Konjac vegetarian fish skin processing device and method

By designing a konjac fish skin processing device with curved blades and an adjustment mechanism, mechanical cutting of konjac dough into strip-shaped semi-finished fish skin was achieved, solving the problems of forming efficiency and cost, and improving taste and processing efficiency.

CN121128754APending Publication Date: 2025-12-16SICHUAN WANLIANG FOOD TECH CO LTD
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Patent Information

Application Number
CN202511595052.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-03
Publication Date
2025-12-16

AI Technical Summary

Technical Problem

Existing vegetarian fish skin processing equipment is efficient in mold pressing but produces poor results, while manual cutting and shaping, although closely resembles the actual texture of fish skin, is costly. It is difficult to improve the texture and reduce costs at the same time.

Method used

A konjac fish skin processing device was designed, which uses an arc-shaped blade and an adjustment mechanism to mechanically cut konjac dough into strip-shaped semi-finished fish skin. The device utilizes the interlacing cutting and deflection function of the arc-shaped blade to simulate the appearance of fish skin, and improves cutting efficiency and accuracy through drive components and elastic components.

Benefits of technology

It improves the texture of konjac fish skin, reduces processing costs, and increases processing efficiency and cutting precision, thus better simulating the appearance of fish skin.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a konjac vegetarian fish skin processing device and method, and belongs to the technical field of konjac vegetarian fish skin processing device.The konjac vegetarian fish skin processing device comprises a frame body; the protective cover is fixedly connected to the top of the frame body; the supporting frame is fixedly connected to the bottom of the frame body; the hollow interlayer frame is arranged between the inner walls of the frame body, and arc-shaped blades are arranged on the upper inner wall and the lower inner wall of the hollow interlayer frame in a sliding mode; the adjusting mechanisms are arranged on the inner surface and the outer surface of the frame body, and the adjusting mechanisms are connected with the two hollow interlayer frames and used for moving the two hollow interlayer frames, so that the two arc-shaped blades contract and move in the two hollow interlayer frames in a staggered mode; the two arc-shaped blades can cut the strip-shaped semi-finished vegetarian fish skin in a staggered mode, the two arc-shaped blades cut the strip-shaped semi-finished vegetarian fish skin in a staggered mode, the konjak vegetarian fish skin better fits the appearance of the fish skin, the taste effect of the konjak vegetarian fish skin is improved, and the processing cost of the konjak vegetarian fish skin is reduced.
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Description

Technical Field

[0001] This invention belongs to the technical field of konjac fish skin processing equipment, specifically relating to a konjac fish skin processing equipment and method. Background Technology

[0002] Konjac (scientific name Amorphophallus konjac), commonly known as devil's tongue or konjac, is a perennial herbaceous plant belonging to the genus Amorphophallus in the family Araceae. In ancient China, it was also called "demon's tongue." Konjac has long been known for its ability to "remove intestinal waste." It is believed to have multiple functions, including lowering blood sugar, blood lipids, and blood pressure, detoxifying, beautifying the skin, improving blood circulation, aiding weight loss, relieving constipation, and stimulating appetite. It is considered a health food. However, the entire konjac plant is poisonous, with the tuber being the most toxic part. It should not be eaten raw and must be processed before consumption. Symptoms of poisoning include burning, itching, pain, and swelling of the tongue and throat. A folk remedy involves taking or gargling with a mixture of vinegar and a little ginger juice.

[0003] Vegetarian fish skin is a vegetarian product, typically made from plant-based ingredients, used to mimic the texture and flavor of fish skin. The main ingredients include soy protein, starch, dietary fiber, and various seasonings. These ingredients are processed to create a vegetarian product with the texture and taste of fish skin. Vegetarian fish skin has a crispy texture and unique flavor similar to fish skin, offering a delicious and satisfying taste, while avoiding the potential health risks associated with traditional fish skin. Konjac vegetarian fish skin, on the other hand, is made from non-toxic konjac.

[0004] Vegetarian fish skin processing equipment is a specialized piece of equipment designed for the production of vegetarian fish skin. It aims to improve production efficiency, ensure product quality, and meet market demands. Vegetarian fish skin processing equipment typically consists of the following main parts: raw material pretreatment equipment, forming equipment, seasoning and marinating equipment, baking or frying equipment, and cooling and packaging equipment. Among them, the forming equipment shapes the konjac dough into shapes and sizes similar to fish skin using molds or by hand. The forming equipment may include a sheet press, molds, etc., used to press the dough into the required shape.

[0005] Existing methods for making vegetarian fish skin involve pressing konjac dough into shape using molds or cutting it by hand. Of these two methods, mold pressing is faster but produces poor results, and the finished vegetarian fish skin does not have a texture similar to real fish skin. Hand cutting produces a texture similar to real fish skin but is more expensive. Therefore, we propose a processing device and method for konjac vegetarian fish skin. Summary of the Invention

[0006] The purpose of this invention is to provide a konjac fish skin processing device and method, which aims to produce konjac fish skin that conforms to the appearance of fish skin by mechanically cutting strip-shaped semi-finished konjac dough. This not only improves the taste of konjac fish skin but also reduces the processing cost.

[0007] To achieve the above objectives, the present invention provides the following technical solution: A konjac fish skin processing device, comprising a frame; A protective cover, which is fixedly connected to the top of the frame; A support frame, which is fixedly connected to the bottom of the frame body; A hollow mezzanine shelf, wherein the hollow mezzanine shelf is disposed between the inner walls of a frame, and both the upper and lower inner walls of the hollow mezzanine shelf are equipped with sliding arc-shaped blades; and An adjustment mechanism is provided on the inner and outer surfaces of the frame and is connected to two hollow mezzanine shelves for moving the two hollow mezzanine shelves.

[0008] In a preferred embodiment of the present invention, the adjusting mechanism includes a driving assembly, a connecting rod assembly, an elastic assembly, a deflection assembly, a pushing assembly, an auxiliary assembly, and a conveying assembly. The conveying assembly is disposed between the inner walls of the frame and is located on the lower side of the hollow sandwich frame. The auxiliary assembly is disposed between the inner walls of the frame and is located at both sides of the hollow sandwich frame, with the auxiliary assembly corresponding vertically to the conveying assembly. The deflection assembly is disposed at both sides of the frame and is connected to the hollow sandwich frame. The pushing assembly is disposed at the bottom of the frame and is connected to the deflection assembly. The connecting rod assembly is disposed at the upper and lower sides of the hollow sandwich frame and is connected to two arc-shaped blades. The driving assembly is disposed on one side of the hollow sandwich frame and is connected to the connecting rod assembly. Two sets of elastic components are disposed at the upper and lower sides of the hollow sandwich frame and are connected to the two arc-shaped blades.

[0009] In a preferred embodiment of the present invention, the driving assembly includes a rotating sleeve, a first turntable, a driven gear, a driving gear, a third motor, a rotating groove, and a supporting sleeve. The rotating sleeve is fixedly connected to the side end of the hollow sandwich frame. The rotating groove is formed through the upper and lower side ends of the hollow sandwich frame. The supporting sleeve is fixedly connected to the side end of the hollow sandwich frame and is located between the inner walls of the rotating sleeve. The first turntable is rotatably connected between the circumferential inner walls of the supporting sleeve and between the circumferential inner walls of the rotating groove. The driven gear is fixedly connected between the inner walls of the first turntable. The driving gear is disposed between the inner walls of the rotating sleeve and meshes with the driven gear. The third motor is fixedly connected to the top of the rotating sleeve, and the output end of the third motor extends to the inner walls of the rotating sleeve and is connected to the driving gear.

[0010] In a preferred embodiment of the present invention, the driving assembly includes a rotating sleeve, a first turntable, a driven gear, a driving gear, a third motor, a rotating groove, and a supporting sleeve. The rotating sleeve is fixedly connected to the side end of the hollow sandwich frame. The rotating groove is formed through the upper and lower side ends of the hollow sandwich frame. The supporting sleeve is fixedly connected to the side end of the hollow sandwich frame and is located between the inner walls of the rotating sleeve. The first turntable is rotatably connected between the circumferential inner walls of the supporting sleeve and between the circumferential inner walls of the rotating groove. The driven gear is fixedly connected between the inner walls of the first turntable. The driving gear is disposed between the inner walls of the rotating sleeve and meshes with the driven gear. The third motor is fixedly connected to the top of the rotating sleeve, and the output end of the third motor extends to the inner walls of the rotating sleeve and is connected to the driving gear.

[0011] In a preferred embodiment of the present invention, the elastic component includes an elastic sleeve, a spring, a push block, a push rod, and a connecting block. Two elastic sleeves are provided, fixedly connected to the side ends of the hollow sandwich frame, and located on both sides of the slide groove. Two push blocks are provided, sliding between the inner walls of the two elastic sleeves. Two springs are provided, positioned between the inner walls of the elastic sleeves, with one end fixedly connected to the inner wall of the two elastic sleeves and the other end fixedly connected to the two push blocks. Two connecting blocks are provided, fixedly connected to the side ends of the arc-shaped blade. Two push rods are provided, movably inserted into one end of the elastic sleeve, with one end fixedly connected to the two push blocks and the other end fixedly connected to the two connecting blocks.

[0012] In a preferred embodiment of the present invention, the pushing assembly includes a fourth motor, a sliding sleeve, an auxiliary support block, a lead screw, rail blocks, and tracks. The fourth motor is fixedly connected to the bottom of the frame, the auxiliary support block is fixedly connected to the top of the frame and corresponds to the fourth motor, the lead screw is fixedly connected to the output end of the fourth motor, and the other end of the lead screw is rotatably connected to the auxiliary support block. Two tracks are provided, both of which are fixedly connected to the bottom of the frame and located on both sides of the lead screw. The sliding sleeve is fitted onto the circumferential surface of the lead screw and is located between the two tracks. Two rail blocks are provided, and the two rail blocks slide between the inner walls of the two tracks. Both rail blocks are connected to the sliding sleeve.

[0013] In a preferred embodiment of the present invention, the deflection assembly includes a rotating rod, a second push rod, a second pull rod, and a second turntable. Two second turntables are provided, and the two second turntables are rotatably connected between the inner walls of the frame through a rotating shaft. The rotating shafts of the two second turntables extend to the two side ends of the frame. Two second pull rods are provided, and the two second pull rods are fixedly connected to the extended ends of the rotating shafts of the two second turntables. Two rotating rods are provided, and the two rotating rods are fixedly connected to the side ends of the two rail blocks. Two second push rods are provided, and the two second push rods are rotatably connected to the side ends of the two rotating rods, and the other ends of the two second push rods are rotatably connected to the two second pull rods.

[0014] In a preferred embodiment of the present invention, the conveying assembly includes a hollow platform, a rotating drum, a conveyor belt, and a first motor. The hollow platform is fixedly connected to the inner wall of the frame and is located at the bottom of two arc-shaped blades. Two rotating drums are provided, and the two rotating drums are rotatably connected to the inner wall of the frame through a rotating shaft. The two rotating drums are located on both sides of the hollow platform, and one of the rotating shafts of the two rotating drums extends to the side end of the frame. The conveyor belt is sleeved on the guide pressure plate and the circumferential surface of the two rotating drums. The first motor is fixedly connected to the side end of the frame, and the output end of the first motor is fixedly connected to the extension end of the rotating shaft of the rotating drum.

[0015] In a preferred embodiment of the present invention, the auxiliary component includes a pressure roller, a second motor, and a guide plate. Two pressure rollers are provided, and the two pressure rollers are rotatably connected between the inner walls of the frame through a rotating shaft. The two pressure rollers extend to the side ends of the frame. Two second motors are provided, and the two second motors are fixedly connected to the side ends of the frame. The output ends of the two second motors are fixedly connected to the extension ends of the rotating shafts of the two pressure rollers. The guide plate is fixedly connected between the inner walls of the frame. The guide plate is located between the two pressure rollers and is located above the two arc-shaped blades.

[0016] A method for processing konjac fish skin includes the following steps: S1. Raw material conveying: When the power is turned on, the first motor and two second motors are started. The output of the first motor drives a rotating drum to rotate. The rotating drum pulls the conveyor belt to rotate, and the conveyor belt pulls the other rotating drum to rotate. The strip of semi-finished vegetarian fish skin is placed between the conveyor belt and a pressure roller. The strip of semi-finished vegetarian fish skin is moved by the conveyor belt to the bottom of the two arc-shaped blades, thereby realizing the raw material transportation of the strip of semi-finished vegetarian fish skin. S2, Tighten and Set: During the raw material conveying process, two second motors are started by powering on. The output ends of the two second motors drive two pressure rollers to rotate. The two pressure rollers, in conjunction with the hollow platform, squeeze the strip of semi-finished vegetarian fish skin. At the same time, the output end of the front pressure roller rotates at a lower speed than the output end of the rear pressure roller, which results in different speeds for the two pressure rollers. This causes the two pressure rollers to slightly tighten the strip of semi-finished vegetarian fish skin conveyed by the conveyor belt under the two curved blades, thereby achieving the tightening and shaping of the strip of semi-finished vegetarian fish skin. S3, staggered cutting: After the raw materials are conveyed, the third motor is started by powering on. The output end of the third motor drives the drive gear to rotate. The drive gear drives the driven gear to rotate through meshing with the driven gear. The driven gear drives the first turntable to rotate in the rotating groove. The first turntable rotates and pulls the two first pull rods to move. By using the staggered movement of the two first pull rods, the two first push rods are pulled to move in an alternating manner. The two first push rods pull the two sliders to slide in an alternating manner in the two sliding grooves. This causes the two arc-shaped blades to retract and move in an alternating manner in the two hollow sandwich frames. This allows the two arc-shaped blades to cut the strip-shaped semi-finished vegetarian fish skin in an alternating manner. S4, Enhanced Cutting: During the interlacing cutting process of the two arc-shaped blades, when one of the first pull rods pulls the first push rod, the first push rod pulls the slider, causing the arc-shaped blade to retract into the hollow sandwich frame. The hollow sandwich frame causes the two connecting blocks to move closer to the hollow sandwich frame. The two connecting blocks push the two push rods into the two elastic sleeves. The two push rods squeeze the two push blocks, and the two push blocks push the two springs to contract and deform. When one of the first pull rods releases the pull on the first push rod, the two springs reset and push the two push blocks reset. The two push blocks push the two push rods out of the two elastic sleeves. The two push rods push the two connecting blocks away from the hollow sandwich frame. Then, the two connecting blocks apply pressure and push the arc-shaped blade out of the hollow sandwich frame, so that the hollow sandwich frame can perform enhanced cutting on the strip-shaped semi-finished vegetarian fish skin. S5. Bevel angle adjustment: During the cutting process of the strip-shaped semi-finished vegetarian fish skin, the fourth motor is started by powering on. The output end of the fourth motor drives the lead screw to rotate. The lead screw pushes the sliding sleeve to slide back and forth in the two tracks through the sliding cooperation with the sliding sleeve. The two tracks push the two rotating rods to move. The two rotating rods drive the two second push rods to move. The two second push rods push and pull the two second pull rods. The two second pull rods drive the two second turntables to deflect. The two second turntables drive the hollow sandwich frame to deflect. The hollow sandwich frame then drives the two arc-shaped blades to deflect within the frame, so that the angle between the two arc-shaped blades and the semi-finished vegetarian fish skin can be deflected by ±15 degrees, so as to adjust the oblique cutting angle of the finished vegetarian fish skin scales.

[0017] Compared with the prior art, the beneficial effects of the present invention are: In this design, during the extension and retraction of the two curved blades, the first turntable rotates while simultaneously pulling two first levers. One of the first levers is in a pushing state, while the other is in a pulling state, causing the two levers to move in a staggered manner. The two levers pull the two first push rods alternately, which in turn pull the two sliders alternately within the two grooves. This causes the two curved blades to retract alternately within the two hollow sandwich frames, enabling them to cut the strip-shaped semi-finished vegetarian fish skin in an alternating manner. By alternatingly cutting the strip-shaped semi-finished vegetarian fish skin with the two curved blades, the konjac vegetarian fish skin becomes more closely aligned with the appearance of fish skin, improving both the texture and the processing cost.

[0018] In this scheme, when the two arc-shaped blades are moved in a staggered manner, the third motor is started by power. The output end of the third motor drives the drive gear to rotate. The drive gear drives the driven gear to rotate through meshing with the driven gear. The driven gear drives the first turntable to rotate in the rotating groove. The first turntable pulls the two first pull rods to move by rotating, providing power for the movement of the two arc-shaped blades. The two arc-shaped blades are used to cut the surface of the strip-shaped semi-finished vegetarian fish skin, thereby cutting the strip-shaped semi-finished vegetarian fish skin into finished konjac vegetarian fish skin and improving the processing efficiency of the konjac vegetarian fish skin processing device.

[0019] In this scheme, during the movement of the two arc-shaped blades and the staggered cutting process of the two arc-shaped blades, when one of the two first pull rods pulls the first push rod, the first push rod pulls the slider, causing the arc-shaped blade to retract into the hollow sandwich frame. The hollow sandwich frame causes the two connecting blocks to move closer to the hollow sandwich frame. The two connecting blocks push the two push rods into the two elastic sleeves. The two push rods squeeze the two push blocks, and the two push blocks push the two springs to contract and deform. When one of the two first pull rods releases the pull on the first push rod, the two springs reset and push the two push blocks reset. The two push blocks push the two push rods out of the two elastic sleeves. The two push rods push the two connecting blocks away from the hollow sandwich frame. Then, the two connecting blocks pressurize and push the arc-shaped blade out of the hollow sandwich frame, so that the hollow sandwich frame can perform enhanced cutting of the strip-shaped semi-finished konjac fish skin, thereby enhancing the cutting ability of the konjac fish skin processing device on konjac fish skin.

[0020] In this solution, during the cutting of the strip-shaped semi-finished vegetarian fish skin, the fourth motor is started by powering on. The output end of the fourth motor drives the lead screw to rotate. The lead screw, through its sliding engagement with the sliding sleeve, pushes the sliding sleeve to slide back and forth within two tracks. The two tracks push two rotating rods to move, which in turn drive two second push rods to move. The two second push rods push and pull two second pull rods, which in turn drive two second turntables to deflect. The two second turntables drive the hollow sandwich frame to deflect, which in turn drives two arc-shaped blades to deflect within the frame. This allows the angle between the two arc-shaped blades and the semi-finished vegetarian fish skin to deflect by ±15 degrees, achieving adjustment of the oblique cutting angle of the finished vegetarian fish skin scales. This increases the cutting angle adjustment function of the konjac vegetarian fish skin processing device, thereby improving the processing applicability of the konjac vegetarian fish skin processing device.

[0021] In this scheme, during the raw material conveying process, two second motors are started by power. The output ends of the two second motors drive two pressure rollers to rotate. The two pressure rollers, in conjunction with the hollow platform, squeeze the strip of semi-finished vegetarian fish skin. At the same time, the output end of the front pressure roller rotates at a lower speed than the output end of the rear pressure roller, resulting in a difference in the rotation speeds of the two pressure rollers. This causes the two pressure rollers to slightly tighten the strip of semi-finished vegetarian fish skin conveyed by the conveyor belt under the two curved blades, thereby achieving the tightening and shaping of the strip of semi-finished vegetarian fish skin. This facilitates the cutting of the strip of semi-finished vegetarian fish skin by the two curved blades, thereby enhancing the precision cutting of the konjac vegetarian fish skin by the processing device. Attached Figure Description

[0022] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings: Figure 1 This is a first-view perspective perspective view of a konjac fish skin processing device according to the present invention; Figure 2 This is a second-view perspective perspective view of a konjac fish skin processing device according to the present invention; Figure 3 This is a half-sectional view of a konjac fish skin processing device according to the present invention; Figure 4 This is a first-view perspective perspective view of the adjustment mechanism of a konjac fish skin processing device according to the present invention; Figure 5 This is a second-view perspective perspective view of the adjustment mechanism of a konjac fish skin processing device according to the present invention; Figure 6 This is a half-sectional view of the adjustment mechanism of a konjac fish skin processing device according to the present invention; Figure 7 This is an exploded view of the adjustment mechanism of a konjac fish skin processing device according to the present invention; Figure 8 This is a first half-sectional view of the drive assembly, connecting rod assembly, and elastic assembly of the konjac fish skin processing device of the present invention. Figure 9 This invention relates to a konjac fish skin processing device. Figure 8 Enlarged view of point A; Figure 10 This is a second half-sectional view of the drive assembly, connecting rod assembly, and elastic assembly of a konjac fish skin processing device of the present invention. Figure 11 This is an exploded view of the drive assembly, connecting rod assembly, and elastic assembly of a konjac fish skin processing device according to the present invention. Figure 12 This is an exploded view of the pushing component and deflection component of a konjac fish skin processing device according to the present invention.

[0023] In the diagram: 1. Frame; 2. Support frame; 3. Hollow platform; 4. Guide pressure plate; 5. Rotary drum; 6. Conveyor belt; 7. Pressure roller; 8. Second motor; 9. Hollow sandwich frame; 10. Arc-shaped blade; 11. Slide groove; 12. Slider; 13. First push rod; 14. First pull rod; 15. Elastic sleeve; 16. Spring; 17. Push block; 18. Push rod; 19. Connecting block; 20. Rotating sleeve; 21. First turntable; 22. Driven gear; 23. Drive gear; 24. Third motor; 25. Rotary groove; 26. Fourth motor; 27. Slide sleeve; 28. Auxiliary support block; 29. ​​Lead screw; 30. Rail block; 31. Rail; 32. Rotating rod; 33. Second push rod; 34. Second pull rod; 35. Second turntable; 36. Protective cover; 37. First motor; 38. Support sleeve. Detailed Implementation

[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0025] Reference Figure 1 - Figure 12 A konjac fish skin processing device, comprising: Frame 1; Protective cover 36 is fixedly connected to the top of frame 1; Support frame 2 is fixedly connected to the bottom of frame 1; A hollow mezzanine shelf 9 is disposed between the inner walls of the frame 1, and curved blades 10 slide on both the upper and lower inner walls of the hollow mezzanine shelf 9; and An adjustment mechanism is provided on the inner and outer surfaces of the frame 1. The adjustment mechanism is connected to two hollow mezzanine shelves 9 and is used to move the two hollow mezzanine shelves 9.

[0026] In this invention, the frame 1 is used to accommodate the hollow sandwich frame 9, two curved blades 10, a drive assembly, an elastic assembly, a linkage assembly, a conveying assembly, and an auxiliary assembly. The protective cover 36 is made of transparent acrylic sheet and is used to block external dust from contaminating the konjac fish skin. The support frame 2 is used to support the frame 1. The hollow sandwich frame 9 is used to accommodate the two curved blades 10. The blades of the two curved blades 10 are both wavy. The two curved blades 10 use the interlacing wavy blades to cut the strip-shaped semi-finished konjac fish skin into a fish scale shape, making the konjac fish skin closer to the fish skin. The adjustment mechanism is connected to the two hollow sandwich frames 9 and is used to move the two hollow sandwich frames 9.

[0027] The adjustment mechanism includes a drive assembly, a linkage assembly, an elastic assembly, a deflection assembly, a push assembly, an auxiliary assembly, and a conveying assembly. The conveying assembly is located between the inner walls of the frame 1 and is situated on the lower side of the hollow sandwich frame 9. The auxiliary assembly is located between the inner walls of the frame 1 and is situated on both sides of the hollow sandwich frame 9, with the auxiliary assembly corresponding vertically to the conveying assembly. The deflection assembly is located on both sides of the frame 1 and is connected to the hollow sandwich frame 9. The push assembly is located at the bottom of the frame 1 and is connected to the deflection assembly. The linkage assembly is located on the upper and lower sides of the hollow sandwich frame 9 and is connected to two arc-shaped blades 10. The drive assembly is located on one side of the hollow sandwich frame 9 and is connected to the linkage assembly. Two sets of elastic components are provided, located on the upper and lower sides of the hollow sandwich frame 9 and connected to the two arc-shaped blades 10.

[0028] In this invention, a conveying component is used to move the strip-shaped semi-finished fish skin, an auxiliary component is used to tighten the strip-shaped semi-finished fish skin, a deflection component is used to deflect the hollow sandwich frame 9 and the two arc-shaped blades 10 at an angle, a pushing component is used to provide power for the deflection of the hollow sandwich frame 9 and the two arc-shaped blades 10, a driving component is used to provide power for the movement of the two arc-shaped blades 10, a connecting rod component is used to push and pull the two arc-shaped blades 10 to move, and two sets of elastic components are used to push out the two arc-shaped blades 10 by pressing.

[0029] The drive assembly includes a rotating sleeve 20, a first turntable 21, a driven gear 22, a driving gear 23, a third motor 24, a rotating groove 25, and a support sleeve 38. The rotating sleeve 20 is fixedly connected to the side end of the hollow sandwich frame 9. The rotating groove 25 is opened through the upper and lower side ends of the hollow sandwich frame 9. The support sleeve 38 is fixedly connected to the side end of the hollow sandwich frame 9 and is located between the inner walls of the rotating sleeve 20. The first turntable 21 is rotatably connected between the circumferential inner walls of the support sleeve 38 and the circumferential inner walls of the rotating groove 25. The driven gear 22 is fixedly connected between the inner walls of the first turntable 21. The driving gear 23 is disposed between the inner walls of the rotating sleeve 20 and meshes with the driven gear 22. The third motor 24 is fixedly connected to the top of the rotating sleeve 20. The output end of the third motor 24 extends to the inner walls of the rotating sleeve 20 and is connected to the driving gear 23.

[0030] In this invention, the rotating sleeve 20 accommodates the support sleeve 38, the first turntable 21, the driven gear 22, and the driving gear 23; the rotating groove 25 accommodates the rotation of the first turntable 21; the support sleeve 38 supports the rotation of the first turntable 21; the first turntable 21 pushes and pulls two first pull rods 14 simultaneously by rotating; the driven gear 22 drives the first turntable 21 to rotate; the driving gear 23 drives the driven gear 22 to rotate by meshing with it; and the third motor 24 drives the driving gear 23 to rotate. The motor is activated when the two arc-shaped blades 10 are moved in a staggered manner. The third motor 24 drives the drive gear 23 to rotate. The drive gear 23 meshes with the driven gear 22, which in turn drives the driven gear 22 to rotate. The driven gear 22 drives the first turntable 21 to rotate within the rotating groove 25. The first turntable 21 rotates while simultaneously pulling the two first pull rods 14 to move, providing power for the movement of the two arc-shaped blades 10. The two arc-shaped blades 10 are used to cut the surface of the strip-shaped semi-finished vegetarian fish skin, thereby cutting the strip-shaped semi-finished vegetarian fish skin into finished konjac vegetarian fish skin and improving the processing efficiency of the konjac vegetarian fish skin processing device.

[0031] The linkage assembly includes a slide groove 11, a slider 12, a first push rod 13, and a first pull rod 14. There are two slide grooves 11, which are opened at the upper and lower sides of the hollow sandwich frame 9. The two slide grooves 11 are respectively connected to the two inner walls of the hollow sandwich frame 9. There are two sliders 12, which slide between the inner walls of the two slide grooves 11. Both sliders 12 are connected to two arc-shaped blades 10. There are two first push rods 13, which are rotatably connected to the side ends of the sliders 12. There are two first pull rods 14, which are rotatably connected to the two sides of the first turntable 21. The other ends of the two first pull rods 14 are rotatably connected to the two first push rods 13 through a rotating shaft.

[0032] In this invention, two grooves 11 are used to accommodate the sliding of sliders 12. The two sliders 12 slide within the two grooves 11. The two grooves 11 limit the maximum distance of the telescopic movement of the two arc-shaped blades 10 by sliding cooperation with the two sliders 12. Two first push rods 13 are used to pull the two sliders 12 to reciprocate within the two grooves 11. Two first pull rods 14 are used to push and pull the two push rods 13. When the two arc-shaped blades 10 telescopically move, the first turntable 21 rotates and simultaneously pulls the two first pull rods 14 to move. One of the first pull rods 14 is in a pushing state, and the other first pull rod 14 is in a pushing state. When 4 is in a pulled state, the two first pull rods 14 move in a staggered manner, and the two first pull rods 14 pull the two first push rods 13 in an alternating manner. The two first push rods 13 pull the two sliders 12 in an alternating manner within the two slide grooves 11, which in turn causes the two arc-shaped blades 10 to retract and move in an alternating manner within the two hollow sandwich frames 9. This allows the two arc-shaped blades 10 to cut the strip-shaped semi-finished vegetarian fish skin in an alternating manner. Through the alternating cutting of the strip-shaped semi-finished vegetarian fish skin by the two arc-shaped blades 10, the konjac vegetarian fish skin is made to better fit the appearance of fish skin, which not only improves the taste of the konjac vegetarian fish skin, but also reduces the processing cost of the konjac vegetarian fish skin.

[0033] The elastic component includes an elastic sleeve 15, a spring 16, a push block 17, a push rod 18, and a connecting block 19. Two elastic sleeves 15 are provided, and the two elastic sleeves 15 are fixedly connected to the side end of the hollow sandwich frame 9. The two elastic sleeves 15 are located on both sides of the slide groove 11. Two push blocks 17 are provided, and the two push blocks 17 slide between the inner walls of the two elastic sleeves 15. Two springs 16 are provided, and the two springs 16 are located between the inner walls of the elastic sleeves 15. One end of the two springs 16 is fixedly connected to the inner wall of the two elastic sleeves 15, and the other end of the two springs 16 is fixedly connected to the two push blocks 17. Two connecting blocks 19 are provided, and the two connecting blocks 19 are fixedly connected to the side end of the arc-shaped blade 10. Two push rods 18 are provided, and the two push rods 18 are movably inserted into one end of the elastic sleeve 15. One end of the two push rods 18 is fixedly connected to the two push blocks 17, and the other end of the two push rods 18 is fixedly connected to the two connecting blocks 19.

[0034] In this invention, two elastic sleeves 15 are used to accommodate two springs 16, two push blocks 17, and two push rods 18. The two push blocks 17 are used to support and fix the two push rods 18, and at the same time, the two push blocks 17 are used to drive the two push rods 18 to move. The two springs 16 absorb the thrust generated by the movement of the two push blocks 17 through expansion and contraction deformation, and at the same time, the two springs 16 push the two push blocks 17 to reset through deformation reset. The two connecting blocks 19 push the arc-shaped blades 10 out of the hollow sandwich frame 9 by moving. The two push rods 18 are used to push and pull the two connecting blocks 19. During the movement of the two arc-shaped blades 10, during the staggered cutting process of the two arc-shaped blades 10, when one of the two first pull rods 14 pulls the first push rod 13, the first push rod 13 pulls the slider 12 to drive the arc-shaped blades 10 towards the hollow sandwich frame. The shelving unit 9 retracts, causing the hollow shelving unit 9 to move two connecting blocks 19 closer to it. The two connecting blocks 19 push two push rods 18 into two elastic sleeves 15. The two push rods 18 compress two push blocks 17, which in turn push two springs 16 to contract and deform. When one of the two first pull rods 14 releases its pull on the first push rod 13, the two springs 16 reset and push the two push blocks 17 to reset. The two push blocks 17 push the two push rods 18 out of the two elastic sleeves 15. The two push rods 18 push the two connecting blocks 19 away from the hollow shelving unit 9. Then, the two connecting blocks 19 apply pressure to push the arc-shaped blade 10 out of the hollow shelving unit 9, enabling the hollow shelving unit 9 to perform enhanced cutting of the strip-shaped semi-finished konjac fish skin, thus strengthening the cutting ability of the konjac fish skin processing device.

[0035] The driving assembly includes a fourth motor 26, a sliding sleeve 27, an auxiliary support block 28, a lead screw 29, a rail block 30, and a track 31. The fourth motor 26 is fixedly connected to the bottom of the frame 1, the auxiliary support block 28 is fixedly connected to the top of the frame 1, and the auxiliary support block 28 corresponds to the fourth motor 26. The lead screw 29 is fixedly connected to the output end of the fourth motor 26, and the other end of the lead screw 29 is rotatably connected to the auxiliary support block 28. There are two tracks 31, which are fixedly connected to the bottom of the frame 1 and located on both sides of the lead screw 29. The sliding sleeve 27 is fitted onto the circumferential surface of the lead screw 29 and is located between the two tracks 31. There are two rail blocks 30, which slide between the inner walls of the two tracks 31, and both rail blocks 30 are connected to the sliding sleeve 27.

[0036] In this invention, the fourth motor 26 drives the lead screw 29 to rotate, the auxiliary support block 28 assists in supporting the lead screw 29, the two tracks 31 accommodate the sliding of the two rail blocks 30, and the sliding sleeve 27 pushes the two rail blocks 30 to move. The two rail blocks 30 slide within the two tracks 31, and simultaneously, the two rail blocks 30 drive the two rotating rods 32 to move. When deflecting the two arc-shaped blades 10, the fourth motor 26 is energized and started. The output end of the fourth motor 26 drives the lead screw 29 to rotate, and the lead screw 29 slides against the sliding sleeve 27. The sliding sleeve 27 moves back and forth between the two tracks 31 in coordination with the sliding sleeve 27. The sliding sleeve 27 drives the two track blocks 30 to move back and forth, and the two track blocks 30 drive the two rotating rods 32 to move, thereby providing power for the deflection of the two arc-shaped blades 10. At the same time, the sliding self-locking of the fourth motor 26 and the lead screw 29 locks the deflection angle of the two arc-shaped blades 10, ensuring that the two arc-shaped blades 10 maintain the deflection angle. This improves the adaptability of the konjac fish skin processing device to the processing of konjac fish skin of different thicknesses, thereby increasing the processing range of the konjac fish skin processing device.

[0037] The deflection assembly includes a rotating rod 32, a second push rod 33, a second pull rod 34, and a second turntable 35. There are two second turntables 35, which are rotatably connected to the inner wall of the frame 1 via a rotating shaft. The rotating shafts of the two second turntables 35 extend to the two side ends of the frame 1. There are two second pull rods 34, which are fixedly connected to the extended ends of the rotating shafts of the two second turntables 35. There are two rotating rods 32, which are fixedly connected to the side ends of the two rail blocks 30. There are two second push rods 33, which are rotatably connected to the side ends of the two rotating rods 32, and the other ends of the two second push rods 33 are rotatably connected to the two second pull rods 34.

[0038] In this invention, two second turntables 35 are used to drive the hollow sandwich frame 9 to deflect, two second pull rods 34 are used to drive the two second turntables 35 to deflect, and two second push rods 33 are used to pull the two second pull rods 34 to deflect. During the deflection of the two hollow sandwich frames 9, two rotating rods 32 drive the two second push rods 33 to move, the two second push rods 33 push and pull the two second pull rods 34, the two second pull rods 34 drive the two second turntables 35 to deflect, the two second turntables 35 drive the hollow sandwich frame 9 to deflect, and the hollow sandwich frame 9 then drives the two arc-shaped blades 10 to deflect within the frame 1, so that the angle between the two arc-shaped blades 10 and the semi-finished vegetarian fish skin can be deflected by ±15 degrees, thereby adjusting the oblique cutting angle of the finished vegetarian fish skin scales, increasing the cutting angle adjustment function of the konjac vegetarian fish skin processing device, and thus improving the processing applicability of the konjac vegetarian fish skin processing device.

[0039] The conveying assembly includes a hollow platform 3, a rotating drum 5, a conveyor belt 6, and a first motor 37. The hollow platform 3 is fixedly connected to the inner wall of the frame 1 and is located at the bottom of the two arc-shaped blades 10. There are two rotating drums 5, which are rotatably connected to the inner wall of the frame 1 through a rotating shaft. The two rotating drums 5 are located on both sides of the hollow platform 3, and one of the rotating shafts of the two rotating drums 5 extends to the side end of the frame 1. The conveyor belt 6 is sleeved on the guide pressure plate 4 and the circumferential surface of the two rotating drums 5. The first motor 37 is fixedly connected to the side end of the frame 1, and the output end of the first motor 37 is fixedly connected to the extension end of the rotating shaft of the rotating drum 5.

[0040] In this invention, the hollow platform 3 supports the conveyor belt 6, and the two rotating drums 5 drive the conveyor belt 6 to rotate. The conveyor belt 6 moves the strip of semi-finished vegetarian fish skin. The first motor 37 drives the rotating drum 5 to rotate. When moving the strip of semi-finished vegetarian fish skin, the first motor 37 and the two second motors 8 are started by power. The output end of the first motor 37 drives one rotating drum 5 to rotate. One rotating drum 5 pulls the conveyor belt 6 to rotate by rotating. The conveyor belt 6 pulls the other rotating drum 5 to rotate. The strip of semi-finished vegetarian fish skin is placed between the conveyor belt 6 and a pressure roller 7. The strip of semi-finished vegetarian fish skin is moved by the conveyor belt 6 to the bottom of the two arc-shaped blades 10, thereby realizing the raw material transportation of the strip of semi-finished vegetarian fish skin and realizing the stable feeding of the konjac vegetarian fish skin processing device.

[0041] The auxiliary components include pressure rollers 7, second motors 8, and guide plates 4. There are two pressure rollers 7, which are rotatably connected between the inner walls of the frame 1 via a rotating shaft. The two pressure rollers 7 extend to the side ends of the frame 1. There are two second motors 8, which are fixedly connected to the side ends of the frame 1. The output ends of the two second motors 8 are fixedly connected to the extended ends of the rotating shafts of the two pressure rollers 7. The guide plates 4 are fixedly connected between the inner walls of the frame 1. The guide plates 4 are located between the two pressure rollers 7 and are located above the two arc-shaped blades 10.

[0042] In this invention, two pressure rollers 7, in conjunction with the conveyor belt 6 and the hollow platform 3, guide the movement of the strip-shaped semi-finished konjac fish skin. Two second motors 8 drive the two pressure rollers 7 to move, and the guide plate 4 presses down on the strip-shaped semi-finished konjac fish skin. During the raw material conveying process, the two second motors 8 are energized and started. The output ends of the two second motors 8 drive the two pressure rollers 7 to rotate. The two pressure rollers 7, in conjunction with the hollow platform 3, squeeze the strip-shaped semi-finished konjac fish skin. At the same time, the output end of the front pressure roller 7 rotates at a lower speed than the output end of the rear pressure roller 7, resulting in different rotation speeds for the two pressure rollers 7. This causes the two pressure rollers 7 to slightly tighten the strip-shaped semi-finished konjac fish skin conveyed by the conveyor belt 6 under the two curved blades 10, thereby achieving the tightening and shaping of the strip-shaped semi-finished konjac fish skin. This facilitates the cutting of the strip-shaped semi-finished konjac fish skin by the two curved blades 10, thereby enhancing the precision cutting of the konjac fish skin by the konjac fish skin processing device.

[0043] A method for processing konjac fish skin includes the following steps: S1. Raw material conveying: When the power is turned on, the first motor 37 and two second motors 8 are started. The output end of the first motor 37 drives a rotating drum 5 to rotate. The rotating drum 5 pulls the conveyor belt 6 to rotate, and the conveyor belt 6 pulls the other rotating drum 5 to rotate. The strip of semi-finished vegetarian fish skin is placed between the conveyor belt 6 and a pressure roller 7. The strip of semi-finished vegetarian fish skin is moved by the conveyor belt 6 to the bottom of the two arc-shaped blades 10, thereby realizing the raw material conveying of the strip of semi-finished vegetarian fish skin. S2, Tighten and Set: During the raw material conveying process, two second motors 8 are started by powering on. The output ends of the two second motors 8 drive the two pressure rollers 7 to rotate. The two pressure rollers 7, in conjunction with the hollow platform 3, squeeze the strip of semi-finished vegetarian fish skin. At the same time, the output end of the front pressure roller 7 rotates at a lower speed than the output end of the rear pressure roller 7, which results in different speeds for the two pressure rollers 7. This causes the two pressure rollers 7 to slightly tighten the strip of semi-finished vegetarian fish skin conveyed by the conveyor belt 6 under the two curved blades 10, thereby achieving the tightening and shaping of the strip of semi-finished vegetarian fish skin. S3, staggered cutting: After the raw materials are conveyed, the third motor 24 is started by powering on. The output end of the third motor 24 drives the drive gear 23 to rotate. The drive gear 23 drives the driven gear 22 to rotate through meshing with the driven gear 22. The driven gear 22 drives the first turntable 21 to rotate in the rotating groove 25. The first turntable 21 pulls two first pull rods 14 to move by rotating. By using the staggered movement of the two first pull rods 14, the two first push rods 13 are pulled to move in an alternating manner. The two first push rods 13 pull two sliders 12 to slide in an alternating manner in the two sliding grooves 11. Then, the two arc blades 10 move in an alternating manner in the two hollow sandwich frames 9, so that the two arc blades 10 can cut the strip-shaped semi-finished vegetarian fish skin in an alternating manner. S4, Enhanced Cutting: During the staggered cutting process of the two arc-shaped blades 10, when one of the two first pull rods 14 pulls the first push rod 13, the first push rod 13 pulls the slider 12, causing the arc-shaped blades 10 to retract into the hollow sandwich frame 9. The hollow sandwich frame 9 then moves the two connecting blocks 19 closer to it. The two connecting blocks 19 push the two push rods 18 into the two elastic sleeves 15. The two push rods 18 compress the two push blocks 17, and the two push blocks 17 push the two springs 16 to retract. When one of the two first pull rods 14 releases its pull on the first push rod 13, the two springs 16 reset and push the two push blocks 17 reset. The two push blocks 17 push the two push rods 18 out of the two elastic sleeves 15. The two push rods 18 push the two connecting blocks 19 away from the hollow sandwich frame 9. Then the two connecting blocks 19 pressurize and push the arc-shaped blade 10 out of the hollow sandwich frame 9, so that the hollow sandwich frame 9 can perform enhanced cutting on the strip-shaped semi-finished vegetarian fish skin. S5. Bevel angle adjustment: During the cutting process of the strip-shaped semi-finished vegetarian fish skin, the fourth motor 26 is started by powering on. The output end of the fourth motor 26 drives the lead screw 29 to rotate. The lead screw 29 pushes the sliding sleeve 27 to slide back and forth in the two tracks 31 through the sliding cooperation with the sliding sleeve 27. The two tracks 31 push the two rotating rods 32 to move. The two rotating rods 32 drive the two second push rods 33 to move. The two second push rods 33 push and pull the two second pull rods 34. The two second pull rods 34 drive the two second turntables 35 to deflect. The two second turntables 35 drive the hollow sandwich frame 9 to deflect. The hollow sandwich frame 9 then drives the two arc-shaped blades 10 to deflect within the frame 1, so that the angle between the two arc-shaped blades 10 and the semi-finished vegetarian fish skin can be deflected by positive and negative 15 degrees, so as to adjust the oblique cutting angle of the finished vegetarian fish skin scales.

[0044] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A konjac fish skin processing device, characterized in that, include; Frame (1); A protective cover (36) is fixedly connected to the top of the frame (1); Support frame (2), which is fixedly connected to the bottom of frame body (1); Hollow sandwich shelf (9), the hollow sandwich shelf (9) is disposed between the inner walls of the frame (1), and the upper and lower inner walls of the hollow sandwich shelf (9) are both equipped with arc-shaped blades (10). as well as An adjustment mechanism is provided on the inner and outer surfaces of the frame (1). The adjustment mechanism is connected to two hollow sandwich shelves (9) and is used to move the two hollow sandwich shelves (9).

2. The konjac fish skin processing device according to claim 1, characterized in that, The adjustment mechanism includes a drive assembly, a linkage assembly, an elastic assembly, a deflection assembly, a push assembly, an auxiliary assembly, and a conveying assembly. The conveying assembly is disposed between the inner walls of the frame (1) and is located on the lower side of the hollow sandwich frame (9). The auxiliary assembly is disposed between the inner walls of the frame (1) and is located at the two side ends of the hollow sandwich frame (9), with the auxiliary assembly corresponding vertically to the conveying assembly. The deflection assembly is disposed at the two side ends of the frame (1) and is connected to the hollow sandwich frame (9). Next, the pushing component is located at the bottom of the frame (1), and the pushing component is connected to the deflection component. The connecting rod assembly is located at the upper and lower sides of the hollow sandwich frame (9), and the connecting rod assembly is connected to the two arc-shaped blades (10). The driving component is located on one side of the hollow sandwich frame (9), and the driving component is connected to the connecting rod assembly. There are two sets of elastic components, and the two sets of elastic components are located at the upper and lower sides of the hollow sandwich frame (9), and the two sets of elastic components are connected to the two arc-shaped blades (10).

3. The konjac fish skin processing device according to claim 2, characterized in that, The drive assembly includes a rotating sleeve (20), a first turntable (21), a driven gear (22), a driving gear (23), a third motor (24), a rotating groove (25), and a support sleeve (38). The rotating sleeve (20) is fixedly connected to the side end of the hollow sandwich frame (9). The rotating groove (25) is opened through the upper and lower side ends of the hollow sandwich frame (9). The support sleeve (38) is fixedly connected to the side end of the hollow sandwich frame (9) and is located between the inner walls of the rotating sleeve (20). The first turntable (21) is rotatably connected to the circular support sleeve (38). Between the inner walls of the circumference, and the first turntable (21) is rotatably connected between the inner walls of the rotating groove (25), the driven gear (22) is fixedly connected between the inner walls of the first turntable (21), the driving gear (23) is disposed between the inner walls of the rotating sleeve (20), the driving gear (23) meshes with the driven gear (22), the third motor (24) is fixedly connected to the top of the rotating sleeve (20), the output end of the third motor (24) extends to the inner walls of the rotating sleeve (20), and the output end of the third motor (24) is connected to the driving gear (23).

4. The konjac fish skin processing device according to claim 3, characterized in that, The linkage assembly includes a slide groove (11), a slider (12), a first push rod (13), and a first pull rod (14). There are two slide grooves (11), which are located on the upper and lower sides of the hollow sandwich frame (9). The two slide grooves (11) are connected to the two inner walls of the hollow sandwich frame (9). There are two sliders (12), which slide between the inner walls of the two slide grooves (11). Both sliders (12) are connected to two arc-shaped blades (10). There are two first push rods (13), which are rotatably connected to the side of the slider (12). There are two first pull rods (14), which are rotatably connected to the two sides of the first turntable (21). The other ends of the two first pull rods (14) are rotatably connected to the two first push rods (13) through a rotating shaft.

5. The konjac fish skin processing device according to claim 4, characterized in that, The elastic component includes an elastic sleeve (15), a spring (16), a push block (17), a push rod (18), and a connecting block (19). Two elastic sleeves (15) are provided, and the two elastic sleeves (15) are fixedly connected to the side ends of the hollow sandwich frame (9). The two elastic sleeves (15) are located on both sides of the slide groove (11). Two push blocks (17) are provided, and the two push blocks (17) slide between the inner walls of the two elastic sleeves (15). Two springs (16) are provided, and the two springs (16) are located between the inner walls of the elastic sleeves (15). One end of the spring (16) is fixedly connected to the inner wall of the two elastic sleeves (15), and the other end of the two springs (16) is fixedly connected to the two push blocks (17). There are two connecting blocks (19), which are fixedly connected to the side end of the arc blade (10). There are two push rods (18), which are movably inserted into one end of the elastic sleeve (15). One end of the two push rods (18) is fixedly connected to the two push blocks (17), and the other end of the two push rods (18) is fixedly connected to the two connecting blocks (19).

6. The konjac fish skin processing device according to claim 5, characterized in that, The pushing assembly includes a fourth motor (26), a sliding sleeve (27), an auxiliary support block (28), a lead screw (29), a rail block (30), and a track (31). The fourth motor (26) is fixedly connected to the bottom of the frame (1), the auxiliary support block (28) is fixedly connected to the top of the frame (1), and the auxiliary support block (28) corresponds to the fourth motor (26). The lead screw (29) is fixedly connected to the output end of the fourth motor (26), and the other end of the lead screw (29) is connected to the auxiliary support block (28). The two rails (31) are fixedly connected to the bottom of the frame (1) and are located on both sides of the lead screw (29). The sliding sleeve (27) is fitted on the circumferential surface of the lead screw (29) and is located between the two rails (31). The two rail blocks (30) are slid between the inner walls of the two rails (31) and are connected to the sliding sleeve (27).

7. The konjac fish skin processing device according to claim 6, characterized in that, The deflection assembly includes a rotating rod (32), a second push rod (33), a second pull rod (34), and a second turntable (35). There are two second turntables (35), which are rotatably connected to the inner wall of the frame (1) via a rotating shaft. The rotating shafts of the two second turntables (35) extend to the two side ends of the frame (1). There are two second pull rods (34), which are fixedly connected to the extended ends of the rotating shafts of the two second turntables (35). There are two rotating rods (32), which are fixedly connected to the side ends of the two rail blocks (30). There are two second push rods (33), which are rotatably connected to the side ends of the two rotating rods (32), and the other ends of the two second push rods (33) are rotatably connected to the two second pull rods (34).

8. The konjac fish skin processing device according to claim 7, characterized in that, The conveying assembly includes a hollow platform (3), a rotating drum (5), a conveyor belt (6), and a first motor (37). The hollow platform (3) is fixedly connected to the inner wall of the frame (1) and is located at the bottom of two arc-shaped blades (10). There are two rotating drums (5). The two rotating drums (5) are rotatably connected to the inner wall of the frame (1) through a rotating shaft. The two rotating drums (5) are located on both sides of the hollow platform (3), and one of the rotating shafts of the two rotating drums (5) extends to the side end of the frame (1). The conveyor belt (6) is sleeved on the guide plate (4) and the circumferential surface of the two rotating drums (5). The first motor (37) is fixedly connected to the side end of the frame (1), and the output end of the first motor (37) is fixedly connected to the extension end of the rotating shaft of the rotating drum (5).

9. A konjac fish skin processing device according to claim 8, characterized in that, The auxiliary components include pressure rollers (7), second motors (8), and guide plates (4). There are two pressure rollers (7), which are rotatably connected between the inner walls of the frame (1) via a rotating shaft. The two pressure rollers (7) extend to the side of the frame (1). There are two second motors (8), which are fixedly connected to the side of the frame (1). The output ends of the two second motors (8) are fixedly connected to the extended ends of the rotating shafts of the two pressure rollers (7). The guide plates (4) are fixedly connected between the inner walls of the frame (1). The guide plates (4) are located between the two pressure rollers (7) and are located on the upper side of the two arc-shaped blades (10).

10. A method for processing konjac fish skin, characterized in that, The application of the konjac fish skin processing apparatus according to claims 1-9 includes the following steps: S1. Raw material conveying: Powering on the first motor (37) and two second motors (8) starts the first motor (37). The output end of the first motor (37) drives a rotating drum (5) to rotate. The rotating drum (5) pulls the conveyor belt (6) to rotate. The conveyor belt (6) pulls the other rotating drum (5) to rotate. The strip of semi-finished vegetarian fish skin is placed between the conveyor belt (6) and a pressure roller (7). The strip of semi-finished vegetarian fish skin is driven by the conveyor belt (6) to move towards the bottom of the two arc blades (10), thereby realizing the raw material conveying of the strip of semi-finished vegetarian fish skin. S2, Tighten and Set: During the raw material transportation process, two second motors (8) are started by powering on. The output ends of the two second motors (8) drive the two pressure rollers (7) to rotate. The two pressure rollers (7) squeeze the strip of semi-finished vegetarian fish skin by cooperating with the hollow table (3). At the same time, the output end of the pressure roller (7) at the front end rotates at a lower speed than the output end of the pressure roller (7) at the rear end, which makes the two pressure rollers (7) rotate at different speeds. This causes the two pressure rollers (7) to slightly tighten the strip of semi-finished vegetarian fish skin transported by the conveyor belt (6) under the two curved blades (10), thereby achieving the tightening and shaping of the strip of semi-finished vegetarian fish skin. S3, staggered cutting: After the raw materials are transported, the third motor (24) is powered on and started. The output end of the third motor (24) drives the active gear (23) to rotate. The active gear (23) drives the driven gear (22) to rotate through meshing with the driven gear (22). The driven gear (22) drives the first turntable (21) to rotate in the rotating groove (25). The first turntable (21) pulls the two first pull rods (14) to move by rotating. By using the staggered movement of the two first pull rods (14), the two first push rods (13) are pulled to move in an alternating manner. The two first push rods (13) pull the two sliders (12) to slide in an alternating manner in the two sliding grooves (11), which in turn causes the two arc blades (10) to retract and move in an alternating manner in the two hollow sandwich frames (9), which in turn allows the two arc blades (10) to cut the strip-shaped semi-finished vegetarian fish skin in an alternating manner. S4, Enhanced Cutting: During the interlacing cutting process of the two arc-shaped blades (10), when one of the two first pull rods (14) pulls the first push rod (13), the first push rod (13) pulls the slider (12) to cause the arc-shaped blades (10) to retract into the hollow sandwich frame (9). The hollow sandwich frame (9) causes the two connecting blocks (19) to move closer to the hollow sandwich frame (9). The two connecting blocks (19) push the two push rods (18) into the two elastic sleeves (15). The two push rods (18) squeeze the two push blocks (17). The two push blocks (17) push the two springs (16). When the first pull rod (14) of the two first pull rods (14) releases the pull on the first push rod (13), the two springs (16) reset and push the two push blocks (17) reset. The two push blocks (17) push the two push rods (18) out of the two elastic sleeves (15). The two push rods (18) push the two connecting blocks (19) away from the hollow sandwich frame (9). Then the two connecting blocks (19) pressurize and push the arc blade (10) out of the hollow sandwich frame (9), so that the hollow sandwich frame (9) can perform enhanced cutting on the strip semi-finished vegetarian fish skin. S5. Bevel angle adjustment: During the cutting process of the strip semi-finished vegetarian fish skin, the fourth motor (26) is started by powering on. The output end of the fourth motor (26) drives the lead screw (29) to rotate. The lead screw (29) pushes the slide sleeve (27) to slide back and forth in the two tracks (31) through the sliding cooperation with the slide sleeve (27). The two tracks (31) push the two rotating rods (32) to move. The two rotating rods (32) drive the two second push rods (33) to move. The two second push rods (33) push and pull the two second pull rods (34). The two second pull rods (34) drive the two second turntables (35) to deflect. The two second turntables (35) drive the hollow sandwich frame (9) to deflect. The hollow sandwich frame (9) then drives the two arc blades (10) to deflect in the frame (1), so that the angle between the two arc blades (10) and the semi-finished vegetarian fish skin can be deflected by positive and negative 15 degrees, so as to adjust the oblique cutting angle of the finished vegetarian fish skin scales.

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