A flower processing lifting device

By combining the lifting mechanism and the loading mechanism, the batch transportation and automatic loading and unloading of flower trays are realized, which solves the problems of high labor intensity and low efficiency in the transfer of flower trays during flower processing and improves the conveying efficiency of flower processing.

CN117485869BActive Publication Date: 2026-04-07KUNMING INST OF BOTANY CHINESE ACAD OF SCI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-17
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing technologies, the transfer of flower heads during flower processing relies on flower rack carts, which results in high labor intensity and low transportation efficiency, making it unsuitable for the mass production of preserved flowers.

Method used

By employing a lifting mechanism, a loading mechanism, a cargo loading mechanism, and a cargo unloading mechanism, the batch transportation and automatic loading and unloading of flower trays can be achieved. Through the vertical conveying of the lifting mechanism and the batch loading of the loading mechanism, combined with the automatic loading and unloading of the cargo loading and unloading mechanism, the labor intensity of workers is reduced and the conveying efficiency is improved.

Benefits of technology

It enables batch transportation and automatic loading and unloading of flower pots, reducing the labor intensity of workers and improving the conveying efficiency of flower processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a flower processing lifting device and belongs to the technical field of flower transportation; the flower processing lifting device comprises a lifting mechanism, a loading mechanism, a loading mechanism, a unloading mechanism, a first conveyor and a second conveyor; the lifting mechanism is divided into two layers, the loading mechanism for conveying flower trays is arranged on the lifting mechanism, the first conveyor for inputting the flower trays is arranged on the lower layer of the lifting mechanism, the loading mechanism is arranged beside the first conveyor, the loading mechanism corresponds to the loading mechanism, the second conveyor for outputting the flower trays is arranged on the upper layer of the lifting mechanism, and the unloading mechanism corresponding to the second conveyor is arranged on the lifting mechanism. The lifting mechanism and the loading mechanism are arranged, the batch conveying of the flower trays is realized, the flower trays are automatically loaded and unloaded through the loading mechanism and the unloading mechanism, the labor intensity of workers is reduced, and the conveying efficiency is improved.
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Description

Technical Field

[0001] This invention relates to a flower processing and lifting device, belonging to the field of flower transportation technology. Background Technology

[0002] In the production of preserved flowers, larger blooms such as roses and lilies require individual fixation with flower trays to ensure stability during processing. These flowers then undergo dehydration, dyeing, and other processes. After processing, the flowers need to be transferred and stored. In actual production, to improve factory space utilization, the flower processing and storage areas are typically set up on separate levels, with the processing area on the lower level and the storage area on the upper level. Currently, flower transfer mainly relies on flower carts. The process involves loading flower trays containing the flowers into the carts after processing, pushing the carts to the storage area, and finally unloading the flower trays and placing them in the appropriate storage location. This method requires repeated manual loading and unloading of flower trays, which is not only labor-intensive but also inefficient, making it unsuitable for large-scale preserved flower production. Summary of the Invention

[0003] In order to overcome the problems existing in the background technology, the present invention realizes the batch transportation of flower trays by installing a lifting mechanism and a loading mechanism, and automatically loads and unloads the flower trays by a loading mechanism and a unloading mechanism, thereby reducing the labor intensity of workers and improving the conveying efficiency.

[0004] To overcome the problems existing in the background art, the present invention is achieved through the following technical solution:

[0005] The flower processing lifting equipment includes a lifting mechanism, a loading mechanism, a loading mechanism, a unloading mechanism, a first conveyor, and a second conveyor. The lifting mechanism is divided into upper and lower layers, and a loading mechanism for transporting flower trays is installed on the lifting mechanism. A first conveyor for inputting flower trays is provided on the lower layer of the lifting mechanism, and a loading mechanism corresponding to the loading mechanism is installed next to the first conveyor. A second conveyor for outputting flower trays is provided on the upper layer of the lifting mechanism, and a unloading mechanism corresponding to the second conveyor is installed on the lifting mechanism.

[0006] Optionally, the lifting mechanism includes a lifting frame, slide rails, a lower locking block, an upper locking block, a chain, a sprocket, and a lifting motor. Two parallel slide rails are installed on the lifting frame in the vertical direction. An upper locking block and a lower locking block for positioning the loading mechanism are installed at the upper and lower ends of the slide rails, respectively. Sprockets are installed at both the upper and lower ends of the lifting frame, and chains are connected to the two sprockets. The lower sprocket is connected to the lifting motor.

[0007] Optionally, the loading mechanism includes a side plate, a connecting rod, a first telescopic rod, a first bracket, an electromagnet, and a support assembly. The two sets of side plates are symmetrically arranged, and the bottom of the two side plates are fixedly connected by the connecting rod. The top of the side plate is equipped with a first telescopic rod through the first bracket, and the end of the first telescopic rod is provided with an electromagnet corresponding to the flower plate. The side wall of the side plate is also provided with a sliding groove along the transverse direction and a loading groove perpendicular to the sliding groove. The support assembly for supporting the flower plate is evenly installed in the loading groove.

[0008] Optionally, the support assembly includes a support block and a spring. The support block has a "Z"-shaped structure and is hinged in the loading groove. The support block is also connected to the loading groove via a spring at a position lower than the hinge point.

[0009] Optionally, the loading mechanism includes a base, a second telescopic rod, a second bracket, a third telescopic rod, and a clamping assembly. The second telescopic rod is vertically mounted on the base, and the end of the second telescopic rod is connected to the third telescopic rod horizontally via the second bracket. The end of the third telescopic rod is equipped with a clamping assembly corresponding to the flower plate. The clamping assembly includes an upper clamping plate, a lower clamping plate, and a fourth telescopic rod. The lower clamping plate is fixedly connected to the third telescopic rod, and the lower clamping plate is connected to the upper clamping plate via the fourth telescopic rod.

[0010] Optionally, the unloading mechanism includes a fifth telescopic rod, a clamp, and a third bracket. The third bracket is fixedly connected to the lifting frame, and the fifth telescopic rod is installed on the third bracket. A "C"-shaped clamp corresponding to the flower plate is fixed to the end of the fifth telescopic rod.

[0011] Optionally, the first conveyor is provided with guide rails on the left and right sides, the bottom of the flower plate is provided with guide grooves corresponding to the guide rails, and the first conveyor is provided with a limiting plate corresponding to the loading mechanism.

[0012] Optionally, the second conveyor is provided with guard plates on both the left and right sides.

[0013] The beneficial effects of this invention are as follows:

[0014] This invention achieves vertical transport of flower trays by installing a lifting mechanism, and simultaneously improves transport efficiency by loading a batch of flower trays through a loading mechanism. At the same time, the automatic loading and unloading of flower trays by the loading and unloading mechanisms reduces the labor intensity of workers and improves transport efficiency. Attached Figure Description

[0015] Figure 1 A schematic diagram of the structure of the flower processing and upgrading equipment;

[0016] Figure 2 This is a schematic diagram of the lifting mechanism structure of the present invention;

[0017] Figure 3 This is a schematic diagram of the loading mechanism structure of the present invention;

[0018] Figure 4 This is a partial structural diagram of the loading mechanism of the present invention;

[0019] Figure 5 This is a partial structural cross-sectional view of the loading mechanism of the present invention;

[0020] Figure 6 For the present invention Figure 5 Schematic diagram of the structure of Region A;

[0021] Figure 7 This is a partial structural diagram of the present invention;

[0022] Figure 8 For the present invention Figure 7 Schematic diagram of Region B structure;

[0023] Figure 9 This is a partial structural diagram of the present invention;

[0024] Figure 10 This is a schematic diagram of the flower plate structure of the present invention.

[0025] The numbers in the diagram are: 1-lifting mechanism, 11-lifting frame, 12-slide rail, 13-lower locking block, 14-upper locking block, 15-chain, 16-connecting plate, 17-sprocket, 18-lifting motor, 19-slider;

[0026] 2-Loading mechanism, 21-Side plate, 22-Connecting rod, 23-First telescopic rod, 24-First bracket, 25-Electromagnet, 26-Support assembly, 261-Support block, 262-Spring, 263-Hinged column, 27-Slide groove, 28-Loading groove, 29-Inlet;

[0027] 3-Loading mechanism, 31-Base, 32-Second telescopic rod, 33-Second bracket, 34-Third telescopic rod, 35-Lower clamp, 36-Upper clamp, 37-Fourth telescopic rod;

[0028] 4-Unloading mechanism, 41-Fifth telescopic rod, 42-Clamp, 43-Third support;

[0029] 5-First conveyor, 51-Guide rail, 52-Limit plate;

[0030] 6-Second conveyor; 61-Guard plate;

[0031] 7-Flower plate, 71-Fixing groove, 72-Iron block, 73-Clamping plate, 74-Limiting block, 75-Guide groove. Detailed Implementation

[0032] To make the objectives, technical solutions, and effects of this invention clear and easy to understand, the preferred embodiments of this invention will be described in detail below with reference to the accompanying drawings, so that those skilled in the art can understand them.

[0033] It should be noted that, in the description of this invention, unless otherwise specified and limited, the terms "installation", "connection", "linking", "interconnection", etc., should be interpreted broadly, that is, they can be fixed connections or detachable connections; they can be mechanical connections or electrical connections; they can be direct connections or indirect connections through an intermediate medium.

[0034] like Figure 1-10 As shown, the flower processing lifting equipment includes a lifting mechanism 1, a loading mechanism 2, a feeding mechanism 3, a discharging mechanism 4, a first conveyor 5, and a second conveyor 6. The flower processing plant is typically divided into two floors: a processing area on the first floor and a storage area on the second floor. The lifting mechanism 1 corresponds to the plant layout, with the upper floor corresponding to the storage area and the lower floor corresponding to the processing area. The loading mechanism 2, used for transporting flower trays 7, is installed on the lifting mechanism 1. The first conveyor 5 is located below the lifting mechanism 1, used to transport flower trays 7 containing processed flowers to the lifting mechanism 1. The feeding mechanism 3, corresponding to the loading mechanism 2, is installed next to the first conveyor 5, transferring the flower trays 7 from the first conveyor 5 to the loading mechanism 2. The second conveyor 6 is located above the lifting mechanism 1, used to transport the flower trays 7 to the storage area. The discharging mechanism 4, corresponding to the second conveyor 6, is installed on the lifting mechanism 1, transferring the flower trays 7 from the loading mechanism 2 to the second conveyor 6. Both the first conveyor 5 and the second conveyor 6 are roller conveyors.

[0035] In this embodiment, the lifting mechanism 1 includes a lifting frame 11, slide rails 12, a lower locking block 13, an upper locking block 14, a chain 15, a sprocket 17, and a lifting motor 18. Two parallel slide rails 12 are fixedly installed vertically on the lifting frame 11. An upper locking block 14 and a lower locking block 13 are fixedly installed at the upper and lower ends of the slide rails 12, respectively. A slider 19 is slidably connected between the two locking blocks. The slider 19 is fixedly connected to the loading mechanism 2. The lower locking block 13 can limit the lowest point position of the slider 19, and the upper locking block 14 can limit the highest point position of the slider 19. Sprockets 17 are rotatably installed at both the upper and lower ends of the lifting frame 11. Chains 15 are connected to the two sprockets 17, and the lower sprocket 17 is connected to the lifting motor 18. A connecting plate 16 is also fixed on the chain 15. The connecting plate 16 is fixedly connected to the loading mechanism 2. When the lifting motor 18 starts, the chain 15 is driven to rotate through the sprocket 17, causing the connecting plate 16 to move, thereby driving the loading mechanism 2 to rise or fall. At the same time, the sliding block 19 can restrict the movement direction of the loading mechanism 2 to ensure the stability of the lifting process of the loading mechanism 2.

[0036] In this embodiment, the loading mechanism 2 includes a side plate 21, a connecting rod 22, a first telescopic rod 23, a first bracket 24, an electromagnet 25, and a support assembly 26. There are two side plates 21, symmetrically and parallelly arranged. The bottoms of the two side plates 21 are fixedly connected by the connecting rod 22 for stability. A first bracket 24 is fixed to the top of the side plate 21, and a first telescopic rod 23 is vertically fixedly installed on the first bracket 24. An electromagnet 25 corresponding to the flower disc 7 is fixed to the end of the first telescopic rod 23. Figure 3 As shown, a connecting plate 16 and a slider 19 are fixedly mounted on the side plate 21 near the slide rail 12. Figure 4 As shown, a sliding groove 27 is opened horizontally on the side wall of the side plate 21, and a loading groove 28 is opened perpendicular to the sliding groove 27. Three sets of support components 26 for supporting the flower plate 7 are evenly installed from top to bottom in the loading groove 28.

[0037] Support assembly 26 includes support block 261 and spring 262, such as Figure 6 As shown, the support block 261 has a "Z"-shaped structure, and a hinge post 263 is provided in the middle of the support block 261. The support block 261 is hinged to the loading groove 28 via the hinge post 263. A spring 262 is also fixedly connected to the loading groove 28 near the lower part of the hinge point on the support block 261. The spring 262 is always in a compressed state. Under normal conditions, the support block 261 tilts under the action of the spring force, facilitating the loading of the flower tray 7. Figure 10 As shown, the flower tray 7 has four sets of limiting blocks 74 on its side. When loading the flower tray 7, the flower tray 7 slides into the loading mechanism 2 through the loading mechanism 3 through the inlet 29. When the limiting blocks 74 are aligned with the loading groove 28, the first telescopic rod 23 extends, driving the electromagnet 25 to move down and contact the iron block 72 fixed on the flower tray 7 and be energized. Figure 6As shown, after the electromagnet 25 attracts the flower plate 7, the first telescopic rod 23 continues to extend, causing the flower plate 7 to slide into the loading groove 28. When the limiting block 74 moves downward, it will squeeze the support block 261, compressing the spring 262, thereby causing the support block 261 to rotate around the hinge. When the flower plate 7 slides to the bottom of the loading groove 28, the electromagnet 25 is de-energized, the first telescopic rod 23 returns to its original position, and the limiting block 74 will continue to squeeze the support block 261, thereby keeping the top surface of the support block 261 horizontal and blocking the path of the loading groove 28, facilitating the support of subsequent flower plates 7. Repeating the above process allows for the loading of multiple sets of flower plates 7. When it is necessary to unload the flower plate 7, the first telescopic rod 23 extends, causing the electromagnet 25 to contact the iron block 72 on the flower plate 7 and be energized. After the electromagnet 25 attracts the flower plate 7, the first telescopic rod 23 shortens, causing the flower plate 7 to rise to the slide groove 27, where the unloading mechanism 4 pushes the flower plate 7 out of the loading mechanism 2. To facilitate the compression of the spring 262 when the limit block 74 moves upward, and thus slide normally away from the loading groove 28, the top surface of the limit block 74 is an inclined surface. After the limit block 74 slides away, the support block 261 returns to its inclined state under the action of the spring 262.

[0038] In this embodiment, the loading mechanism 3 includes a base 31, a second telescopic rod 32, a second bracket 33, a third telescopic rod 34, and a clamping assembly. The base 31 is fixedly installed on the bottom surface of the factory building. The second telescopic rod 32 is fixedly installed vertically on the base 31. The second bracket 33 is fixedly connected to the end of the second telescopic rod 32. The third telescopic rod 34, which is arranged horizontally, is fixedly installed on the second bracket 33. The clamping assembly corresponding to the flower plate 7 is installed at the end of the third telescopic rod 34.

[0039] The clamping assembly includes an upper clamping plate 36, a lower clamping plate 35, and a fourth telescopic rod 37. The lower clamping plate 35 is fixedly connected to the end of the third telescopic rod 34, and the lower clamping plate 35 is connected to the upper clamping plate 36 through the fourth telescopic rod 37. There are two sets of the fourth telescopic rod 37, which are respectively arranged on the left and right sides of the lower clamping plate 35. When the flower tray 7 is transferred from the first conveyor 5 to the loading mechanism 2, the fourth telescopic rod 37 drives the upper clamping plate 36 to move down and clamp the clamping plate 73 on the side of the flower tray 7. The second telescopic rod 32 extends, driving the flower tray 7 to move up and align with the inlet 29. The third telescopic rod 34 extends, thereby pushing the flower tray 7 into the chute 27, so that the iron block 72 on the flower tray 7 aligns with the electromagnet 25. Then the loading mechanism 3 resets and waits for the next loading of the flower tray 7.

[0040] To facilitate the positioning of the clamping plate 73 of the flower disc 7, guide rails 51 are provided on the left and right sides of the first conveyor 5. The bottom of the flower disc 7 has a guide groove 75 corresponding to the guide rail 51 to ensure that the position of the flower disc 7 will not shift during the conveying process. At the same time, a limit plate 52 is fixedly installed at the end of the first conveyor 5, and a pressure sensor is installed on the limit plate 52. When the flower disc 7 contacts the limit plate 52, pressure will be generated. The pressure sensor can determine whether the flower disc 7 is in position. At the same time, when the flower disc 7 contacts the limit plate 52, the clamping component is aligned with the clamping plate 73, thereby facilitating the transfer of the flower disc 7.

[0041] In this embodiment, the unloading mechanism 4 includes a fifth telescopic rod 41, a clamp 42, and a third support 43. The third support 43 is fixedly connected to the upper layer of the lifting frame 11, and the fifth telescopic rod 41 is fixedly installed on the third support 43. The direction of the fifth telescopic rod 41 is consistent with the direction of the third telescopic rod 34. A "C"-shaped clamp 42 corresponding to the clamping plate 73 on the flower plate 7 is fixed to the end of the fifth telescopic rod 41. During unloading, the first telescopic rod 23 extends, so that the electromagnet 25 contacts the iron block 72 and is energized. When the electromagnet 25 attracts the flower plate 7, the first telescopic rod 23 shortens, driving the flower plate 7 to rise to the slide chute 27. The fifth telescopic rod 41 extends, so that the clamp 42 is engaged with the clamping plate 73 on the flower plate. The clamp 42 prevents the flower plate 7 from falling back into the loading trough 28 after the electromagnet 25 is de-energized. The fifth telescopic rod 41 continues to extend, pushing the flower plate 7 into the second conveyor 6 to complete the unloading. To facilitate the positioning of the clamping plate 73, during installation, it must be ensured that when the slider 19 contacts the upper locking block 14, the opening of the clamp 42 and the slide groove 27 are on the same horizontal plane.

[0042] In this embodiment, guard plates 61 are fixed on the left and right sides of the second conveyor 6 to prevent the flower disc 7 from slipping during the conveying process and to ensure the stability of the conveying process.

[0043] Based on the above embodiments, for ease of automatic control, the lifting motor 18, the first telescopic rod 23, the electromagnet 25, the second telescopic rod 32, the third telescopic rod 34, the fourth telescopic rod 37, and the fifth telescopic rod 41 are all connected to a PLC and controlled by the PLC. The first telescopic rod 23, the second telescopic rod 32, the third telescopic rod 34, the fourth telescopic rod 37, and the fifth telescopic rod 41 are all electric telescopic rods.

[0044] The working process of this invention is as follows: Flowers are placed in the fixed groove 71 of the flower plate 7 for processing. After processing, the flower plate is placed into the first conveyor 5. The pressure sensor on the limiting plate 52 detects whether the flower plate 7 is in place. After it is in place, the third telescopic rod 34 extends, driving the lower clamping piece 35 to move to the position of the clamping plate 73. The fourth telescopic rod 37 shortens, driving the upper clamping piece 36 to move down, thereby clamping and fixing the clamping plate 73. The second telescopic rod 32 extends, driving the flower plate 7 to rise, so that the flower plate 7 is aligned with the slide groove 27. The third telescopic rod 34 continues to extend, pushing the flower plate 7 into the slide groove 27 until the iron block 72 on the flower plate 7 is aligned with the electromagnet 25. The first telescopic rod 23 extends, driving the electromagnet 25 to move down. When the electromagnet 25 contacts the iron block 72, it is energized and generates magnetism, thereby attracting the flower plate 7. At this time, the fourth telescopic rod 37 extends, causing the clamping assembly to release the clamping and fixing of the flower plate, completing the loading process.

[0045] After the electromagnet 25 attracts the flower plate 7, the first telescopic rod 23 continues to extend, causing the flower plate 7 to move downwards. During the downward movement, the limiting block 74 will press against the support block 261, causing the support block 261 to rotate around its hinge. When the flower plate 7 slides to the lowest point of the loading groove 28, the electromagnet 25 is de-energized, and the first telescopic rod 23 returns to its original position. Figure 6 As shown, under the pressure of the limiting block 74, the top surface of the support block 261 blocks the path of the loading slot 28, providing support for the next flower disc 7. At the same time, the next flower disc 7 will also press against its corresponding support block 261, and so on, so that multiple sets of flower discs 7 can be loaded at the same time, improving the conveying efficiency. When the flower discs 7 are full, the lifting motor 18 is started, which drives the chain 15 to rotate through the sprocket 17, causing the side plate 21 to rise, thereby raising the flower discs 7 to the upper layer and completing the lifting process.

[0046] When unloading the flower plate 7, the first telescopic rod 23 extends, causing the electromagnet 25 to contact the iron block 72 and be energized, thereby attracting and fixing the flower plate 7. The first telescopic rod 23 shortens, lifting the flower plate 7 from the loading groove 28 to the slide 27. The fifth telescopic rod 41 drives the clamp 42 to move, so that the clamp 42 is engaged with the clamping plate 73. The electromagnet 25 is de-energized, the first telescopic rod 23 returns to its original position, and the fifth telescopic rod 41 continues to extend, pushing the flower plate 7 from the slide 27 into the second conveyor 6, completing the unloading process. Repeating the above steps can unload all the flower plates 7 in the loading mechanism 2.

[0047] Finally, it should be noted that the above preferred embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail through the above preferred embodiments, those skilled in the art should understand that various changes can be made to it in form and detail without departing from the scope defined by the claims of the present invention.

Claims

1. A flower processing lifting device, characterized in that: The flower processing lifting equipment includes a lifting mechanism (1), a loading mechanism (2), a loading mechanism (3), a unloading mechanism (4), a first conveyor (5), and a second conveyor (6). The lifting mechanism (1) is divided into upper and lower layers, and a loading mechanism (2) for transporting flower trays (7) is installed on the lifting mechanism (1). A first conveyor (5) for inputting flower trays (7) is provided on the lower layer of the lifting mechanism (1). A loading mechanism (3) corresponding to the loading mechanism (2) is installed next to the first conveyor (5). A second conveyor (6) for outputting flower trays (7) is provided on the upper layer of the lifting mechanism (1), and a unloading mechanism (4) corresponding to the second conveyor (6) is installed on the lifting mechanism (1). Four sets of limiting blocks (74) are also provided on the side of the flower tray (7). The loading mechanism (2) includes a side plate (21), a connecting rod (22), a first telescopic rod (23), a first bracket (24), an electromagnet (25), and a support assembly. Two sets of side plates (21) are symmetrically arranged. The bottom of the two side plates (21) are fixedly connected by the connecting rod (22). The top of the side plate (21) is equipped with a first telescopic rod (23) through the first bracket (24). The end of the first telescopic rod (23) is provided with an electromagnet (25) corresponding to the flower plate (7). The side wall of the side plate (21) is also provided with a sliding groove (27) along the transverse direction, and a loading groove (28) perpendicular to the sliding groove (27) is provided. A support assembly (26) for supporting the flower plate (7) is evenly installed in the loading groove (28). The support assembly includes a support block (261) and a spring (262). The support block (261) has a "Z" shaped structure and is hinged in the loading groove (28). The support block (261) is also connected to the loading groove (28) by the spring (262) at a position lower than the hinge point of the support block (261). In normal conditions, the support block (261) tilts under the action of elastic force. When the electromagnet (25) attracts the flower plate (7), the first telescopic rod (23) continues to extend, causing the flower plate (7) to slide into the loading groove (28). When the limiting block (74) moves downward, it will squeeze the support block (261), causing the spring (262) to be compressed, thereby causing the support block (261) to rotate around the hinge. When the flower plate (7) slides to the bottom of the loading groove (28), the electromagnet (25) is de-energized, the first telescopic rod (23) is reset, and the limiting block (74) will continue to squeeze the support block (261), thereby keeping the top surface of the support block (261) horizontal, blocking the path of the loading groove (28), and facilitating the support of the subsequent flower plate (7).

2. The flower processing lifting equipment according to claim 1, characterized in that: The lifting mechanism (1) includes a lifting frame (11), a slide rail (12), a lower locking block (13), an upper locking block (14), a chain (15), a sprocket (17), and a lifting motor (18). Two parallel slide rails (12) are installed on the lifting frame (11) in the vertical direction. An upper locking block (14) and a lower locking block (13) for positioning the loading mechanism (2) are installed at the upper and lower ends of the slide rails (12), respectively. A sprocket (17) is installed at both the upper and lower ends of the lifting frame (11). A chain (15) is connected to the two sprockets (17), and the lower sprocket (17) is connected to the lifting motor (18).

3. The flower processing lifting equipment according to claim 1 or 2, characterized in that: The loading mechanism (3) includes a base (31), a second telescopic rod (32), a second bracket (33), a third telescopic rod (34), and a clamping assembly. The second telescopic rod (32) is vertically mounted on the base (31). The end of the second telescopic rod (32) is connected to the third telescopic rod (34) horizontally via the second bracket (33). The end of the third telescopic rod (34) is equipped with a clamping assembly corresponding to the flower plate (7). The clamping assembly includes an upper clamping piece (36), a lower clamping piece (35), and a fourth telescopic rod (37). The lower clamping piece (35) is fixedly connected to the third telescopic rod (34), and the lower clamping piece (35) is connected to the upper clamping piece (36) via the fourth telescopic rod (37).

4. The flower processing lifting equipment according to claim 3, characterized in that: The unloading mechanism (4) includes a fifth telescopic rod (41), a clamp (42), and a third bracket (43). The third bracket (43) is fixedly connected to the lifting frame (11), and the fifth telescopic rod (41) is installed on the third bracket (43). The end of the fifth telescopic rod (41) is fixed with a "C" shaped clamp (42) corresponding to the flower plate (7).

5. The flower processing lifting equipment according to claim 1, characterized in that: The first conveyor (5) has guide rails (51) on both the left and right sides, and the bottom of the flower plate (7) has a guide groove (75) corresponding to the guide rail (51). The first conveyor (5) is equipped with a limiting plate (52) corresponding to the loading mechanism (2).

6. The flower processing lifting equipment according to claim 5, characterized in that: The second conveyor (6) is equipped with guard plates (61) on both the left and right sides.

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