed collagen and other impurities in the filter cylinder. Compared with the existing stirring, the device improves the filtration speed of collagen, thereby improving the filtration efficiency of collagen, reusing the incompletely enzymolyzed collagen, and thereby increasing the output of collagen tripeptide.
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Description

Technical Field

[0001] The invention relates to the technical field of collagen tripeptide production and processing, and more specifically to high-yield production and processing equipment for collagen tripeptide. Background Art

[0002] The production and processing flow of collagen tripeptide mainly includes the following steps: raw material preparation, pretreatment, enzymatic hydrolysis, separation and purification, concentration and drying, quality inspection and control, packaging and storage, etc. Pretreatment and enzymatic hydrolysis are important steps. The pretreated collagen is decomposed into smaller polypeptide fragments under the action of specific enzymes. This step is the key to the production of collagen tripeptide. It is necessary to strictly control the type, dosage and reaction conditions of the enzyme, and then separate the collagen tripeptide from the enzymatic hydrolyzate through centrifugation, filtration, ion exchange chromatography, gel permeation chromatography and other methods, and remove the undegraded collagen and other impurities.

[0003] Chinese patent application number CN202320392239.2 discloses an apparatus for producing high-content collagen tripeptide, comprising a temporary storage tank, a first filtering device, a second filtering device and an enzymatic hydrolysis tank; the enzymatic hydrolysis tank has a first cavity and a second cavity that are independent of each other; the first cavity is connected to the temporary storage tank through the collection channel of the first filtering device to form a primary filtration channel; the waste liquid channel of the first filtering device is connected to the second filtering device through the second cavity to form a secondary filtration channel, and the second filtration channel is connected to the temporary storage tank.

[0004] In the above technical scheme, the generation of bitter substances can be reduced and the yield of collagen tripeptide can be increased. However, after the enzymatic hydrolysis tank separates the collagen tripeptide, there are still undegraded collagen and other impurities in the enzymatic hydrolysis tank. After these incompletely degraded collagen and other impurities are discharged, it will lead to the loss of resources and the output of collagen tripeptide cannot be further increased. When the incompletely degraded collagen inside the impurities is separated again, a filter cartridge and a stirring device are usually used to cooperate with each other to separate the incompletely degraded collagen. However, the existing stirring device has a single function and is relatively simple. When there are more incompletely degraded collagen and other impurities in the filter cartridge, the incompletely degraded collagen is easily filtered out at the place in contact with the inner wall of the filter barrel, while the collagen that does not contact the inner wall of the filter cartridge is not easy to filter, which affects the filtration speed of the collagen and further affects the filtration efficiency of the collagen. Summary of the invention

[0005] The purpose of the present invention is to provide a high-yield production and processing equipment for collagen tripeptide to solve the problems raised in the above background technology:

[0006] In order to achieve the above object, the present invention provides the following technical solutions:

[0007] A high-yield production and processing equipment for collagen tripeptide, comprising an enzymolysis tank, a filtering tank and a temporary storage tank, and a guide tube is fixedly installed between the enzymolysis tank and the filtering tank and between the filtering tank and the temporary storage tank, a treatment tank is arranged on one side of the filtering tank, a rotatable filter cartridge is arranged inside the treatment tank, a rotatable stirring shaft is arranged inside the filter cartridge, a plurality of slide grooves are correspondingly provided on the surface of the stirring shaft, a sliding plate matching it is slidably installed inside any of the slide grooves, a plurality of rotating grooves are provided on the surface of any of the sliding plates, a rotating block is rotatably connected inside the rotating groove, a fixing seat with the same number of rotating grooves is fixedly installed on the surface of the stirring shaft, and the rotating groove corresponds to the position of the fixing seat, a slide rail device is provided on the inner side surface of the fixing seat, both side surfaces of the rotating block are rotatably connected with a first rotating shaft, one end of the first rotating shaft is rotatably connected to the slide rail device, and a stirring blade is fixedly installed on one end of the rotating block.

[0008] By adopting the above technical scheme, the stirring blade follows the rotation of the stirring shaft, and the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the accumulated incompletely hydrolyzed collagen and other impurities can be spread out in the filter barrel to prevent the remaining incompletely hydrolyzed collagen and other impurities in the filter barrel from accumulating. During the filtration process, the stirring blade follows the stirring shaft, and the filter barrel rotates, which not only achieves the stirring effect, but also the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the incompletely hydrolyzed collagen and other impurities roll back and forth in the filter barrel, and the collagen can quickly pass through the filter membrane into the treatment tank. Compared with the existing stirring, the device improves the filtration speed of collagen, thereby improving the filtration efficiency of collagen, reusing the incompletely hydrolyzed collagen, and thereby increasing the output of collagen tripeptide.

[0009] Preferably, the slide rail device includes a sliding groove and a sliding block matching therewith, the sliding block is slidably connected in the sliding groove, one end of the first rotating shaft is rotatably connected to the surface of the sliding block, a spring is elastically connected between the sliding groove and the slide plate, one end of the spring is fixedly connected to the inner wall of the sliding groove, and the other end of the spring is fixedly connected to the end surface of the slide plate.

[0010] By adopting the above technical solution, the action of the spring ensures the stable movement of the slide plate, thereby achieving stable adjustment of the stirring blade.

[0011] Preferably, a fixed disk is fixedly connected to the surface of one end of the filter cartridge, a second rotating shaft is rotatably connected to the surface of the fixed disk, a first motor is fixedly installed on the surface of the processing tank, one end of the second rotating shaft is fixedly connected to the stirring shaft, and the other end of the second rotating shaft is fixedly connected to the output end of the first motor.

[0012] By adopting the above technical solution, the first motor rotates to rotate the stirring shaft and the stirring blades to achieve a basic stirring function.

[0013] Preferably, two electric telescopic rods are fixedly mounted on the inner side surface of the fixed plate, and a movable plate is rotatably connected to the surface of the second rotating shaft, and the surface of the movable plate is fixedly connected to the telescopic ends of the two electric telescopic rods.

[0014] By adopting the above technical solution, the extension and retraction of the electric telescopic rod causes the movable disk to move and squeeze or pull the ball head, so that the guide rod carries the slide plate to reciprocate in the slide groove. At this time, the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the accumulated incompletely enzymatically hydrolyzed collagen and other impurities can be spread out in the filter barrel. During the filtration process, the electric telescopic rod is extended and retracted, and the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the collagen can quickly pass through the filter membrane into the treatment tank.

[0015] Preferably, the movable disk is internally movably connected with a plurality of ball heads matching therewith, one end of any one of the slide plates is fixedly connected with a guide rod, and one end of the guide rod extends to the inside of the movable disk and is fixedly connected with the ball head.

[0016] Preferably, a gear ring is fixedly mounted on the surface of one end of the filter cartridge, a third rotating shaft is rotatably connected to the surface of the treatment tank, a gear meshing with the gear ring is fixedly mounted on one end of the third rotating shaft, a clutch motor is fixedly mounted on the surface of one end of the treatment tank, an output end of the clutch motor is fixedly connected to the third rotating shaft, and a connecting conveying pipe is fixedly mounted between the treatment tank and the enzymatic hydrolysis tank.

[0017] By adopting the above technical solution, the filtered and separated collagen is introduced into the enzymatic hydrolysis tank through a connecting conveying tube, and enzymatic hydrolysis is performed again, and the incompletely enzymatically hydrolyzed collagen is reused, thereby increasing the output of collagen tripeptide.

[0018] Preferably, a filling pipe is fixedly installed between the filter tank and the treatment tank, an extraction pump is fixedly installed on the surface of the filling pipe, one end of the filling pipe extends to the inside of the treatment tank, a telescopic filling pipe is fixedly installed on the surface of one end of the filling pipe, two fixing rings are fixedly installed on the middle surface of the filter cartridge, a sealing arc plate corresponding to the position of the telescopic filling pipe is provided on the surface of the filter cartridge, weight blocks are fixedly installed on the surfaces of the two fixing rings, and arc tooth plates in contact with the inner wall of the treatment tank are fixedly installed on the bottom surfaces of the two weight blocks.

[0019] By adopting the above technical solution, the clutch motor stops working, and the gear is separated from the gear ring. By adding two weight blocks on the surface of the filter cartridge, the filter cartridge returns to its initial feeding state and stops under the action of the two weight blocks. At this time, the telescopic injection tube corresponds to the position of the sealing arc plate, the telescopic injection tube extends out to squeeze the sealing arc plate, and the telescopic injection tube extends into the filter cartridge. No subsequent intervention and adjustment by personnel is required, and collagen and other impurities can be quickly added to the filter cartridge, thus avoiding cumbersome steps and further improving the filtration rate of collagen and other impurities.

[0020] Preferably, a filling groove is provided on the surface of the filter cartridge, the filling groove matches the sealing arc plate, an elastic reset shaft is provided on the end surface of the sealing arc plate, and the sealing arc plate is rotatably connected to the filling groove via the elastic reset shaft.

[0021] By adopting the above technical solution, the sealing arc plate is used for sealing.

[0022] Preferably, a fixing frame for fixing the filling pipe is fixedly installed on the surface of the processing tank.

[0023] Preferably, a turntable is threadedly connected to one end surface of the treatment tank, and an openable and closable discharge baffle is provided on one end surface of the filter cartridge.

[0024] By adopting the above technical solution, the turntable is first removed from the end of the processing tank, and then the discharge baffle is opened. At this time, the extension of the electric telescopic rod drives the movable disk to move the extruded ball head, so that the guide rod drives the slide plate to move in the slide groove. At this time, the stirring blade swings at an angle under the action of the rotating block, the first rotating shaft and the slide rail device. The rotation of the first motor drives the second rotating shaft and the stirring shaft to rotate, so that the stirring blade follows the stirring shaft to rotate. After the stirring blade position angle swings, the impurities inside the filter cartridge can be discharged from the discharge baffle, thereby realizing the removal of the remaining impurities and waste inside the filter cartridge.

[0025] Compared with the prior art, the present invention has the following beneficial effects:

[0026] 1) When the collagen tripeptide high-yield production and processing equipment is in use, the stirring blade follows the stirring shaft to rotate, and the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the accumulated incompletely hydrolyzed collagen and other impurities can be spread out in the filter cartridge to prevent the incompletely hydrolyzed collagen and other impurities in the filter cartridge from accumulating. During the filtration process, the stirring blade follows the stirring shaft, and the filter cartridge rotates, which can not only achieve the stirring effect, but also the stirring blade swings back and forth under the action of the rotating block, the first rotating shaft and the slide rail device, so that the incompletely hydrolyzed collagen and other impurities roll back and forth in the filter cartridge, and the collagen can quickly pass through the filter membrane into the treatment tank. Compared with the existing stirring, the device improves the filtration speed of collagen, thereby improving the filtration efficiency of collagen, reusing the incompletely hydrolyzed collagen, and thereby increasing the output of collagen tripeptide.

[0027] 2) When the high-yield production and processing equipment for collagen tripeptide is in use, the clutch motor stops working, and the gear and the gear ring are separated. By adding two weight blocks on the surface of the filter cartridge, the filter cartridge returns to the initial feeding state and stops under the action of the two weight blocks. At this time, the telescopic injection tube corresponds to the position of the sealing arc plate, and the telescopic injection tube extends out to squeeze the sealing arc plate, and the telescopic injection tube extends into the filter cartridge. No subsequent intervention and adjustment by personnel is required, and collagen and other impurities can be quickly added to the filter cartridge, avoiding cumbersome steps and further improving the filtration rate of collagen and other impurities.

[0028] 3) When the high-yield production and processing equipment for collagen tripeptide is in use, first remove the turntable from the end of the processing tank, and then open the discharge baffle. At this time, the extension of the electric telescopic rod drives the movable disk to move the extrusion ball head, so that the guide rod drives the slide plate to move in the slide groove. At this time, the stirring blade swings at an angle under the action of the rotating block, the first rotating shaft and the slide rail device. The rotation of the first motor drives the second rotating shaft and the stirring shaft to rotate, so that the stirring blade rotates with the stirring shaft. After the stirring blade position angle swings, the impurities inside the filter cartridge can be discharged from the discharge baffle, thereby realizing the treatment of the remaining impurities and waste inside the filter cartridge. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0030] Figure 2 It is a schematic diagram of the internal structure of the processing tank of the present invention;

[0031] Figure 3 It is a schematic diagram of the filter cartridge structure of the present invention;

[0032] Figure 4 This is a schematic diagram of the installation position structure of the filter cartridge and the stirring shaft of the present invention;

[0033] Figure 5 It is a schematic diagram of the position structure of the movable disk and the stirring shaft of the present invention;

[0034] Figure 6 It is a schematic diagram of the installation position structure of the guide rod and the slide plate of the present invention;

[0035] Figure 7 It is a schematic diagram of the structure of the stirring blade and the rotating block position of the present invention;

[0036] Figure 8 It is a schematic diagram of the position structure of the filter cartridge and the weight block of the present invention;

[0037] Fig. 9 It is a schematic diagram of the installation position structure of the ball head and the movable disk of the present invention;

[0038] Fig.10 This is a schematic diagram of the installation position of the connecting delivery pipe of the present invention;

[0039] Fig.11 It is a schematic diagram of the installation position of the first rotating shaft and the slide rail device of the present invention.

[0040] Explanation of the numbers in the figure: 1. Enzymolysis tank; 2. Filter tank; 3. Temporary storage tank; 4. Guide pipe; 5. Treatment tank; 6. Filter cartridge; 7. Stirring shaft; 8. Slide; 9. Slide plate; 10. Spring; 11. Rotating groove; 12. Rotating block; 13. Fixed seat; 14. First rotating shaft; 15. Stirring blade; 16. Slide rail device; 17. Guide rod; 18. Ball head; 19. Movable disk; 20. Fixed disk; 21. Second rotating shaft; 22. First motor; 23. Gear ring; 24. Gear; 25. Third rotating shaft; 26. Clutch motor; 27. Filling pipe; 28. Extraction pump; 29. ​​Telescopic filling pipe; 30. Fixed ring; 31. Sealing arc plate; 32. Weight block; 33. Arc tooth plate; 34. Fixed frame; 35. Electric telescopic rod; 36. Connecting conveying pipe; 37. Turntable; 38. Excretion baffle. DETAILED DESCRIPTION

[0041] Embodiment 1:

[0042] See also Figures 1 to 11, a high-yield production and processing equipment for collagen tripeptide, comprising an enzymolysis tank 1, a filtering tank 2 and a temporary storage tank 3, wherein the enzymolysis tank 1 is a conventional enzymolysis tank 1 in the prior art, the filtering tank 2 is a filtering tank 2 that can filter collagen tripeptide in the prior art, the temporary storage tank 3 is a conventional temporary storage tank 3 for storing collagen tripeptide in the prior art, and a flow guide pipe 4 is fixedly installed between the enzymolysis tank 1 and the filtering tank 2 and between the filtering tank 2 and the temporary storage tank 3, and the flow guide pipe 4 is used for diversion, a treatment tank 5 is arranged on one side of the filtering tank 2, and the treatment tank 5 is used for re-filtering the collagen protein that is not completely enzymolyzed to increase the output of the collagen tripeptide, and a rotatable The filter cartridge 6 is a conventional filter cartridge 6 in the prior art. A filter membrane for filtering incompletely enzymatically hydrolyzed collagen is laid on the circumference of the surface of the filter cartridge 6. A rotatable stirring shaft 7 is arranged inside the filter cartridge 6. A plurality of slide grooves 8 are correspondingly provided on the surface of the stirring shaft 7. A slide plate 9 matching the slide groove 8 is slidably installed inside any slide groove 8. A plurality of rotating grooves 11 are provided on the surface of any slide plate 9. A rotating block 12 is rotatably connected inside the rotating groove 11. The surface of the stirring shaft 7 is fixedly provided with the same number of fixing seats 13 as the rotating grooves 11. The positions of the rotating grooves 11 and the fixing seats 13 correspond to each other. The inner side of the fixing seat 13 is provided with a plurality of rotating grooves 11. A slide rail device 16 is provided, and both side surfaces of the rotating block 12 are rotatably connected to the first rotating shaft 14, one end of the first rotating shaft 14 is rotatably connected to the slide rail device 16, and a stirring blade 15 is fixedly installed at one end of the rotating block 12. The stirring blade 15 is in the shape of an arc-shaped curved plate, and a plurality of stirring blades 15 are staggered with each other. The stirring blade 15 rotates with the stirring shaft 7, and the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the accumulated incompletely enzymatically degraded collagen and other impurities can be flattened in the filter cartridge 6, thereby preventing the remaining incompletely enzymatically degraded collagen and other impurities in the filter cartridge 6 from being generated. During the filtration process, the stirring blade 15 follows the stirring shaft 7 to rotate the stirring blade 15, and the filter tube 6 rotates, which can not only achieve the stirring effect, but also the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the collagen that is not completely hydrolyzed and other impurities roll back and forth in the filter tube 6, and the collagen can quickly pass through the filter membrane into the processing tank 5. Compared with the existing stirring, the device improves the filtration speed of collagen, thereby improving the filtration efficiency of collagen, reusing the collagen that is not completely hydrolyzed, and thereby increasing the output of collagen tripeptide.

[0043] The slide rail device 16 includes a sliding groove and a sliding block matching it. The sliding block is slidably connected in the sliding groove. One end of the first rotating shaft 14 is rotatably connected to the surface of the sliding block. A spring 10 is elastically connected between the sliding groove 8 and the slide plate 9. One end of the spring 10 is fixedly connected to the inner wall of the sliding groove 8, and the other end of the spring 10 is fixedly connected to the end surface of the slide plate 9. The function of the spring 10 ensures the stable movement of the slide plate 9, thereby realizing stable adjustment of the stirring blade 15.

[0044] A fixed plate 20 is fixedly connected to the surface of one end of the filter cartridge 6, and a second rotating shaft 21 is rotatably connected to the surface of the fixed plate 20. A first motor 22 is fixedly installed on the surface of the processing tank 5, and one end of the second rotating shaft 21 is fixedly connected to the stirring shaft 7, and the other end of the second rotating shaft 21 is fixedly connected to the output end of the first motor 22. The first motor 22 is a conventional forward and reverse motor in the prior art. The rotation of the first motor 22 drives the stirring shaft 7 and the stirring blades 15 to rotate, thereby realizing a basic stirring function.

[0045] Two electric telescopic rods 35 are fixedly installed on the inner side surface of the fixed disk 20, and the surface of the second rotating shaft 21 is rotatably connected to the movable disk 19. The surface of the movable disk 19 is fixedly connected to the telescopic ends of the two electric telescopic rods 35. The electric telescopic rod 35 is a conventional electric control push rod in the prior art. The extension and retraction of the electric telescopic rod 35 drives the movable disk 19 to move and squeeze or pull the ball head 18, so that the guide rod 17 drives the slide plate 9 to reciprocate in the slide groove 8. At this time, the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the accumulated incompletely enzymatically hydrolyzed collagen and other impurities can be spread out in the filter cylinder 6. During the filtration process, the electric telescopic rod 35 is extended and retracted, and the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the collagen can quickly pass through the filter membrane into the treatment tank 5.

[0046] The movable disk 19 is internally movably connected with a plurality of ball heads 18 matching therewith, one end of any slide plate 9 is fixedly connected with a guide rod 17, one end of the guide rod 17 extends to the inside of the movable disk 19 and is fixedly connected with the ball head 18, and the ball head 18 will not detach when moving in the movable disk 19.

[0047] A gear ring 23 is fixedly installed on the surface of one end of the filter cartridge 6, and a third rotating shaft 25 is rotatably connected to the surface of the processing tank 5. A gear 24 meshing with the gear ring 23 is fixedly installed on one end of the third rotating shaft 25. A clutch motor 26 is fixedly installed on the surface of one end of the processing tank 5. The clutch motor 26 is a conventional clutch motor 26 in the prior art. The output end of the clutch motor 26 is fixedly connected to the third rotating shaft 25. A connecting conveying pipe 36 is fixedly installed between the processing tank 5 and the enzymolysis tank 1. The collagen after filtration and separation is introduced into the enzymolysis tank 1 through the connecting conveying pipe 36, and enzymolysis is performed again. The incompletely enzymolyzed collagen is reused, thereby increasing the output of collagen tripeptide.

[0048] The use steps of the present invention are as follows: when the high-yield production and processing equipment for collagen tripeptide is used, the obtained collagen is subjected to pre-treatment steps such as washing, defatting and crushing to remove impurities and reduce the size, and then the processed collagen is placed in the enzymolysis tank 1, and enzymes are added to the enzymolysis tank 1 to enzymolyze the collagen, and the enzymolyzed collagen is introduced into the filter tank 2 through the guide tube 4. The filter tank 2 separates the produced collagen tripeptide from the remaining unhydrolyzed collagen and other impurities, and the collagen tripeptide is introduced into the temporary storage tank 3 through the guide tube 4, and the remaining unhydrolyzed collagen and other impurities are introduced into the filter cartridge 6 through the filling pipe 27. At this time, the telescopic electric rod 35 is extended and extended with the movable disk 19 to squeeze or pull the ball head 18, so that the guide rod 17 is brought As the slide plate 9 reciprocates in the slide groove 8, the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16. Initially, the remaining incompletely hydrolyzed collagen and other impurities placed in the filter cartridge 6 will accumulate. At this time, the first motor 22 rotates to drive the second rotating shaft 21 and the stirring shaft 7 to rotate, so that the stirring blade 15 rotates with the stirring shaft 7. In addition, the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the accumulated incompletely hydrolyzed collagen and other impurities can be flattened in the filter cartridge 6. The surface circumference of the filter cartridge 6 is paved with a filter membrane for filtering incompletely hydrolyzed collagen. At this time, the clutch motor 26 is started, so that the third rotating shaft 25 and the gear 26 are engaged. The wheel 24 extends out, so that the gear 24 is meshed with the gear ring 23, and at the same time, the clutch motor 26 rotates to drive the gear 24 to rotate and then drive the filter cartridge 6 to rotate, and the first motor 22 rotates forward and reversely to drive the second rotating shaft 21 and the stirring shaft 7 to rotate, so that the stirring blade 15 rotates following the stirring shaft 7, and the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16. During the filtration process, the collagen that is not completely enzymolyzed and other impurities roll back and forth and move in position in the filter cartridge 6, so that the collagen that is not completely enzymolyzed passes through the filter membrane into the processing tank 5, so as to realize the filtration and separation of the collagen and other impurities. The collagen that has been filtered and separated is introduced into the enzymolysis tank 1 through the connecting conveying pipe 36, and the enzymolysis is carried out again. In this solution, the stirring blade 15 follows the stirring shaft 7 to rotate, and the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the accumulated incompletely hydrolyzed collagen and other impurities can be spread out in the filter cartridge 6 to prevent the incompletely hydrolyzed collagen and other impurities in the filter cartridge 6 from accumulating. During the filtration process, the stirring blade 15 follows the stirring shaft 7, and the filter cartridge 6 rotates, which not only achieves the stirring effect, but also the stirring blade 15 swings back and forth under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, so that the incompletely hydrolyzed collagen and other impurities roll back and forth in the filter cartridge 6, and the collagen can quickly pass through the filter membrane into the treatment tank 5.Compared with the existing stirring, this device increases the filtration speed of collagen, thereby improving the filtration efficiency of collagen, reusing the collagen that is not completely enzymatically hydrolyzed, and thereby increasing the output of collagen tripeptide.

[0049] Embodiment 2:

[0050] When the remaining unhydrolyzed collagen and other impurities are introduced into the filter cartridge 6 through the filling pipe 27, because the filter cartridge 6 needs to rotate, when the filter cartridge 6 stops, when adding materials into the filter cartridge 6, it is necessary to consider the problem of the corresponding position of the feeding port of the filter cartridge 6 and the filling pipe 27. In order to realize rapid feeding to the feeding port of the filter cartridge 6, the problem is solved by the following solution.

[0051] See also Figures 1 to 11 , combined with the basis of embodiment 1, the difference is that a filling pipe 27 is fixedly installed between the filter tank 2 and the treatment tank 5, an extraction pump 28 is fixedly installed on the surface of the filling pipe 27, one end of the filling pipe 27 extends into the interior of the treatment tank 5, a telescopic filling pipe 29 is fixedly installed on the surface of one end of the filling pipe 27, two fixing rings 30 are fixedly installed on the middle surface of the filter cartridge 6, and a sealing arc plate 31 corresponding to the position of the telescopic filling pipe 29 is provided on the surface of the filter cartridge 6. Weight blocks 32 are fixedly installed on the surfaces of the two fixing rings 30, and arc tooth plates 33 in contact with the inner wall of the treatment tank 5 are fixedly installed on the bottom surfaces of the two weight blocks 32. The arc tooth plates 33 follow the inner wall of the treatment tank 5. The filter cartridge 6 rotates to stir and mix the collagen in the treatment tank 5, and the clutch motor 26 stops working. At this time, the gear 24 is separated from the ring gear 23, and two weight blocks 32 are added to the surface of the filter cartridge 6. Under the action of the two weight blocks 32, the filter cartridge 6 returns to the initial feeding state and stops. At this time, the telescopic injection tube 29 corresponds to the position of the sealing arc plate 31. The telescopic injection tube 29 extends out to squeeze the sealing arc plate 31, and the telescopic injection tube 29 extends into the filter cartridge 6. No subsequent intervention and adjustment by personnel is required, so that collagen and other impurities can be quickly added to the filter cartridge 6, avoiding the cumbersome steps and further improving the filtration rate of collagen and other impurities.

[0052] A filling groove is provided on the surface of the filter cartridge 6, and the filling groove matches the sealing arc plate 31. An elastic reset shaft is provided on the end surface of the sealing arc plate 31. The sealing arc plate 31 is rotatably connected to the filling groove through the elastic reset shaft, and the sealing arc plate 31 is used for sealing.

[0053] A fixing bracket 34 for fixing the filling pipe 27 is fixedly mounted on the surface of the processing tank 5 .

[0054] The use steps of the present invention are as follows: when the high-yield production and processing equipment for collagen tripeptide is used, when incompletely enzymatically hydrolyzed collagen and other impurities are added to the filter cartridge 6, the clutch motor 26 stops working, and the gear 24 is separated from the gear ring 23. Two weighting blocks 32 are added to the surface of the filter cartridge 6, and the filter cartridge 6 is restored to the initial feeding state and stops under the action of the two weighting blocks 32. At this time, the telescopic injection tube 29 corresponds to the position of the sealing arc plate 31, and the telescopic injection tube 29 extends out to squeeze the sealing arc plate 31, so that the telescopic injection tube 29 extends into the filter cartridge 6, and the extraction pump 28 works to extract the incompletely enzymatically hydrolyzed collagen and other impurities in the filter tank 2, and the collagen and other impurities are added to the filter cartridge 6 through the filling tube 27 and the telescopic injection tube 29. After completion, the telescopic injection tube 29 is reset, and the sealing arc plate 31 is reset under the action of the elastic reset shaft, and the stirring and filtering workflow steps in Example 1 are repeated. The clutch motor 26 of this scheme stops working, and the gear 24 is separated from the ring gear 23. By adding two weight blocks 32 on the surface of the filter cartridge 6, the filter cartridge 6 is restored to its initial feeding state and stops under the action of the two weight blocks 32. At this time, the telescopic injection tube 29 corresponds to the position of the sealing arc plate 31, and the telescopic injection tube 29 extends out to squeeze the sealing arc plate 31, and the telescopic injection tube 29 extends into the filter cartridge 6. No later intervention and adjustment by personnel is required, so that collagen and other impurities can be quickly added to the filter cartridge 6, avoiding the cumbersome steps and further improving the filtration rate of collagen and other impurities.

[0055] Embodiment 3:

[0056] After the collagen in the filter cartridge 6 is filtered, it is necessary to discharge the impurities in the filter cartridge 6. The following solution is used to solve the problem.

[0057] See also Figures 1 to 11 , combined with the basis of Example 2, the difference is that a turntable 37 is threadedly connected to the surface of one end of the processing tank 5, and an openable and closable discharge baffle 38 is provided on the surface of one end of the filter cartridge 6. First, the turntable 37 is removed from the end of the processing tank 5, and then the discharge baffle 38 is opened. At this time, the extension of the electric telescopic rod 35 drives the movable disk 19 to move the extrusion ball head 18, so that the guide rod 17 drives the slide plate 9 to move in the slide groove 8. At this time, the stirring blade 15 swings at an angle under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, and the first motor 22 rotates to drive the second rotating shaft 21 and the stirring shaft 7 to rotate, so that the stirring blade 15 rotates with the stirring shaft 7. After the stirring blade 15 swings at an angle, the impurities inside the filter cartridge 6 can be discharged from the discharge baffle 38, thereby realizing the remaining impurities and waste inside the filter cartridge 6.

[0058] The use steps of the present invention are as follows: when the high-yield production and processing equipment for collagen tripeptide is in use, the turntable 37 is first removed from the end of the processing tank 5, and then the discharge baffle 38 is opened. At this time, the extension of the electric telescopic rod 35 drives the movable disk 19 to move the extrusion ball head 18, so that the guide rod 17 drives the slide plate 9 to move in the slide groove 8. At this time, the stirring blade 15 swings at an angle under the action of the rotating block 12, the first rotating shaft 14 and the slide rail device 16, and the first motor 22 rotates to drive the second rotating shaft 21 and the stirring shaft 7 to rotate, thereby causing the stirring blade 15 to rotate with the stirring shaft 7. After the stirring blade 15 swings at an angle, the impurities inside the filter cartridge 6 can be discharged from the discharge baffle 38, thereby realizing the treatment of the remaining impurities and waste inside the filter cartridge 6.

[0059] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the present invention and are not intended to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention. The scope of protection of the present invention is defined by the attached claims and their equivalents.

Claims

1. A high-yield production and processing device for collagen tripeptide, comprising an enzymolysis tank (1), a filtration tank (2) and a temporary storage tank (3), wherein a flow guide pipe (4) is fixedly installed between the enzymolysis tank (1) and the filtration tank (2) and between the filtration tank (2) and the temporary storage tank (3), characterized in that: A treatment tank (5) is arranged on one side of the filter tank (2), a rotatable filter cartridge (6) is arranged inside the treatment tank (5), a rotatable stirring shaft (7) is arranged inside the filter cartridge (6), a plurality of slide grooves (8) are correspondingly provided on the surface of the stirring shaft (7), a sliding plate (9) matching with the sliding groove (8) is slidably mounted inside any one of the slide grooves (8), a plurality of rotating grooves (11) are provided on the surface of any one of the sliding plates (9), a rotating block (12) is rotatably connected inside the rotating groove (11), and a rotating block (12) is fixedly mounted on the surface of the stirring shaft (7) to match with the rotating block. A fixed seat (13) having the same number of grooves (11), and the positions of the rotating grooves (11) and the fixed seat (13) correspond to each other, a slide rail device (16) is provided on the inner side surface of the fixed seat (13), both side surfaces of the rotating block (12) are rotatably connected to a first rotating shaft (14), one end of the first rotating shaft (14) is rotatably connected to the slide rail device (16), a stirring blade (15) is fixedly mounted on one end of the rotating block (12), a fixed plate (20) is fixedly connected to one end surface of the filter cartridge (6), and a second rotating shaft (21) is rotatably connected to the surface of the fixed plate (20); Two electric telescopic rods (35) are fixedly mounted on the inner side surface of the fixed plate (20); a movable plate (19) is rotatably connected to the surface of the second rotating shaft (21); and a surface of the movable plate (19) is fixedly connected to the telescopic ends of the two electric telescopic rods (35); The movable disk (19) is internally movably connected with a plurality of ball heads (18) matched therewith, one end of any one of the slide plates (9) is fixedly connected with a guide rod (17), and one end of the guide rod (17) extends into the interior of the movable disk (19) and is fixedly connected with the ball head (18); A filling pipe (27) is fixedly installed between the filter tank (2) and the treatment tank (5), an extraction pump (28) is fixedly installed on the surface of the filling pipe (27), one end of the filling pipe (27) extends into the interior of the treatment tank (5), a telescopic filling pipe (29) is fixedly installed on the surface of one end of the filling pipe (27), two fixing rings (30) are fixedly installed on the middle surface of the filter cartridge (6), a sealing arc plate (31) corresponding to the position of the telescopic filling pipe (29) is provided on the surface of the filter cartridge (6), weight blocks (32) are fixedly installed on the surfaces of the two fixing rings (30), and arc tooth plates (33) in contact with the inner wall of the treatment tank (5) are fixedly installed on the bottom surfaces of the two weight blocks (32).

2. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: The slide rail device (16) comprises a slide groove and a sliding block matched therewith, the sliding block is slidably connected in the slide groove, one end of the first rotating shaft (14) is rotatably connected to the surface of the sliding block, a spring (10) is elastically connected between the slide groove (8) and the slide plate (9), one end of the spring (10) is fixedly connected to the inner wall of the slide groove (8), and the other end of the spring (10) is fixedly connected to the end surface of the slide plate (9).

3. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: A first motor (22) is fixedly mounted on the surface of the processing tank (5); one end of the second rotating shaft (21) is fixedly connected to the stirring shaft (7); and the other end of the second rotating shaft (21) is fixedly connected to the output end of the first motor (22).

4. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: A gear ring (23) is fixedly mounted on the surface of one end of the filter cartridge (6); a third rotating shaft (25) is rotatably connected to the surface of the treatment tank (5); a gear (24) meshing with the gear ring (23) is fixedly mounted on one end of the third rotating shaft (25); a clutch motor (26) is fixedly mounted on the surface of one end of the treatment tank (5); an output end of the clutch motor (26) is fixedly connected to the third rotating shaft (25); and a connecting conveying pipe (36) is fixedly mounted between the treatment tank (5) and the enzymolysis tank (1).

5. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: The surface of the filter cartridge (6) is provided with a filling groove, the filling groove and the sealing arc plate (31) match each other, an elastic reset shaft is provided on the end surface of the sealing arc plate (31), and the sealing arc plate (31) is rotatably connected to the filling groove via the elastic reset shaft.

6. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: A fixing frame (34) for fixing a filling pipe (27) is fixedly mounted on the surface of the processing tank (5).

7. The high-yield production and processing equipment for collagen tripeptide according to claim 1, characterized in that: A rotating disk (37) is threadedly connected to one end surface of the treatment tank (5), and an openable and closable discharge baffle (38) is provided on one end surface of the filter cartridge (6).

Citation Information

Patent Citations

  • Equipment for producing high-content collagen tripeptide

    CN219260039U

  • Enzymolysis device for collagen extraction

    CN112442445A

  • Special extraction equipment for collagen

    CN211199238U