Multifunctional organic fertilizer production conveying and transferring device

Through the combination of suspension mechanism and dust removal components, the stability and dust impact of organic fertilizers during the transportation process are solved, and stable suspension and efficient transportation of fertilizers of different thicknesses are achieved.

CN120348640AInactive Publication Date: 2025-07-22SPRING EQUINOX MACHINERY TECHNOLOGY (NANTONG) CO LTD

Patent Information

Application Number
CN202510831996.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-20
Publication Date
2025-07-22
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing organic fertilizer conveying devices are prone to tumbling and falling during the transportation process, making it difficult to stabilize the suspension of fertilizers of different thicknesses, and stacked fertilizers need to be separated manually, which affects production efficiency.

Method used

The suspension mechanism is used to drive the lifting plate and suction cup to hang organic fertilizer through the cylinder, and the lifting and lowering of the movable plate is controlled in combination with the rack and rack and motor to avoid interference, and dust is cleaned through the dust removal assembly to enhance the adsorption effect.

Benefits of technology

The stable suspension and transportation of organic fertilizers of different thicknesses is achieved, manual intervention is reduced, and the stability and efficiency of transportation is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fertilizer processing, in particular to a multifunctional organic fertilizer producing, conveying and transferring device which comprises a fixing frame, two chain wheels are symmetrically and rotationally connected to the two sides of the interior of the bottom end of the fixing frame, a chain is rotationally connected between the two chain wheels, and a plurality of reinforcing plates are fixed to the upper surface of the chain at equal intervals. Second guide sliding blocks penetrating and extending to the inner sides of the top ends of the fixing frames are fixed to the bottoms of the reinforcing plates, and guide grooves are formed in the positions, corresponding to the second guide sliding blocks, of the side faces of the top ends of the fixing frames. Adsorbed organic fertilizer is supported through a suspension mechanism, lifting of a movable plate is controlled through mutual cooperation of a gear and a rack to be matched with synchronous rotation of a rotating plate, the size interference situation possibly caused in the adsorption process is avoided, the surface of the organic fertilizer is cleaned through a dust removal assembly in the adsorption process, and then the adsorption effect is enhanced; and the stability of overall suspension conveying is kept.
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Description

Technical Field

[0001] The present invention relates to the technical field of fertilizer processing, and particularly to a multifunctional organic fertilizer production, conveying and transferring device. Background Art

[0002] Organic fertilizers mainly come from plants or animals. They can not only provide comprehensive nutrition for crops, but also have a long fertilizer efficiency. They can increase and renew soil organic matter, promote the reproduction of microorganisms, and improve the physical and chemical properties and biological activities of the soil. They are the main nutrients for the production of green food. In the industrial production process of organic fertilizers, the continuous conveying, precise proportioning and environmental protection transfer of materials are the core links determining production efficiency and product quality. Traditional processes mostly use a combination of split equipment. For example, a forklift or a belt conveyor is used to complete the transfer of raw materials, and then manually fed into the fermentation tank. Finally, a forklift is used to transport the finished fertilizer to the packaging line. In order to make the fertilizer be transported and transferred faster, more convenient transfer devices have emerged; For example, a conveying device for organic fertilizer processing disclosed in the prior art with the publication number CN222778153U. This device uses a crushing roller to remove lumps, which can avoid the waste of organic fertilizer generated when using a scraper to scrape out lumps. The problem of a certain amount of organic fertilizer being scraped out together with the lumps when scraping the lumps by the scraper, resulting in partial waste of resources, is solved by the crushing device. However, when this device is conveying, the situation that the fertilizer tumbles and slides during the movement along the conveyor belt is likely to occur, making it difficult to ensure the stability during conveying. Moreover, when encountering fertilizers stacked together, they need to be carried to the conveyor belt one by one, which is very inconvenient and consumes a large amount of manpower and material resources; In view of the above technical defects, a solution is now proposed. Summary of the Invention

[0003] In order to overcome the above-mentioned defects of the prior art, the present invention provides a multifunctional organic fertilizer production, conveying and transferring device, which can stably position and convey organic fertilizers with different thicknesses through a suspension mechanism, and can gradually separate the stacked organic fertilizers. With the dust removal component, the organic fertilizers can be adsorbed and fixed more stably, so as to solve the problems put forward in the above background art.

[0004] In order to achieve the above purpose, the present invention adopts the following technical scheme: A multifunctional organic fertilizer production, conveying and transferring device, including a fixed frame. On both sides of the inner bottom end of the fixed frame, two sprockets are symmetrically and rotatably connected. A chain is rotatably connected between the two sprockets. A plurality of reinforcing plates are equidistantly fixed on the upper surface of the chain. The bottom of the reinforcing plate is fixed with a second guiding slider that penetrates and extends to the inner side of the top end of the fixed frame. A guiding groove is opened at the corresponding position of the top side of the fixed frame for the second guiding slider. The bottom of the second guiding slider is fixed with a fixing plate. On both sides of the bottom of the fixing plate, two cylinders are symmetrically fixed. A suspension mechanism is fixed to the bottom of the two cylinders together.

[0005] Further, the suspension mechanism includes a lifting plate fixed to the bottoms of two cylinders. A buffer plate is arranged on the upper surface of the lifting plate. A number of pneumatic suction cups are equidistantly fixed on the upper surface of the buffer plate. And a dust removal component is installed at the center position of the upper surface of the buffer plate. Two pairs of connecting rods are symmetrically and rotatably connected to both sides of the bottom of the buffer plate. The bottoms of the connecting rods penetrate and extend into the interior of the lifting plate and are rotatably connected to a first guiding slider. Through grooves are formed in the upper surface of the lifting plate at positions corresponding to the first guiding sliders. A guiding slide rod fixed to the interior of the through groove penetrates through the interior of the first guiding slider. First springs fixed to the interior of the through groove are symmetrically sleeved on both outer sides of the guiding slide rod.

[0006] Further, a connecting plate is jointly fixed to the bottoms of two first guiding sliders on the same side. A rack is fixed to one side of the connecting plate. Gears are arranged on both sides of the interior of the lifting plate at positions corresponding to the first guiding sliders. A second lead screw rotatably connected to the interior of the lifting plate penetrates through the interior of the gear.

[0007] Further, two fixing plates are fixed to both sides of the upper surface of the lifting plate at positions corresponding to the second lead screw. A movable plate sleeved on the outer layer of the second lead screw is slidably connected to the interior of the fixing plate. The top end of the movable plate penetrates and extends outside the fixing plate.

[0008] Further, a second motor is fixed to the top end inside the movable plate. The output end of the second motor penetrates and extends outside the movable plate and is fixed to a rotating plate. A first lead screw is rotatably connected to the interior of the rotating plate. One side of the first lead screw penetrates and extends outside the rotating plate and is fixed to a first motor. And a telescopic plate slidably connected to the interior of the rotating plate is sleeved on the outer layer of the first lead screw.

[0009] Further, the dust removal component includes a fixing rod fixed to the upper surface of the buffer plate. A limiting plate is fixed to the bottom of the fixing rod. Two limiting slide rods are symmetrically and slidably connected to the interiors of both sides of the limiting plate. A sleeve is jointly fixed to the top ends of the two limiting slide rods. A second spring fixed between the sleeve and the limiting plate is sleeved on the outer layer of the limiting slide rod.

[0010] Further, a number of ventilation holes are equidistantly formed in the outer side of the top end of the sleeve. And an airbag is fixed to the interior of the sleeve. Through holes are formed in the outer side of the airbag at positions corresponding to the ventilation holes. A sealing plate is jointly fixed between the bottom of the sleeve and the top end of the fixing rod.

[0011] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are: 1. A suspension mechanism is provided in the present invention. The fixed plate is lifted and lowered by a cylinder, and then the adsorption plate is driven to descend. After the adsorption plate adheres to the organic fertilizer, it is pushed upward due to extrusion. As the adsorption plate moves, the first guide slider is driven in cooperation with the connecting plate. At the same time, the first guide slider forms a buffer under the rebounding force of the first spring, avoiding excessive pressure on the organic fertilizer. As the first guide slider moves, the rack is driven to move, and the rotation of the gear is driven by the movement of the rack, and then the second lead screw is driven to rotate, thereby driving the movable plate to lift and lower. At the same time, the second motor drives the rotating plate to rotate, avoiding interference between the telescopic plate and the organic fertilizer. When the adsorption is completed, the self-weight of the organic fertilizer is combined with the rebounding force of the first spring to drive the second lead screw to rotate in the reverse direction. At this time, the movable plate retracts, and the second motor drives the rotating plate to rotate back to its original position, and the telescopic plate is used to lift the organic fertilizer, forming a clamping and positioning effect in cooperation with the adsorption plate, thereby forming a stable suspension effect and being able to fix organic fertilizers with a larger thickness, with a wider range of applications; 2. In the present invention, the dust on the surface of the organic fertilizer is removed by a dust removal component. When the adsorption plate descends, the sleeve first contacts the organic fertilizer. As the adsorption plate continues to press down, the fixed rod is driven to press down, thereby driving the sealing plate to squeeze the airbag. As the airbag is squeezed, the internal air is discharged through the ventilation holes, and then the dust on the surface of the organic fertilizer is blown away, forming a cleaning effect. Subsequently, as the pneumatic suction cup contacts the precast plate, a stable adsorption effect on the organic fertilizer is formed, facilitating the lifting and conveying of the stacked organic fertilizers one by one; In summary, the present invention uses the suspension mechanism to lift the adsorbed organic fertilizer, controls the lifting and lowering of the movable plate and the synchronous rotation of the rotating plate by the mutual cooperation of the gear and the rack, avoiding possible interference during the adsorption process. During the adsorption process, the dust removal component is used to clean the surface of the organic fertilizer, thereby enhancing the adsorption effect and maintaining the stability of the overall suspension and conveying. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is Figure 1 an enlarged view of part A in Figure 3 is a schematic diagram of the structure of the suspension mechanism of the present invention; Figure 4 is a combined view of the lifting plate and the fixed plate of the present invention; Figure 5 is a top view of the inside of the lifting plate of the present invention; Figure 6 is a schematic diagram of the structure of the dust removal component of the present invention; Figure 7 is a schematic diagram of the internal structure of the sleeve of the present invention.

[0013] Reference numerals: 1, fixed frame; 2, chain; 3, sprocket; 4, cylinder; 5, fixed plate; 6, suspension mechanism; 7, guide groove; 8, rotating plate; 9, telescopic plate; 10, dust removal assembly; 11, pneumatic suction cup; 12, fixed plate; 13, first spring; 14, guide slide bar; 15, through groove; 16, connecting rod; 17, lifting plate; 18, movable plate; 19, first lead screw; 20, buffer plate; 21, first motor; 22, gear; 23, rack; 24, first guide slider; 25, second lead screw; 26, connecting plate; 27, sleeve; 28, vent hole; 29, second spring; 30, limit plate; 31, limit slide bar; 32, airbag; 33, fixed rod; 34, sealing plate; 35, reinforcement plate; 36, second guide slider; 37, second motor. Detailed implementation manners

[0014] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. 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 efforts belong to the protection scope of the present invention.

[0015] Embodiment 1

[0016] In this embodiment, in view of the problem that most of the existing suspension conveying devices position and clamp organic fertilizers through jigs, but it is difficult to fix organic fertilizers with a large thickness, and it is difficult to individually suspend and convey the stacked organic fertilizers one by one.

[0017] As Figures 1-5 shown, a multifunctional organic fertilizer production, conveying and transshipment device includes a fixed frame 1. Two sprockets 3 are symmetrically and rotatably connected to both sides of the inner bottom end of the fixed frame 1. A stepping motor fixed to the inner side of the fixed frame 1 is connected to the bottom of one of the sprockets 3. The sprocket 3 is driven by the stepping motor to rotate, thereby forming a transmission. A chain 2 is rotatably connected between the two sprockets 3. A plurality of reinforcement plates 35 are equidistantly fixed on the upper surface of the chain 2. By equidistantly fixedly installing the suspension mechanism 6, the effect of cyclic suspension conveying is formed; A second guide slider 36 is fixed to the bottom of the reinforcement plate 35 and penetrates and extends to the inner side of the top end of the fixed frame 1. A guide groove 7 is opened at the corresponding position of the top side of the fixed frame 1 for the second guide slider 36. A fixed plate 5 is fixed to the bottom of the second guide slider 36. Two cylinders 4 are symmetrically fixed to both sides of the bottom of the fixed plate 5. The suspension mechanism 6 is fixedly connected to the bottom of the two cylinders 4; The suspension mechanism 6 includes a lifting plate 17 fixed to the bottoms of two cylinders 4. A buffer plate 20 is arranged on the upper surface of the lifting plate 17. Two pairs of connecting rods 16 are symmetrically and rotatably connected to both sides of the bottom of the buffer plate 20. The bottoms of the connecting rods 16 penetrate and extend into the interior of the lifting plate 17 and are rotatably connected to a first guiding slider 24. A through groove 15 is formed in the upper surface of the lifting plate 17 at a position corresponding to the first guiding slider 24. A guiding slide rod 14 fixed to the interior of the through groove 15 penetrates the interior of the first guiding slider 24. First springs 13 fixed to the interior of the through groove 15 are symmetrically sleeved on both outer sides of the guiding slide rod 14. The bottoms of two first guiding sliders 24 on the same side are jointly fixed to a connecting plate 26. A rack 23 is fixed to one side of the connecting plate 26. Gears 22 are arranged on both sides of the interior of the lifting plate 17 at positions corresponding to the first guiding sliders 24. A second lead screw 25 rotatably connected to the interior of the lifting plate 17 penetrates the interiors of the gears 22. During the movement of the first guiding sliders 24, the rack 23 and the gears 22 cooperate to drive the second lead screw 25 to rotate. Two fixing plates 12 are fixed to both sides of the upper surface of the lifting plate 17 at positions corresponding to the second lead screw 25. A movable plate 18 sleeved on the outer layer of the second lead screw 25 is slidably connected to the interior of the fixing plate 12. The rotation of the second lead screw 25 drives the movable plate 18 to move out of the interior of the fixing plate 12. The initial state of the movable plate 18 is to be received into the interior of the fixing plate 12. The horizontal height of the movable plate 18 in the initial state is lower than that of the buffer plate 20. When performing the operation of hanging organic fertilizer, the buffer plate 20 first comes into contact with the organic fertilizer. The top end of the movable plate 18 penetrates and extends to the outside of the fixing plate 12. A second motor 37 is fixed to the top end of the interior of the movable plate 18. The output end of the second motor 37 penetrates and extends to the outside of the movable plate 18 and is fixed to a rotating plate 8. When the movable plate 18 moves, the second motor 37 is started to drive the rotating plate 8 to rotate to the other side to avoid interfering with the organic fertilizer. A first lead screw 19 is rotatably connected to the interior of the rotating plate 8. One side of the first lead screw 19 penetrates and extends to the outside of the rotating plate 8 and is fixed to a first motor 21. A telescopic plate 9 slidably connected to the interior of the rotating plate 8 is sleeved on the outer layer of the first lead screw 19.

[0018] When performing suspension transportation, start the stepping motor to drive the sprocket 3 to rotate, and then drive the chain 2 to form a transmission effect. As the chain 2 moves, it drives the reinforcement plate 35 to move and cooperates with the second guiding slider 36 to drive the suspension mechanism 6 to rotate. When the suspension mechanism 6 rotates to the position of the organic fertilizer, start the cylinder 4 to drive the lifting plate 17 to descend. As the lifting plate 17 descends, it drives the buffer plate 20 to descend to the position of the organic fertilizer. As the buffer plate 20 continuously presses down on the organic fertilizer to adsorb and fix it, at this time, the bottoms of the two connecting rods 16 move sideways, thereby driving the first guiding slider 24 to move. During the movement of the first guiding slider 24, it cooperates with the rack 23 and the gear 22 to drive the second lead screw 25 to rotate, and finally drives the movable plate 18 to move out of the fixed plate 12. During the movement of the movable plate 18, start the second motor 37 to drive the rotating plate 8 to rotate to the other side to avoid interfering with the organic fertilizer; After completing the fixed adsorption, raise the lifting plate 17. As the lifting plate 17 rises, it cooperates with the self-weight of the organic fertilizer and the rebound force of the first spring 13 to drive the first guiding slider 24 to move in the reverse direction, and then drives the second lead screw 25 to rotate in the reverse direction. At this time, the movable plate 18 is retracted into the second lead screw 25 and drives the rotating plate 8 to rise. Subsequently, according to the width of the organic fertilizer, start the first motor 21 to drive the first lead screw 19 to rotate, and then drive the telescopic plate 9 to extend to form a lifting effect on the organic fertilizer. At the same time, it cooperates with the pressing effect of the adsorption plate to form a clamping and fixing of the organic fertilizer, so as to be more stable during the suspension transportation process.

[0019] Embodiment 2

[0020] This embodiment aims at the problem that during the transportation process of the suspension transportation device in the prior art, the dust on the surface of the organic fertilizer will affect the overall suspension transportation and it is difficult to maintain the stability during the transportation process.

[0021] As Figures 6-7 shown, the embodiment is a multifunctional organic fertilizer production, transportation and transfer device. A number of pneumatic suction cups 11 are equidistantly fixed on the upper surface of the buffer plate 20. A gas pump connected to the pneumatic suction cups 11 is fixed at the bottom of the buffer plate 20. The air inside the pneumatic suction cups 11 is pumped out by the gas pump to form a negative pressure. A dust removal component 10 is installed at the central position of the upper surface of the buffer plate 20. The dust removal component 10 includes a fixed rod 33 fixed on the upper surface of the buffer plate 20. A limiting plate 30 is fixed at the bottom of the fixed rod 33. Two limiting slide rods 31 are symmetrically and slidably connected inside both sides of the limiting plate 30. The tops of the two limiting slide rods 31 are jointly fixed with a sleeve 27. The initial height of the sleeve 27 is higher than that of the pneumatic suction cups 11, and when the sleeve 27 is completely squeezed, it is lower than the pneumatic suction cups 11; A second spring 29 is sleeved on the outer layer of the limit slide bar 31 and is fixed between the sleeve 27 and the limit plate 30. A plurality of ventilation holes 28 are equidistantly opened on the outer side of the top end of the sleeve 27, and an airbag 32 is fixed inside the sleeve 27. By squeezing out all the air inside the airbag 32, the airflow ejected through the ventilation holes 28 during the squeezing process is used to clean the dust on the surface of the precast slab surface. Through holes are opened at the positions of the outer side of the airbag 32 corresponding to the ventilation holes 28. A sealing plate 34 is jointly fixed between the bottom of the sleeve 27 and the top end of the fixed rod 33.

[0022] When the buffer plate 20 descends, the sleeve 27 first contacts the organic fertilizer. As the sleeve 27 continues to be pressed down, the fixed rod 33 is driven to continue to be pressed down. The fixed rod 33 drives the sealing plate 34 to be pressed down, and then all the air inside the airbag 32 is squeezed out. The airflow ejected through the ventilation holes 28 during the squeezing process is used to clean the dust on the surface of the precast slab surface. When the airbag 32 is completely squeezed, at this time, the height of the sleeve 27 is lower than the height of the pneumatic suction cup 11. The organic fertilizer is adsorbed and fixed by the pneumatic suction cup 11. Because the surface of the organic fertilizer is smoother, the adsorption is more stable.

[0023] The working process and principle of the present invention: Step 1: When performing suspension transportation, start the stepping motor to drive the sprocket 3 to rotate, and then drive the chain 2 to form a transmission effect. As the chain 2 moves, the reinforcement plate 35 is driven to move, and the suspension mechanism 6 is driven to rotate in cooperation with the second guide slider 36. When the suspension mechanism 6 rotates to the position of the organic fertilizer, start the cylinder 4 to drive the lifting plate 17 to descend. As the lifting plate 17 descends, the buffer plate 20 is driven to descend to the position of the organic fertilizer. As the buffer plate 20 continuously presses down on the organic fertilizer for adsorption and fixation, at this time, the bottom ends of the two connecting rods 16 move laterally, and then the first guide slider 24 is driven to move. During the movement of the first guide slider 24, the second lead screw 25 is driven to rotate in cooperation with the rack 23 and the gear 22, and finally the movable plate 18 is driven to move out of the fixed plate 12. During the movement of the movable plate 18, start the second motor 37 to drive the rotating plate 8 to rotate to the other side to avoid interfering with the organic fertilizer; After the fixed adsorption is completed, raise the lifting plate 17. As the lifting plate 17 rises, in cooperation with the self-weight of the organic fertilizer and the rebound force of the first spring 13, the first guide slider 24 is driven to move in the reverse direction, and then the second lead screw 25 is driven to rotate in the reverse direction. At this time, the movable plate 18 is retracted into the second lead screw 25, and the rotating plate 8 is driven to rise. Subsequently, according to the width of the organic fertilizer, start the first motor 21 to drive the first lead screw 19 to rotate, and then drive the telescopic plate 9 to extend to form a lifting effect on the organic fertilizer. At the same time, in cooperation with the pressing effect of the adsorption plate, the organic fertilizer is clamped and fixed, so as to be more stable during the suspension transportation process; Step 2: When the buffer plate 20 descends, the sleeve 27 first contacts the organic fertilizer. As the sleeve 27 continuously presses downwards, it drives the fixing rod 33 to continuously press down. The fixing rod 33 drives the sealing plate 34 to press down, thereby squeezing out all the air inside the airbag 32. During the extrusion process, airflows are ejected through the ventilation holes 28 to clean the dust on the surface of the precast board surface. When the airbag 32 is completely squeezed, at this time, the height of the sleeve 27 is lower than the height of the pneumatic suction cup 11. The pneumatic suction cup 11 is used to adsorb and fix the organic fertilizer. Since the surface of the organic fertilizer is smoother, the adsorption is more stable.

[0024] In summary, the hanging mechanism 6 is used to firmly hang and position the organic fertilizer. At the same time, organic fertilizers with more specifications and thicknesses can be hung and fixed. The dust removal component 10 is configured to clean the dust on the surface of the organic fertilizer, thereby improving the adsorption stability of the pneumatic suction cup 11 to the organic fertilizer.

[0025] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent replacements or changes, and should be covered by the protection scope of the present invention.

Claims

1. A multifunctional organic fertilizer production, conveying and transfer device, including a fixed frame, characterized in that, On both sides of the inner bottom end of the fixing frame, two sprockets are symmetrically and rotatably connected. A chain is rotatably connected between the two sprockets. A number of reinforcing plates are fixedly arranged at equal intervals on the upper surface of the chain. The bottom of the reinforcing plate is fixedly provided with a second guiding slider that penetrates and extends to the inner side of the top end of the fixing frame. A guiding groove is formed at the position corresponding to the second guiding slider on the side surface of the top end of the fixing frame. The bottom of the second guiding slider is fixedly provided with a fixing plate. Two cylinders are symmetrically and fixedly arranged on both sides of the bottom of the fixing plate. A suspension mechanism is fixedly arranged at the bottom of the two cylinders together.

2. The multifunctional organic fertilizer production, conveying and transfer device according to claim 1, characterized in that The suspension mechanism includes a lifting plate fixed to the bottom of the two cylinders. A buffer plate is arranged on the upper surface of the lifting plate. A number of pneumatic suction cups are fixedly arranged at equal intervals on the upper surface of the buffer plate. And a dust removal component is installed at the central position of the upper surface of the buffer plate. Two pairs of connecting rods are symmetrically and rotatably connected to both sides of the bottom of the buffer plate. The bottom of the connecting rod penetrates and extends to the inside of the lifting plate and is rotatably connected with a first guiding slider. A through groove is formed at the position corresponding to the first guiding slider on the upper surface of the lifting plate. A guiding slide bar fixed to the inside of the through groove penetrates through the inside of the first guiding slider. First springs are symmetrically sleeved on the outer layers on both sides of the guiding slide bar and are fixed to the inside of the through groove.

3. A multifunctional organic fertilizer production, conveying and transshipment device according to claim 2, characterized in that, A connecting plate is fixedly arranged at the bottom of the two first guiding sliders on the same side. A rack is fixedly arranged on one side of the connecting plate. Gears are arranged at the positions corresponding to the first guiding sliders on both sides of the inside of the lifting plate. A second lead screw rotatably connected to the inside of the lifting plate penetrates through the inside of the gear.

4. A multifunctional organic fertilizer production, conveying and transshipment device according to claim 3, characterized in that, Two fixing plates are fixedly arranged at the positions corresponding to the second lead screw on both sides of the upper surface of the lifting plate. A movable plate sleeved on the outer layer of the second lead screw is slidably connected to the inside of the fixing plate. The top end of the movable plate penetrates and extends to the outside of the fixing plate.

5. A multifunctional organic fertilizer production, conveying and transshipment device according to claim 4, characterized in that, A second motor is fixedly arranged at the top end inside the movable plate. The output end of the second motor penetrates and extends to the outside of the movable plate and is fixedly provided with a rotating plate. A first lead screw is rotatably connected to the inside of the rotating plate. The first lead screw penetrates and extends to the outside of the rotating plate on one side and is fixedly provided with a first motor. And a telescopic plate slidably connected to the inside of the rotating plate is sleeved on the outer layer of the first lead screw.

6. A multifunctional organic fertilizer production, conveying and transfer device according to claim 2, characterized in that, The dust removal component includes a fixing rod fixed to the upper surface of the buffer plate. A limiting plate is fixedly arranged at the bottom of the fixing rod. Two limiting slide bars are symmetrically and slidably connected to the inside of both sides of the limiting plate. A sleeve is fixedly arranged at the common top ends of the two limiting slide bars. A second spring fixed between the sleeve and the limiting plate is sleeved on the outer layer of the limiting slide bar.

7. A multifunctional organic fertilizer production, conveying and transshipment device according to claim 6, characterized in that, A number of ventilation holes are formed at equal intervals on the outer side of the top end of the sleeve. And an air bag is fixedly arranged inside the sleeve. Through holes are formed at the positions corresponding to the ventilation holes on the outer side of the air bag. A sealing plate is fixedly arranged together between the bottom of the sleeve and the top end of the fixing rod.

Citation Information

Patent Citations

  • Conveying device for organic fertilizer processing

    CN222778153U

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