Agricultural product warehouse management equipment

By designing the conveyor body shell, lifting components, and support components, the stability of the conveying equipment and the problem of cargo stacking in the truck compartment were solved, realizing the automated stacking and smooth transportation of vegetable goods, and improving the efficiency and stability of transfer.

CN120942780AInactive Publication Date: 2025-11-14CHANGCHUN VOCATIONAL INST OF TECH
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Patent Information

Application Number
CN202511180081.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-22
Publication Date
2025-11-14
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing conveying equipment, when transporting vegetables to the truck bed, has a fixed height, which makes it inconvenient to stack the goods, difficult to handle manually, and the equipment is difficult to move within the truck bed, thus reducing the efficiency of the transfer.

Method used

An agricultural product storage management device was designed, including a conveyor body shell, a conveyor shaft and a conveyor belt, equipped with a lifting component, a support component and a support component. The lifting and stabilization of the conveyor is achieved by electric double-headed hydraulic rods and rollers, the slow descent of the pallet ensures smooth transport of goods, and the adjustment groove and locking block of the support tube ensure the stability of the equipment.

Benefits of technology

It enables automated stacking of vegetable goods, improves transfer efficiency, ensures smooth and intact transport of goods, prevents goods from being squeezed or slipping, and enhances the stability of the equipment inside the carriage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses agricultural product storage management equipment, and relates to the technical field of agricultural product storage, the agricultural product storage management equipment comprises two conveyor body shells, a plurality of conveying shafts are rotatably connected between the two conveyor body shells, one of the conveying shafts is externally connected with a motor, and the conveying shafts are in transmission connection with a conveying belt. The conveyor body shell moves upwards, so that the horizontal position of vegetable goods conveyed by the conveyor belt is lifted, the horizontal conveying height is automatically adjusted, after the vegetable goods are continuously conveyed by the conveyor belt, the vegetable goods are stacked on the previous vegetable goods through the supporting plate, the stacking effect on the vegetable goods is achieved, and the stacking efficiency is improved. And the purpose of auxiliary adjustment is achieved, the first rolling wheels at the bottom enable the conveyor body shell to flexibly move in a truck carriage, and stacking work of vegetable goods is facilitated.
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Description

Technical Field

[0001] This invention relates to the field of agricultural product storage technology, and more specifically, to an agricultural product storage management device. Background Technology

[0002] In the warehousing management of agricultural products, it is mainly divided into classified storage in the storage area, classified warehousing and classified outbound in the sorting area, and processing area for packaging after classification. In the classified outbound in the sorting area, there will be an outbound platform that is level with the existing fresh produce truck compartment. After the truck compartment is aligned with the outbound platform, the vegetables or fresh produce that need to be transferred are transported into the truck compartment for stacking by a conveyor device.

[0003] In this process, the conveying equipment only transports the vegetables, and then the vegetables need to be manually stacked inside the truck bed. Because the part of the conveying equipment that extends into the truck bed is at a fixed height, it becomes inconvenient for manual handling as the goods gradually pile up. In addition, the conveying equipment inside the truck bed is not easy to move within the truck bed, so the vegetables can only be transported into the truck bed and then stacked manually, which further reduces the efficiency of vegetable transfer. Summary of the Invention

[0004] To address the aforementioned technical problems, this invention provides an agricultural product storage management device.

[0005] The technical solution is as follows: An agricultural product storage management device includes a conveyor body shell, two conveyor body shells are provided, a plurality of conveyor shafts are rotatably connected between the two conveyor body shells, a motor is externally connected to one of the conveyor shafts, a conveyor belt is drivenly connected to the conveyor shaft, and a lifting component is provided at the bottom of the two conveyor body shells. The lifting assembly includes a connecting plate fixedly connected between the bottoms of two conveyor body shells. Two sets of hinge seats are symmetrically fixedly connected to the bottoms of the two conveyor body shells. A support rod is hinged to each of the two sets of hinge seats. A roller is rotatably connected to the end of each support rod away from the connecting plate. A connecting seat is fixedly connected to the outer surface of each support rod by bolts. An electric double-headed hydraulic rod is rotatably connected between the two connecting seats. A sliding frame is fixedly connected to the middle of the electric double-headed hydraulic rod. The sliding frame is slidably connected to the conveyor body shell. A lifting assembly for placing vegetables is also provided on the conveyor body shell.

[0006] Furthermore, the outer surfaces of both rollers are made of rubber, and the outer shell of the conveyor body is provided with a sliding groove for the sliding frame to slide.

[0007] Furthermore, the lifting assembly includes two fixed rods that are respectively fixedly connected to the outer shells of the two conveyor bodies. Each of the two fixed rods has a limit groove, and a support plate is slidably connected between the two limit grooves.

[0008] Furthermore, the end of the pallet closest to the conveyor belt is in contact with the outer surface of the conveyor belt, the end of the pallet furthest from the conveyor belt is set as an inclined surface, and two openings are provided on the pallet.

[0009] Furthermore, the lifting assembly also includes two buffer cavities respectively opened on the outer shells of the two conveyor bodies. A slowing groove with the same length as the buffer cavity is opened below the buffer cavity. A spring is fixedly connected to the side of each buffer cavity near the pallet. A piston plate is fixedly connected to the end of each spring away from the pallet. A slowing claw is fixedly connected to the bottom of each piston plate. A pull rope is fixedly connected to the side of each piston plate near the spring. One end of each pull rope extends out of the outer shell of the conveyor body and is fixedly connected to the upper surface of the pallet. An abutment wheel is rotatably connected to each of the two fixed rods. The two pull ropes are attached to the adjacent abutment wheel.

[0010] Furthermore, the retarder groove stores a non-Newtonian fluid, the buffer chamber is connected to an adjacent retarder groove, the piston plate is movably disposed inside the buffer chamber, and the retarder claw slides inside the retarder groove.

[0011] Furthermore, it also includes a support assembly, which includes two sliders respectively fixedly connected to the bottom of the two conveyor body shells. The bottom of the two sliders is slidably connected to a chute rod. Both ends of the chute rod are fixedly connected to a support tube. The sides of the two support tubes that are close to each other are provided with adjustment grooves. An adjustment rod is slidably connected inside the two support tubes. The bottom of the two adjustment rods is rotatably connected to two rollers.

[0012] Furthermore, the adjustment groove consists of multiple triangular grooves arranged in a linear array, a top release groove, and a bottom locking groove, and the outer surface of the roller two is made of rubber.

[0013] Furthermore, each of the two adjusting rods has a groove at its top, a fixed shaft is fixedly connected in the groove, a swing rod is rotatably connected on the fixed shaft, a locking block is fixedly connected to the end of the swing rod away from the fixed shaft, the locking block slides inside the adjusting groove, a positioning groove one and a positioning groove two are formed on the outer surface of the end of the swing rod near the fixed shaft, and a locking plate is fixedly connected inside the groove.

[0014] Furthermore, the card plate is composed of a cylindrical block and an elastic metal sheet. The elastic metal sheet of the card plate is L-shaped. The cylindrical block of the card plate is fixedly installed in the groove. The end of the elastic metal sheet of the card plate away from the cylindrical block abuts against the positioning groove.

[0015] Based on the above, the beneficial effects of the agricultural product storage management equipment of the present invention are as follows: The conveyor body shell moves upward through the support rod and hinge seat. This upward movement of the conveyor body shell raises the horizontal position of the vegetables being transported by the conveyor belt, automatically adjusting the height of the horizontal transport. After the vegetables are transported by the conveyor belt, the pallets stack the vegetables on top of the previous vegetables, achieving a stacking effect and assisting in the adjustment. The rollers at the bottom allow the conveyor body shell to move flexibly within the truck bed, facilitating the stacking of vegetables. By using pallets to lift the vegetables, the vegetables will not tilt when they are transported to the end of the conveyor belt due to the arc surface of the conveyor belt end, thus ensuring that the vegetables are transported smoothly into the interior of the truck compartment. The pallet slowly moves the supported vegetables downwards, thus ensuring the stability of the vegetable transport and preventing the vegetables from being squeezed due to rapid falling. This improves the integrity of the vegetables during transport and also prevents rapidly falling vegetables from slipping off the pallet. By locking the height of the support pipe, the height of the chute rod is also locked synchronously. The chute rod supports the raised conveyor body shell through the slider. The two rollers and the two rollers form a triangular support for the conveyor body shell, preventing the conveyor body shell from tilting after being raised. This ensures the stability of the conveyor body shell after being raised and effectively improves the stability of the subsequent transport of vegetable goods. Attached Figure Description

[0016] Figure 1 This is a first-view perspective three-dimensional schematic diagram of the overall structure of the present invention; Figure 2 This is a second-view perspective three-dimensional schematic diagram of the overall structure of the present invention; Figure 3 This is a three-dimensional schematic diagram of the components of the present invention, including the conveyor shaft, conveyor belt, and conveyor body housing; Figure 4 This is a three-dimensional schematic diagram of the spring, piston plate, pull rope, and other components of the present invention; Figure 5 This is a three-dimensional schematic diagram of the piston plate, deceleration claw, and other components of the present invention; Figure 6 This is a three-dimensional schematic diagram of the pallet structure of the present invention; Figure 7This is a three-dimensional schematic diagram of the components of the present invention, including the slider, the slide bar, the support tube, and the adjusting rod. Figure 8 This is a three-dimensional schematic diagram of the swing rod, locking block, and positioning groove of the present invention. Figure 9 This is a partial three-dimensional schematic diagram of the support tube and adjusting groove of the present invention; Figure 10 This is a schematic diagram showing the connection relationship between the locking block and the adjustment slot in this invention.

[0017] The reference numerals in the accompanying drawings of this invention are as follows: 1. Conveyor body casing; 11. Conveyor shaft; 12. Conveyor belt; 21. Fixed rod; 22. Limiting groove; 23. Support plate; 24. Buffer chamber; 25. Deceleration groove; 26. Spring; 27. Piston plate; 28. Deceleration claw; 29. ​​Pull rope; 210. Abutment wheel; 31. Connecting plate; 32. Hinge seat; 33. Support rod; 34. Roller 1; 35. Connecting seat; 36. Electric double-headed hydraulic rod; 37. Sliding frame; 41. Slider; 42. Slide bar; 43. Support tube; 44. Adjustment groove; 45. Adjustment rod; 46. Roller II; 47. Groove; 48. Fixed shaft; 49. Swing rod; 410. Locking block; 411. Positioning groove I; 412. Positioning groove II; 413. Locking plate. Detailed Implementation

[0018] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0019] The embodiments provided by the present invention will be described in detail below: like Figure 1 and Figure 3 As shown, an agricultural product storage management device includes a conveyor body housing 1. Two conveyor body housings 1 are provided, and multiple conveyor shafts 11 are rotatably connected between the two conveyor body housings 1. A motor is externally connected to one of the conveyor shafts 11, and a conveyor belt 12 is drivenly connected to the conveyor shaft 11. Figure 1 In the example, only half of the conveyor body shell 1 and the conveyor belt 12 are shown. The actual dimensions of the conveyor body shell 1 and the conveyor belt 12 are longer. The bottom of the two conveyor body shells 1 are provided with lifting components for supporting and raising the conveyor body shells 1. The lifting assembly includes a connecting plate 31 fixedly connected between the bottoms of the two conveyor body shells 1. Two sets of hinge seats 32 are symmetrically fixedly connected to the bottoms of the two conveyor body shells 1. A support rod 33 is hinged to each of the two sets of hinge seats 32. Rollers 34 are rotatably connected to the ends of the two support rods 33 away from the connecting plate 31. The outer surfaces of the two rollers 34 are made of rough rubber. A connecting seat 35 is fixedly connected to the outer surfaces of the two support rods 33 near the rollers 34 by bolts. An electric double-headed hydraulic rod 36 is rotatably connected between the two connecting seats 35. A sliding frame 37 is fixedly connected to the middle of the electric double-headed hydraulic rod 36. The conveyor body shell 1 has a sliding groove for the sliding frame 37 to slide.

[0020] like Figures 1 to 6 As shown, the two conveyor body shells 1 are equipped with lifting assemblies for slowly placing vegetable goods. Each lifting assembly includes two fixed rods 21, each fixedly connected to one of the two conveyor body shells 1. Each fixed rod 21 has a limiting groove 22 on its side away from the conveyor belt 12. The horizontal cross-section of the limiting groove 22 is T-shaped. A pallet 23 is slidably connected between the two limiting grooves 22. T-shaped blocks with the same cross-sectional shape as the limiting grooves 22 are provided on both sides of the pallet 23 to prevent it from slipping out of the limiting grooves 22 during the up-and-down sliding process. The end of the pallet 23 closest to the conveyor belt 12 is in contact with the outer surface of the conveyor belt 12. To facilitate the efficient placement of vegetables onto the pallet 23, the end of the pallet 23 furthest from the conveyor belt 12 is designed with an incline, allowing the vegetables to slide off the pallet 23 effectively. The packaged vegetables are stacked on existing forklift pallets and preserved with plastic wrap. The bottom of the forklift pallet has a protrusion, and the pallet 23 has two openings to allow the protrusion on the bottom of the existing pallet to fit into the openings. When placing vegetables, the protrusion on the bottom of the pallet will contact the position where the vegetables need to be placed, so that when the pallet 23 is retracted, the pallet can rub against the position where the goods are placed, thereby allowing the pallet to detach from the pallet 23.

[0021] like Figures 1 to 6As shown, the lifting assembly also includes two buffer cavities 24 respectively opened on the outer shells 1 of the two conveyor bodies. A deceleration groove 25 of equal length to the buffer cavity 24 is opened below it. The deceleration groove 25 stores a non-Newtonian fluid. The buffer cavity 24 communicates with the adjacent deceleration groove 25. A spring 26 is fixedly connected to the side of each buffer cavity 24 near the support plate 23. A piston plate 27 is fixedly connected to the end of each spring 26 away from the support plate 23. The two piston plates 27 are movably disposed inside the two buffer cavities 24. Each piston plate 27 has a retarder claw 28 fixedly connected to its bottom. Both retarder claws 28 slide inside adjacent retarder grooves 25. Each piston plate 27 has a pull rope 29 fixedly connected to its side near the spring 26. One end of each pull rope 29 extends out of the conveyor body housing 1 and is fixedly connected to the upper surface of the pallet 23. Each fixed rod 21 has a contact wheel 210 rotatably connected to it. Each pull rope 29 is attached to the adjacent contact wheel 210. The contact wheel 210 is used to guide the pull rope 29 to reduce wear during the traction process.

[0022] like Figure 1 and Figures 7 to 10 As shown, the conveyor body shell 1 is equipped with a support assembly for stable support of the conveyor body shell 1. The support assembly includes two sliders 41 respectively fixedly connected to the bottom of the two conveyor body shells 1. The distance between the sliders 41 and the pallet 23 corresponds to the length of the existing fresh produce truck compartment. This is used to ensure that the vegetables are transported to the innermost part of the truck compartment when the conveyor belt 12 is conveying the vegetables. The sliders 41 are placed on the outside of the truck compartment for easy operation. The bottom of the two sliders 41 is slidably connected to a chute rod 42. The length of the chute rod 42 corresponds to the width of the existing fresh produce truck compartment. When the outer shell 1 of the conveyor body slides on the slide bar 42 via the slider 41, it adapts to the existing truck bed, ensuring that the vegetables are effectively transported into the truck bed. Each end of the slide bar 42 is fixedly connected to a support tube 43. The two support tubes 43 are provided with adjustment grooves 44 on their sides that are close to each other. The adjustment grooves 44 are composed of multiple triangular grooves arranged in a linear array, a release groove at the top, and a locking groove at the bottom. An adjustment rod 45 is slidably connected inside each of the two support tubes 43. Rollers 46 are rotatably connected to the bottom of each of the two adjustment rods 45. The outer surface of the rollers 46 is made of rough rubber material.

[0023] like Figure 1 and Figures 7 to 10As shown, each of the two adjusting rods 45 has a groove 47 at its top. A fixed shaft 48 is fixedly connected inside the groove 47. A swing rod 49 is rotatably connected to the fixed shaft 48. A locking block 410 is fixedly connected to the end of the swing rod 49 away from the fixed shaft 48. The locking block 410 slides inside the adjusting groove 44. A positioning groove 411 is formed on the outer surface of the end of the swing rod 49 near the fixed shaft 48. A positioning groove 412 is formed on the outer surface of the end of the swing rod 49 near the fixed shaft 48. The positioning groove 412 is located above the positioning groove 411. A locking plate 413 is fixedly connected inside the groove 47. The locking plate 413 is composed of a cylindrical block and an elastic metal sheet. The elastic metal sheet of the locking plate 413 is set as an inverted L-shape. The cylindrical block of the locking plate 413 is fixedly set inside the groove 47. The end of the elastic metal sheet of the locking plate 413 away from the cylindrical block abuts against the positioning groove 411.

[0024] Based on the above preferred embodiments, the following is the complete working process and working principle of the above embodiments: The initial state is: No vegetables are placed on pallet 23. The T-shaped block of pallet 23 is at the highest position of the limiting groove 22. At this time, spring 26 is not compressed by piston plate 27. Electric double-headed hydraulic rod 36 is in an extended state. Electric double-headed hydraulic rod 36 makes the two support rods 33 in a horizontal state through two connecting seats 35. At this time, roller 1 34 is not in contact with the ground or the carriage. That is, at this time, the fixing rod 21 and roller 2 46 mainly abut against the carriage and the ground to maintain stability. Groove 47 is at the highest position inside the support tube 43. At this time, swing rod 49 makes the locking block 410 inside the adjustment groove 44 release groove. The end of the elastic metal sheet of locking plate 413 away from the cylindrical block is in contact with positioning groove 1 411. At this time, the elastic metal sheet of locking plate 413 is in a state of elastic deformation due to compression by positioning groove 1 411.

[0025] The working status is: Align the rear of the truck with the outbound platform of the intelligent automated fresh food warehouse. The outbound platform is flush with the bottom of a regular truck bed. At this time, the staff can move the outer shell 1 of the conveyor body to the outbound platform and align the pallet 23 with the location inside the truck bed where vegetables need to be stacked. Meanwhile, the support pipes 43 are placed on both sides of the rear of the truck bed. After the staff starts the external motor, the external motor drives the conveyor shaft 11 to rotate and drives the conveyor belt 12 to drive. During the conveying process in the intelligent automated fresh food warehouse, vegetables can be placed on the conveyor belt 12 and transported to the inside of the truck bed by the conveyor belt 12.

[0026] At this time, the electric double-headed hydraulic rod 36 is activated, causing its telescopic shaft to retract. This retraction causes the connecting seat 35 to drive the support rod 33 to swing downwards around the hinge seat 32. As the support rod 33 swings downwards, the electric double-headed hydraulic rod 36 moves downwards synchronously. This downward movement of the electric double-headed hydraulic rod 36 drives the sliding frame 37 to move downwards synchronously within the sliding groove, thus ensuring the stable downward movement of the electric double-headed hydraulic rod 36. During the downward swing of the support rod 33, the roller 34 will contact the truck bed. When the roller 34 contacts... After the truck bed is closed, the electric double-headed hydraulic rod 36 is turned off, so that the roller 34 stops moving downward. During the downward swing of the support rod 33, the support rod 33 will lift the two conveyor body shells 1 through the hinge seat 32, so that the conveyor body shells 1 drive the conveyor belt 12 to move upward through the conveyor shaft 11. The roller 34 abuts against the truck bed, so that the conveyor belt 12 and other devices can move back and forth along the depth direction of the truck bed during the transportation of vegetables. In addition, the chute rod 42 is located on the outside of the truck bed, and the roller 46 is abutting against the outbound platform of the intelligent three-dimensional fresh food warehouse.

[0027] The lifting component assists the conveyor belt 12 in placing vegetable goods. When the conveyor belt 12 transports the vegetables to a position near the pallet 23, gravity causes the vegetables to fall onto the pallet 23. At this point, the protrusions of the forklift pallet at the bottom of the vegetables embed into the opening of the pallet 23. Supported by the pallet 23, the vegetables are not tilted when transported to the end of the conveyor belt 12 due to the curved surface of the conveyor belt 12, thus ensuring the vegetables are smoothly transported into the truck compartment. Under the weight of the vegetables, the pallet 23 moves downwards through the T-block within the limiting groove 22. During this downward movement, the pallet 23 pulls the pull rope 29, causing it to move on the contact wheel 210 and rotate synchronously with it. This movement of the pull rope 29 pulls the piston plate 27 synchronously towards the side closer to the pallet 23 within the buffer chamber 24. Spring 26 is compressed by piston plate 27. At this time, the movement of piston plate 27 will also drive slowing claw 28 to move towards the side of pallet 23 inside slowing groove 25. Because slowing groove 25 contains non-Newtonian fluid, slowing claw 28 moves slowly inside slowing groove 25 under the action of non-Newtonian fluid. The slow movement of slowing claw 28 limits the speed of pulling rope 29 through piston plate 27. At this time, pulling rope 29 limits the downward movement speed of pallet 23, so that pallet 23 will move slowly downward. Pallet 23 will drive the supported vegetables to move slowly downward, thereby ensuring the stability of vegetable transportation, preventing rapid falling and squeezing of vegetables inside the vegetables, improving the integrity of vegetables during transportation, and also preventing rapidly falling vegetables from slipping off pallet 23.

[0028] When pallet 23 reaches its lowest position, the raised bottom of the forklift pallet of the vegetables will contact the truck bed. At this point, the conveyor body shell 1 is pulled outward a certain distance. Through the rolling action of roller 34 inside the truck bed and roller 46 on the unloading platform, the conveyor body shell 1 can smoothly move out of the truck bed. The pallet 23, which is slidably connected inside the limiting groove 22, moves outward synchronously through the fixing rod 21. Because the vegetables are in contact with the truck bed, the pallet 23 will be pulled out from the bottom of the vegetables during its movement. During this process, the bottom of the vegetables will not follow the movement due to contact with the truck bed. As the pallet 23 moves synchronously, the vegetables are placed in the truck bed due to the removal of the pallet 23. Since the pallet 23 has been removed from the bottom of the vegetables, it is no longer affected by the weight of the vegetables. Under the elastic reset action of the spring 26, the piston plate 27 moves away from the pallet 23 inside the buffer chamber 24. The piston plate 27 drives the slowing claw 28 to move synchronously inside the slowing groove 25, which in turn causes the piston plate 27 to slowly pull the pallet 23 upward through the pull rope 29. The pallet 23 will slowly slide upward in the limiting groove 22 through the T-shaped block, so that the pallet 23 returns to the initial position in order to lift the subsequent vegetables.

[0029] Lifting assembly lifts the outer casing of the conveyor body 1: At this time, the electric double-headed hydraulic rod 36 is activated, causing the telescopic shaft of the electric double-headed hydraulic rod 36 to continue to retract. The retraction of the telescopic shaft of the electric double-headed hydraulic rod 36 will drive the support rod 33 to continue to swing downward around the hinge seat 32 as the axis through the connecting seat 35. The support rod 33 will continue to cause the conveyor body shell 1 to move upward through the hinge seat 32. The upward movement of the conveyor body shell 1 will raise the horizontal position of the vegetables conveyed by the conveyor belt 12. In addition, the upward movement of the conveyor body shell 1 will drive the pallet 23 sliding in the limiting groove 22 to move upward synchronously through the fixed rod 21. After the fixed rod 21 moves upward, its bottom end corresponds to the top of the previously placed vegetables, automatically adjusting the height of the horizontal conveying. After the vegetables are conveyed by the conveyor belt 12, the vegetables are stacked on the previously placed vegetables through the pallet 23, realizing the stacking effect of the vegetables and achieving the purpose of auxiliary adjustment.

[0030] Support components assist in supporting the outer shell of the conveyor body 1: When the conveyor body shell 1 is lifted by the lifting assembly, the upward movement of the conveyor body shell 1 causes the slide bar 42 to move upward synchronously via the slider 41. The slide bar 42 then drives the support tube 43 to move upward synchronously. Under the action of gravity, the roller 46 remains in contact with the delivery platform, thus keeping the adjusting rod 45 stationary and providing support. At this time, the support tube 43 slides upward on the outer surface of the adjusting rod 45. This upward sliding of the support tube 43 causes the adjusting groove 44 to move upward synchronously. As the elastic metal sheet of the locking plate 413 resets and abuts against the positioning groove 411, the swing rod 49 drives the locking block 410 to slide from the release groove at the top of the adjusting groove 44 into the triangular groove. Because the locking block 410 moves into the triangular groove of the adjusting groove 44, the right-angled side of the triangular groove of the adjusting groove 44 engages with the locking block 410, thereby locking the height of the support tube 43 on the adjusting rod 45. By locking the height of the support tube 43, the height of the sliding rod 42 is simultaneously locked. (See reference for details.) Figure 10 The middle locking block 410 is engaged with the right-angle side of the triangular groove of the adjusting groove 44. The sliding rod 42 supports the raised conveyor body shell 1 through the slider 41. The two rollers 46 and two rollers 34 form a triangular support for the conveyor body shell 1, preventing the conveyor body shell 1 from tilting after being raised, thus ensuring the stability of the conveyor body shell 1 after being raised and effectively improving the stability of the subsequent conveying of vegetable goods.

[0031] After the vegetables are stacked to their highest position in the truck bed, the electric double-headed hydraulic rod 36 is activated again, causing the support rod 33 to lift the conveyor body shell 1 again through the hinge seat 32. After the conveyor body shell 1 is lifted again, it will drive the slide bar 42 to move upward through the slider 41. The slide bar 42 will drive the support tube 43 to move upward again on the adjusting rod 45. When the support tube 43 moves to its highest position, the groove 47 is aligned with the bottom of the adjusting groove 44. The locking block 410 will slide into the locking groove at the bottom of the adjusting groove 44. Under the guidance of the locking groove of the adjusting groove 44, the swing rod 49 rotates clockwise around the fixed shaft 48. Figure 10During the clockwise rotation of the swing arm 49, the locking plate 413, which was originally in contact with the positioning groove 1 411, will slide into the positioning groove 2 412. At this time, the locking plate 413 will engage with the positioning groove 2 412, and the swing arm 49 will be unable to rotate, thus locking the position of the locking block 410. After the electric double-headed hydraulic rod 36 is started and its telescopic shaft extends, the electric double-headed hydraulic rod 36 causes the support rod 33 to drive the conveyor body shell 1 downward through the hinge seat 32. The conveyor body shell 1 drives the slide bar 42 to move downward through the slider 41. As the sliding rod 42 moves downward, the support tube 43 slides downward on the outer surface of the adjusting rod 45. At this time, because the position of the locking block 410 is locked, it cannot engage with the triangular groove of the adjusting groove 44. The support tube 43 moves downward smoothly on the outer surface of the adjusting rod 45. When the support tube 43 moves to the lowest position, the top of the adjusting groove 44 is aligned with the groove 47, that is, the locking block 410 slides into the release groove at the top of the adjusting groove 44. Under the guidance of the release groove of the adjusting groove 44, the locking block 410 drives the swing rod 49 to rotate counterclockwise around the fixed shaft 48. Figure 10 (Counterclockwise direction in the middle), the reverse rotation of the swing rod 49 will cause the card plate 413 to separate from the positioning groove 2 412, and then slide onto the positioning groove 1 411 and abut against the positioning groove 1 411, which facilitates the subsequent stacking of vegetables and goods. The sliding cooperation between the slider 41 and the slide bar 42 makes it easy to adjust the position of the device inside the carriage, and facilitates the placement and stacking of goods in different positions.

[0032] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An agricultural product storage management device, comprising a conveyor body shell (1), characterized in that, The conveyor body shell (1) is provided in two, and multiple conveyor shafts (11) are rotatably connected between the two conveyor body shells (1). One of the conveyor shafts (11) is connected to a motor, and a conveyor belt (12) is driven to the conveyor shaft (11). A lifting component is provided at the bottom of the two conveyor body shells (1). The lifting assembly includes a connecting plate (31) fixedly connected between the bottoms of the two conveyor body shells (1). Two sets of hinge seats (32) are symmetrically fixedly connected to the bottoms of the two conveyor body shells (1). A support rod (33) is hinged to each of the two sets of hinge seats (32). A roller (34) is rotatably connected to the end of each of the two support rods (33) away from the connecting plate (31). A connecting seat (35) is fixedly connected to the outer surface of each of the two support rods (33) by bolts. An electric double-headed hydraulic rod (36) is rotatably connected between the two connecting seats (35). A sliding frame (37) is fixedly connected to the middle of the electric double-headed hydraulic rod (36). The sliding frame (37) is slidably connected to the conveyor body shell (1). A lifting assembly for placing vegetable goods is also provided on the conveyor body shell (1).

2. The agricultural product storage management equipment according to claim 1, characterized in that, The outer surfaces of the two rollers (34) are made of rubber, and the outer shell (1) of the conveyor body is provided with a sliding groove for the sliding frame (37) to slide.

3. The agricultural product storage management equipment according to claim 1, characterized in that, The lifting assembly includes two fixed rods (21) that are respectively fixedly connected to the outer shells (1) of the two conveyor bodies. Each of the two fixed rods (21) has a limiting groove (22), and a support plate (23) is slidably connected between the two limiting grooves (22).

4. The agricultural product storage management equipment according to claim 3, characterized in that, The pallet (23) is attached to the outer surface of the conveyor belt (12) at one end, and the pallet (23) away from the conveyor belt (12) is set as an inclined surface. The pallet (23) has two openings.

5. The agricultural product storage management equipment according to claim 3, characterized in that, The lifting assembly also includes two buffer chambers (24) respectively opened on the two conveyor body shells (1). A slowing groove (25) with the same length as the buffer chamber (24) is opened below the buffer chamber (24). A spring (26) is fixedly connected to the side of the two buffer chambers (24) near the pallet (23). A piston plate (27) is fixedly connected to the end of the two springs (26) away from the pallet (23). A slowing claw (28) is fixedly connected to the bottom of the two piston plates (27). A pull rope (29) is fixedly connected to the side of the two piston plates (27) near the spring (26). One end of the two pull ropes (29) passes through the conveyor body shell (1) and is fixedly connected to the upper surface of the pallet (23). A contact wheel (210) is rotatably connected to the two fixed rods (21). The two pull ropes (29) are attached to the adjacent contact wheel (210).

6. The agricultural product storage management equipment according to claim 5, characterized in that, The retardation groove (25) contains a non-Newtonian fluid. The buffer chamber (24) is connected to the adjacent retardation groove (25). The piston plate (27) is movably disposed inside the buffer chamber (24). The retardation claw (28) slides inside the retardation groove (25).

7. The agricultural product storage management equipment according to claim 1, characterized in that, It also includes a support assembly, which includes two sliders (41) that are fixedly connected to the bottom of the two conveyor body shells (1). The bottom of the two sliders (41) is slidably connected to a chute rod (42). Both ends of the chute rod (42) are fixedly connected to a support tube (43). The two support tubes (43) are provided with adjustment grooves (44) on their sides that are close to each other. The inside of the two support tubes (43) is slidably connected to an adjustment rod (45). The bottom of the two adjustment rods (45) is rotatably connected to a roller (46).

8. The agricultural product storage management equipment according to claim 7, characterized in that, The adjustment groove (44) consists of multiple triangular grooves arranged in a linear array, a top release groove and a bottom locking groove, and the outer surface of the roller (46) is made of rubber.

9. The agricultural product storage management equipment according to claim 8, characterized in that, The top of each of the two adjusting rods (45) is provided with a groove (47), a fixed shaft (48) is fixedly connected in the groove (47), a swing rod (49) is rotatably connected on the fixed shaft (48), a locking block (410) is fixedly connected to the end of the swing rod (49) away from the fixed shaft (48), the locking block (410) slides inside the adjusting groove (44), a positioning groove one (411) and a positioning groove two (412) are provided on the outer surface of the end of the swing rod (49) near the fixed shaft (48), and a locking plate (413) is fixedly connected inside the groove (47).

10. The agricultural product storage management equipment according to claim 9, characterized in that, The card plate (413) is composed of a cylindrical block and an elastic metal sheet. The elastic metal sheet of the card plate (413) is L-shaped. The cylindrical block of the card plate (413) is fixedly installed in the groove (47). The end of the elastic metal sheet of the card plate (413) away from the cylindrical block abuts against the positioning groove (411).