A raw material cleaning system for the production of albumin oligopeptides

By designing an automated cleaning device, the casing and high-pressure nozzle are driven by a servo motor to circulate in the tank body, and the vortex flow is generated by combining the vortex blades and support plates, which solves the problems of manual operation and poor cleaning effect in the prior art, and achieves efficient cleaning of the inner wall of the tank body.

CN116809568BActive Publication Date: 2025-07-25HUBEI NUTRATIDE BIOTECH CO LTD
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Patent Information

Application Number
CN202310695593.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-12
Publication Date
2025-07-25
Estimated Expiration
2043-06-12

AI Technical Summary

Technical Problem

In the prior art, when cleaning the can for the production of albumin oligomeric peptides, the casing is required to manually rotate the sleeve so that the high-pressure nozzle extends into the can for rinsing, and the distance between the high-pressure nozzle and the inner wall of the can is relatively far, resulting in poor rinsing effect.

Method used

A cleaning device including threaded sleeves, servo motors, casings, water pipes, vortex blades, conduits and high-pressure nozzles is designed. The servo motor drives the sleeves and high-pressure nozzles to circulate in the tank to realize automatic cleaning, and use the vortex blades and support plates to generate vortex flow to improve the cleaning effect.

Benefits of technology

The uniform flushing of the inner wall of the tank is achieved, manual operation is avoided, cleaning efficiency and effect is improved, and the substances in the inner wall of the tank is completely removed and residues are reduced.

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Abstract

The present invention belongs to the technical field of albumin oligopeptide production, and specifically relates to a raw material cleaning system for albumin oligopeptide production, including a tank body and a cleaning device; the cleaning device includes a threaded sleeve; mounting plates are installed on both sides of the threaded sleeve; servo motors are fixedly connected to the lower surfaces of the two mounting plates; a sleeve is slidably connected inside the threaded sleeve; a water pipe is provided inside the sleeve; a rotating shaft is provided below the water pipe, and a vortex blade is fixedly connected to the rotating shaft; a rotating ring is provided at the bottom of the sleeve; the inner ring surface of the rotating ring is fixedly connected to the outer ring of the third bearing; the connecting rod is fixedly connected to the rotating ring; two hoses are installed on the bottom surface of the rotating ring; between the two side plates of each first side plate assembly, a conduit is rotatably connected through a pin shaft; high-pressure spray nozzles are installed on the other sides of the two conduits; The present invention is mainly used to solve the problem that when cleaning the tank body, it is necessary to manually rotate the sleeve to gradually extend the high-pressure spray nozzle into the tank body to wash the tank body.
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Description

Technical Field

[0001] The present invention belongs to the technical field of albumin oligopeptide production, and specifically relates to a raw material cleaning system for albumin oligopeptide production. Background Art

[0002] Albumin oligopeptide is a functional macromolecular protein in human plasma, an important component for maintaining plasma osmotic pressure, increasing blood volume, and providing balanced amino acids, and is an indispensable nutrient for the human body;

[0003] After our company has produced products such as albumin oligopeptide and protein peptide, it is necessary to use a tank to hold the finished products and wait for quantitative filling. When the tank holds the products for a long time, some products will adhere to the inner wall of the tank and gradually form stubborn crusts. In order to avoid the formation of crusts in the tank, after our company's research and development and design and achieving results, a patent application with the application number 201922035525X and the theme name of a raw material cleaning device for protein peptide production was proposed, which is mainly used to clean the tank and equipment to avoid the occurrence of crusts;

[0004] However, in our subsequent work, it was found that when cleaning the tank, it is necessary to manually rotate the sleeve to gradually extend the high-pressure nozzle into the tank for flushing. At the same time, the distance between the high-pressure nozzle and the inner wall of the tank is relatively far, thus reducing the flushing effect. Summary of the Invention

[0005] In order to make up for the deficiencies of the prior art and solve the above technical problems, the present invention proposes a raw material cleaning system for albumin oligopeptide production.

[0006] It includes a tank and a cleaning device; a tank opening is provided at the top of the tank, and threads are provided inside the tank opening; a discharge pipe is provided at the bottom of the tank, and a control valve is installed inside the discharge pipe;

[0007] The cleaning device includes a threaded sleeve, and the threaded sleeve is matched with the threads inside the tank opening; mounting plates are installed on both sides of the threaded sleeve; servo motors are fixedly connected to the lower surfaces of the two mounting plates; the drive shafts of the two servo motors extend above the mounting plates and are fixedly connected with rotating wheels;

[0008] A sleeve is slidably connected inside the threaded sleeve; a water pipe is provided inside the sleeve, and the top of the water pipe extends out of the sleeve; the bottom of the water pipe is located in the middle of the sleeve; at the bottom position of the water pipe, a first bearing is installed on the outer surface of the water pipe, and the outer ring of the first bearing is fixedly connected with the inner surface of the sleeve;

[0009] A rotating shaft is provided below the water pipe, and a vortex blade is fixedly connected to the rotating shaft; below the vortex blade, a second bearing is installed on the rotating shaft; the outer surface of the outer ring of the second bearing is fixedly connected with a connecting rod, and the other end of the connecting rod is fixedly connected with the sleeve;

[0010] At the bottom of the casing, a third bearing is installed on the outer surface of the outer ring of the casing; a swivel ring is provided at the bottom of the casing, and the bottom of the swivel ring is closed; the inner ring surface of the swivel ring is fixedly connected to the outer ring of the third bearing; the connecting rod is fixedly connected to the swivel ring;

[0011] Two hoses are installed on the bottom surface of the swivel ring; two groups of first side plate groups are installed on the bottom surface of the swivel ring, and each first side plate group includes two side plates; between the two side plates of each first side plate assembly, a conduit is rotatably connected by a pin shaft, and the conduit is communicated with the hose;

[0012] On the other side of the two conduits, high-pressure nozzles are installed; on the outer surface of the outer ring of the two conduits, a group of second side plate groups are installed, and each second side plate group includes two side plates; between the two side plates of each second side plate group, a support plate is hinged by a pin shaft and a torsion spring, and the support plate is in a horizontal state under the action of the torsion spring in the initial state;

[0013] The two support plates correspond to each other and are partially staggered; the partially staggered positions of the two support plates are rotatably connected by a pin shaft;

[0014] Above the swivel ring, two mounting blocks are fixedly connected to the outer surface of the outer ring of the casing; pull ropes are fixedly connected to the two mounting blocks, and the other ends of the pull ropes pass through between the threaded sleeve and the casing and are fixedly connected to the rotating wheels.

[0015] Preferably, on the side where the high-pressure nozzles are installed on the two conduits, L-shaped plates are fixedly connected to the outer surfaces of the conduits;

[0016] A ball is rotatably connected to the L-shaped plate.

[0017] Preferably, the high-pressure nozzle is inclined towards the side away from the L-shaped plate.

[0018] Preferably, scraping plates are fixedly connected to the bottom end faces of the two support plates;

[0019] Stirring vanes are fixedly connected to the tops of the two support plates;

[0020] The scraping plates and the stirring vanes on the two support plates correspond to each other and are partially staggered.

[0021] Preferably, a limiting groove is opened in the inner circle of the threaded sleeve; two limiting rods are fixedly connected to the outer surface of the outer ring of the casing, and the limiting rods slide in the limiting groove; a wire groove is opened in the limiting rods; the two pull ropes are both located in the wire grooves close to each other.

[0022] The beneficial effects of the present invention are as follows:

[0023] 1. For the raw material cleaning system for albumin oligopeptide production according to the present invention, during the rotation of the high-pressure nozzle, the inner wall of the tank can be rinsed, so that the substances adhering to the inside of the tank can be rinsed off. At the same time, the servo motor is controlled to rotate evenly and slowly, so as to drive the rotating wheel to rotate. During the rotation of the rotating wheel, the rotating wheel can gradually wind the pulling rope. When the pulling rope is gradually wound, it will drive the sleeve to move upward gradually. At the same time, in cooperation with the circularly rotating high-pressure nozzle, the tank can be rinsed from bottom to top. During this process, not only is it unnecessary for manual rotation of the sleeve, but also the uniformity of the rinsing of the tank can be improved, avoiding that some positions are not rinsed and there are still some substances remaining in the tank.

[0024] 2. For the raw material cleaning system for albumin oligopeptide production according to the present invention, when the high-pressure nozzle rinses from the bottom of the tank to the tank mouth position, the water used for rinsing the tank will accumulate in the tank at this time. At the same time, the servo motor is controlled to rotate in the reverse direction. Under the gravity of the sleeve, the conduit and the support plate, the high-pressure nozzle will move downward again to the bottom position of the tank and be located below the liquid level. Subsequently, water is continuously introduced into the water pipe. Therefore, during the rotation of the conduit, the support plate will be driven to rotate in the water. During the rotation of the support plate, the water will be driven to rotate, causing the water to generate a vortex and flow along the inner wall of the tank. During this process, the inside of the tank can be rinsed, so that the substances that are washed off by the high-pressure nozzle and then adhere to the inner wall of the tank can be washed off and flushed into the water, thus avoiding that there are still some substances adhering to the inner wall of the tank after being rinsed by the high-pressure nozzle. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] The present invention will be further described below with reference to the drawings.

[0026] Figure 1 is the three-dimensional view of the cleaning device of the present invention when cleaning the tank;

[0027] Figure 2 is the three-dimensional view of the cleaning device of the present invention in the initial state;

[0028] Figure 3 is the present invention Figure 2 partial enlarged view at A in;

[0029] Figure 4 is the present invention Figure 2 partial enlarged view;

[0030] Figure 5 is the present invention Figure 4 partial enlarged view at B in;

[0031] Figure 6 is the three-dimensional view of the cleaning device of the present invention when inserted into the tank;

[0032] Figure 7 is the present invention Figure 6Partial enlarged view in the middle;

[0033] Figure 8 It is in the present invention Figure 1 Cross-sectional view;

[0034] Figure 9 It is the present invention Figure 8 Partial enlarged view at position C in the present invention;

[0035] Figure 10 It is the present invention Figure 8 Partial enlarged view at position D in the present invention;

[0036] Figure 11 It is the present invention Figure 8 Partial enlarged view at position E in the present invention.

[0037] In the figure:

[0038] 1. Tank body; 11. Tank opening; 12. Discharge pipe; 2. Threaded sleeve; 21. Mounting plate; 22. Servo motor; 23. Runner; 24. Limit groove; 3. Sleeve; 31. Water pipe; 32. First bearing; 33. Rotating shaft; 34. Vortex blade; 35. Second bearing; 36. Connecting rod; 37. Mounting block; 38. Pull rope; 39. Limit rod; 391. Wire groove; 4. Swivel ring; 41. Third bearing; 42. Hose; 43. First side plate group; 44. Conduit; 45. High-pressure nozzle; 46. Second side plate group; 47. L-shaped plate; 48. Ball; 5. Support plate; 51. Scraper; 52. Stirring blade. Detailed implementation manners

[0039] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0040] As Figures 1 to 11 shown, a raw material cleaning system for the production of albumin oligopeptide according to the present invention;

[0041] Overall embodiment

[0042] It includes a tank body 1 and a cleaning device; a tank opening 11 is provided at the top of the tank body 1, and a thread is provided in the tank opening 11; a discharge pipe 12 is provided at the bottom of the tank body 1, and a control valve is installed in the discharge pipe 12;

[0043] The cleaning device includes a threaded sleeve 2, and the threaded sleeve 2 is matched with the thread in the tank opening 11; mounting plates 21 are installed on both sides of the threaded sleeve 2; servo motors 22 are fixedly connected to the lower surfaces of the two mounting plates 21; the drive shafts of the two servo motors 22 extend above the mounting plates 21 and are fixedly connected to runners 23;

[0044] A sleeve 3 is slidably connected inside the threaded sleeve 2; a water pipe 31 is provided inside the sleeve 3, and the top of the water pipe 31 extends out of the sleeve 3; the bottom of the water pipe 31 is located at the middle position of the sleeve 3; at the bottom position of the water pipe 31, a first bearing 32 is installed on the outer surface of the outer circle of the water pipe 31, and the outer circle of the first bearing 32 is fixedly connected to the inner surface of the sleeve 3;

[0045] A rotating shaft 33 is provided below the water pipe 31, and a scroll blade 34 is fixedly connected to the rotating shaft 33; below the scroll blade 34, a second bearing 35 is installed on the rotating shaft 33; the outer surface of the outer circle of the second bearing 35 is fixedly connected to a connecting rod 36, and the other end of the connecting rod 36 is fixedly connected to the sleeve 3;

[0046] At the bottom of the sleeve 3, a third bearing 41 is installed on the outer surface of the outer circle of the sleeve 3; a rotating ring 4 is provided at the bottom of the sleeve 3, and the bottom of the rotating ring 4 is closed; the inner ring surface of the rotating ring 4 is fixedly connected to the outer circle of the third bearing 41; the connecting rod 36 is fixedly connected to the rotating ring 4;

[0047] Two flexible hoses 42 are installed on the bottom surface of the rotating ring 4; two groups of first side plate groups 43 are installed on the bottom surface of the rotating ring 4, and each first side plate group 43 includes two side plates; between the two side plates on each first side plate group 43, a conduit 44 is rotatably connected by a pin shaft, and the conduit 44 is communicated with the flexible hose 42;

[0048] On the other sides of the two conduits 44, high-pressure nozzles 45 are installed; on the outer surface of the outer circle of the two conduits 44, a group of second side plate groups 46 are installed, and each second side plate group 46 includes two side plates; between the two side plates on each second side plate group 46, a support plate 5 is hinged by a pin shaft and a torsion spring, and the support plate 5 is in a horizontal state under the action of the torsion spring in the initial state;

[0049] The two support plates 5 correspond to each other and are partially staggered; the partially staggered positions of the two support plates 5 are rotatably connected by a pin shaft;

[0050] Above the rotating ring 4, two mounting blocks 37 are fixedly connected to the outer surface of the sleeve 3; two pull ropes 38 are fixedly connected to the two mounting blocks 37, and the other ends of the pull ropes 38 pass through between the threaded sleeve 2 and the sleeve 3 and are fixedly connected to the runner 23;

[0051] When cleaning the tank body 1, first, the staff holds the two conduits 44, and then rotates the conduits 44 downward. During the rotation of the conduits 44, the conduits 44 rotate downward with the pin shaft on the adjacent first side plate group 43 as the center of the circle. At the same time, during the rotation of the conduits 44, the two conduits 44 will approach each other, thereby pushing the support plate 5 to rotate and approach each other. During the process of the two conduits 44 gradually pushing the two support plates 5 to rotate, since the two support plates 5 are rotatably connected by a pin shaft, under the limitation of the pin shaft connecting the two support plates 5, the two support plates 5 will rotate towards the opposite side, and the pin shaft connecting the two support plates 5 gradually moves downward. At the same time, during the rotation of the support plate 5 towards the opposite side, the two support plates 5 also rotate with the pin shaft on the second side plate group 46 as the center of the circle. At the same time, during the rotation of the support plate 5, it will overcome the torsion of the torsion spring on the second side plate group 46. When the two conduits 44 are in a relatively parallel state, stop rotating the two conduits 44 at this time, and at this time, the two support plates 5 do not completely overlap. Then, first insert the two support plates 5 into the tank opening 11. During the process of inserting the support plate 5 into the tank opening 11, at this time, the staff limits the two conduits 44 by hand, and then continues to push the two conduits 44 into the tank opening 11. When the conduits 44 are partially inserted into the tank opening 11, at this time, the staff no longer limits the two conduits 44 by hand, and then pushes the sleeve 3 and inserts the sleeve 3 into the tank body 1. When the support plate 5 is pushed into the tank body 1, under the action of the torsion spring on the second side plate group 46, at this time, the support plate 5 rotates and returns to the horizontal state in the initial state. At this time, the conduit 44 returns to the initial state under the push of the support plate 5. When the two high-pressure nozzles 45 are located at the bottom of the tank body 1, stop pushing the sleeve 3 downward, then rotate the threaded sleeve 2 to engage the threaded sleeve 2 with the thread on the tank opening 11, then connect the water pipe 31 to an external water source and prepare to clean the tank body 1;

[0052] During the cleaning process of the tank body 1, when water enters the water pipe 31, it will flow inside the water pipe 31. When the water flows out of the water pipe 31, it will push the vortex blade 34 to rotate, thereby driving the rotation of the rotating shaft 33. During the rotation of the rotating shaft 33, it will drive the rotation of the rotating ring 4, and then drive the rotation of the conduit 44 through the first side plate group 43. At the same time, the high-pressure nozzle 45 rotates following the conduit 44. During the rotation of the high-pressure nozzle 45, the inner wall of the tank body 1 can be rinsed, so that the substances adhering to the inside of the tank body 1 can be rinsed off. At the same time, control the servo motor 22 to rotate uniformly and slowly, thereby driving the rotation of the runner 23. During the rotation of the runner 23, the runner 23 can gradually wind the pull rope 38. When the pull rope 38 is gradually wound, it will drive the sleeve 3 to move upward. At the same time, it cooperates with the circulating and rotating high-pressure nozzle 45, so that the tank body 1 can be rinsed from bottom to top. During this process, not only does it not require manual rotation of the sleeve 3, but also the uniformity of the rinsing of the tank body 1 can be improved, avoiding that some positions are not rinsed and there are still some substances remaining in the tank body 1;

[0053] Further, when the high-pressure nozzle 45 rinses from the bottom of the tank body 1 to the position of the tank opening 11 of the tank body 1, at this time, the water used to rinse the tank body 1 will accumulate in the tank body 1. At the same time, control the servo motor 22 to rotate in the reverse direction. Under the gravity of the sleeve 3, the conduit 44 and the support plate 5, the high-pressure nozzle 45 will move down to the bottom position of the tank body 1 again and be below the liquid level. Subsequently, continuously introduce water into the water pipe 31. Therefore, during the rotation of the conduit 44, it will drive the support plate 5 to rotate in the water. During the rotation of the support plate 5, it will drive the water to rotate, causing the water to generate a vortex and flow along the inner wall of the tank body 1. During this process, the inside of the tank body 1 can be rinsed, so that the substances that are washed off by the high-pressure nozzle 45 and then adhere to the inner wall of the tank body 1 are washed off and flushed into the water, thus avoiding that there are still some substances adhering to the inner wall of the tank body 1 after being rinsed by the high-pressure nozzle 45. Subsequently, control the control valve in the discharge pipe 12 to open. At this time, the water in the tank body 1 will flow out through the discharge pipe 12. At the same time, stop introducing water into the water pipe 31. When the water in the tank body 1 completely flows out, at this time, remove the threaded cylinder from the tank opening 11 and pull the sleeve 3 upward. When the conduit 44 passes through the tank opening 11, it will rotate downward under the limit of the tank opening 11. At the same time, the conduit 44 will push the support plate 5 to rotate, so that the two support plates 5 rotate towards the opposite side. When the two conduits 44 tend to be relatively parallel, the conduit 44 and the support plate 5 can be taken out of the tank body 1. When cleaning the tank body 1 next time, repeat the above operations.

[0054] On the basis of the overall embodiment, on one side of the two conduits 44 where the high-pressure nozzles 45 are installed, L-shaped plates 47 are fixedly connected to the outer surfaces of the conduits 44;

[0055] The L-shaped plate 47 is rotatably connected with a ball 48;

[0056] Since a ball 48 is rotatably connected to the L-shaped plate 47, when the support plate 5 and the conduit 44 extend into the tank body 1 and return to the initial state, the ball 48 on the L-shaped plate 47 will contact the inside of the tank body 1 at this time. Therefore, the high-pressure nozzle 45 is prevented from contacting the inner wall of the tank body 1. At the same time, during the rotation of the conduit 44 and the high-pressure nozzle 45, the ball 48 can reduce the frictional force between the inner wall of the tank body 1 and the L-shaped plate 47, avoiding excessive frictional force and affecting the rotation of the conduit 44 and the high-pressure nozzle 45.

[0057] Based on the overall embodiment, the high-pressure nozzle 45 is inclined toward the side away from the L-shaped plate 47;

[0058] Since the high-pressure nozzle 45 is inclined toward the side away from the L-shaped plate 47, when the high-pressure nozzle 45 sprays water, the water flow will strike the inner wall of the tank body 1 obliquely. Therefore, a recoil force will be generated, which will push the high-pressure nozzle 45 and the conduit 44 to rotate, and the rotation direction is the same as the rotation direction of the vortex blade 34. Therefore, it can be avoided that the force of the water impact on the vortex blade 34 is not enough to push the vortex blade 34 to rotate, so that the conduit 44 and the high-pressure nozzle 45 cannot be driven to rotate.

[0059] Based on the overall embodiment, scraping plates 51 are fixedly connected to the bottom end faces of the two support plates 5;

[0060] Stirring vanes 52 are fixedly connected to the tops of the two support plates 5;

[0061] The scraping plates 51 and the stirring vanes 52 on the two support plates 5 correspond to each other and are partially staggered;

[0062] During the rotation of the support plate 5, the scraping plate 51 will scrape the bottom of the inner cavity of the tank body 1, so that the bottom of the inner cavity of the tank body 1 can be scraped, and the adhered substances can be scraped off and mixed into the water. When the support plate 5 drives the water to rotate, due to the existence of the scraping plate 51 and the stirring vane 52, a larger vortex can be generated in the water, so as to wash the inside of the tank body 1 more comprehensively.

[0063] Based on the overall embodiment, a limiting groove 24 is formed in the inner ring of the threaded sleeve 2; two limiting rods 39 are fixedly connected to the outer surface of the outer sleeve 3, and the limiting rods 39 slide in the limiting groove 24; a wire groove 391 is formed in the limiting rod 39; the two pulling ropes 38 are both located in the adjacent wire grooves 391;

[0064] Due to the existence of the limiting rod 39 and the limiting groove 24, when the rotating ring 4 rotates, the rotating ring 4 can be prevented from driving the outer sleeve 3 to rotate. At the same time, due to the existence of the wire groove 391, the pulling rope 38 can be located in the wire groove 391.

[0065] The basic principles, main features and advantages of the present invention have been shown and described above. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A raw material cleaning system for the production of albumin oligopeptides, characterized in that, It includes a tank body (1) and a cleaning device; a tank opening (11) is provided at the top of the tank body (1), and threads are provided in the tank opening (11); a discharge pipe (12) is provided at the bottom of the tank body (1), and a control valve is installed in the discharge pipe (12). The cleaning device includes a threaded sleeve (2), and the threads of the threaded sleeve (2) cooperate with the threads in the tank opening (11); mounting plates (21) are installed on both sides of the threaded sleeve (2); servo motors (22) are fixedly connected to the lower surfaces of the two mounting plates (21); the drive shafts of the two servo motors (22) extend above the mounting plates (21) and are fixedly connected to runners (23). A sleeve (3) is slidably connected in the threaded sleeve (2); a water pipe (31) is provided in the sleeve (3), and the top of the water pipe (31) extends out of the sleeve (3); the bottom of the water pipe (31) is located in the middle of the sleeve (3); at the bottom position of the water pipe (31), a first bearing (32) is installed on the outer surface of the water pipe (31), and the outer ring of the first bearing (32) is fixedly connected to the inner surface of the sleeve (3). A rotating shaft (33) is provided below the water pipe (31), and a vortex blade (34) is fixedly connected to the rotating shaft (33); below the vortex blade (34), a second bearing (35) is installed on the rotating shaft (33); the outer surface of the outer ring of the second bearing (35) is fixedly connected to a connecting rod (36), and the other end of the connecting rod (36) is fixedly connected to the sleeve (3). At the bottom of the sleeve (3), a third bearing (41) is installed on the outer surface of the sleeve (3); a rotating ring (4) is provided at the bottom of the sleeve (3), and the bottom of the rotating ring (4) is closed; the inner ring surface of the rotating ring (4) is fixedly connected to the outer ring of the third bearing (41); the connecting rod (36) is fixedly connected to the rotating ring (4). Two flexible hoses (42) are installed on the bottom surface of the rotating ring (4); two groups of first side plate groups (43) are installed on the bottom surface of the rotating ring (4), and each first side plate group (43) includes two side plates; between the two side plates of each first side plate group (43), a conduit (44) is rotatably connected through a pin shaft, and the conduit (44) is communicated with the flexible hose (42). High-pressure nozzles (45) are installed on the other sides of the two conduits (44); a group of second side plate groups (46) are installed on the outer surfaces of the two conduits (44), and each second side plate group (46) includes two side plates; between the two side plates of each second side plate group (46), a support plate (5) is hinged through a pin shaft and a torsion spring, and the support plate (5) is in a horizontal state under the action of the torsion spring in the initial state. The two support plates (5) correspond to each other and are partially staggered; the partially staggered positions of the two support plates (5) are rotatably connected through a pin shaft. Two mounting blocks (37) are fixedly connected to the outer surface of the sleeve (3) above the rotating ring (4); pull ropes (38) are fixedly connected to the two mounting blocks (37), and the other ends of the pull ropes (38) pass through between the threaded sleeve (2) and the sleeve (3) and are fixedly connected to the runners (23). Scrapers (51) are fixedly connected to the bottom end faces of the two support plates (5); stirring vanes (52) are fixedly connected to the tops of the two support plates (5), and the scrapers (51) and the stirring vanes (52) on the two support plates (5) correspond to each other and are partially staggered.

2. The raw material cleaning system for the production of albumin oligopeptides according to claim 1, characterized in that: L-shaped plates (47) are fixedly connected to the outer surfaces of the two conduits (44) on the side where the high-pressure nozzles (45) are installed.

3. The raw material cleaning system for albumin oligopeptide production according to claim 2, characterized in that: Ball beads (48) are rotatably connected to the L-shaped plates (47).

4. A raw material cleaning system for the production of albumin oligopeptides according to claim 1, characterized in that: The high-pressure nozzles (45) incline towards the side away from the L-shaped plates (47).

5. The raw material cleaning system for albumin oligopeptide production according to claim 1, characterized in that: A limiting groove (24) is formed in the inner ring of the threaded sleeve (2); two limiting rods (39) are fixedly connected to the outer surface of the sleeve (3), and the limiting rods (39) slide in the limiting groove (24); a wire groove (391) is formed in the limiting rod (39); the two pulling ropes (38) are both located in the adjacent wire grooves (391).

Citation Information

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