Raw material cleaning equipment and process for the production of small-pot Buddha Jumping Over the Wall

Through the design of the transmission mechanism, drive mechanism and flip mechanism, the problem of limited accumulation and cleaning range of aquatic products is solved, and efficient and comprehensive cleaning effect is achieved, especially the thorough removal of stubborn stains.

CN119924364BActive Publication Date: 2025-07-22FUZHOU JUCHUNYUAN FOOD CO LTD
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Patent Information

Application Number
CN202510432126.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-07-22
Estimated Expiration
2045-04-08

AI Technical Summary

Technical Problem

Aquatic products in existing cleaning equipment are prone to accumulation and have poor cleaning results, especially incomplete cleaning of stubborn silt and sand, and the cleaning range is limited.

Method used

The transmission mechanism and driving mechanism are used to drive the nozzle swing, combined with the movement of the telescopic arm and the rubbing roller, increase the cleaning range and frequency, and use the flip mechanism to flip the aquatic products, and combine the booster pump and the roller drum of the rolling and washing mechanism for multiple cleanings.

Benefits of technology

Effectively avoid aquatic products accumulation, improve cleaning area and cleaning effect, enhance the ability to clean stubborn stains, and ensure that the surface of aquatic products is thoroughly cleaned.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a raw material cleaning device and process for the production of small-pot Fotiaoqiang, which relates to the technical field of Fotiaoqiang raw material processing. It includes a fuselage with a feed inlet opened thereon. A main conveyor belt is installed inside the fuselage. A blanking plate is installed between the feed inlet and the main conveyor belt. A plurality of spray pipes are arranged above the main conveyor belt. Nozzles are installed on the spray pipes. Installation shafts are fixedly installed at both ends of the spray pipe. A telescopic arm is fixedly installed below the side wall of the spray pipe. A first kneading roller is rotatably installed at the bottom of the telescopic arm. An installation groove is opened on the side wall of the main conveyor belt. An iron-based secondary conveyor belt is movably installed inside the installation groove. A transmission mechanism and a driving mechanism are arranged on the fuselage. The transmission mechanism includes a transmission seat and an electromagnet. The present invention improves the spraying range, thereby increasing the cleaning area of aquatic products and enhancing the cleaning effect on aquatic products. It can also prevent the accumulation of aquatic products on the main conveyor belt.
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Description

Technical Field

[0001] The present invention relates to the technical field of processing of ingredients for Buddha Jumping over the Wall, and particularly to a raw material cleaning device and process for the production of small cans of Buddha Jumping over the Wall. Background Art

[0002] During the processing of Buddha Jumping over the Wall, it is necessary to clean the aquatic raw materials. In order to improve the cleaning efficiency, automatic cleaning is generally carried out using a cleaning device.

[0003] After searching, a Chinese patent with the publication number CN111685163A discloses an aquatic product cleaning and processing device, the structure of which includes a frame, a water pump, a feed hopper, a water spray pipe, a motor, and a cleaning mechanism. The water pump is horizontally installed at the upper end inside the frame, the feed hopper is installed inside the frame, the water spray pipe is horizontally installed at the upper end of the feed hopper, the cleaning mechanism is installed on the left side of the feed hopper, and the motor is vertically installed at the side end of the cleaning mechanism. The cleaning mechanism includes a chassis, a return plate, a circulating cleaning structure, a water outlet pipe, and a conveying structure. The return plate is inclinedly installed inside the chassis, and the circulating cleaning structure is installed inside the chassis. In this invention, a circulating cleaning structure is arranged inside the chassis. While brushing the razor clams, the outside of the razor clams is fully restricted, ensuring the contact area of the razor clams and preventing the shells of the razor clams from breaking; a conveying structure is arranged at the left end of the return plate. While circulatingly cleaning the razor clams, they slide and are conveyed obliquely, reducing the force on the razor clams and ensuring the integrity of the razor clams.

[0004] However, the above invention has the following deficiencies:

[0005] Since the cleaning device directly puts the aquatic products into the device interior, and generally conveys the aquatic products through a conveyor belt and then sprays and cleans them, the aquatic products are prone to pile up together. The aquatic products on the top can be cleaned, while the aquatic products below are blocked by the aquatic products above and cannot be cleaned. Moreover, the cleaning effect using only spraying is poor, and some relatively stubborn sediment cannot be completely cleaned. At the same time, in existing devices, a brush or a cleaning roller is generally used to brush the aquatic products, but their cleaning angles and directions are fixed, resulting in a small cleaning range and thus a poor cleaning effect. Summary of the Invention

[0006] The purpose of the present invention is to provide a raw material cleaning device and process for the production of small cans of Buddha Jumping over the Wall to solve the problems raised in the above background art.

[0007] The technical solution of the present invention is: a raw material cleaning device for the production of small canned Buddha jumps over the wall, including a fuselage, an inlet is opened on the fuselage, a main conveyor belt is installed inside the fuselage, a blanking plate is installed between the inlet and the main conveyor belt, a plurality of spray pipes are arranged above the main conveyor belt, spray heads are installed on the spray pipes, mounting shafts are fixedly installed at both ends of the spray pipes, a telescopic arm is fixedly installed below the side wall of the spray pipe, a kneading roller I is rotatably installed at the bottom of the telescopic arm, an installation groove is opened on the side wall of the main conveyor belt, an iron-based secondary conveyor belt is movably installed inside the installation groove, and a transmission mechanism and a driving mechanism are arranged on the fuselage;

[0008] The transmission mechanism includes:

[0009] A transmission seat and an electromagnet. The transmission seat is arranged inside the main conveyor belt through a spring, the electromagnet is inlaid on the transmission seat, and a plurality of magnetic strips are arranged on the secondary conveyor belt at the position corresponding to the transmission seat. The transmission seat can be adsorbed to the secondary conveyor belt through the electromagnet and the magnetic strips;

[0010] A transmission frame, a pressing rod and a transmission block. The transmission frame is arranged on the outer side wall of the fuselage, the pressing rod is fixedly installed on the inner wall of the transmission frame, and the transmission block is fixedly installed on the side wall of the transmission seat and penetrates through the side wall of the fuselage;

[0011] A transmission gear I, a transmission rack and a limit seat. The transmission gear I is fixedly sleeved on the installation shaft, the transmission rack is fixedly installed on the limit seat and meshes with the transmission gear I, the limit seat is fixedly installed on the side wall of the fuselage, and the transmission frame is movably installed inside the limit seat.

[0012] Preferably, the driving mechanism includes a driving motor I, a motor seat, a rotating plate, a rotating shaft and a transmission sleeve. The motor seat is fixedly installed on the side wall of the fuselage, the driving motor I is fixedly installed on the motor seat, the rotating plate is located inside the motor seat and is fixedly connected to the output end of the motor seat, the rotating shaft is fixedly installed at a position away from the center of the rotating plate, one end of the transmission sleeve is of a hollow structure, the rotating shaft is located inside the transmission sleeve, and the transmission sleeve is fixedly connected to the transmission frame.

[0013] Preferably, a plurality of turning plates are movably installed on the main conveyor belt through torsion spring shafts, and a turning mechanism is arranged on the main conveyor belt. The turning mechanism includes a transmission chain belt, a movable shaft, a transmission gear II, a cam I and a dial block. The transmission chain belt is inlaid on the main conveyor belt and can rotate as the main conveyor belt rotates. The movable shaft is movably installed on the inner wall of the fuselage at the position corresponding to the turning plate. The transmission gear II is fixedly sleeved on the movable shaft and meshes with the transmission chain belt. The cam I is a circular structure with a protrusion, the cam I is fixedly sleeved on the movable shaft and is fixedly connected to the transmission gear II. One end of the dial block is in contact with the cam I, and a partition plate is fixedly installed on the main conveyor belt.

[0014] Preferably, a connecting plate is arranged inside the nozzle. One end of the telescopic arm penetrates through the side wall of the nozzle and is fixedly connected to the connecting plate. A flow guiding block is fixedly installed at the bottom of the connecting plate corresponding to the position of the nozzle. The flow guiding block is in the shape of a frustum of a cone that gradually becomes smaller from top to bottom.

[0015] Preferably, a water collecting tank is arranged below the main conveyor belt. A filter screen is also arranged inside the water collecting tank. The filter screen can preliminarily filter the collected water. A filter box is fixedly installed at the bottom of the water collecting tank. A plurality of material receiving plates are arranged on the right side inside the fuselage. A rolling washing cylinder is arranged below the inside of the fuselage. A feeding box is arranged between the rolling washing cylinder and the material receiving plate. The inside of the feeding box gradually becomes smaller from top to bottom. A sealing plate is fixedly installed on the feeding box. The sealing plate is located inside the rolling washing cylinder. A driving inner thread is arranged inside the rolling washing cylinder. A waste receiving box and a material receiving box are arranged below the rolling washing cylinder. A rolling washing mechanism is arranged inside the rolling washing cylinder.

[0016] Preferably, the rolling washing mechanism includes a driving gear ring I, a driving motor II, a driving shaft, a driving gear III, an inner pipe, a booster pump, a water supply pipe, a connecting pipe, and a spray nozzle. The driving gear ring I is fixedly sleeved on one end of the rolling washing cylinder. The driving motor II is fixedly installed on the side wall of the fuselage. The driving shaft is fixedly installed on the output end of the driving motor II. The driving gear III is fixedly installed on the driving shaft, and the driving gear III meshes with the driving gear ring I.

[0017] Preferably, the inner pipe is fixedly installed on the side wall of the fuselage and is located inside the rolling washing cylinder. The booster pump is fixedly installed at the bottom of the filter box. The input end of the booster pump is connected to the inside of the filter box. The water supply pipe is fixedly installed on the output end of the booster pump. The connecting pipe is fixedly installed between the water supply pipe and the inner pipe. There are a plurality of spray nozzles, and the plurality of spray nozzles are evenly distributed on the inner pipe.

[0018] Preferably, the rolling washing mechanism further includes a driving gear IV, a driving gear ring II, a driving gear V, a mounting rod, a mounting seat, a rubbing roller II, a mounting spring, a fixing rod, and a cam II. The driving gear IV is fixedly sleeved on the driving shaft. The driving gear ring II is fixedly sleeved on the side wall of the inner pipe. The driving gear V is rotatably installed on the inner wall of the fuselage, and the mounting rod meshes and drives with the driving gear ring II and the driving gear IV. The mounting rod is inlaid and movably installed on the inner pipe. The mounting seat is of a hollow structure. The mounting seat is fixedly installed at one end of the mounting rod away from the inner pipe.

[0019] Preferably, the rubbing roller II is movably installed inside the mounting seat. The mounting spring is located inside the inner pipe and is sleeved on the mounting rod. The fixing rod is located inside the inner pipe and is fixedly connected to the connecting pipe. The cam II is a circular structure with a protrusion. The cam II is fixedly sleeved on the fixing rod corresponding to the position of the mounting rod.

[0020] The present invention also discloses a raw material cleaning process for the production of small-can Buddha Jumping over the Wall, which is applied to the above-mentioned raw material cleaning equipment for the production of small-can Buddha Jumping over the Wall, and includes the following steps:

[0021] Step 1: The aquatic products can be conveyed to the main conveyor belt through the feeding plate. The rotation of the main conveyor belt drives the movement of the aquatic products. The spray pipe sprays water through the nozzle to clean the aquatic products. When the aquatic products move on the main conveyor belt, they come into contact with the first rubbing roller, and the rotation of the first rubbing roller can clean the surface of the aquatic products;

[0022] Step 2: Start the driving mechanism. The driving mechanism drives the transmission frame to reciprocate. When the transmission frame reciprocates, the transmission rack reciprocates with the transmission frame. The transmission rack meshes with the first transmission gear, thereby driving the installation shaft and the spray pipe to swing reciprocally, so that the nozzle can swing and spray when spraying the aquatic products on the main conveyor belt, improving the spraying range. At the same time, the spray pipe also drives the telescopic arm and the first rubbing roller to swing, and the first rubbing roller swings on the surface of the aquatic products, improving the cleaning effect on the aquatic products;

[0023] Step 3: At the same time, the transmission frame drives the extrusion rod to reciprocate. The extrusion rod continuously extrudes the transmission block. The transmission block drives the transmission seat and the electromagnet to reciprocate under extrusion. The transmission seat and the electromagnet are located inside the main conveyor belt. When the transmission seat reciprocates, start the electromagnet at the same time;

[0024] Step 4: At this time, the transmission seat adsorbs to the auxiliary conveyor belt through the electromagnet and the magnetic strip, and the auxiliary conveyor belt is also driven by the transmission seat to move on the main conveyor belt, so that the aquatic products on the main conveyor belt can not only move along with the main conveyor belt, but also move horizontally back and forth on the main conveyor belt due to the movement of the auxiliary conveyor belt, thus avoiding the accumulation of aquatic products on the main conveyor belt.

[0025] The present invention provides a raw material cleaning equipment and process for the production of small-can Buddha Jumping over the Wall through improvement. Compared with the prior art, it has the following improvements and advantages:

[0026] First: In the present invention, by providing a transmission mechanism and a driving mechanism, the driving mechanism can drive the transmission frame to move reciprocally. The transmission rack moves reciprocally along with the transmission frame, and meshes with the first transmission gear, thereby driving the installation shaft and the spray pipe to swing reciprocally. When the nozzle sprays the aquatic products on the main conveyor belt, it can swing and spray, increasing the spraying range, and thus increasing the cleaning area of the aquatic products. At the same time, the spray pipe also drives the telescopic arm and the first kneading roller to swing. The first kneading roller swings on the surface of the aquatic products, improving the cleaning effect on the aquatic products. Meanwhile, the transmission frame drives the extrusion rod to move reciprocally, and the extrusion rod continuously extrudes the transmission block. When the transmission block is extruded, it drives the transmission seat and the electromagnet to move. The transmission seat and the electromagnet are located inside the main conveyor belt. At the same time, the transmission seat can be adsorbed to the auxiliary conveyor belt through the electromagnet and the magnetic strip. When the transmission seat moves reciprocally, the auxiliary conveyor belt is also driven by the transmission seat to move on the main conveyor belt. As a result, the aquatic products on the main conveyor belt can not only move along with the main conveyor belt, but also move horizontally back and forth on the main conveyor belt due to the movement of the auxiliary conveyor belt, thus avoiding the accumulation of aquatic products on the main conveyor belt. At the same time, when the first kneading roller cleans the aquatic products, the relative movement path between the first kneading roller and the aquatic products is increased, thereby increasing the cleaning range of the first kneading roller on the aquatic products and increasing the cleaning direction of the aquatic products, further enhancing the cleaning effect.

[0027] Second: In the present invention, through the setting of the flipping mechanism, when the aquatic products move onto the flipping plate, since the transmission chain belt can rotate along with the main conveyor belt, when the transmission chain belt rotates, it drives the second transmission gear to rotate. The second transmission gear then drives the first cam to rotate. When the first cam rotates, it squeezes the dial block. After being squeezed, the dial block drives the flipping plate to flip. At this time, the aquatic products on the flipping plate will fall back onto the main conveyor belt due to the flipping, and thus the aquatic products will be turned over due to the flipping, further increasing the cleaning area of the aquatic products and enhancing the cleaning effect.

[0028] Third: In the present invention, through the setting of the rolling and washing mechanism, the driving motor two is started to make the feeding box rotate to move the aquatic products inside the feeding box. At the same time, the booster pump is started. The booster pump sends the water filtered by the filter box into the interior of the inner pipe through the water supply pipe and the connecting pipe, and then sprays it out through the spray nozzle. As a result, when the aquatic products move inside the feeding box, they will be rinsed by water again, further enhancing the cleaning effect on the aquatic products.

[0029] Fourth: Through the setting of the rolling and washing mechanism in the present invention, when the inner tube rotates, since the fixed rod and the second cam are fixedly connected to the connecting tube, the fixed rod and the second cam will not rotate. The inner tube drives the mounting rod to rotate, and the mounting rod will contact the second cam, so that the mounting rod is squeezed, thereby driving the second rubbing roller to move towards the inner wall of the rolling and washing cylinder, and then making the mounting seat contact the aquatic product. The contact between the second rubbing roller and the rotating and moving aquatic product can clean the surface of the aquatic product again. At the same time, the spray nozzle sprays clear water, and after being filtered by the rolling and washing cylinder, the sewage cleaned will be collected by the waste collection box, and the aquatic products discharged from the inside of the rolling and washing cylinder will be collected by the material receiving box. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0031] Figure 1 is a schematic diagram of the overall structure in the present invention;

[0032] Figure 2 is a cross-sectional view of the internal structure in the present invention;

[0033] Figure 3 is a schematic diagram of the internal structure of the spray pipe in the present invention;

[0034] Figure 4 is in the present invention Figure 2 enlarged view of part A;

[0035] Figure 5 is a schematic diagram of the structure of the transmission mechanism in the present invention;

[0036] Figure 6 is a schematic diagram of the structure of the driving mechanism in the present invention;

[0037] Figure 7 is a schematic diagram of the structure of the flipping mechanism in the present invention;

[0038] Figure 8 is in the present invention Figure 7 enlarged view of part B;

[0039] Figure 9 is in the present invention Figure 2 enlarged view of part C;

[0040] Figure 10 is in the present invention Figure 2 enlarged view of part D.

[0041] Reference numerals:

[0042] 1, fuselage; 2, feed inlet; 3, blanking plate; 4, main conveyor belt; 5, nozzle; 6, nozzle head; 7, mounting shaft; 8, telescopic arm; 9, kneading roller I; 10, turning plate; 11, mounting groove; 12, auxiliary conveyor belt; 13, drive seat; 14, electromagnet; 15, drive frame; 16, extrusion rod; 17, drive block; 18, drive gear I; 19, drive rack; 20, limit seat; 21, drive motor I; 22, motor seat; 23, rotating plate; 24, rotating shaft; 25, drive sleeve; 26, partition board; 27, drive chain belt; 28, movable shaft; 29, drive gear II; 30, cam I; 31, dialing block; 32, connecting plate; 33, diversion block; 34, water collecting tank; 35, filtering tank; 36, material receiving plate; 37, feeding tank; 38, sealing plate; 39, rolling washing cylinder; 40, driving inner thread; 41, waste receiving box; 42, material receiving box; 43, drive gear ring I; 44, drive motor II; 45, drive shaft; 46, drive gear III; 47, inner pipe; 48, booster pump; 49, water supply pipe; 50, connecting pipe; 51, nozzle; 52, drive gear IV; 53, drive gear ring II; 54, drive gear V; 55, mounting rod; 56, mounting seat; 57, kneading roller II; 58, mounting spring; 59, fixing rod; 60, cam II. Detailed implementation mode

[0043] The present invention will be described in detail below. The technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0044] The present invention provides an equipment and process for cleaning raw materials for the production of small-can Buddha jumps over the wall by improvement. The technical solution of the present invention is:

[0045] Embodiment 1:

[0046] An equipment for cleaning raw materials for the production of small-can Buddha jumps over the wall, as Figures 1 to 6As shown in the figure, it includes a fuselage 1. The fuselage 1 is a hollow structure. There is a feeding port 2 opened on the fuselage 1. The feeding port 2 is a groove with a rectangular structure. The feeding port 2 is communicated with the inside of the fuselage 1. A main conveyor belt 4 is movably installed inside the fuselage 1. A blanking plate 3 is fixedly installed between the feeding port 2 and the main conveyor belt 4. By putting aquatic products into the inside of the feeding port 2, the aquatic products can be conveyed onto the main conveyor belt 4 through the blanking plate 3. The rotation of the main conveyor belt 4 can drive the movement of the aquatic products. There are multiple spray pipes 5 arranged above the main conveyor belt 4. The spray pipes 5 are cylindrical pipes. Multiple nozzles 6 are inlaid and installed on the spray pipes 5. The spray pipes 5 are driven by an external water pump for water supply. The aquatic products move on the main conveyor belt 4, and the spray pipes 5 spray water through the nozzles 6 to clean the aquatic products. Both ends of the spray pipes 5 are fixedly installed with mounting shafts 7. The mounting shafts 7 are rotatably installed on the fuselage 1. A telescopic arm 8 is fixedly installed below the side wall of the spray pipe 5. The telescopic arm 8 is a telescopic structure with a spring inside. The bottom of the telescopic arm 8 is rotatably installed with a rotatable rubbing roller 9. The aquatic products moving on the main conveyor belt 4 can contact the rubbing roller 9, and the rotation of the rubbing roller 9 can clean the surface of the aquatic products. A plurality of turning plates 10 are movably installed on the main conveyor belt 4 through torsion spring shafts. The turning plates 10 are rectangular plates arranged obliquely. There is a turning mechanism on the main conveyor belt 4. The turning mechanism can make the main conveyor belt 4 drive the turning plates 10 to turn at a certain angle when rotating. When the aquatic products move onto the turning plates 10, the turning of the turning plates 10 can turn over the aquatic products. A plurality of installation grooves 11 are opened on the side wall of the main conveyor belt 4. The installation grooves 11 are internally movably installed with rotatable auxiliary conveyor belts 12. There is a transmission mechanism and a driving mechanism on the fuselage 1;

[0047] The transmission mechanism includes a transmission base 13, an electromagnet 14, a transmission frame 15, a pressing rod 16, a transmission block 17, a first transmission gear 18, a transmission rack 19 and a limit seat 20. The transmission base 13 is a long strip with a rectangular structure. There are multiple transmission bases 13. The multiple transmission bases 13 are arranged inside the main conveyor belt 4 at positions corresponding to the secondary conveyor belt 12 through springs. The number of electromagnets 14 is the same as that of the transmission bases 13. The electromagnets 14 are embedded in the transmission bases 13. Multiple magnetic strips are arranged on the secondary conveyor belt 12 at positions corresponding to the transmission bases 13. The transmission bases 13 can be adsorbed to the secondary conveyor belt 12 through the electromagnets 14 and the magnetic strips. The transmission frame 15 is a hollow rectangular structure. The transmission frame 15 is arranged on the outer side wall of the fuselage 1. The pressing rod 16 is a long strip with a rectangular structure. The pressing rod 16 is fixedly installed on the inner wall of the transmission frame 15. The transmission block 17 is a block with a trapezoidal structure. The transmission block 17 is fixedly installed on the side wall of the transmission base 13 and penetrates through the side wall of the fuselage 1. The inclined surface of the transmission block 17 faces the position of the pressing rod 16. There are multiple first transmission gears 18. The multiple first transmission gears 18 are respectively fixedly sleeved on multiple mounting shafts 7. The transmission rack 19 is a strip-shaped structure. The transmission rack 19 is fixedly installed on the limit seat 20. The transmission rack 19 and the multiple first transmission gears 18 are in meshing transmission. The limit seat 20 is a hollow rectangular structure. The limit seat 20 is fixedly installed on the side wall of the fuselage 1. The transmission frame 15 is movably installed inside the limit seat 20;

[0048] The driving mechanism includes a first driving motor 21, a motor base 22, a rotating plate 23, a rotating shaft 24 and a transmission sleeve 25. The motor base 22 is fixedly installed on the side wall of the fuselage 1, and the first driving motor 21 is fixedly installed on the motor base 22. The rotating plate 23 is a circular plate. The rotating plate 23 is located inside the motor base 22 and is fixedly connected to the output end of the motor base 22. The rotating shaft 24 is of a cylindrical structure and is fixedly installed at a position away from the center of the circle on the rotating plate 23. The transmission sleeve 25 is of a "T" shape, with one end being a hollow structure. The rotating shaft 24 is located inside the transmission sleeve 25, and the transmission sleeve 25 is fixedly connected to the transmission frame 15. Through the setting of the driving mechanism, when the first driving motor 21 is started, the first driving motor 21 drives the rotating plate 23 to rotate, and the rotating plate 23 then drives the rotating shaft 24 to rotate. Since the rotating shaft 24 is located inside the transmission sleeve 25, when the rotating plate 23 drives the rotating shaft 24 to rotate, the transmission sleeve 25 will perform a reciprocating motion, thereby driving the transmission frame 15 to perform a reciprocating motion. At the same time, a transmission mechanism is provided. When the transmission frame 15 performs a reciprocating motion, the transmission rack 19 reciprocates with the transmission frame 15, and the transmission rack 19 meshes with the first transmission gear 18 for transmission, thereby driving the mounting shaft 7 and the spray pipe 5 to swing reciprocally, so that the spray head 6 can swing during spraying the aquatic products on the main conveyor belt 4, improving the spraying range, and further increasing the cleaning area of the aquatic products. At the same time, the spray pipe 5 also drives the telescopic arm 8 and the first kneading roller 9 to swing. The first kneading roller 9 swings on the surface of the aquatic products, improving the cleaning effect on the aquatic products. At the same time, the transmission frame 15 drives the extrusion rod 16 to move reciprocally, and the extrusion rod 16 continuously extrudes the transmission block 17. The transmission block 17 drives the transmission seat 13 and the electromagnet 14 to move when being extruded. The transmission seat 13 and the electromagnet 14 are located inside the main conveyor belt 4, and the transmission seat 13 can be adsorbed to the auxiliary conveyor belt 12 through the electromagnet 14 and the magnetic strip. When the transmission seat 13 performs a reciprocating motion, the auxiliary conveyor belt 12 is also driven by the transmission seat 13 to move on the main conveyor belt 4, so that the aquatic products on the main conveyor belt 4 can not only move along with the main conveyor belt 4, but also move horizontally back and forth on the main conveyor belt 4 due to the movement of the auxiliary conveyor belt 12, thereby avoiding the accumulation of aquatic products on the main conveyor belt 4. At the same time, when the first kneading roller 9 cleans the aquatic products, the relative movement path between the first kneading roller 9 and the aquatic products is increased, thereby increasing the cleaning range of the first kneading roller 9 for the aquatic products and increasing the cleaning direction for the aquatic products, further enhancing the cleaning effect.

[0049] Such as Figures 7 to 10As shown in the figure, the flipping mechanism includes a drive chain belt 27, a movable shaft 28, a second drive gear 29, a first cam 30, and a dial block 31. The drive chain belt 27 is embedded in the main conveyor belt 4 and can rotate with the rotation of the main conveyor belt 4. The movable shaft 28 is movably installed on the inner wall of the fuselage 1 at the position corresponding to the flipping plate 10. The second drive gear 29 is fixedly sleeved on the movable shaft 28 and meshes with the drive chain belt 27. The first cam 30 is a circular structure with a protrusion. The first cam 30 is fixedly sleeved on the movable shaft 28 and fixedly connected to the second drive gear 29. The dial block 31 is a block with a rectangular structure. One end of the dial block 31 is in contact with the first cam 30. Through the setting of the flipping mechanism, when the aquatic product moves onto the flipping plate 10, since the drive chain belt 27 can rotate with the main conveyor belt 4, when the drive chain belt 27 rotates, it will drive the second drive gear 29 to rotate. The second drive gear 29 will then drive the first cam 30 to rotate. When the first cam 30 rotates, it will squeeze the dial block 31. After being squeezed, the dial block 31 will drive the flipping plate 10 to flip. At this time, the aquatic product on the flipping plate 10 will fall back onto the main conveyor belt 4 due to the flip, and thus the aquatic product will be turned over due to the flip, further increasing the area of the aquatic product being cleaned and enhancing the cleaning effect;

[0050] A partition plate 26 is fixedly installed on the main conveyor belt 4. The partition plate 26 can limit the aquatic product to prevent the situation where the aquatic product moves into the flipping mechanism and gets stuck.

[0051] A connecting plate 32 is arranged inside the spray pipe 5. The connecting plate 32 is a plate with a rectangular structure. One end of the telescopic arm 8 penetrates the side wall of the spray pipe 5 and is fixedly connected to the connecting plate 32. A flow guiding block 33 is fixedly installed at the bottom of the connecting plate 32 corresponding to the position of the spray head 6. The flow guiding block 33 is a frustum-shaped structure that gradually becomes smaller from top to bottom. Through the setting of the connecting plate 32 and the flow guiding block 33, according to the quantity of the aquatic products on the main conveyor belt 4, the telescopic stroke of the telescopic arm 8 driven by the first kneading roller 9 is also inconsistent. When there are more aquatic products on the main conveyor belt 4, the upward movement distance of the first kneading roller 9 is more. At this time, the connecting plate 32 will also move upward inside the spray pipe 5, thereby driving the flow guiding block 33 to move upward. After the flow guiding block 33 moves upward, the internal space of the spray head 6 becomes larger, and the amount of water sprayed from the spray head 6 is also larger. On the contrary, when the quantity of the aquatic products is less, the moving distance of the flow guiding block 33 is shorter, the internal space of the spray head 6 becomes smaller, and the amount of water sprayed becomes smaller. Thus, the effect of automatically adjusting the water spraying amount according to the quantity of the aquatic products on the main conveyor belt 4 is achieved.

[0052] Below the main conveyor belt 4, a water collection tank 34 is provided. The water collection tank 34 is of a hollow rectangular structure. The water collection tank 34 can collect the water after cleaning. A filter screen is also provided inside the water collection tank 34. The filter screen can preliminarily filter the collected water. A filter box 35 is fixedly installed at the bottom of the water collection tank 34. The filter box 35 can filter the water after preliminary filtration again. On the right side inside the fuselage 1, a plurality of receiving plates 36 are provided. The receiving plates 36 are rectangular plates arranged obliquely. The aquatic products that have been preliminarily cleaned on the main conveyor belt 4 will move downward along the slope of the receiving plate 36. Below the inside of the fuselage 1, a rolling washing cylinder 39 is provided. The rolling washing cylinder 39 is of a hollow cylindrical structure. The side wall of the rolling washing cylinder 39 is a structure with holes. A feeding box 37 is provided between the rolling washing cylinder 39 and the receiving plate 36. The inside of the feeding box 37 gradually becomes smaller from top to bottom. A sealing plate 38 is fixedly installed on the feeding box 37. The sealing plate 38 is a circular plate. The sealing plate 38 is located inside the rolling washing cylinder 39. Through the feeding box 37, the aquatic products can be sent into the inside of the rolling washing cylinder 39. A driving material internal thread 40 is provided inside the rolling washing cylinder 39. When the rolling washing cylinder 39 rotates, the aquatic products will move inside the rolling washing cylinder 39 under the action of the driving material internal thread 40. Below the rolling washing cylinder 39, a waste receiving box 41 and a material receiving box 42 are provided. Both the waste receiving box 41 and the material receiving box 42 are of hollow structures. A rolling washing mechanism is provided inside the rolling washing cylinder 39;

[0053] The tumbling washing mechanism includes a first transmission gear ring 43, a second driving motor 44, a driving shaft 45, a third transmission gear 46, an inner pipe 47, a booster pump 48, a water supply pipe 49, a connecting pipe 50, and a spray nozzle 51. The first transmission gear ring 43 is of an annular structure and is fixedly sleeved on one end of the tumbling washing cylinder 39. The second driving motor 44 is fixedly installed on the side wall of the fuselage 1. The driving shaft 45 is of a cylindrical structure and is fixedly installed on the output end of the second driving motor 44. The third transmission gear 46 is fixedly installed on the driving shaft 45, and the third transmission gear 46 meshes with the first transmission gear ring 43. When the second driving motor 44 is started, the second driving motor 44 can drive the third transmission gear 46 to rotate through the driving shaft 45, and the third transmission gear 46 can drive the first transmission gear ring 43 to rotate, and the first transmission gear ring 43 then drives the tumbling washing cylinder 39 to rotate. At this time, the aquatic products will move towards one side inside the tumbling washing cylinder 39. The inner pipe 47 is of a tubular structure and is fixedly installed on the side wall of the fuselage 1 and is located inside the tumbling washing cylinder 39. The booster pump 48 is fixedly installed at the bottom of the filtration tank 35, and the input end of the booster pump 48 is connected to the inside of the filtration tank 35. The water supply pipe 49 is of a tubular structure and is fixedly installed on the output end of the booster pump 48. The connecting pipe 50 is a "C"-shaped pipe and is fixedly installed between the water supply pipe 49 and the inner pipe 47. The spray nozzle 51 is a circular hole, and there are multiple spray nozzles 51. The multiple spray nozzles 51 are evenly distributed on the inner pipe 47. Through the setting of the tumbling washing mechanism, when the second driving motor 44 is started, the feeding box 37 rotates to make the aquatic products move inside the feeding box 37. At the same time, the booster pump 48 is started, and the booster pump 48 sends the water filtered by the filtration tank 35 into the inside of the inner pipe 47 through the water supply pipe 49 and the connecting pipe 50, and then sprays it out through the spray nozzles 51. Thus, when the aquatic products move inside the feeding box 37, they will be washed by water again, further enhancing the cleaning effect on the aquatic products;

[0054] The tumbling and washing mechanism further includes a transmission gear four 52, a transmission gear ring two 53, a transmission gear five 54, a mounting rod 55, a mounting seat 56, a kneading roller two 57, a mounting spring 58, a fixing rod 59, and a cam two 60. The transmission gear four 52 is fixedly sleeved on the drive shaft 45. The transmission gear ring two 53 is of an annular structure and is fixedly sleeved on the side wall of the inner tube 47. The transmission gear five 54 is rotatably mounted on the inner wall of the fuselage 1, and the mounting rod 55 meshes and drives between the transmission gear ring two 53 and the transmission gear four 52. Thus, when the drive shaft 45 rotates, the transmission gear four 52 will rotate along with the drive shaft 45, and then drive the transmission gear ring two 53 to rotate through the transmission gear five 54. The transmission gear ring two 53 then drives the inner tube 47 to rotate, so that the water flow ejected from the nozzle 51 can rotate, increasing the range of the ejected water flow. The mounting rod 55 is of a cylindrical structure and is movably mounted on the inner tube 47 by embedding. The mounting seat 56 is of a hollow structure and is fixedly mounted at one end of the mounting rod 55 away from the inner tube 47. The kneading roller two 57 is movably mounted inside the mounting seat 56. The mounting spring 58 is located inside the inner tube 47 and is sleeved on the mounting rod 55. The fixing rod 59 is of a cylindrical structure, is located inside the inner tube 47, and is fixedly connected to the connecting pipe 50. The cam two 60 is a circular structure with a protrusion, and the cam two 60 is fixedly sleeved on the fixing rod 59 at the position corresponding to the mounting rod 55. When the inner tube 47 rotates, since the fixing rod 59 and the cam two 60 are fixedly connected to the connecting pipe 50, the fixing rod 59 and the cam two 60 will not rotate. The inner tube 47 drives the mounting rod 55 to rotate, and the mounting rod 55 will contact the cam two 60, so that the mounting rod 55 is squeezed, thereby driving the kneading roller two 57 to move towards the inner wall of the tumbling and washing cylinder 39, and then making the mounting seat 56 contact the aquatic product. The contact between the kneading roller two 57 and the rotating and moving aquatic product can clean the surface of the aquatic product again. At the same time, the nozzle 51 sprays clean water, and after being filtered by the tumbling and washing cylinder 39, the cleaned sewage will be collected by the waste collection box 41, and the aquatic products discharged from the inside of the tumbling and washing cylinder 39 will be collected by the material receiving box 42.

[0055] Embodiment 2:

[0056] This embodiment discloses a raw material cleaning process for the production of small canned Buddha Jumping over the Wall, which is applied to the above-mentioned raw material cleaning equipment for the production of small canned Buddha Jumping over the Wall, and includes the following steps:

[0057] Step 1: The aquatic product can be conveyed onto the main conveyor belt 4 through the blanking plate 3. The rotation of the main conveyor belt 4 can drive the movement of the aquatic product. The spray pipe 5 sprays water through the nozzle 6 to clean the aquatic product. The aquatic product moving on the main conveyor belt 4 can contact the kneading roller one 9, and the kneading roller one 9 can then rotate to clean the surface of the aquatic product;

[0058] Step 2: Start the driving mechanism. The driving mechanism can drive the transmission frame 15 to move reciprocally. When the transmission frame 15 moves reciprocally, the transmission rack 19 moves reciprocally along with the transmission frame 15. The transmission rack 19 and the first transmission gear 18 are in meshing transmission, thereby driving the mounting shaft 7 and the spray pipe 5 to swing reciprocally, so that the spray head 6 can swing and spray when spraying the aquatic products on the main conveyor belt 4, improving the spraying range. At the same time, the spray pipe 5 will also drive the telescopic arm 8 and the first kneading roller 9 to swing. The first kneading roller 9 swings on the surface of the aquatic products, improving the cleaning effect on the aquatic products;

[0059] Step 3: At the same time, the transmission frame 15 drives the extrusion rod 16 to move reciprocally. The extrusion rod 16 will continuously extrude the transmission block 17. When the transmission block 17 is extruded, it will drive the transmission seat 13 and the electromagnet 14 to move reciprocally. The transmission seat 13 and the electromagnet 14 are located inside the main conveyor belt 4. When the transmission seat 13 moves reciprocally, start the electromagnet 14 at the same time;

[0060] Step 4: At this time, the transmission seat 13 is adsorbed to the auxiliary conveyor belt 12 through the electromagnet 14 and the magnetic strip. The auxiliary conveyor belt 12 will also be driven by the transmission seat 13 to move on the main conveyor belt 4. As a result, the aquatic products on the main conveyor belt 4 can not only move along with the main conveyor belt 4, but also move horizontally back and forth on the main conveyor belt 4 due to the movement of the auxiliary conveyor belt 12, thereby avoiding the accumulation of aquatic products on the main conveyor belt 4.

[0061] The above description enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art. The general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A raw material cleaning device for the production of small-can Buddha Jumping Over the Wall, comprising a fuselage (1), a feed inlet (2) is provided on the fuselage (1), and a main conveyor belt (4) is installed inside the fuselage (1), characterized in that: A blanking plate (3) is installed between the feed inlet (2) and the main conveyor belt (4). Above the main conveyor belt (4), a plurality of spray pipes (5) are provided. Nozzles (6) are installed on the spray pipes (5). Installation shafts (7) are fixedly installed at both ends of the spray pipes (5). A telescopic arm (8) is fixedly installed below the side wall of the spray pipe (5). A kneading roller one (9) is rotatably installed at the bottom of the telescopic arm (8). An installation groove (11) is formed in the side wall of the main conveyor belt (4). An iron-based auxiliary conveyor belt (12) is movably installed inside the installation groove (11). A transmission mechanism and a driving mechanism are provided on the fuselage (1); The transmission mechanism includes: A transmission seat (13) and an electromagnet (14). The transmission seat (13) is arranged inside the main conveyor belt (4) through a spring. The electromagnet (14) is embedded in the transmission seat (13). A plurality of magnetic strips are arranged at the position of the auxiliary conveyor belt (12) corresponding to the transmission seat (13). The transmission seat (13) can be adsorbed to the auxiliary conveyor belt (12) through the electromagnet (14) and the magnetic strips; A transmission frame (15), a pressing rod (16) and a transmission block (17). The transmission frame (15) is arranged on the outer side wall of the fuselage (1). The pressing rod (16) is fixedly installed on the inner wall of the transmission frame (15). The transmission block (17) is fixedly installed on the side wall of the transmission seat (13) and penetrates through the side wall of the fuselage (1); A first transmission gear (18), a transmission rack (19) and a limit seat (20). The first transmission gear (18) is fixedly sleeved on the installation shaft (7). The transmission rack (19) is fixedly installed on the limit seat (20) and meshes with the first transmission gear (18). The limit seat (20) is fixedly installed on the side wall of the fuselage (1). The transmission frame (15) is movably installed inside the limit seat (20). The transmission frame (15) drives the pressing rod (16) to reciprocate. The pressing rod (16) will continuously press the transmission block (17). The transmission block (17) will drive the transmission seat (13) and the electromagnet (14) to move when being pressed. The transmission seat (13) and the electromagnet (14) are located inside the main conveyor belt (4). The transmission seat (13) can be adsorbed to the auxiliary conveyor belt (12) through the electromagnet (14) and the magnetic strips.

2. The raw material cleaning equipment for the production of small-pot Buddha jumps over the wall according to claim 1, characterized in that: The driving mechanism includes a first driving motor (21), a motor seat (22), a rotating plate (23), a rotating shaft (24) and a transmission sleeve (25). The motor seat (22) is fixedly installed on the side wall of the fuselage (1). The first driving motor (21) is fixedly installed on the motor seat (22). The rotating plate (23) is located inside the motor seat (22) and is fixedly connected to the output end of the motor seat (22). The rotating shaft (24) is fixedly installed at a position away from the center of the rotating plate (23). One end of the transmission sleeve (25) is of a hollow structure. The rotating shaft (24) is located inside the transmission sleeve (25). The transmission sleeve (25) is fixedly connected to the transmission frame (15).

3. The raw material cleaning equipment for the production of small-pot Buddha Jumping Over the Wall according to claim 1, characterized in that: A plurality of turning plates (10) are movably mounted on the main conveyor belt (4) through torsion spring shafts. A turning mechanism is arranged on the main conveyor belt (4). The turning mechanism includes a transmission chain belt (27), a movable shaft (28), a second transmission gear (29), a first cam (30), and a dial block (31). The transmission chain belt (27) is embedded in the main conveyor belt (4) and can rotate with the rotation of the main conveyor belt (4). The movable shaft (28) is movably mounted on the inner wall of the fuselage (1) corresponding to the position of the turning plate (10). The second transmission gear (29) is fixedly sleeved on the movable shaft (28), and the second transmission gear (29) meshes with the transmission chain belt (27). The first cam (30) is a circular structure with a protrusion. The first cam (30) is fixedly sleeved on the movable shaft (28) and fixedly connected to the second transmission gear (29). One end of the dial block (31) is in contact with the first cam (30). A partition plate (26) is fixedly mounted on the main conveyor belt (4).

4. The raw material cleaning equipment for the production of small-pot Buddha Jumping over the Wall according to claim 1, characterized in that: A connecting plate (32) is arranged inside the spray pipe (5). One end of the telescopic arm (8) penetrates through the side wall of the spray pipe (5) and is fixedly connected to the connecting plate (32). A flow guiding block (33) is fixedly mounted at the bottom of the connecting plate (32) corresponding to the position of the spray head (6). The flow guiding block (33) is a frustum-shaped structure that gradually becomes smaller from top to bottom.

5. The raw material cleaning equipment for the production of small-pot Buddha Jumping Over the Wall according to claim 1, wherein: A water collecting tank (34) is arranged below the main conveyor belt (4). A filter screen is also arranged inside the water collecting tank (34). The filter screen can preliminarily filter the collected water. A filter box (35) is fixedly mounted at the bottom of the water collecting tank (34). A plurality of material receiving plates (36) are arranged on the right side inside the fuselage (1). A rolling washing cylinder (39) is arranged below the inside of the fuselage (1). A feeding box (37) is arranged between the rolling washing cylinder (39) and the material receiving plate (36). The inside of the feeding box (37) gradually becomes smaller from top to bottom. A sealing plate (38) is fixedly mounted on the feeding box (37). The sealing plate (38) is located inside the rolling washing cylinder (39). Driving inner threads (40) are arranged inside the rolling washing cylinder (39). A waste receiving box (41) and a material receiving box (42) are arranged below the rolling washing cylinder (39). A rolling washing mechanism is arranged inside the rolling washing cylinder (39).

6. The raw material cleaning equipment for the production of small-can Buddha Jumping Over the Wall according to claim 5, characterized in that: The rolling washing mechanism includes a first transmission gear ring (43), a second driving motor (44), a driving shaft (45), a third transmission gear (46), an inner pipe (47), a booster pump (48), a water supply pipe (49), a connecting pipe (50), and a spray port (51). The first transmission gear ring (43) is fixedly sleeved on one end of the rolling washing cylinder (39). The second driving motor (44) is fixedly mounted on the side wall of the fuselage (1). The driving shaft (45) is fixedly mounted on the output end of the second driving motor (44). The third transmission gear (46) is fixedly mounted on the driving shaft (45), and the third transmission gear (46) meshes with the first transmission gear ring (43).

7. The raw material cleaning equipment for the production of small-pot Buddha jumps over the wall according to claim 6, characterized in that: The inner pipe (47) is fixedly installed on the side wall of the fuselage (1), and the inner pipe (47) is located inside the rolling washing cylinder (39). The booster pump (48) is fixedly installed at the bottom of the filter tank (35). The input end of the booster pump (48) is connected to the inside of the filter tank (35). The water supply pipe (49) is fixedly installed at the output end of the booster pump (48). The connecting pipe (50) is fixedly installed between the water supply pipe (49) and the inner pipe (47). There are a plurality of spray nozzles (51), and the plurality of spray nozzles (51) are evenly distributed on the inner pipe (47).

8. The raw material cleaning equipment for the production of small-can Buddha Jumping over the Wall according to claim 6, characterized in that: The rolling washing mechanism further includes a transmission gear four (52), a transmission gear ring two (53), a transmission gear five (54), a mounting rod (55), a mounting seat (56), a kneading roller two (57), a mounting spring (58), a fixing rod (59), and a cam two (60). The transmission gear four (52) is fixedly sleeved on the driving shaft (45). The transmission gear ring two (53) is fixedly sleeved on the side wall of the inner pipe (47). The transmission gear five (54) is rotatably installed on the inner wall of the fuselage (1), and the mounting rod (55) is meshed and driven with the transmission gear ring two (53) and the transmission gear four (52). The mounting rod (55) is inlaid and movably installed on the inner pipe (47). The mounting seat (56) is a hollow structure, and the mounting seat (56) is fixedly installed at one end of the mounting rod (55) away from the inner pipe (47).

9. The raw material cleaning equipment for the production of small-pot Buddha Jumping Over the Wall according to claim 8, characterized in that: The kneading roller two (57) is movably installed inside the mounting seat (56). The mounting spring (58) is located inside the inner pipe (47) and sleeved on the mounting rod (55). The fixing rod (59) is located inside the inner pipe (47) and fixedly connected to the connecting pipe (50). The cam two (60) is a circular structure with a protrusion, and the cam two (60) is fixedly sleeved on the fixing rod (59) at a position corresponding to the mounting rod (55).

10. A raw material cleaning process for the production of small-can Buddha Jumping Over the Wall, which is applied to the raw material cleaning equipment for the production of small-can Buddha Jumping Over the Wall described in any one of claims 1-9, and is characterized in that: It includes the following steps: Step 1: The aquatic products can be conveyed onto the main conveyor belt (4) through the blanking plate (3). The rotation of the main conveyor belt (4) can drive the movement of the aquatic products. The spray pipe (5) sprays water through the spray head (6) to clean the aquatic products. When the aquatic products move on the main conveyor belt (4), they can contact the kneading roller one (9), and the rotation of the kneading roller one (9) can clean the surface of the aquatic products; Step 2: Start the driving mechanism. The driving mechanism can drive the transmission frame (15) to perform a reciprocating motion. When the transmission frame (15) performs a reciprocating motion, the transmission rack (19) reciprocates with the transmission frame (15). The transmission rack (19) is meshed and driven with the transmission gear one (18), thereby driving the installation shaft (7) and the spray pipe (5) to swing reciprocally, so that the spray head (6) can swing and spray when spraying the aquatic products on the main conveyor belt (4), improving the spraying range. At the same time, the spray pipe (5) will also drive the telescopic arm (8) and the kneading roller one (9) to swing. The kneading roller one (9) swings on the surface of the aquatic products, improving the cleaning effect on the aquatic products; Step 3: At the same time, the transmission frame (15) drives the extrusion rod (16) to reciprocate. The extrusion rod (16) will continuously extrude the transmission block (17). When the transmission block (17) is extruded, it will drive the transmission seat (13) and the electromagnet (14) to reciprocate. The transmission seat (13) and the electromagnet (14) are located inside the main conveyor belt (4). When the transmission seat (13) reciprocates, the electromagnet (14) is started simultaneously; Step 4: At this time, the transmission seat (13) is adsorbed to the auxiliary conveyor belt (12) through the electromagnet (14) and the magnetic strip. The auxiliary conveyor belt (12) will also be driven by the transmission seat (13) to move on the main conveyor belt (4). As a result, the aquatic products on the main conveyor belt (4) can not only move with the main conveyor belt (4), but also move horizontally back and forth on the main conveyor belt (4) due to the movement of the auxiliary conveyor belt (12), thus avoiding the accumulation of aquatic products on the main conveyor belt (4).

Citation Information

Patent Citations

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    CN111685163A

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