Automatic cleaning and draining production line for taro

By using high-pressure spray plates, conveyor belts, and gear meshing structures in the taro washing production line, combined with elastic feeding rods and sealing plates, the problem of uneven washing caused by individual and shape differences in taro during the washing process is solved, achieving efficient and stable washing and draining effects.

CN120240670BActive Publication Date: 2026-03-03JIANG YONGLING ZITAO AGRICULTURAL PRODUCTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

The existing taro washing production line suffers from uneven washing results for taro of different shapes and sizes during the conveying process, resulting in low washing efficiency.

Method used

The system employs components such as high-pressure spray plates, conveyor belts, end plates, baffles, arc-shaped inserts, and springs. Through the rotation of the conveyor belt and gear meshing, it achieves stable conveying and thorough cleaning of taro. The elastic feeding rod and sealing plate structure ensure that the taro is in full contact with the water flow and that moisture is separated.

Benefits of technology

It achieves stable delivery and efficient cleaning of taro of different individual shapes, ensuring consistent and efficient cleaning results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of taro cleaning and draining, and in particular to an automatic cleaning and draining production line for taros, which comprises a high-pressure spraying plate, an equipment base and a liquid collecting tank, the equipment base is installed on the upper surface of the liquid collecting tank, the high-pressure spraying plate is located above the equipment base, two conveyors are arranged above the equipment base, a transmission roller is installed at each of the four corners of the inner ring side of each conveyor, the transmission rollers are rotationally connected to the equipment base, the two conveyors are connected through a plurality of storage structures, and the high-pressure spraying plate is located above the conveyors and the storage structures. The present application can form a ring-shaped structure between the spaces between the front and rear end plates through a plurality of material blocking rods, block the taros to be cleaned between the front and rear end plates, and then stably drive the taros between the front and rear end plates to pass below the high-pressure spraying plate for cleaning when the conveyors rotate, so that the taros of different individuals and shapes can be stably conveyed and cleaned.
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Description

Technical Field

[0001] This invention relates to the technical field of taro washing and draining, and in particular to an automated taro washing and draining production line. Background Technology

[0002] With the research and development of taro, people have discovered that it also has high nutritional and medicinal value. Therefore, people are processing taro for added value, such as taro dietary supplements, taro juice compound protein drinks, taro snacks, taro biscuits, taro original liquor, taro eight-treasure porridge, and taro fluoride toothpaste, etc. Taro needs to be washed and drained during processing.

[0003] Chinese patent CN209825153U discloses a taro cleaning machine, relating to the field of cleaning machines. Addressing the problems of time-consuming, labor-intensive, and inefficient taro cleaning methods, the following solution is proposed: It includes a machine casing, a wastewater collection tank, a feed inlet, and a discharge outlet. The machine casing contains a horizontal plate, with side plates on the front and rear sides. A large roller and a small roller are positioned between the two side plates, with both ends movably connected to the side plates via bearings. A first gear and a second gear are respectively located at their rear ends. A slider is provided on the horizontal plate, and slide rails are provided on the left and right inner walls of the machine casing. A first motor is located on the top surface of the horizontal plate, with a third gear fixedly connected to the output end of the first motor. A rotating rod is movably connected to the rear surface of the side plates via bearings, with a first gear and a fourth gear respectively on the rotating rod. A threaded rod is fixedly connected to the center of the top surface of the horizontal plate, and a threaded cylinder is located above the threaded rod. This utility model cleaning machine is characterized by high efficiency and ease of use. The above-mentioned related technologies have the following defects: In the existing technology, the production line will place the taro directly on the conveyor line during the cleaning process. However, due to the different shapes and sizes of the taro, the conveyor line has different transport capabilities for different taro during the transportation process, resulting in some taro being delayed. This leads to different cleaning effects for different taro. Therefore, an automated taro cleaning and draining production line is proposed. Summary of the Invention

[0004] To ensure stable conveying and cleaning of taro of different sizes and shapes, this invention provides an automated taro cleaning and draining production line.

[0005] This invention provides an automated taro washing and draining production line, employing the following technical solution: It includes a high-pressure spray plate, an equipment base, and a liquid collection tank. The equipment base is installed on the upper surface of the liquid collection tank. The high-pressure spray plate is located above the equipment base. Two conveyor belts are arranged above the equipment base. Each conveyor belt has a drive roller installed at one of its four corners on its inner ring side. The drive rollers are rotatably connected to the equipment base. The two conveyor belts are connected by multiple storage structures. The high-pressure spray plate is located above the conveyor belts and the storage structures. A bent water collection tank is connected to the upper end of the liquid collection tank. The bent water collection tank is located on the inner ring side of the two conveyor belts, and its upper surface is open. Two material control structures are installed on the upper end of the equipment base, located on the upper left and lower right sides of the conveyor belts, respectively. The high-pressure spray plate is located between the two material control structures.

[0006] The storage structure includes two end plates, with the ends of the two end plates rotatably passing through the sides of the two conveyor belts that are close to each other. Multiple baffles are arranged between the two end plates, and each baffle has an arc-shaped insert fixed at both ends. The arc-shaped inserts are slidably inserted into the interior of the adjacent end plates. Among the multiple arc-shaped inserts located inside the same end plate, every two adjacent arc-shaped inserts are connected by a spring. An external gear is coaxially fixed to the front end plate of the two end plates.

[0007] The upper end of the bent water tank is fixed with an upper toothed plate, and two conveyor belts are located behind the upper toothed plate. The upper toothed plate and the external gear are located on the same plane.

[0008] Optionally, an internal gear is provided in front of the external gear, and an internal shaft is fixed coaxially to the internal gear. The internal shaft rotates through two adjacent rear end plates. Multiple elastic feeding rods are fixed on the circumferential side of the internal shaft between the two connected end plates. A lower toothed plate is fixed at the upper end of the bent water tank, and two conveyor belts are located behind the lower toothed plate.

[0009] Optionally, the lower gear plate and the internal gear are located on the same plane, and multiple elastic feed rods connected to the same inner shaft are evenly distributed in a threaded manner on the outer surface of the inner shaft.

[0010] Optionally, the material control structure includes a material box and two sealing plates. A rectangular frame is provided on the side of the material box away from the two conveyor belts. The rectangular frame is elastically connected to the material box. A bending power telescopic rod is fixed on both the front and back of the rectangular frame. A crossbar is slidably connected to the other end of the bending power telescopic rod. The crossbar is fixed to the equipment base. A horizontal elastic telescopic rod is fixed to the end of the bending power telescopic rod away from the rectangular frame. The other end of the horizontal elastic telescopic rod is slidably sleeved on the outer surface of the adjacent crossbar. The two sealing plates slide through the inner walls of the left and right sides of the material box at their respective ends away from each other. Side rods are provided on both the front and rear sides of the material box. The upper end of the side rod is fixed to the rectangular frame. Two hinged push rods are rotatably connected to the end of the side rod near the conveyor belt. The two hinged push rods connected to the same side rod are rotatably connected to the two sealing plates respectively.

[0011] Optionally, a toothed grooved wheel is fixed to the rear end of the end plate connected to the rear conveyor belt of the two conveyor belts. An elastic damping plate is engaged with the circumferential side of the toothed grooved wheel, and the elastic damping plate is fixed to the rear conveyor belt of the two conveyor belts.

[0012] Optionally, each end plate has an internal ring, with an arc-shaped insert and a spring slidingly fitted inside the adjacent ring.

[0013] Optionally, the two hinged push rods connected to the same side rod are arranged in a figure-eight shape, and the end of the sealing plate inside the feed box is bent toward the conveyor belt. The bent end of the sealing plate has an angled bevel, and the end of the sealing plate near the conveyor belt extends out of the feed box.

[0014] Optionally, the sealing plate is fitted with a sloping block on the side away from the conveyor belt. The sloping block is fixedly installed inside the feed box, and the upper surfaces of the two sloping blocks located inside the same feed box are inverted V-shapes.

[0015] Optionally, multiple baffles connected to the same end plate are arranged parallel to each other at equal distances, and a sleeve is rotatably fitted onto the outer surface of the baffle.

[0016] In summary, the present invention has the following beneficial technical effects:

[0017] This invention, by setting up components such as end plates, baffles, arc-shaped inserts, and springs, allows the taro to be cleaned to be placed between multiple baffles between the front and rear end plates. The springs push the arc-shaped inserts, causing the multiple baffles to form a ring structure in the space between the front and rear end plates, sealing the taro between the two end plates. Then, when the conveyor belt rotates, it can stably carry the taro between the front and rear end plates through the high-pressure spray plate for cleaning. This invention can stably transport and clean taro of different sizes and shapes. This invention, by setting up components such as an upper toothed plate, a lower toothed plate, an external gear, and an internal gear, allows the conveyor belt to move the end plate to below the high-pressure spray plate. When the conveyor belt moves the end plate to below the high-pressure spray plate, the external gear and internal gear connected to the corresponding end plate and the inner shaft mesh with the bottom surface of the upper toothed plate and the upper surface of the lower toothed plate, respectively. This causes the inner shaft and the corresponding end plate to rotate relative to each other. When the inner shaft rotates, it drives the elastic feeding rod to move the taro between the two end plates. When the end plate rotates, it causes the taro to change its position and space, so that the taro can fully contact the water sprayed from the high-pressure spray plate. Then, when the taro moves to one side of the high-pressure spray plate, the continuing to rotate end plate and elastic feeding rod cause the taro to rotate around the axis of the corresponding end plate, which facilitates the separation of water from the taro surface. This invention utilizes components such as a feeding box, sealing plates, a rectangular frame, and a horizontal elastic telescopic rod. When the end plate rotates to the upper left of the conveyor belt, the bending power telescopic rod pushes the rectangular frame downwards. The rectangular frame, through an elastic connection, drives the feeding box, causing the lower end of the sealing plate to insert between two of the material stop bars between the two end plates below. As the rectangular frame continues to move downwards, the feeding box stops moving due to the obstruction of the end plate. The rectangular frame then moves closer to the feeding box, and a side rod pushes a hinged push rod to rotate, pushing the two sealing plates inside the feeding box away from each other. As the two sealing plates move away from each other, they push the two material stop bars that are in contact away from each other. Taro can be added between the two end plates through the feeding box via the two sealing plates. When the end plate rotates to the lower right of the conveyor belt, the lower sealing plate opens the two material stop bars that are in contact, allowing the cleaned taro between the two end plates to be discharged from the feeding box. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure in an embodiment of the present invention;

[0019] Figure 2 This is a front view structural diagram in an embodiment of the present invention;

[0020] Figure 3 This is a top view of the structure in an embodiment of the present invention;

[0021] Figure 4 This is a schematic diagram of the connection between the liquid collection tank and the bent water tank in an embodiment of the present invention;

[0022] Figure 5 This is a schematic diagram of the connection between the inclined block and the feed box in an embodiment of the present invention;

[0023] Figure 6 This is a schematic diagram of the connection between the toothed groove wheel and the elastic damping plate in an embodiment of the present invention;

[0024] Figure 7 This is a schematic diagram of the connection between the elastic feed rod and the inner shaft in an embodiment of the present invention;

[0025] Figure 8 This is a schematic diagram of some structural tests in an embodiment of the present invention.

[0026] Reference numerals: 1. High-pressure spray plate; 2. Equipment base; 3. Liquid collection tank; 4. Conveyor belt; 5. Drive roller; 6. Bending water collection tank; 7. Storage structure; 71. End plate; 711. Toothed grooved wheel; 712. Elastic damping plate; 713. Ring; 714. Sleeve; 72. Material stop bar; 73. Arc-shaped insert; 74. Spring; 75. External gear; 76. Internal gear; 77. Inner shaft; 78. Elastic material pusher bar; 79. Lower toothed plate; 8. Material control structure; 81. Material box; 82. Sealing plate; 821. Inclined block; 83. Rectangular frame; 84. Bending power telescopic rod; 85. Crossbar; 86. Horizontal elastic telescopic rod; 87. Side bar; 88. Hinge push rod; 9. Upper toothed plate. Detailed Implementation

[0027] The following is in conjunction with the appendix Figures 1-8 The present invention will be described in further detail below.

[0028] This invention discloses an automated taro washing and draining production line. For example... Figures 1-8 As shown, the system includes a high-pressure spray plate 1, an equipment base 2, and a liquid collection tank 3. The high-pressure spray plate 1 is connected to an external water supply structure, allowing the bottom surface of the high-pressure spray plate 1 to spray high-pressure water downwards. The equipment base 2 is mounted on the upper surface of the liquid collection tank 3, with the high-pressure spray plate 1 positioned above the equipment base 2. Two conveyor belts 4 are installed above the equipment base 2, and each conveyor belt 4 has a drive roller 5 installed at one of the four corners of its inner ring. The drive rollers 5 are rotatably connected to the equipment base 2. The two conveyor belts 4 are connected by multiple storage structures 7. The high-pressure spray plate 1 is positioned... Above the conveyor belt 4 and the storage structure 7, a bent water tank 6 is installed at the upper end of the liquid collection tank 3. The bent water tank 6 is located on the inner ring side of the two conveyor belts 4. The upper surface of the bent water tank 6 is open. Water falling from above can flow into the open interior of the bent water tank 6, and then flow into the liquid collection tank 3 through both ends of the bent water tank 6. Two material control structures 8 are installed on the upper end of the equipment base 2. The two material control structures 8 are located at the upper left and lower right of the conveyor belt 4, respectively. The high-pressure spray plate 1 is located between the two material control structures 8.

[0029] The material control structure 8 includes a material box 81 and two sealing plates 82. A rectangular frame 83 is provided on the side of the material box 81 away from the two conveyor belts 4. The rectangular frame 83 is elastically connected to the material box 81. Bending power telescopic rods 84 are fixed on both the front and back of the rectangular frame 83. A crossbar 85 is slidably connected to the other end of the bending power telescopic rod 84. The crossbar 85 is fixed to the equipment base 2. The bending power telescopic rod 84 has the tendency to drive the rectangular frame 83 to move up and down. A horizontal elastic telescopic rod 86 is fixed to the end of the bending power telescopic rod 84 away from the rectangular frame 83. The other end of the horizontal elastic telescopic rod 86 is slidably sleeved on the outer surface of the adjacent crossbar 85. The two sealing plates 82 slide through the inner walls of the left and right sides of the material box 81 respectively. The material box 81 has both front and rear sides. A side rod 87 is provided, with its upper end fixed to a rectangular frame 83. Two hinged push rods 88 are rotatably connected to the side rod 87 near the conveyor belt 4. The two hinged push rods 88 connected to the same side rod 87 are rotatably connected to two sealing plates 82 respectively. The two hinged push rods 88 connected to the same side rod 87 are arranged in a V-shape. One end of the sealing plate 82 located inside the feed box 81 is bent toward the conveyor belt 4, and the bent end of the sealing plate 82 has an angled bevel. The end of the sealing plate 82 near the conveyor belt 4 extends out of the feed box 81. An inclined block 821 is attached to the side of the sealing plate 82 away from the conveyor belt 4. The inclined block 821 is fixedly installed inside the feed box 81. The upper surfaces of the two inclined blocks 821 located inside the same feed box 81 are inverted V-shapes.

[0030] The storage structure 7 includes two end plates 71. The ends of the two end plates 71 that are far apart from each other rotatably pass through the sides of two conveyor belts 4 that are close to each other. Multiple baffles 72 are arranged between the two end plates 71, parallel to and equidistant from each other. A sleeve 714 is rotatably fitted onto the outer surface of each baffle 72. A bent end of a sealing plate 82 is inserted between two baffles 72, and the bent end of the sealing plate 82 contacts the sleeve 714, causing the sleeve 714 to rotate. This facilitates the sealing plate 82 pushing the baffles 72 to move. Each baffle 72 has an arc-shaped insert 73 fixed at both ends. Block 73 is slidably inserted into the interior of adjacent end plates 71. Among the multiple arc-shaped blocks 73 located inside the same end plate 71, each pair of adjacent arc-shaped blocks 73 is connected by a spring 74. The spring 74 has a tendency to push the two connected arc-shaped blocks 73 away from each other, so that the multiple baffles 72 connected to the same end plate 71 form a ring structure. Each end plate 71 is provided with a ring 713 inside. The arc-shaped blocks 73 and the spring 74 are slidably sleeved inside the adjacent rings 713. The rings 713 limit the compression path of the spring 74. The end plate 71 located in front of the two end plates 71 is coaxially fixed with an external gear 75.

[0031] A toothed plate 9 is fixed to the upper end of the bent water tank 6. Two conveyor belts 4 are located behind the toothed plate 9. The toothed plate 9 and the external gear 75 are on the same plane. When the end plate 71 drives the connected external gear 75 to move below the high-pressure spray plate 1, the end plate 71 drives the external gear 75 to mesh with the toothed plate 9. When the external gear 75 moves with the conveyor belt 4, it can drive the connected end plate 71 to rotate. The end plate 71 drives the taro between them to rotate through the baffle rod 72. An internal gear 76 is set in front of the external gear 75. An internal shaft 77 is fixed coaxially to the internal gear 76. The internal shaft 77 rotates through the two adjacent rear end plates 71. Multiple elastic material-pulling rods 78 are fixed on the circumferential side of the internal shaft 77 between the two connected end plates 71. When the external gear 75 meshes with the toothed plate 9 At this time, the internal gear 76 meshes with the upper surface of the lower gear plate 79, and the internal gear 76 rotates in opposite directions to the external gear 75. Through the inner shaft 77, it drives the elastic feeding rod 78 to rotate relative to the end plate 71, so that the taro can fully contact the water sprayed from the high-pressure spray plate 1. Then, when the taro moves to one side of the high-pressure spray plate 1, the continuing to rotate end plate 71 and elastic feeding rod 78 drive the taro to rotate around the corresponding axis of end plate 71, which facilitates the separation of water from the taro surface. The upper end of the bent water tank 6 is fixed with a lower gear plate 79, and two conveyor belts 4 are located behind the lower gear plate 79. The lower gear plate 79 and the internal gear 76 are located on the same plane. Multiple elastic feeding rods 78 connected to the same inner shaft 77 are evenly distributed in a threaded manner on the outer surface of the inner shaft 77, and are located in the middle of the two conveyor belts 4. The rear end plate 71 connected to the rear conveyor belt 4 is fixed with a toothed grooved wheel 711. An elastic damping plate 712 meshes with the circumferential side of the toothed grooved wheel 711. The elastic damping plate 712 is fixed to the rear conveyor belt 4 of the two conveyor belts 4. Before the upper toothed plate 9 meshes with the external gear 75, the elastic damping plate 712 prevents the end plate 71 from rotating by meshing with the toothed grooved wheel 711. When the sealing plate 82 is inserted between the two stop bars 72, the end plate 71 will not rotate. When the end plate 71 rotates to the upper left of the conveyor belt 4, the bent power telescopic rod 84 pushes the rectangular frame 83 downward. The rectangular frame 83 drives the feed box 81 through an elastic connection, causing the lower end of the sealing plate 82 to insert between two of the stop bars 72 between the two end plates 71 passing below. As the rectangular frame 83 continues to move downwards, the feed box 81 stops moving due to the obstruction of the end plate 71. The rectangular frame 83 moves closer to the feed box 81, and the side rod 87 pushes the hinged push rod 88 to rotate, pushing the two sealing plates 82 inside the feed box 81 away from each other. As the two sealing plates 82 move away from each other, they can push the two contacting baffle rods 72 away from each other. Taro can be added between the two end plates 71 through the feed box 81 via the two sealing plates 82. When the sealing plates 82 are inserted between the two baffle rods 72, the conveyor belt 4 continues to move. The conveyor belt 4 drives the bending power telescopic rod 84 to slide on the crossbar 85 through the baffle rods 72, gradually compressing the horizontal elastic telescopic rod 86. Taro can be added between the baffle rods 72 without stopping the conveyor belt 4.When end plate 71 rotates to the lower right of conveyor belt 4, the lower sealing plate 82 opens the two contacting baffles 72, allowing the washed taro between the two end plates 71 to be discharged from the feed box 81. As the control rectangle 83 moves away from conveyor belt 4, it can cause the sealing plate 82 to disengage from the baffles 72, and the horizontal elastic telescopic rod 86 pushes the feed box 81 back to its original position.

[0032] The working principle is as follows: The conveyor belt 4 drives the end plate 71 to rotate synchronously. When the end plate 71 drives the baffle rod 72 to rotate to below the feed box 81 on the upper left side, the feed box 81 is controlled to move downward, adding taro between the corresponding two end plates 71. After the sealing plate 82 is pulled out from between the two end plates 71, the spring 74 pushes the arc-shaped insert 73, so that multiple baffle rods 72 form a ring structure in the space between the front and rear end plates 71, sealing the taro to be cleaned between the front and rear end plates 71. Then, the conveyor belt 4 drives the taro between the two end plates 71 to move to below the high-pressure spray plate 1. The high-pressure spray plate 1 sprays high-pressure water to wash the taro downward. At the same time, the external gear 75 and internal gear 76 connected to the corresponding end plate 71 and inner shaft 77 respectively... The bottom surface of the upper toothed plate 9 and the upper surface of the lower toothed plate 79 mesh, causing the inner shaft 77 and the corresponding end plate 71 to rotate relative to each other. When the inner shaft 77 rotates, it drives the elastic material-pulling rod 78 to move the taro between the two end plates 71. When the end plate 71 rotates, it causes the taro to change its position space, so that the taro can fully contact the water sprayed from the high-pressure spray plate 1. Then, when the taro moves to one side of the high-pressure spray plate 1, the continuing to rotate end plate 71 and elastic material-pulling rod 78 drive the taro to rotate around the axis of the corresponding end plate 71, which facilitates the separation of water from the taro surface and completes the draining of the taro. When the end plate 71 rotates to the lower right of the conveyor belt 4, the sealing plate 82 on the lower side will open the two contacting baffle rods 72, and the cleaned taro between the two end plates 71 can be discharged from the feed box 81.

[0033] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.

Claims

1. A kind of automatic cleaning and draining production line of fragrant colocasia, including high-pressure spray plate (1), equipment base (2) and liquid collection tank (3), it is characterized by: The equipment base (2) is installed on the upper surface of the liquid collecting box (3), the high-pressure spray plate (1) is located above the equipment base (2), two conveying belts (4) are arranged above the equipment base (2), a transmission roller (5) is arranged at each of four corners of the inner ring side of each conveying belt (4), the transmission roller (5) is rotationally connected with the equipment base (2), the two conveying belts (4) are connected through a plurality of storage structures (7), the high-pressure spray plate (1) is located above the conveying belt (4) and the storage structure (7), the liquid collecting box (3) is connected and communicated with a bending water receiving tank (6) at the upper end, the bending water receiving tank (6) is located at the inner ring side of the two conveying belts (4), the upper surface of the bending water receiving tank (6) is open, two material control structures (8) are installed at the upper end of the equipment base (2), the two material control structures (8) are located above the left upper side of the conveying belt (4) and below the right side of the conveying belt (4) respectively, and the high-pressure spray plate (1) is located between the two material control structures (8); The material control structure (8) comprises a material passing box (81) and two sealing plates (82), a rectangular frame (83) is arranged on the side, away from the two conveying belts (4), of the material passing box (81), the rectangular frame (83) is elastically connected with the material passing box (81), the front and back surfaces of the rectangular frame (83) are fixedly provided with bending power telescopic rods (84), the other ends of the bending power telescopic rods (84) are slidably connected with cross rods (85), the cross rods (85) are fixed with the equipment base (2), the ends, away from the rectangular frame (83), of the bending power telescopic rods (84) are fixedly provided with horizontal elastic telescopic rods (86), the other ends of the horizontal elastic telescopic rods (86) are slidably sleeved on the outer surfaces of the adjacent cross rods (85), the ends, away from each other, of the two sealing plates (82) are slidably penetrated through the inner walls on the left and right sides of the material passing box (81), side rods (87) are arranged on the front and back sides of the material passing box (81), the upper ends of the side rods (87) are fixed with the rectangular frame (83), two hinged push rods (88) are rotationally connected with the ends, close to the conveying belt (4), of the side rods (87), and the two hinged push rods (88) connected with the same side rod (87) are rotationally connected with the two sealing plates (82) respectively; The storage structure (7) comprises two end discs (71), the ends, away from each other, of the two end discs (71) are rotationally penetrated through the sides, close to each other, of the two conveying belts (4), a plurality of material blocking rods (72) are arranged between the two end discs (71), the two ends of each material blocking rod (72) are fixedly provided with arc-shaped insertion blocks (73), the arc-shaped insertion blocks (73) are slidably inserted into the adjacent end discs (71), every adjacent two arc-shaped insertion blocks (73) in the plurality of arc-shaped insertion blocks (73) in the same end disc (71) are connected through a spring (74), and the end disc (71) located in front of the two end discs (71) is fixedly provided with an external gear (75) coaxially; The upper end of the bending water receiving tank (6) is fixedly provided with an upper toothed plate (9), the two conveying belts (4) are located behind the upper toothed plate (9), and the upper toothed plate (9) and the external gear (75) are located in the same plane. The outer gear (75) is provided with an internal gear (76) in front, the internal gear (76) is coaxially fixed with an inner shaft (77), the inner shaft (77) rotates through two adjacent rear end plates (71), and the inner shaft (77) is fixed with a plurality of elastic stirring rods (78) on the circumferential side between the two connected end plates (71); the lower tooth plate (79) is fixed on the upper end of the bent water tank (6); and the two conveyors (4) are located behind the lower tooth plate (79). The lower tooth plate (79) is located in the same plane as the internal gear (76), and the plurality of elastic stirring rods (78) connected with the same inner shaft (77) are uniformly distributed in screw threads on the outer surface of the inner shaft (77).

2. The automated cleaning and draining production line for taro according to claim 1, characterized in that: The rear end of the end plate (71) connected with the conveyor (4) located at the rear of the two conveyors (4) is fixed with a toothed groove wheel (711), the circumferential side of the toothed groove wheel (711) is engaged with an elastic damping plate (712), and the elastic damping plate (712) is fixed with the conveyor (4) located at the rear of the two conveyors (4).

3. The automated cleaning and draining production line for taro according to claim 1, characterized in that: Each end plate (71) is provided with a circular ring (713) inside, and the arc-shaped insertion block (73) and the spring (74) are slidingly sleeved in the adjacent circular ring (713).

4. The automated cleaning and draining production line for taro according to claim 1, characterized in that: The two hinged push rods (88) connected with the same side rod (87) are distributed in a spreader shape, one end of the sealing plate (82) located inside the material passing box (81) is bent to one side of the conveyor (4), the bent end of the sealing plate (82) is inclined, and the sealing plate (82) extends out of the material passing box (81) at the end close to the conveyor (4).

5. The automated cleaning and draining production line for taro according to claim 4, characterized in that: The sealing plate (82) is provided with an inclined block (821) on the side away from the conveyor (4), the inclined block (821) is fixedly installed inside the material passing box (81), and the upper surfaces of the two inclined blocks (821) located in the same material passing box (81) are in an inverted V shape.

6. The automated cleaning and draining production line for taro according to claim 1, characterized in that: A plurality of material blocking rods (72) connected with the same end plate (71) are arranged in parallel at equal distances, and the outer surface of the material blocking rod (72) is rotatably sleeved with a sleeve (714).

Citation Information

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