Slicing and conveying device for nori processing
By designing the slice conveying device for seaweed processing, the combination of the output screw, rack and adsorption head can realize the automatic slice and transport of seaweed sheets, and the magnetic suction and magnetic repulsion of the electromagnet and magnetic plates can be achieved. The adsorption difficulties and adsorption problems caused by stacking seaweed sheets are solved, and the seaweed processing efficiency is improved.
Patent Information
- Application Number
- CN202510829261.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2045-06-20
AI Technical Summary
The existing seaweed remains stacked after slit, resulting in the adsorption device being unable to effectively adsorption, and the adsorption head is prone to stick to seaweed, affecting the subsequent adsorption effect.
A piece-piece conveying device for seaweed processing is designed. Through the cooperation of the output screw, rack and adsorption head, the automatic piece-piece and transport of seaweed sheets is realized, and the magnetic suction and magnetic repulsion of the electromagnet and magnetic plate are used to achieve self-cleaning of the adsorption head.
Automatic slicing conveying of seaweed sheets is realized, avoiding adhesion between seaweed sheets, ensuring the cleanliness of the adsorption head, and improving the adsorption efficiency and effect.
Smart Images

Figure CN120348720A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of processing and conveying, and more specifically to a slicing and conveying device for seaweed processing. Background Art
[0002] As an important branch of the food industry, seaweed processing is widely used in products such as sushi, instant snacks, and seasoned seaweed. In traditional seaweed processing, the slicing and conveying links are key steps that determine product quality and production efficiency. With the development of automation technology, mechanical cutting and conveying equipment has gradually been adopted in the industry to replace manual operations and improve production effects; When producing seaweed, first place the frozen raw seaweed rolls in a constant-temperature thawing chamber for rapid thawing to restore their flexibility. Use high-pressure air flow or soft brush rollers to remove surface impurities. Cut the large pieces of seaweed into standard shapes through a disc cutter group or a laser cutting machine, and then season the standard-shaped seaweed and convey and pack it according to the preset quantity requirements to complete the production; Currently, when cutting large pieces of seaweed, multiple pieces of seaweed are stacked on top of each other and cut as a whole. After cutting, the standard-shaped seaweed still remains stacked and is conveyed in this form. At this time, it is necessary to slice the stacked seaweed so that it can be conveyed one by one. However, when slicing, after adsorbing the seaweed, the seaweed will stick to each other, and there is a situation where several pieces are conveyed at a time; When adsorbing seaweed by means of negative pressure, the seaweed is in a stacked state. When the upper seaweed is conveyed away, the lower seaweed cannot be adsorbed. Therefore, the current adsorption device cannot adsorb a stack of seaweed with a relatively high height. And after adsorbing the seaweed, some seaweed will adhere to the adsorption head. If not cleaned in time, it will affect the subsequent adsorption effect. Summary of the Invention
[0003] In order to overcome the above-mentioned defects of the prior art, an embodiment of the present invention provides a slicing and conveying device for seaweed processing to solve the technical problems raised in the background art.
[0004] To achieve the above object, the present invention provides the following technical solution: A slicing and conveying device for seaweed processing, including a support table, a conveyor belt is fixedly connected to the top end of the support table, a placement table is fixedly connected to the side of the conveyor belt, a conveying mechanism is movably connected to the side of the placement table, the power end of a cleaning mechanism is movably connected to the bottom end of the conveying mechanism, the cleaning end of the cleaning mechanism is movably connected to the inside of the placement table near the conveyor belt, a feeding mechanism is movably connected to the inside of the placement table, and an adsorption head is fixedly connected to the side of the conveying mechanism; The conveying mechanism includes a fixed plate that can be fixed. On the side of the fixed plate away from the placement table, an output motor is fixedly connected. On the side of the output motor, an output screw is fixedly connected. A rack is threadedly connected to the side of the output screw. The top of the rack is fixedly connected to a bracket. The side of the bracket is fixedly connected to the top of the suction head. When the rack moves, it drives the power end of the cleaning mechanism to operate.
[0005] In a preferred embodiment, the power end of the cleaning mechanism and the cleaning end of the cleaning mechanism are combined into the cleaning mechanism, and the current generated by the power end of the cleaning mechanism is supplied for use by the cleaning end of the cleaning mechanism. The suction head is located directly above the feeding mechanism, and the suction head can move from directly above the feeding mechanism to above the conveyor belt.
[0006] In a preferred embodiment, a clamping strip is fixedly connected to the side of the rack close to the placement table. A sliding groove for the clamping strip to slide is provided inside the placement table. The length of the output screw is the same as the length of the side of the placement table. When the rack moves to the farthest position away from the output motor, the suction head is located above the conveyor belt.
[0007] In a preferred embodiment, the power end of the cleaning mechanism includes a gear that meshes with the rack. A connecting shaft is fixedly connected inside the gear. On the side of the connecting shaft away from the placement table, a conductor is fixedly connected. On the side of the conductor away from the conductor, a conductive coil is fixedly connected. Magnet groups are provided on both sides of the conductive coil.
[0008] In a preferred embodiment, a stable shaft plate is movably connected to the side of the conductive coil away from the conductor. The bottom end of the stable shaft plate is fixedly connected to a support plate. The side of the support plate is fixedly connected to the side of the placement table. The current generated by the conductive coil cutting the magnetic induction lines of the magnet group is supplied for use by the cleaning end of the cleaning mechanism through the conductor.
[0009] In a preferred embodiment, the power end of the cleaning mechanism includes an electromagnet that receives the current of the conductor. A positioning shaft is fixedly connected to the top of the electromagnet. A magnetic plate is movably connected to the side of the positioning shaft. A cleaning plate is fixedly connected to the top of the magnetic plate.
[0010] In a preferred embodiment, the feeding mechanism includes a feeding channel that can accommodate nori sheets. A limiting frame is movably connected inside the feeding channel. A moving plate is fixedly connected to the bottom end of the limiting frame. A slicing plate is fixedly connected to the side of the feeding channel. The slicing plate is located above the notch of the limiting frame.
[0011] In a preferred embodiment, the feeding mechanism includes a servo motor capable of providing power. A threaded rod is fixedly connected to the side of the servo motor. A threaded block is threadedly connected to the side of the threaded rod. A connecting block is fixedly connected to the side of the threaded block away from the servo motor. A first rotating plate is movably connected to the side of the connecting block. A first supporting block is movably connected to the side of the first rotating plate away from the connecting block. The top end of the first supporting block is fixedly connected to the bottom end of the moving plate.
[0012] In a preferred embodiment, connecting blocks, first rotating plates and first supporting blocks are provided on both sides of the bottom end of the moving plate. The connecting block on one side is connected to the threaded block, and the connecting block on the other side is fixedly connected to a second limiting cylinder. A second limiting rod is movably connected inside the second limiting cylinder. A second supporting block is fixedly connected to the bottom end of the side of the moving plate away from the first supporting block. A second rotating plate is movably connected to the side of the second supporting block. A fixed block is movably connected to the side of the second rotating plate. A first limiting cylinder is fixedly connected to the side of the fixed block close to the second supporting block. A first limiting rod is movably connected inside the first limiting cylinder.
[0013] Technical effects and advantages of the present invention: In the present invention, by providing an output screw rod, a rack, a bracket and a slicing plate, when the output motor is started, it drives the output screw rod to rotate, thereby causing the rack to move. When the rack moves, it can drive the suction head to move through the bracket. The suction head can adsorb the seaweed sheets in the feeding mechanism and send them to the conveyor belt. When the seaweed sheets move, they will pass through the slicing plate, and the seaweed sheets stuck together will be blocked and dropped, automatically completing the slicing and conveying work. When the rack of the present invention moves and the suction head sends the seaweed sheet above the conveyor belt, it will drive the gear to rotate forward. At this time, the conductor and the conductive coil rotate and cut the magnetic induction lines of the magnet group. At this time, the electromagnet is energized forward to generate magnetic attraction with the magnetic plate, and the magnetic plate drives the cleaning plate to move downward to avoid the suction head. When the rack drives the suction head back above the feeding mechanism, the rack causes the gear to rotate in reverse, thereby causing the electromagnet to be energized reversely to generate magnetic repulsion with the magnetic plate, and the cleaning plate moves upward and contacts the bottom end of the suction head, scraping off the impurities remaining after the suction head adsorbs. After the seaweed sheet is sucked away by the suction head in the present invention, the servo motor is started to drive the threaded rod to rotate. When the threaded rod rotates, it drives the threaded block to move. When the threaded block moves, it drives the first rotating plate to rotate through the connecting block. When the first rotating plate rotates, it drives the first supporting block to move upward, thereby causing the moving plate and the limiting frame to move upward, so that the seaweed sheet as a whole moves upward, ensuring that the suction head can adsorb the seaweed sheet each time, and avoiding the situation that the distance between the suction head and the seaweed sheet is too far to achieve the adsorption effect. Brief Description of the Drawings
[0014] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0015] Figure 2 This is a schematic diagram of the internal structure of the placement table of the present invention.
[0016] Figure 3 This is a schematic diagram of the structure of the conveying mechanism of the present invention.
[0017] Figure 4 This is a schematic diagram of the structure of the card strip of the present invention.
[0018] Figure 5 This is a schematic diagram of the power end structure of the cleaning mechanism of the present invention.
[0019] Figure 6 This is a schematic diagram of the cleaning end structure of the cleaning mechanism of the present invention.
[0020] Figure 7 This is a schematic diagram of the overall structure of the feeding mechanism of the present invention.
[0021] Figure 8 This is a schematic diagram of the disassembled structure of the feeding mechanism of the present invention.
[0022] Figure 9 This is an exploded schematic diagram of the feeding mechanism of the present invention.
[0023] Reference numerals are: 1, support table; 2, conveyor belt; 3, placement table; 4, conveying mechanism; 401, fixing plate; 402, output motor; 403, output screw; 404, rack; 405, card strip; 406, bracket; 5, adsorption head; 6, cleaning mechanism; 601, gear; 602, connecting shaft; 603, conductor; 604, conductive coil; 605, stable shaft plate; 606, support plate; 607, magnet group; 608, electromagnet; 609, magnetic plate; 610, cleaning plate; 611, positioning shaft; 7, feeding mechanism; 701, feeding channel; 702, slicing plate; 703, limiting frame; 704, moving plate; 705, servo motor; 706, threaded rod; 707, threaded block; 708, connecting block; 709, first rotating plate; 710, first support block; 711, fixed block; 712, first limiting cylinder; 713, first limiting rod; 714, second rotating plate; 715, second support block; 716, second limiting rod; 717, second limiting cylinder. Detailed implementation manners
[0024] Next, in combination with the accompanying drawings in the present invention, the technical solutions in the present invention will be clearly and completely described. In addition, the forms of each structure described in the following embodiments are merely examples. A sheet conveying device for laver processing according to the present invention is not limited to the structures described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.
[0025] Referring to Figure 1 With Figure 2 , the present invention provides a sheet conveying device for laver processing, including a support table 1. A conveyor belt 2 is fixedly connected to the top end of the support table 1. A placement table 3 is fixedly connected to the side of the conveyor belt 2. A conveying mechanism 4 is movably connected to the side of the placement table 3. The bottom end of the conveying mechanism 4 is movably connected to the power end of a cleaning mechanism 6. The cleaning end of the cleaning mechanism 6 is movably connected inside the placement table 3 near the inside of the conveyor belt 2. A feeding mechanism 7 is movably connected inside the placement table 3. An adsorption head 5 is fixedly connected to the side of the conveying mechanism 4. The power end and the cleaning end of the cleaning mechanism 6 are combined into the cleaning mechanism 6, and the current generated by the power end of the cleaning mechanism 6 is supplied to the cleaning end of the cleaning mechanism 6 for use. The adsorption head 5 is located directly above the feeding mechanism 7, and the adsorption head 5 can move from directly above the feeding mechanism 7 to above the conveyor belt 2.
[0026] In the embodiment of the present application, the cleaning mechanism 6 is composed of a power end and a cleaning end, and the power end of the cleaning mechanism 6 will automatically generate electricity when the conveying mechanism 4 operates. The generated current can be supplied to the cleaning end for use, ensuring the rapidity of the reaction of the cleaning end, and there is no need to adopt redundant power, making the present application more environmentally friendly and energy-saving when in use.
[0027] Referring to Figure 2 、 Figure 3 And Figure 4 , the conveying mechanism 4 includes a fixed plate 401 that can be fixed. An output motor 402 is fixedly connected to the side of the fixed plate 401 away from the placement table 3. An output screw 403 is fixedly connected to the side of the output motor 402. A rack 404 is threadedly connected to the side of the output screw 403. The top end of the rack 404 is fixedly connected to a bracket 406. The side of the bracket 406 is fixedly connected to the top end of the adsorption head 5. When the rack 404 moves, it drives the power end of the cleaning mechanism 6 to operate. A clamping strip 405 is fixedly connected to the side of the rack 404 close to the placement table 3. A sliding groove for the clamping strip 405 to slide is opened inside the placement table 3. The length of the output screw 403 is the same as the length of the side of the placement table 3. When the rack 404 moves to the farthest position away from the output motor 402, the adsorption head 5 is located above the conveyor belt 2.
[0028] In the embodiment of the present application, when the output screw 403 rotates, it drives the rack 404 to move. When the rack 404 moves, it drives the suction head 5 to move from above the feeding mechanism 7 to above the conveyor belt 2 through the bracket 406. At this time, the seaweed sheets can be automatically adsorbed to complete the conveying work. When the rack 404 moves, the clamping strip 405 slides in the chute on the side of the placement table 3 to ensure the stability of the rack 404 during movement.
[0029] Referring to Figure 5 and Figure 6 , the power end of the cleaning mechanism 6 includes a gear 601 that meshes with the rack 404. A connecting shaft 602 is fixedly connected inside the gear 601. A conductor 603 is fixedly connected to the side of the connecting shaft 602 away from the placement table 3. A conductive coil 604 is fixedly connected to the side of the conductor 603 away from the conductor 603. Magnet groups 607 are provided on both sides of the conductive coil 604. A stable shaft plate 605 is movably connected to the side of the conductive coil 604 away from the conductor 603. A support plate 606 is fixedly connected to the bottom end of the stable shaft plate 605. The side of the support plate 606 is fixedly connected to the side of the placement table 3. The current generated by the conductive coil 604 cutting the magnetic induction lines of the magnet groups 607 is supplied to the cleaning end of the cleaning mechanism 6 through the conductor 603. The power end of the cleaning mechanism 6 includes an electromagnet 608 that receives the current of the conductor 603. A positioning shaft 611 is fixedly connected to the top end of the electromagnet 608. A magnetic plate 609 is movably connected to the side of the positioning shaft 611. A cleaning plate 610 is fixedly connected to the top end of the magnetic plate 609.
[0030] In the embodiment of the present application, when the rack 404 moves, it drives the gear 601 to rotate forward. When the gear 601 rotates, it drives the conductor 603 and the conductive coil 604 to rotate through the connecting shaft 602, thereby cutting the magnetic induction lines of the magnet groups 607. The current generated at this time is supplied to the electromagnet 608 for automatic cleaning work. When the conductive coil 604 rotates, the stable shaft plate 605 supports the conductive coil 604 to ensure the stability of the conductive coil 604 during rotation. And when the electromagnet 608 is energized forward, a magnetic attraction force is generated between the electromagnet 608 and the magnetic plate 609. The electromagnet 608 adsorbs the magnetic plate 609, so that the seaweed below the suction head 5 does not contact the cleaning plate 610 when the suction head 5 moves, avoiding affecting the conveying work of the seaweed. When the electromagnet 608 is energized reversely, the magnetic attraction force between the electromagnet 608 and the magnetic plate 609 becomes a magnetic repulsion force. Therefore, the magnetic plate 609 will drive the cleaning plate 610 to move upward. When the cleaning plate 610 moves upward, it will be located below the suction head 5. When the suction head 5 passes by the cleaning plate 610, the lower part of the suction head 5 is cleaned to ensure the adsorption effect of the suction head 5.
[0031] Referring to Figure 7 , Figure 8 and Figure 9, the feeding mechanism 7 includes a feeding channel 701 that can accommodate nori sheets. A limiting frame 703 is movably connected inside the feeding channel 701. A moving plate 704 is fixedly connected to the bottom end of the limiting frame 703. A slicing plate 702 is fixedly connected to the side of the feeding channel 701. The slicing plate 702 is located above the notch of the limiting frame 703. The feeding mechanism 7 includes a servo motor 705 that can provide power. A threaded rod 706 is fixedly connected to the side of the servo motor 705. A threaded block 707 is threadedly connected to the side of the threaded rod 706. A connecting block 708 is fixedly connected to the side of the threaded block 707 away from the servo motor 705. A first rotating plate 709 is movably connected to the side of the connecting block 708. A first support block 710 is movably connected to the side of the first rotating plate 709 away from the connecting block 708. The top end of the first support block 710 is fixedly connected to the bottom end of the moving plate 704. Connecting blocks 708, first rotating plates 709, and first support blocks 710 are provided on both sides of the bottom end of the moving plate 704. The connecting block 708 on one side is connected to the threaded block 707, and the connecting block 708 on the other side is fixedly connected to a second limiting cylinder 717. A second limiting rod 716 is movably connected inside the second limiting cylinder 717. A second support block 715 is fixedly connected to the bottom end of the moving plate 704 away from the side of the first support block 710. A second rotating plate 714 is movably connected to the side of the second support block 715. A fixing block 711 is movably connected to the side of the second rotating plate 714. A first limiting cylinder 712 is fixedly connected to the side of the fixing block 711 close to the second support block 715. A first limiting rod 713 is movably connected inside the first limiting cylinder 712.
[0032] In the embodiment of the present application, when the threaded rod 706 rotates and drives the threaded block 707 and the connecting block 708 to move, it will drive the first rotating plate 709 to rotate. When the first rotating plate 709 rotates, it will drive the first support block 710 to move upward, and drive the moving plate 704 and the limiting frame 703 to move upward. At this time, the nori sheets in the limiting frame 703 will rise. Connecting blocks 708, first rotating plates 709, and first support blocks 710 are provided on both sides below the moving plate 704. The two first support blocks 710 support the moving plate 704. Second rotating plates 714 and second support blocks 715 are provided on both sides of the fixing block 711. The two first support blocks 710 and the two second support blocks 715 can prevent the moving plate 704 from tilting when moving. The first limiting rod 713 moves inside the first limiting cylinder 712, and the second limiting rod 716 moves inside the second limiting cylinder 717, which can ensure the stability of the present application during adjustment.
[0033] Working principle of the present invention: After the output motor 402 starts, it drives the output screw 403 to rotate. When the output screw 403 rotates, it drives the rack 404 to move. When the rack 404 moves, it drives the suction head 5 to move from above the feeding mechanism 7 to above the conveyor belt 2 through the bracket 406. During the movement, the slicing plate 702 is located below a piece of nori, so as to block the lower part that is stuck together and automatically slice it. And when the suction head 5 is above the feeding mechanism 7, negative pressure adsorption is carried out, so as to suck the nori sheet under the suction head 5. When the suction head 5 moves above the conveyor belt 2, the suction head 5 stops the adsorption state, so that the nori sheet falls on the conveyor belt 2 for transportation; When the rack 404 moves from the feeding mechanism 7 to the conveyor belt 2, the rack 404 drives the gear 601 to rotate forward when it moves. When the gear 601 rotates, it drives the conductor 603 and the conductive coil 604 to rotate through the connecting shaft 602, so as to cut the magnetic induction lines of the magnet group 607. At this time, the generated current is supplied to the electromagnet 608 for use. A magnetic suction force is generated between the electromagnet 608 that is energized forward and the magnetic plate 609. The electromagnet 608 adsorbs the magnetic plate 609, so that the cleaning plate 610 is located in the placement table 3. When the rack 404 moves back above the feeding mechanism 7 from above the placement table 3, the rack 404 moves in the reverse direction, which causes the gear 601 to rotate in the reverse direction. When the gear 601 rotates in the reverse direction, it drives the conductor 603, the conductor 603 and the conductive coil 604 to rotate in the reverse direction. At this time, the magnetic induction lines of the magnet group 607 are cut in the reverse direction. Therefore, when current is supplied to the electromagnet 608 again, the electromagnet 608 is energized in the reverse direction. At this time, the magnetic suction force between the electromagnet 608 and the magnetic plate 609 becomes a magnetic repulsive force. Therefore, the magnetic plate 609 will drive the cleaning plate 610 to move upward. When the cleaning plate 610 moves upward, it will be located below the suction head 5. When the suction head 5 passes through the cleaning plate 610, the lower part of the suction head 5 is cleaned to ensure the adsorption effect of the suction head 5; When the adsorption head 5 sends away a piece of seaweed, the servo motor 705 starts and drives the threaded rod 706 to rotate. When the threaded rod 706 rotates, the threaded block 707 drives the connecting block 708 to move away from the servo motor 705. When the connecting block 708 moves, the first rotating plate 709 rotates upward around the connecting block 708. And the moving plate 704 and the limiting frame 703 are both located in the feeding channel 701. Therefore, the limiting frame 703 and the moving plate 704 can only move in the vertical direction. So when the first rotating plate 709 rotates, it will drive the first support block 710 to move upward, and drive the moving plate 704 and the limiting frame 703 to move upward. At this time, the seaweed pieces in the limiting frame 703 will rise, maintaining the distance from the adsorption head 5, avoiding the situation that the distance between the seaweed pieces and the adsorption head 5 is too far to be adsorbed. And when the limiting frame 703 moves upward, the limiting frame 703 will be located on the side of the adsorption head 5 and will not contact the adsorption head 5. The notch opened on the side of the limiting frame 703 also allows the adsorption head 5 to move. When all the seaweed pieces above the moving plate 704 are sent away, the moving plate 704 and the limiting frame 703 return to the lowest position, and a new stack of seaweed pieces is placed in the limiting frame 703 and the moving plate 704 to continue the work of slicing and conveying.
[0034] Finally: The above are only the preferred embodiments of the present invention and are not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.
Claims
1. A slicing and conveying device for seaweed processing, comprising a support table (1), characterized in that: A conveyor belt (2) is fixedly connected to the top end of the support table (1). A placement table (3) is fixedly connected to the side of the conveyor belt (2). A conveying mechanism (4) is movably connected to the side of the placement table (3). The bottom end of the conveying mechanism (4) is movably connected to the power end of a cleaning mechanism (6). The cleaning end of the cleaning mechanism (6) is movably connected inside the placement table (3) near the inside of the conveyor belt (2). A feeding mechanism (7) is movably connected inside the placement table (3). An adsorption head (5) is fixedly connected to the side of the conveying mechanism (4); The conveying mechanism (4) includes a fixed plate (401) that can be fixed. An output motor (402) is fixedly connected to the side of the fixed plate (401) away from the placement table (3). An output screw rod (403) is fixedly connected to the side of the output motor (402). A rack (404) is threadedly connected to the side of the output screw rod (403). A bracket (406) is fixedly connected to the top end of the rack (404). The side of the bracket (406) is fixedly connected to the top end of the adsorption head (5). When the rack (404) moves, it drives the power end of the cleaning mechanism (6) to operate; The power end of the cleaning mechanism (6) includes a gear (601) that meshes with the rack (404). A connecting shaft (602) is fixedly connected to the inside of the gear (601). A conductor (603) is fixedly connected to the side of the connecting shaft (602) away from the placement table (3). A conductive coil (604) is fixedly connected to the side of the conductor (603) away from the conductor (603). Magnet groups (607) are provided on both sides of the conductive coil (604).
2. The piecewise conveying device for laver processing according to claim 1, wherein: The power end of the cleaning mechanism (6) and the cleaning end of the cleaning mechanism (6) are combined into the cleaning mechanism (6), and the current generated by the power end of the cleaning mechanism (6) is supplied to the cleaning end of the cleaning mechanism (6) for use. The adsorption head (5) is located directly above the feeding mechanism (7), and the adsorption head (5) can move from directly above the feeding mechanism (7) to above the conveyor belt (2).
3. The slicing and conveying device for seaweed processing according to claim 1, characterized in that: A clamping strip (405) is fixedly connected to the side of the rack (404) close to the placement table (3). A sliding groove for the clamping strip (405) to slide is provided inside the placement table (3). The length of the output screw rod (403) is the same as the length of the side of the placement table (3). When the rack (404) moves to the farthest position away from the output motor (402), the adsorption head (5) is located above the conveyor belt (2).
4. A slicing and conveying device for laver processing according to claim 1, characterized in that: A stable shaft plate (605) is movably connected to the side of the conductive coil (604) away from the conductor (603). A support plate (606) is fixedly connected to the bottom end of the stable shaft plate (605). The side of the support plate (606) is fixedly connected to the side of the placement table (3). The current generated by the conductive coil (604) cutting the magnetic induction lines of the magnet groups (607) is supplied to the cleaning end of the cleaning mechanism (6) for use through the conductor (603).
5. The piecewise conveying device for seaweed processing according to claim 4, characterized in that: The power end of the cleaning mechanism (6) includes an electromagnet (608) that receives the current of the conductor (603). The top end of the electromagnet (608) is fixedly connected to a positioning shaft (611). The side of the positioning shaft (611) is movably connected to a magnetic plate (609). The top end of the magnetic plate (609) is fixedly connected to a cleaning plate (610).
6. The piecewise conveying device for seaweed processing according to claim 1, wherein: The feeding mechanism (7) includes a feeding channel (701) that can accommodate nori sheets. The inside of the feeding channel (701) is movably connected to a limiting frame (703). The bottom end of the limiting frame (703) is fixedly connected to a moving plate (704). The side of the feeding channel (701) is fixedly connected to a slicing plate (702). The slicing plate (702) is located above the notch of the limiting frame (703).
7. A slicing and conveying device for seaweed processing according to claim 6, characterized in that: The feeding mechanism (7) includes a servo motor (705) that can provide power. The side of the servo motor (705) is fixedly connected to a threaded rod (706). The side of the threaded rod (706) is threadedly connected to a threaded block (707). The side of the threaded block (707) away from the servo motor (705) is fixedly connected to a connecting block (708). The side of the connecting block (708) is movably connected to a first rotating plate (709). The side of the first rotating plate (709) away from the connecting block (708) is movably connected to a first support block (710). The top end of the first support block (710) is fixedly connected to the bottom end of the moving plate (704).
8. The piecewise conveying device for seaweed processing according to claim 7, characterized in that: Both sides of the bottom end of the moving plate (704) are provided with a connecting block (708), a first rotating plate (709), and a first support block (710). One side of the connecting block (708) is connected to the threaded block (707). The other side of the connecting block (708) is fixedly connected to a second limiting cylinder (717). The inside of the second limiting cylinder (717) is movably connected to a second limiting rod (716). The bottom end of the side of the moving plate (704) away from the first support block (710) is fixedly connected to a second support block (715). The side of the second support block (715) is movably connected to a second rotating plate (714). The side of the second rotating plate (714) is movably connected to a fixed block (711). The side of the fixed block (711) close to the second support block (715) is fixedly connected to a first limiting cylinder (712). The inside of the first limiting cylinder (712) is movably connected to a first limiting rod (713).
Citation Information
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