Raw material treatment device for biological peptide processing and treatment process thereof

By designing a raw material processing device for biological peptide processing and using the combination of a push column and a stirring shaft, the problem that traditional crushing devices are difficult to break viscous strong biological peptide particles is solved, and efficient crushing and uniform grinding are achieved, and product quality is improved.

CN120532609AInactive Publication Date: 2025-08-26SUZHOU SEFANQINUO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510834685.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-20
Publication Date
2025-08-26
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the existing biological peptide production process, traditional crushing devices are difficult to effectively crush highly viscous biological peptide particles, and are prone to high temperatures to affect quality.

Method used

A raw material treatment device for biological peptide processing is adopted, and the upper and lower grinding blocks are driven by rotating the motor, and combined with the design of pushing columns, slicing steel wires and stirring shafts, the repeated extrusion and cutting of materials is achieved to avoid high temperatures.

Benefits of technology

It improves the crushing effect of biological peptides, ensures product quality, avoids the influence of high temperature, meets the requirements of sustainable development, and improves processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of biological peptide processing, in particular to a raw material treatment device for biological peptide processing and a treatment process thereof.The inner sides of two supporting column plates are fixedly connected with two triangular prism plates correspondingly, the inner sides of the four triangular prism plates are fixedly connected with lower grinding blocks, and the inner sides of the two supporting column plates are fixedly connected with supporting plates; the inner side of the supporting plate is rotationally connected with an upper grinding block, the upper grinding block is located at the top of the lower grinding block, a feeding groove is formed in the upper grinding block, a partition net is installed on the inner side of the feeding groove, the top of the upper grinding block is fixedly connected with a connecting middle column, and the top end of the connecting middle column is fixedly connected with a rotating top plate. According to the biological peptide crushing device, biological peptide can be better crushed, meanwhile, by means of the special structural design, materials are repeatedly extruded and cut in the grinding process, the crushing effect is improved, and therefore the problems that biological peptide particles are high in viscosity and prone to agglomeration are effectively solved, and the biological peptide crushing device further pays attention to environmental protection and energy conservation.
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Description

Technical Field

[0001] The present invention relates to the technical field of biopeptide processing, in particular to a raw material processing device for biopeptide processing and a processing process thereof. Background Art

[0002] Biopeptide is a bioactive peptide extracted from organisms. It is rich in various amino acids and trace elements, and has extremely high nutritional value and health benefits. In recent years, with people's pursuit of healthy living and in-depth development of marine resources, biopeptide has gradually become a highly-anticipated health food ingredient.

[0003] In the prior art, the production steps of bio-peptides include enzymatic hydrolysis, separation and crushing, among which crushing is the pulverization of the separated and purified bio-peptides. The traditional crushing device cannot crush the material because the bio-peptides are separated and precipitated, and the bio-peptide particles are highly sticky, easy to agglomerate, and difficult to crush. In addition, the traditional crushing device is prone to generate high temperature, which affects the quality of the bio-peptides. For this reason, the present invention provides a raw material processing device for bio-peptide processing and a processing process thereof. Summary of the Invention

[0004] The object of the present invention is to provide a raw material processing device for bio-peptide processing and a processing process thereof to solve the problems raised in the above background technology.

[0005] The technical solution of the present invention is: a raw material processing device for bio-peptide processing and its processing process, comprising two supporting column plates, the inner sides of the two supporting column plates are fixedly connected to two triangular column plates, the inner sides of the four triangular column plates are fixedly connected to a lower grinding block, the inner sides of the two supporting column plates are fixedly connected to a supporting plate, the inner side of the supporting plate is rotatably connected to an upper grinding block, the upper grinding block is located on the top of the lower grinding block, a feed trough is provided inside the upper grinding block, a dividing net is installed inside the feed trough, the top of the upper grinding block is fixedly connected to a connecting middle column, the connecting middle The top of the column is fixedly connected to a rotating top plate, and the top of the rotating top plate is fixedly connected to a fixed cylinder, and a sealing ring is fixedly connected to the inside of the fixed cylinder, and a pushing column is slidably engaged with the inner side of the sealing ring, and the pushing column is located at the top of the feed trough, and the side of the pushing column is fixedly connected to a limiting ring, and the bottom of the limiting ring is fixedly connected to a return spring, and the return spring is installed in the inside of the fixed cylinder, and the inner sides of the two support column plates are fixedly connected to an inclined bottom top plate, and the bottom of the inclined bottom top plate is an inclined surface, and the pushing column is located at the bottom of the inclined bottom top plate, and the bottom of the support plate The upper grinding block is fixedly connected with a discharge bin, the triangular column plate passes through the discharge bin, the lower grinding block is located in the middle of the discharge bin, the bottom of the discharge bin is conical, a rotating motor is fixedly installed on the outside of the discharge bin, the output end of the rotating motor is fixedly connected with a connecting gear, the outer side of the upper grinding block is fixedly connected with an outer gear ring, the outer gear ring and the connecting gear are meshed with each other, and the outer gear ring is located on the top of the support plate; when in use: by starting the rotating motor, the connecting gear is driven to rotate, and the upper grinding block is driven to rotate, so that the lower grinding block and the upper grinding block can grind the material, and at the same time, the upper grinding block drives The connecting middle column rotates, driving the rotating top plate to rotate, driving the pushing column to rotate, and the reset spring pushes the limit ring to make the pushing column close to the bottom of the inclined bottom top plate. Because the bottom of the inclined bottom top plate is an inclined surface, the pushing column can be pushed by the inclined surface when rotating, and at the same time, the reset spring rebounds to allow the pushing column to move up and down. When the pushing column moves downward, the pushing column is inserted into the feed trough to extrude the material, so that the material is divided by the dividing net and enters into strips between the lower grinding block and the upper grinding block for grinding, thereby enhancing the grinding effect. The ground material is discharged through the discharge bin.

[0006] Preferably, the top of the upper grinding block is rotatably connected to a storage ring, and the adjacent sides of the two support column plates are fixedly connected to a clamping column, the storage ring is fixedly connected between the two clamping columns, the top of the storage ring is fixedly connected to a fixed top ring, the fixed top ring is rotatably connected to the rotating top plate, the outer side of the storage ring is fixedly connected to a feed bin, the inner side of the rotating top plate is rotatably connected to three stirring shafts, the bottom of the stirring shaft is fixedly connected to a crushing roller, the outer side of the crushing roller is provided with crushing teeth, the top of the stirring shaft is fixedly connected to a self-rotating gear, and the top of the fixed top ring is fixedly connected to The inner gear ring, the self-rotating gear meshes with the inner side of the inner gear ring, the interior of the storage ring is fixedly connected with a bottom scraper, the bottom scraper is fitted with the top of the upper grinding block, the bottom of the rotating top plate is fixedly connected with a rotating inner disk, the rotating inner disk is rotatably connected to the bottom of the fixed top ring, the bottom of the rotating inner disk is fixedly connected with a lower gear ring, the inner wall of the storage ring is fixedly connected with two cutting clamps, the cutting clamps are located at both ends of the connection between the feed bin and the storage ring, the adjacent sides of the two cutting clamps are provided with a sliding groove, the middle of the sliding groove is fixedly connected with a slot block, the interior of the slot block is slidingly connected with the slot inner The two ends of the shaft in the groove are fixedly connected with a slitting slider, the slitting slider is slidably engaged with the inner side of the sliding groove, and the outer side of the shaft in the groove is movably sleeved with two slitting springs, which are respectively located at the top and bottom of the block in the groove. Three slitting steel wires are fixedly connected between the two slitting sliders, and the tops of the two slitting sliders are fixedly connected with a slitting push pin; when in use: before grinding, by injecting the material into the storage ring through the feed bin, rotating the top plate to rotate, it will drive the rotating inner disk to rotate, and drive the lower gear ring to rotate, the slitting push pin is located at the bottom of the lower gear ring, and is aligned with the bottom gear of the lower gear ring. The groove fits, and the slitting push column is pushed downward through the tooth groove to squeeze the slitting spring. When it is out of the tooth groove, the slitting spring rebounds and resets, so that the slitting slider can move up and down, and the slitting steel wire is divided to avoid the material from gathering into large blocks, which makes it difficult to enter the feed chute. Every time the top plate is rotated, the stirring shaft is driven to rotate, and the crushing roller and crushing teeth are driven to rotate to stir and crush the material. The stirring shaft is rotated by the self-rotating gear and the inner gear ring to enhance the crushing and stirring effect. The setting of the bottom scraper can prevent the material from accumulating on the top of the upper grinding block and make the material scraped toward the feed port.

[0007] The present invention provides a raw material processing device and a processing process for biopeptide processing through improvements. Compared with the prior art, it has the following improvements and advantages:

[0008] First: A raw material processing device for bio-peptide processing and a processing process thereof described in the present invention is started by rotating the motor to drive the connecting gear to rotate, and drive the upper grinding block to rotate, so that the lower grinding block and the upper grinding block can grind the material. At the same time, the upper grinding block drives the connecting middle column to rotate, drives the rotating top plate to rotate, drives the pushing column to rotate, and the return spring pushes the limiting ring to make the pushing column close to the bottom of the inclined bottom top plate. Because the bottom of the inclined bottom top plate is an inclined surface, the pushing column can be pushed by the inclined surface when rotating, and at the same time, the return spring rebounds to make the pushing column move up and down. When the pushing column moves downward, the pushing column is inserted into the feed trough to extrude the material, so that the material is divided by the dividing net and enters into strips between the lower grinding block and the upper grinding block for grinding, thereby enhancing the grinding effect, and the ground material is discharged through the discharge bin;

[0009] Second: The raw material processing device for bio-peptide processing described in the present invention and its processing technology, before grinding, by injecting the material into the interior of the storage ring through the feed bin, rotating the top plate to rotate, it will drive the rotating inner disk to rotate, drive the lower gear ring to rotate, the cutting push pin is located at the bottom of the lower gear ring, fits with the bottom tooth groove of the lower gear ring, pushes the cutting push pin downward through the tooth groove, squeezes the cutting spring, and rebounds and resets when it disengages from the tooth groove, so that the cutting slider can move up and down, so that the cutting steel wire is divided, and avoids the material from gathering into large blocks, which makes it difficult to enter the feed trough. Every time the top plate is rotated, it will drive the stirring shaft to rotate, drive the crushing roller and the crushing teeth to rotate, stir and crush the material, and make the stirring shaft rotate by the self-rotating gear and the inner gear ring to enhance the crushing and stirring effect. By setting the bottom scraper, it can prevent the material from accumulating on the top of the upper grinding block and make the material scraped toward the feed port;

[0010] Summary: The raw material processing device for bio-peptide processing and its processing process described in the present invention adopt a grinding method to better crush the bio-peptide. At the same time, a special structural design is used to repeatedly squeeze and cut the material during the grinding process to improve the crushing effect, thereby effectively solving the problem of strong viscosity and easy agglomeration between bio-peptide particles. The present invention also focuses on environmental protection and energy saving, avoids the problem of high temperature easily generated by traditional crushing devices, reduces the impact on the quality of bio-peptides, meets the requirements of sustainable development, realizes efficient crushing and processing of bio-peptides, and solves the problem of poor crushing effect of bio-peptides by traditional crushing devices. At the same time, through a specially designed feed trough and an up and down moving crushing device, the bio-peptide particles are more uniform during the crushing process, thereby improving the quality of the product. In addition, the present invention also adopts a special material stirring and crushing device, so that the material is fully stirred and crushed before grinding, further improving the grinding effect and processing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] The present invention will be further explained below in conjunction with the accompanying drawings and examples:

[0012] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0013] Figure 2 It is a schematic diagram of the support column plate structure of the present invention;

[0014] Figure 3 It is a schematic structural diagram of the lower grinding block of the present invention;

[0015] Figure 4 is a schematic cross-sectional view of the upper grinding block of the present invention;

[0016] Figure 5 It is a schematic structural diagram of the feed bin of the present invention;

[0017] Figure 6 It is a schematic diagram of the structure of the inner gear ring of the present invention;

[0018] Figure 7 It is a schematic structural diagram of the pusher column of the present invention;

[0019] Figure 8 It is a schematic diagram of the material storage ring structure of the present invention;

[0020] Figure 9 It is a schematic diagram of the slitting steel wire structure of the present invention.

[0021] Description of reference numerals:

[0022] 1. Support column plate; 2. Lower grinding block; 3. Upper grinding block; 4. Outer gear ring; 5. Rotating motor; 6. Connecting gear; 7. Cutting net; 8. Feed bin; 9. Support plate; 10. Triangular prism plate; 11. Discharge bin; 12. Clamping column; 13. Slanted bottom top plate; 14. Storage ring; 15. Fixed top ring; 16. Bottom scraper; 17. Rotating top plate; 18. Connecting middle column; 19. Pushing column; 20. Limiting ring; 21. Return spring; 22. Fixed cylinder; 23. Sealing ring; 24. Inner gear ring; 25. Stirring shaft; 26. Rotating gear; 27. Crushing roller; 28. Crushing teeth; 29. ​​Rotating inner disk; 30. Lower gear ring; 31. Cutting clamp; 32. Slot middle block; 33. Slot inner shaft; 34. Cutting slider; 35. Cutting spring; 36. Cutting push column; 37. Cutting steel wire. DETAILED DESCRIPTION

[0023] The present invention is described in detail below, clearly and completely describing the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0024] The present invention provides a raw material processing device and a processing process for biopeptide processing through improvement. The technical solution of the present invention is:

[0025] like Figures 1-9 As shown, a raw material processing device for bio-peptide processing and a processing process thereof include two supporting column plates 1, the inner sides of the two supporting column plates 1 are fixedly connected to two triangular column plates 10, the inner sides of the four triangular column plates 10 are fixedly connected to the lower grinding block 2, the inner sides of the two supporting column plates 1 are fixedly connected to the supporting plate 9, the inner side of the supporting plate 9 is rotatably connected to the upper grinding block 3, the upper grinding block 3 is located on the top of the lower grinding block 2, a feed trough is provided inside the upper grinding block 3, a dividing net 7 is installed inside the feed trough, the top of the upper grinding block 3 is fixedly connected to a connecting middle column 18, and the top of the connecting middle column 18 is fixedly connected to a rotating top plate 17. The top of the rotating top plate 17 is fixedly connected with a fixed cylinder 22, and the interior of the fixed cylinder 22 is fixedly connected with a sealing ring 23. The inner side of the sealing ring 23 is slidably connected with a pushing column 19. The pushing column 19 is located at the top of the feed trough, and the side of the pushing column 19 is fixedly connected with a limiting ring 20. The bottom of the limiting ring 20 is fixedly connected with a return spring 21. The return spring 21 is installed inside the fixed cylinder 22. The inner sides of the two support column plates 1 are fixedly connected with an inclined bottom top plate 13. The bottom of the inclined bottom top plate 13 is an inclined surface. The pushing column 19 is located at the bottom of the inclined bottom top plate 13. The bottom of the support plate 9 is fixedly connected with a discharge bin 11. The column plate 10 passes through the discharge bin 11, the lower grinding block 2 is located in the middle of the discharge bin 11, the bottom of the discharge bin 11 is conical, and a rotating motor 5 is fixedly installed on the outside of the discharge bin 11. The output end of the rotating motor 5 is fixedly connected to the connecting gear 6. The outer side of the upper grinding block 3 is fixedly connected to the outer gear ring 4. The outer gear ring 4 and the connecting gear 6 are meshed with each other. The outer gear ring 4 is located on the top of the support plate 9; when in use: by starting the rotating motor 5, the connecting gear 6 is driven to rotate, and the upper grinding block 3 is driven to rotate, so that the lower grinding block 2 and the upper grinding block 3 can grind the material. At the same time, the upper grinding block 3 drives the connecting middle column 18 to rotate, driving the rotation The top plate 17 rotates, driving the pushing column 19 to rotate, and the return spring 21 pushes the limit ring 20, so that the pushing column 19 is close to the bottom of the inclined bottom top plate 13. Because the bottom of the inclined bottom top plate 13 is an inclined surface, the pushing column 19 can be pushed by the inclined surface when rotating, and at the same time, the return spring 21 rebounds, so that the pushing column 19 can move up and down. When the pushing column 19 moves downward, the pushing column 19 is inserted into the feed trough to extrude the material, so that the material is divided by the dividing net 7 and enters between the lower grinding block 2 and the upper grinding block 3 into strips for grinding, thereby enhancing the grinding effect. The ground material is discharged through the discharge bin 11.

[0026] Furthermore, the top of the upper grinding block 3 is rotatably connected to a storage ring 14, and the adjacent sides of the two support column plates 1 are fixedly connected to a clamping column 12. The storage ring 14 is fixedly connected between the two clamping columns 12. The top of the storage ring 14 is fixedly connected to a fixed top ring 15, and the fixed top ring 15 is rotatably connected to the rotating top plate 17. The outside of the storage ring 14 is fixedly connected to a feed bin 8, and the inside of the rotating top plate 17 is rotatably connected to three stirring shafts 25. The bottom of the stirring shaft 25 is fixedly connected to a crushing roller 27, and the outer side of the crushing roller 27 is provided with a crushing tooth 28. The top of the stirring shaft 25 is fixedly connected to a self-rotating gear 26, and the top of the fixed top ring 15 is fixedly connected to an inner gear ring 24. The rotating gear 26 is meshed with the inner side of the inner gear ring 24. The interior of the storage ring 14 is fixedly connected with a bottom scraper 16, which fits with the top of the upper grinding block 3. The bottom of the rotating top plate 17 is fixedly connected with a rotating inner disk 29. The rotating inner disk 29 is rotatably connected to the bottom of the fixed top ring 15. The bottom of the rotating inner disk 29 is fixedly connected with a lower gear ring 30. The inner wall of the storage ring 14 is fixedly connected with two cutting clamps 31. The cutting clamps 31 are located at both ends of the connection between the feed bin 8 and the storage ring 14. A sliding groove is provided on the adjacent side of the two cutting clamps 31. The middle of the sliding groove is fixedly connected with a groove block 32. The inner sliding card of the groove block 32 is connected with the groove shaft 33. The groove shaft 33 is fixed with the inner sliding card of the groove shaft 33. The two ends of 3 are fixedly connected with a slitting slider 34, and the slitting slider 34 is slidably engaged with the inner side of the sliding groove. The outer side of the shaft 33 in the groove is movably sleeved with two slitting springs 35. The two slitting springs 35 are respectively located at the top and bottom of the block 32 in the groove. Three slitting steel wires 37 are fixedly connected between the two slitting sliders 34, and the tops of the two slitting sliders 34 are fixedly connected with a slitting push pin 36; when in use: before grinding, by injecting the material into the interior of the storage ring 14 through the feed bin 8, when the top plate 17 is rotated, the rotating inner disk 29 is driven to rotate, and the lower gear ring 30 is driven to rotate. The slitting push pin 36 is located at the bottom of the lower gear ring 30 and is engaged with the bottom gear of the lower gear ring 30. The groove fits, and the slitting push column 36 is pushed downward through the tooth groove, squeezing the slitting spring 35. When it is out of the tooth groove, the slitting spring 35 rebounds and resets, so that the slitting slider 34 can move up and down, and the slitting steel wire 37 is divided to prevent the material from gathering into large blocks, which makes it difficult to enter the feed chute. Every time the top plate 17 is rotated, the stirring shaft 25 is driven to rotate, and the crushing roller 27 and the crushing teeth 28 are driven to rotate to stir and crush the material. The stirring shaft 25 is rotated by the self-rotating gear 26 and the inner gear ring 24 to enhance the crushing and stirring effect. The setting of the bottom scraper 16 can prevent the material from accumulating on the top of the upper grinding block 3, and the material is scraped toward the feed port.

[0027] Working principle: When in use: start by rotating the motor 5, drive the connecting gear 6 to rotate, drive the upper grinding block 3 to rotate, so that the lower grinding block 2 and the upper grinding block 3 can grind the material. At the same time, the upper grinding block 3 drives the connecting middle column 18 to rotate, drives the rotating top plate 17 to rotate, drives the pushing column 19 to rotate, and the return spring 21 pushes the limiting ring 20, so that the pushing column 19 is close to the bottom of the inclined bottom top plate 13. Because the bottom of the inclined bottom top plate 13 is an inclined surface, the pushing column 19 can be pushed by the inclined surface when rotating, and at the same time, it rebounds through the return spring 21, so that the pushing column 19 can move up and down. When the pushing column 19 moves downward, the pushing column 19 is inserted into the feed chute to extrude the material, so that the material is divided by the dividing net 7 and enters into strips between the lower grinding block 2 and the upper grinding block 3 for grinding, thereby enhancing the grinding effect. The ground material is discharged through the discharge bin 11. Before grinding, the material is passed through the feed bin The slitting spring 35 is pushed downward by the cutting push post 36 through the tooth groove, squeezing the cutting spring 35. When the cutting push post 36 is released from the tooth groove, the cutting spring 35 rebounds and resets, so that the cutting slider 34 can move up and down, so that the cutting steel wire 37 is cut to prevent the material from gathering into large blocks and making it difficult to enter the feed chute. Every time the top plate 17 is rotated, the stirring shaft 25 is driven to rotate, and the crushing roller 27 and the crushing teeth 28 are driven to rotate to stir and crush the material. The stirring shaft 25 is rotated by the self-rotating gear 26 and the inner gear ring 24, thereby enhancing the crushing and stirring effect. The arrangement of the bottom scraper 16 can prevent the material from accumulating on the top of the upper grinding block 3 and make the material scraped toward the feed port.

[0028] The above description is intended to enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A raw material processing device for biopeptide processing, comprising two support columns (1), characterized in that: The inner sides of the two support column plates (1) are respectively fixedly connected to two triangular column plates (10), the inner sides of the four triangular column plates (10) are fixedly connected to the lower grinding block (2), the inner sides of the two support column plates (1) are fixedly connected to the support plate (9), the inner sides of the support plate (9) are rotatably connected to the upper grinding block (3), the upper grinding block (3) is located at the top of the lower grinding block (2), a feed trough is provided inside the upper grinding block (3), a dividing net (7) is installed inside the feed trough, the top of the upper grinding block (3) is fixedly connected to a connecting middle column (18), the top end of the connecting middle column (18) is fixedly connected to a rotating top plate (17), the top of the rotating top plate (17) is fixedly connected to a fixed cylinder (22), the interior of the fixed cylinder (22) is fixedly connected to a sealing ring (23), the inner side of the sealing ring (23) is slidably connected to a pushing column (19), and the pushing column (19) is located at the top of the feeding trough.

2. The raw material processing device for biopeptide processing according to claim 1, characterized in that: The side of the pushing column (19) is fixedly connected to a limiting ring (20), the bottom of the limiting ring (20) is fixedly connected to a return spring (21), and the return spring (21) is installed inside a fixed cylinder (22). The inner sides of the two supporting column plates (1) are fixedly connected to an inclined bottom top plate (13), the bottom of the inclined bottom top plate (13) is an inclined surface, and the pushing column (19) is located at the bottom of the inclined bottom top plate (13).

3. The raw material processing device for biopeptide processing according to claim 2, characterized in that: The bottom of the support plate (9) is fixedly connected to a discharge bin (11), the triangular column plate (10) passes through the discharge bin (11), the lower grinding block (2) is located in the middle of the discharge bin (11), and the bottom of the discharge bin (11) is conical.

4. The raw material processing device for biopeptide processing according to claim 3, characterized in that: A rotating motor (5) is fixedly installed on the outside of the discharge bin (11), and the output end of the rotating motor (5) is fixedly connected to a connecting gear (6). An outer gear ring (4) is fixedly connected to the outside of the upper grinding block (3), and the outer gear ring (4) and the connecting gear (6) are meshed with each other. The outer gear ring (4) is located on the top of the support plate (9).

5. The raw material processing device for biopeptide processing according to claim 4, characterized in that: The top of the upper grinding block (3) is rotatably connected to a material storage ring (14), and adjacent sides of the two support column plates (1) are fixedly connected to clamping columns (12). The material storage ring (14) is fixedly connected between the two clamping columns (12). The top of the material storage ring (14) is fixedly connected to a fixed top ring (15), and the fixed top ring (15) is rotatably connected to a rotating top plate (17). The outer side of the material storage ring (14) is fixedly connected to a feed bin (8).

6. The raw material processing device for biopeptide processing according to claim 5, characterized in that: The rotating top plate (17) is internally rotatably connected to three stirring shafts (25), the bottom of the stirring shaft (25) is fixedly connected to a crushing roller (27), the outer side of the crushing roller (27) is provided with a crushing tooth (28), the top of the stirring shaft (25) is fixedly connected to a self-rotating gear (26), the top of the fixed top ring (15) is fixedly connected to an inner gear ring (24), and the self-rotating gear (26) is engaged with the inner side of the inner gear ring (24).

7. The raw material processing device for bio-peptide processing according to claim 6, characterized in that: A bottom scraper (16) is fixedly connected to the interior of the material storage ring (14), and the bottom scraper (16) is in contact with the top of the upper grinding block (3).

8. The raw material processing device for bio-peptide processing according to claim 6, characterized in that: The bottom of the rotating top plate (17) is fixedly connected to a rotating inner disk (29), which is rotatably connected to the bottom of the fixed top ring (15). The bottom of the rotating inner disk (29) is fixedly connected to a lower gear ring (30). The inner wall of the storage ring (14) is fixedly connected to two cutting clamps (31). The cutting clamps (31) are located at both ends of the connection between the feed bin (8) and the storage ring (14). A sliding groove is provided on the adjacent side of the two cutting clamps (31). A groove middle block (32) is fixedly connected to the middle of the sliding groove. The middle block (32) is internally slidably connected to a slot shaft (33), and both ends of the slot shaft (33) are fixedly connected to slitting sliders (34). The slitting sliders (34) are slidably connected to the inner side of the sliding slot. The outer side of the slot shaft (33) is movably sleeved with two slitting springs (35). The two slitting springs (35) are respectively located at the top and bottom of the slot middle block (32). Three slitting steel wires (37) are fixedly connected between the two slitting sliders (34), and the tops of the two slitting sliders (34) are fixedly connected to slitting push columns (36).

9. A processing process for a raw material processing device for bio-peptide processing according to any one of claims 1 to 8, characterized in that: The rotating motor (5) is started, driving the connecting gear (6) to rotate, driving the upper grinding block (3) to rotate, so that the lower grinding block (2) and the upper grinding block (3) can grind the material. At the same time, the upper grinding block (3) drives the connecting middle column (18) to rotate, drives the rotating top plate (17) to rotate, drives the pushing column (19) to rotate, and the return spring (21) pushes the limiting ring (20) so that the pushing column (19) is closely attached to the bottom of the inclined bottom top plate (13). The bottom of the inclined bottom top plate (13) is an inclined surface, so that the pushing column (19) can be pushed by the inclined surface when rotating, and at the same time, it rebounds through the return spring (21) so that the pushing column (19) can move up and down. When the pushing column (19) moves downward, the pushing column (19) is inserted into the feeding trough to extrude the material, so that the material is divided by the dividing net (7) and enters the space between the lower grinding block (2) and the upper grinding block (3) into strips for grinding.