Fiveleaf gynostemma herb fixation and cooling all-in-one machine

Through the design of the Gynostem Blue finishing and cooling machine, the cross-movement of the roll structure and evacuation components is used to solve the problem of heat accumulation after the high temperature finishing of Gynostem Blue, and the uniform cooling and quality improvement of Gynostem Blue are achieved.

CN120477265APending Publication Date: 2025-08-15HUBEI SHUYUAN AGRI DEV CO LTD
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Patent Information

Application Number
CN202510911773.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-02
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

In the prior art, Gynostemum blue accumulates internal heat after high temperature finishing, which is not easy to dissipate, resulting in a decline in mass.

Method used

A gyngorthostomata blue finishing and cooling integrated machine is designed. Through the coordinated movement of the roll structure and the evacuation component, the gyngorthostomata blue is realized, including the cross movement of the tilt grid assembly and the through gap grid strip, and combined with the use of the cooling fan, it achieves rapid cooling.

Benefits of technology

Effectively reduce the accumulation of gynostemma blue, achieve comprehensive and uniform cooling, and improve the quality of gynostemma blue tea.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of tea processing, and particularly discloses a fiveleaf gynostemma herb de-enzyming and cooling all-in-one machine which comprises a de-enzyming conveying belt, a cooling conveying belt arranged on one side below the de-enzyming conveying belt, and rolling structures arranged on the two sides above the cooling conveying belt. The rolling structure is used for scattering gynostemma pentaphyllum conveyed by the fixation conveying belt, through the arrangement of the driving assembly, the material shaking grid assembly can be driven to transversely move in a reciprocating mode under the reciprocating motion of the driving assembly, and meanwhile needed power is provided for the scattering assembly, so that the material shaking grid assembly can move in a left-right reciprocating mode; one side of the material shaking grid assembly can shake up and down, so that the material shaking grid assembly can move in four directions, the piled gynostemma pentaphyllum is shaken to be scattered while the gynostemma pentaphyllum is conveyed, accumulation is reduced, comprehensive and uniform cooling of the gynostemma pentaphyllum after fixation is facilitated, and the quality of the gynostemma pentaphyllum tea is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of tea processing, and in particular to a Gynostemma pentaphyllum withering and cooling all-in-one machine. Background Art

[0002] Gynostemma tea is made through processes such as picking, withering, rolling, and drying. It retains natural active ingredients and is suitable for daily drinking. Among them, withering is a key process. The high-temperature withering process inhibits the activity of oxidases in fresh leaves, prevents the oxidation of tea polyphenols and other ingredients, avoids browning of color and loss of nutrients, and effectively evaporates unpleasant odors. In order to ensure that the finished product meets the optimal standards in terms of color (green or dark green), taste (sweet and non-astringent), and active ingredient content (saponin ≥2.5%), modern withering and cooling machines mostly use "segmented temperature control" technology, such as forced air cooling followed by natural heat dissipation.

[0003] However, the existing technology still has the following problems: the fixing machine uses a conveyor belt to transport Gynostemma pentaphyllum for high-temperature fixing and cooling. The Gynostemma pentaphyllum during transportation is static, and the heat inside the Gynostemma pentaphyllum after high-temperature fixing accumulates and is not easy to dissipate, resulting in a decrease in the quality of Gynostemma pentaphyllum. Summary of the Invention

[0004] The present application provides an all-in-one machine for fixing and cooling Gynostemma pentaphyllum, which solves the problem in the prior art that the Gynostemma pentaphyllum is static during transportation, and the heat inside the Gynostemma pentaphyllum after high-temperature fixing is accumulated and difficult to dissipate, resulting in a decrease in the quality of Gynostemma pentaphyllum. The application realizes that the accumulated Gynostemma pentaphyllum can be shaken out while being transported, reducing the accumulation, which is conducive to comprehensive and uniform cooling of the Gynostemma pentaphyllum after fixing, thereby improving the quality of Gynostemma pentaphyllum tea.

[0005] The present application provides a Gynostemma pentaphyllum fixing and cooling all-in-one machine, comprising:

[0006] Finishing conveyor belt;

[0007] A cooling conveyor belt, which is arranged below the fixing conveyor belt;

[0008] A rolling structure is provided on both sides above the cooling conveyor belt, and is used to shake the gynostemma pentaphyllum conveyed down the withering conveyor belt;

[0009] The transverse rocking structure includes a material shaking grid assembly and a driving assembly, wherein only one group of the driving assembly is provided, and the material shaking grid assembly is suitable for driving the material shaking grid assembly to move back and forth along the conveying direction of the cooling conveyor belt. The driving assembly includes an eccentric connecting plate, one side of the eccentric connecting plate is eccentrically rotated to provide a first rod end seat, one side of the first rod end seat is fixedly provided with a telescopic rod, the other end of the telescopic rod is fixedly provided with a second rod end seat, and the other side of the second rod end seat is rotatably provided with a reciprocating moving arc plate, the inner side of the reciprocating moving arc plate is slidably provided with a connecting grid rod, the inner side of the reciprocating moving arc plate is provided with an arc sliding groove, and the connecting grid rod is fixedly connected to the material shaking grid assembly;

[0010] The scattering and shaking components are arranged on both sides of the bottom end of the material-shaking grid component, and the scattering and shaking components are used to drive the material-shaking grid component to shake up and down.

[0011] Furthermore, the eccentric connecting plate transmits power through the bulk material assembly, and the bulk material assembly includes a long transmission rod, which is fixedly arranged on one side of the eccentric connecting plate, and a plurality of feeding plates are fixedly arranged on the outer side of the long transmission rod, and a transmission pulley is fixedly arranged on the other end of the long transmission rod, and the transmission pulley is connected to the power pulley through a belt, and a conveying roller is fixedly arranged on one end of the power pulley, and a conveying roller is rollingly arranged on the outer side of the conveying roller.

[0012] Furthermore, an upper connecting plate is fixedly provided on the outer side of the reciprocating arc plate, a sliding shell is fixedly provided on the bottom end of the upper connecting plate, a lower connecting plate is fixedly provided on the bottom end of the sliding shell, a fixed slide rail is slidingly provided on the side of the sliding shell close to the cooling conveyor belt, the fixed slide rail is fixedly connected to the cooling conveyor belt, an upper end connecting rotating column is fixedly provided on the other end of the connecting fence rod, a lower end connecting rotating column is fixedly provided on one side of the lower connecting plate, an upper spring end seat and a lower spring end seat are rotatably provided on the outer sides of the upper end connecting rotating column and the lower end connecting rotating column, and a spring is fixedly provided between the upper spring end seat and the lower spring end seat.

[0013] Furthermore, both ends of the transmission long rod are rotatably provided with side fixed frames and side fixed rods, and the side fixed frames and side fixed rods are both fixedly connected to the cooling conveyor belt.

[0014] Furthermore, the material-lifting grid assembly includes a transverse connecting rod, a plurality of material-lifting grid bars are fixedly provided on the outer side of the transverse connecting rod, the material-lifting grid bars are linearly and evenly arranged, and a material gap is provided between the material-lifting grid bars. Sliding blocks are rotatably provided at both ends of the transverse connecting rod, a fixed sliding shell is slidably provided on the outer side of the sliding block, a lifting bracket is fixedly provided on the bottom end of the fixed sliding shell, and the lifting bracket is fixedly provided on the outer side of the cooling conveyor belt, and the material-lifting grid bars are fixedly connected to the connecting rod.

[0015] Furthermore, the scattering assembly includes a reciprocating gear, the outer side of the reciprocating gear is meshed with a continuous drive gear plate, the end of the continuous drive gear plate is fixedly provided with a connecting plate, the connecting plate is fixedly provided on one side of the upper connecting plate, one end of the reciprocating gear is fixedly provided with a wheel connecting rod, the other end of the wheel connecting rod is fixedly provided with a cam, the cam is provided at the bottom end of the material shaking grid assembly, the outer side of the wheel connecting rod is rotatably provided with a stabilizing rod side plate, and the stabilizing rod side plate is fixedly provided on the outer side of the cooling conveyor belt.

[0016] Furthermore, an evacuation assembly is provided below the material-lifting grid assembly, and the evacuation assembly includes an eccentric wheel disc, the eccentric wheel disc is fixedly provided on one end of the conveying roller, and the other end of the eccentric wheel disc is eccentrically rotatably provided with a guide and drive connecting plate, and the other end of the guide and drive connecting plate is rotatably provided with a sliding seat, and the top of the sliding seat is rotatably provided with an adjusting grid plate, and the other end of the adjusting grid plate is rotatably provided with a side connecting rod, and the other end of the side connecting rod is fixedly provided with a through-gap grid bar, and the end of the through-gap grid bar is fixedly provided with a connecting cross bar, and the connecting cross bar is rotatably provided on the side where the lifting and fixed brackets are close to each other, and a fixed slide is slidably provided on the outer side of the sliding seat, and the fixed slide is fixedly provided on the outer side of the cooling conveyor belt.

[0017] Furthermore, the through-gap bars are cross-arranged with the material-lifting grid assembly, the through-gap bars are located in the material gap between the grids and do not contact the material-lifting grid bars, the through-gap bars are tilted upward, and the material-lifting grid assembly is tilted downward.

[0018] Furthermore, a plurality of cooling fans are provided on one side above the bulk material assembly, and the cooling fans are fixedly connected to the cooling conveyor belt through a fan rack. The cooling fans are used to quickly cool the Gynostemma pentaphyllum being evacuated.

[0019] The technical solution provided by this application has at least the following technical effects or advantages:

[0020] 1. The present application sets a driving assembly, which can drive the shaking grid assembly to move back and forth laterally under the reciprocating motion of the driving assembly, and at the same time provide the required power for the shaking assembly, so that the shaking grid assembly can move back and forth left and right, and by shaking one side of the shaking grid assembly up and down, the shaking grid assembly can move in four directions, thereby conveying Gynostemma pentaphyllum while shaking out the accumulated Gynostemma pentaphyllum, reducing accumulation, and facilitating the comprehensive and uniform cooling of the Gynostemma pentaphyllum after withering, thereby improving the quality of Gynostemma pentaphyllum tea.

[0021] 2. The present application sets up an evacuation assembly, and the through-slot bars in the evacuation assembly can swing up and down in the material gap between the bars, thereby forming a cross structure with the shaking material grid assembly. With the movement of the through-slot bars and the shaking material grid assembly, the Gynostemma pentaphyllum is dispersed by the shaking of the shaking material grid assembly to prevent it from clumping. The dispersed Gynostemma pentaphyllum is distributed more evenly, which is conducive to rapid cooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 It is a schematic diagram of the three-dimensional structure of an embodiment of the present application.

[0023] Figure 2 This is a schematic diagram of the front and rear axonometric structure of an embodiment of the present application.

[0024] Figure 3 This is a schematic diagram of the disassembled structure of the roll structure in the embodiment of the present application.

[0025] Figure 4 This is a schematic diagram of the disassembled structure of part of the roll structure in the embodiment of the present application.

[0026] Figure 5 This is a schematic diagram of the combined structure of the splitting of part of the roll structure and the loose shaking components in the embodiment of the present application.

[0027] Figure 6 This is a schematic diagram of the combined structure of the conveying roller, power pulley, eccentric connecting plate, side fixed frame and transmission pulley in the embodiment of the present application.

[0028] Figure 7 Schematic diagram of the structure of the spinning mechanism in the embodiment of the present application.

[0029] Figure 8 Schematic diagram of the three-dimensional structure of the material grid assembly in the embodiment of the present application.

[0030] In the figure: 1, fixing conveyor belt; 2, high-temperature fixing steam chamber; 3, cooling conveyor belt; 301, conveyor roller; 302, power pulley; 4, cooling fan; 5, rolling structure; 501, reciprocating arc plate; 502, connecting fence rod; 503, upper end connecting column; 504, lifting material grid assembly; 5041, horizontal connecting rod; 5042, sliding connecting block; 5043, fixed sliding shell; 5044, lifting bracket; 5045, lifting material grid bar; 5046, material gap between grids; 505, driving assembly; 5051, eccentric connecting plate; 5052, first rod end seat; 5053, telescopic rod; 5054, second rod end seat; 506, upper connecting plate; 507, sliding shell; 50 8. Fixed slide rail; 509. Lower connecting plate; 510. Side fixed frame; 5101. Side fixed rod; 511. Lower end connecting column; 512. Lower spring end seat; 513. Spring; 514. Upper spring end seat; 6. Scattering assembly; 601. Reciprocating gear; 602. Drive gear plate; 603. Connecting wheel rod; 604. Cam; 605. Connecting plate; 606. Stabilizing rod side plate; 7. Evacuation assembly; 701. Eccentric wheel disc; 702. Guide drive connecting plate; 703. Sliding seat; 704. Adjusting grid plate; 705. Fixed slide seat; 706. Side connecting rod; 707. Through-gap grid bar; 708. Connecting cross bar; 8. Bulk material assembly; 801. Transmission long rod; 802. Transmission pulley. DETAILED DESCRIPTION

[0031] The embodiment of the present application discloses a Gynostemma pentaphyllum withering and cooling all-in-one machine. Through the setting of the driving component 505, the reciprocating motion of the driving component 505 can drive the material-shaking grid component 504 to move back and forth laterally, and at the same time provide the required power for the shaking component 6, so that the material-shaking grid component 504 can move back and forth left and right, and by shaking one side of the material-shaking grid component 504 up and down, the material-shaking grid component 504 can move in four directions, thereby shaking out the accumulated Gynostemma pentaphyllum while conveying it, reducing accumulation, and being beneficial to the comprehensive and uniform cooling of the Gynostemma pentaphyllum after withering, thereby improving the quality of Gynostemma pentaphyllum tea.

[0032] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.

[0033] Example 1:

[0034] Reference Figure 1 、 Figure 2 、 Figure 3 and Figure 4The embodiment of the present application discloses a Gynostemma pentaphyllum fixing and cooling integrated machine, including a rocking structure 5, which is arranged on both sides above the cooling conveyor belt 3. The rocking structure 5 is used to shake the Gynostemma pentaphyllum conveyed by the fixing conveyor belt 1. The rocking structure 5 includes a shaking grid component 504 and a driving component 505. The driving component 505 is only provided with one group. The shaking grid component 504 is suitable for driving the shaking grid component 504 to move back and forth along the conveying direction of the cooling conveyor belt 3. The driving component 505 includes an eccentric connecting plate 5051, an eccentric connecting plate 5052, and an eccentric connecting plate 5053. A first rod end seat 5052 is eccentrically rotated on one side of the core connecting plate 5051, a telescopic rod 5053 is fixedly provided on one side of the first rod end seat 5052, a second rod end seat 5054 is fixedly provided on the other end of the telescopic rod 5053, a reciprocating arc plate 501 is rotatably provided on the other side of the second rod end seat 5054, a connecting fence rod 502 is slidingly provided on the inner side of the reciprocating arc plate 501, an arc-shaped slide groove is provided on the inner side of the reciprocating arc plate 501, and the connecting fence rod 502 is fixedly connected to the lifting fence assembly 504.

[0035] Among them, the rotation of the eccentric connecting plate 5051 can drive the first rod end seat 5052 to move around. When the eccentric connecting plate 5051 is in a vertical state, that is, the first rod end seat 5052 reaches the lowest position, the length of the telescopic rod 5053 is the shortest, and the eccentric connecting plate 5051 continues to rotate clockwise, so that the telescopic rod 5053 will push the second rod end seat 5054 and the reciprocating arc plate 501 to move to the left. When the eccentric connecting plate 5051 is in a horizontal state, the length of the telescopic rod 5053 will become longer, thereby adapting to the change in the distance between the first rod end seat 5052 and the second rod end seat 5054, and when the eccentric connecting plate 5051 is in a horizontal state, the reciprocating arc plate 501 has returned to its original position, thereby allowing the material-lifting grid assembly 504 to complete the left and right horizontal movement. Repeating this process allows the material-lifting grid assembly 504 to obtain a horizontal shaking force, which is convenient for shaking off the Gynostemma pentaphyllum on the top of the material-lifting grid assembly 504.

[0036] Among them, an upper connecting plate 506 is fixedly provided on the outer side of the reciprocating arc plate 501. Under the lateral movement of the reciprocating arc plate 501, the upper connecting plate 506 can be driven to move at the same time, and is suitable for driving the scattering component 6 to move, so that the shaking grid component 504 can shake the withered Gynostemma pentaphyllum.

[0037] When the reciprocating arc plate 501 moves horizontally, it can drive the upper connecting plate 506 to move together, and then drive the scattering assembly 6 to move, so that the material-lifting grid assembly 504 can be driven by the scattering assembly 6 to shake up and down.

[0038] For details, see Figure 1 、 Figure 2 、 Figure 3 and Figure 7The material-lifting grid assembly 504 includes a transverse connecting rod 5041, and a plurality of material-lifting grid bars 5045 are fixedly arranged on the outer side of the transverse connecting rod 5041. The material-lifting grid bars 5045 are linearly and evenly arranged, and a material gap 5046 is set between the material-lifting grid bars 5045. Sliding blocks 5042 are rotatably set at both ends of the transverse connecting rod 5041, and a fixed sliding shell 5043 is slidingly set on the outer side of the sliding block 5042. A lifting bracket 5044 is fixedly set at the bottom end of the fixed sliding shell 5043. The lifting bracket 5044 is fixedly set on the outer side of the cooling conveyor belt 3, and the material-lifting grid bars 5045 are fixedly connected to the connecting grid rod 502.

[0039] Among them, when the transverse connecting rod 5041 and the lifting material grid bar 5045 move horizontally, the sliding block 5042 will slide on the inner side of the fixed sliding shell 5043. The setting of the inter-grid material gap 5046 facilitates the falling of Gynostemma pentaphyllum and facilitates the formation of a cross structure with the evacuation component 7.

[0040] See Figure 4 and Figure 6 The eccentric connecting plate 5051 transmits power through the bulk material assembly 8. The bulk material assembly 8 includes a long transmission rod 801. The long transmission rod 801 is fixedly arranged on one side of the eccentric connecting plate 5051. A plurality of feeding plates are fixedly arranged on the outside of the long transmission rod 801. The other end of the long transmission rod 801 is fixedly provided with a transmission pulley 802. The transmission pulley 802 is connected to the power pulley 302 through a belt. One end of the power pulley 302 is fixedly provided with a conveying roller 301. The outer side of the conveying roller 301 is provided with a conveying roller 301 for rolling. The two ends of the long transmission rod 801 are respectively rotatably provided with a side fixed frame 510 and a side fixed rod 5101. The side fixed frame 510 and the side fixed rod 5101 are both fixedly connected to the cooling conveyor belt 3.

[0041] Through the operation of the cooling conveyor belt 3, the rotation of the conveying roller 301 will drive the power pulley 302 to rotate together, and the power pulley 302 will drive the transmission pulley 802 to rotate through the belt, so that the transmission pulley 802 will provide rotational force for the transmission long rod 801, and the transmission long rod 801 will drive the feeding plate to rotate together, thereby transporting the Gynostemma pentaphyllum evacuated on the top of the material grid assembly 504 to one side, so that the Gynostemma pentaphyllum can be further loosened, which is convenient for more efficient cooling.

[0042] Reference Figure 3 、 Figure 4 and Figure 5The bottom end of the upper connecting plate 506 is fixedly provided with a sliding shell 507, and the bottom end of the sliding shell 507 is fixedly provided with a lower connecting plate 509. A fixed slide rail 508 is slidingly provided on the side of the sliding shell 507 close to the cooling conveyor belt 3. The fixed slide rail 508 is fixedly connected to the cooling conveyor belt 3. The other end of the connecting fence rod 502 is fixedly provided with an upper end connecting rotating column 503, and one side of the lower connecting plate 509 is fixedly provided with a lower end connecting rotating column 511. The outer sides of the upper end connecting rotating column 503 and the lower end connecting rotating column 511 are respectively rotatably provided with an upper spring-connected end seat 514 and a lower spring-connected end seat 512, and a spring 513 is fixedly provided between the upper spring-connected end seat 514 and the lower spring-connected end seat 512.

[0043] When the material-lifting grid assembly 504 is lifted up, the grid rod 502, the upper end connecting rotating column 503 and the upper spring connecting end seat 514 will rise. At this time, the spring 513 will extend. The return force of the spring 513 will cause the upper spring connecting end seat 514, the grid rod 502 and the material-lifting grid assembly 504 to return to their original positions, and the upward action will achieve a reciprocating shaking action, thereby shaking out the Gynostemma pentaphyllum.

[0044] See Figure 1 、 Figure 2 and Figure 5 The scattering component 6 includes a reciprocating gear 601, and the outer side of the reciprocating gear 601 is meshed with a continuous drive tooth plate 602, and the end of the continuous drive tooth plate 602 is fixedly provided with a connecting plate 605, and the connecting plate 605 is fixedly provided on one side of the upper connecting plate 506. One end of the reciprocating gear 601 is fixedly provided with a wheel rod 603, and the other end of the wheel rod 603 is fixedly provided with a cam 604, and the cam 604 is provided at the bottom end of the material-lifting grid component 504. The outer side of the wheel rod 603 is rotatably provided with a stabilizing rod side plate 606, and the stabilizing rod side plate 606 is fixedly provided on the outer side of the cooling conveyor belt 3.

[0045] The movement of the upper connecting plate 506 drives the connecting plate 605 and the continuous drive gear plate 602 in the scattering assembly 6 to move together. The movement of the continuous drive gear plate 602 causes the reciprocating gear 601 to rotate, thereby causing the reciprocating gear 601 to rotate counterclockwise and driving the connecting wheel rod 603 and the cam 604 to rotate. The raised portion on the outside of the cam 604 will lift the material grid assembly 504, so that the downwardly inclined side of the material grid assembly 504 can rise. When the reciprocating arc plate 501 moves forward, the raised portion of the cam 604 will leave the bottom of the material grid assembly 504, so that the material grid assembly 504 can move horizontally while one end thereof can shake up and down, thereby conveying the accumulated Gynostemma pentaphyllum and shaking out the accumulated Gynostemma pentaphyllum to prevent Gynostemma pentaphyllum from piling up.

[0046] See Figure 1 and Figure 2A plurality of cooling fans 4 are provided on one side above the bulk material assembly 8. The cooling fans 4 are fixedly connected to the cooling conveyor belt 3 through a fan frame. The cooling fans 4 are used to quickly cool the Gynostemma pentaphyllum being evacuated.

[0047] The cooling fan 4 can be used to cool the Gynostemma pentaphyllum after evacuation and shaking.

[0048] Example 2:

[0049] Reference Figure 1 、 Figure 2 、 Figure 7 and Figure 8 An evacuation assembly 7 is provided below the material-lifting grid assembly 504. The evacuation assembly 7 includes an eccentric wheel disc 701. The eccentric wheel disc 701 is fixedly provided at one end of the conveying roller 301. The other end of the eccentric wheel disc 701 is eccentrically rotatably provided with a guide connecting plate 702. The other end of the guide connecting plate 702 is rotatably provided with a sliding seat 703. The top of the sliding seat 703 is rotatably provided with an adjusting grid plate 704. The other end of the adjusting grid plate 704 is rotatably provided with a side connecting rod 706. The other end of the side connecting rod 706 is fixedly provided with a through-slot grid bar 707. The end of the through-gap grating 707 is fixedly provided with a connecting cross bar 708, and the connecting cross bar 708 is rotatably set on the side close to the lifting bracket 5044. The outer side of the sliding seat 703 is slidingly provided with a fixed slide seat 705, and the fixed slide seat 705 is fixedly set on the outer side of the cooling conveyor belt 3. The through-gap grating 707 and the lifting material grating assembly 504 are cross-arranged. The through-gap grating 707 is located in the inter-grating material gap 5046 and does not contact the lifting material grating 5045. The through-gap grating 707 is tilted upward, and the lifting material grating assembly 504 is tilted downward.

[0050] When the material-lifting grid assembly 504 is working, the eccentric wheel 701 will also rotate at the same time. The rotation of the eccentric wheel 701 drives one end of the guide-drive link plate 702 to move in a circle, so that the guide-drive link plate 702 can generate a pushing force and a pulling force on the sliding seat 703, so that the angle between the adjustment grid plate 704 and the guide-drive link plate 702 becomes smaller or larger, and then the side connecting rod 706 can drive the through-slot grid bar 707 to swing up and down, thereby forming a cross structure with the material-lifting grid assembly 504. With the movement of the through-slot grid bar 707 and the material-lifting grid assembly 504, the Gynostemma pentaphyllum is dispersed in conjunction with the shaking of the material-lifting grid assembly 504 to prevent it from clumping. The dispersed Gynostemma pentaphyllum is more evenly distributed, which is conducive to rapid cooling.

[0051] Working principle: After being fixed in the high-temperature fixing steam chamber 2, the Gynostemma pentaphyllum is transported to the top of the material-lifting grid assembly 504 in the rolling structure 5 through the fixing conveyor belt 1. The operation of the cooling conveyor belt 3 causes the conveying roller 301 to rotate, and the rotation of the conveying roller 301 drives the power pulley 302 to rotate. The power pulley 302 drives the transmission pulley 802 and the transmission long rod 801 to rotate together through the belt, and the transmission long rod 801 drives the feeding plate to rotate together, thereby transporting the Gynostemma pentaphyllum evacuated from the top of the material-lifting grid assembly 504 to one side, so that the Gynostemma pentaphyllum can be further loosened, which is convenient for more efficient cooling.

[0052] When the transmission long rod 801 rotates, it drives the eccentric connecting plate 5051 in the driving assembly 505 to rotate together, so that the eccentric connecting plate 5051 can drive the first rod end seat 5052 to move around. When the eccentric connecting plate 5051 is in a vertical state, that is, the first rod end seat 5052 reaches the lowest position, the length of the telescopic rod 5053 is the shortest, and the eccentric connecting plate 5051 continues to rotate clockwise, so that the telescopic rod 5053 pushes the second rod end seat 5054 and the reciprocating arc plate 501 When the eccentric connecting plate 5051 moves to the left, the length of the telescopic rod 5053 will become longer, thereby adapting to the change in the distance between the first rod end seat 5052 and the second rod end seat 5054. When the eccentric connecting plate 5051 is in the horizontal state, the reciprocating arc plate 501 has returned to its original position, thereby allowing the material-lifting grid assembly 504 to complete the left and right horizontal movement. Repeating this process allows the material-lifting grid assembly 504 to obtain a horizontal shaking force, which facilitates shaking off the Gynostemma pentaphyllum on the top of the material-lifting grid assembly 504.

[0053] When the reciprocating arc plate 501 moves to the right, it pushes the upper connecting plate 506, the sliding shell 507 and the lower connecting plate 509 to move together, and the sliding shell 507 moves along the fixed slide rail 508, so that the reciprocating arc plate 501 can only do linear motion, and the movement of the upper connecting plate 506 drives the connecting plate 605 and the continuous drive gear plate 602 in the loosening assembly 6 to move together. The movement of the continuous drive gear plate 602 causes the reciprocating gear 601 to rotate, thereby causing the reciprocating gear 601 to rotate counterclockwise and drive the wheel rod 603 and the cam 604 When the cam 604 rotates, the raised portion on the outer side of the cam 604 will lift the material-lifting grid assembly 504, so that the downwardly inclined side of the material-lifting grid assembly 504 can rise. When the reciprocating arc plate 501 moves to the left, the raised portion of the cam 604 will leave the bottom of the material-lifting grid assembly 504, so that the material-lifting grid assembly 504 can shake up and down at one end while moving horizontally, thereby conveying the Gynostemma pentaphyllum and breaking up the accumulated Gynostemma pentaphyllum, reducing accumulation, and facilitating a comprehensive and uniform cooling of the Gynostemma pentaphyllum after withering, thereby improving the quality of the Gynostemma pentaphyllum tea.

[0054] The scattered Gynostemma pentaphyllum can fall from the inter-grid material gap 5046 onto the top of the cooling conveyor belt 3 for transportation, and the Gynostemma pentaphyllum that reaches the bulk material assembly 8 is transported therefrom, so that the Gynostemma pentaphyllum can be dispersed to prevent accumulation with the Gynostemma pentaphyllum transported subsequently;

[0055] When the conveying roller 301 rotates, the eccentric wheel 701 in the evacuation component 7 will also rotate. The rotation of the eccentric wheel 701 drives one end of the guide link plate 702 to move in a circle, so that the guide link plate 702 can generate a pushing force and a pulling force on the sliding seat 703, so that the angle between the adjustment grid plate 704 and the guide link plate 702 becomes smaller or larger, and then the side connecting rod 706 can drive the through-slot grid bar 707 to swing up and down, thereby forming a cross structure with the material-lifting grid assembly 504. With the movement of the through-slot grid bar 707 and the material-lifting grid assembly 504, the Gynostemma pentaphyllum is dispersed with the shaking of the material-lifting grid assembly 504 to prevent it from clumping. The dispersed Gynostemma pentaphyllum is more evenly distributed, which is conducive to rapid cooling.

[0056] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

[0057] The above is only a preferred specific implementation method of the embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and concept of the present application within the technical scope disclosed in the present application, and they should be covered by the scope of protection of the present application.

Claims

1. A Gynostemma pentaphyllum fixing and cooling all-in-one machine, characterized by: include: Finishing conveyor belt (1); A cooling conveyor belt (3), the cooling conveyor belt (3) being arranged on a lower side of the fixing conveyor belt (1); A rolling structure (5), the rolling structure (5) is arranged on both sides above the cooling conveyor belt (3), and the rolling structure (5) is used to shake the Gynostemma pentaphyllum conveyed down by the withering conveyor belt (1); The rolling structure (5) includes a material-lifting grid assembly (504) and a driving assembly (505), wherein only one set of the driving assembly (505) is provided. The material-lifting grid assembly (504) is suitable for driving the material-lifting grid assembly (504) to move back and forth along the conveying direction of the cooling conveyor belt (3). The driving assembly (505) includes an eccentric connecting plate (5051), and a first rod end seat (5052) is eccentrically rotated on one side of the eccentric connecting plate (5051). The first rod end seat (5052) ) is fixedly provided with a telescopic rod (5053) on one side, a second rod end seat (5054) is fixedly provided on the other end of the telescopic rod (5053), a reciprocating arc plate (501) is rotatably provided on the other side of the second rod end seat (5054), a connecting fence rod (502) is slidably provided on the inner side of the reciprocating arc plate (501), an arc-shaped sliding groove is provided on the inner side of the reciprocating arc plate (501), and the connecting fence rod (502) is fixedly connected to the lifting fence assembly (504); A scattering assembly (6) is provided on both sides of the bottom end of the material-lifting grid assembly (504), and the scattering assembly (6) is used to drive the material-lifting grid assembly (504) to shake up and down.

2. A Gynostemma pentaphyllum fixing and cooling all-in-one machine as claimed in claim 1, characterized in that: The eccentric connecting plate (5051) transmits power through the bulk material assembly (8). The bulk material assembly (8) comprises a transmission long rod (801), the transmission long rod (801) is fixedly arranged on one side of the eccentric connecting plate (5051), a plurality of feeding plates are fixedly arranged on the outer side of the transmission long rod (801), a transmission pulley (802) is fixedly arranged on the other end of the transmission long rod (801), the transmission pulley (802) is connected to the power pulley (302) through a belt, a conveying roller (301) is fixedly arranged on one end of the power pulley (302), and a conveying roller (301) is rollingly arranged on the outer side of the conveying roller (301).

3. A Gynostemma pentaphyllum fixing and cooling all-in-one machine as claimed in claim 1, characterized in that: An upper connecting plate (506) is fixedly provided on the outer side of the reciprocating arc plate (501), a sliding shell (507) is fixedly provided on the bottom end of the upper connecting plate (506), a lower connecting plate (509) is fixedly provided on the bottom end of the sliding shell (507), a fixed slide rail (508) is slidably provided on the side of the sliding shell (507) close to the cooling conveyor belt (3), and the fixed slide rail (508) is fixedly connected to the cooling conveyor belt (3). An upper end connecting rotating column (503) is fixedly provided at the other end of the connecting rod (502), and a lower end connecting rotating column (511) is fixedly provided at one side of the lower connecting plate (509). An upper spring-connected end seat (514) and a lower spring-connected end seat (512) are rotatably provided on the outer sides of the upper end connecting rotating column (503) and the lower end connecting rotating column (511), respectively. A spring (513) is fixedly provided between the upper spring-connected end seat (514) and the lower spring-connected end seat (512).

4. A Gynostemma pentaphyllum fixing and cooling all-in-one machine as claimed in claim 2, characterized in that: The two ends of the transmission long rod (801) are rotatably provided with side fixed frames (510) and side fixed rods (5101), and the side fixed frames (510) and side fixed rods (5101) are both fixedly connected to the cooling conveyor belt (3).

5. The Gynostemma pentaphyllum fixing and cooling all-in-one machine according to claim 1, characterized in that: The material lifting grid assembly (504) comprises a transverse connecting rod (5041), a plurality of material lifting grid bars (5045) are fixedly provided on the outer side of the transverse connecting rod (5041), the material lifting grid bars (5045) are linearly and evenly arranged, and inter-grid material gaps (5046) are provided between the material lifting grid bars (5045), sliding blocks (5042) are rotatably provided at both ends of the transverse connecting rod (5041), a fixed sliding shell (5043) is slidably provided on the outer side of the sliding block (5042), a lifting bracket (5044) is fixedly provided at the bottom end of the fixed sliding shell (5043), and the lifting bracket (5044) is fixedly provided on the outer side of the cooling conveyor belt (3), and the material lifting grid bars (5045) are fixedly connected to the connecting grid rod (502).

6. The Gynostemma pentaphyllum fixing and cooling all-in-one machine according to claim 1, characterized in that: The scattering assembly (6) includes a reciprocating gear (601), the outer side of the reciprocating gear (601) is meshed with a continuous drive tooth plate (602), the end of the continuous drive tooth plate (602) is fixedly provided with a connecting plate (605), and the connecting plate (605) is fixedly provided on one side of the upper connecting plate (506). One end of the reciprocating gear (601) is fixedly provided with a wheel connecting rod (603), and the other end of the wheel connecting rod (603) is fixedly provided with a cam (604), and the cam (604) is provided at the bottom end of the material-lifting grid assembly (504). The outer side of the wheel connecting rod (603) is rotatably provided with a stabilizing rod side plate (606), and the stabilizing rod side plate (606) is fixedly provided on the outer side of the cooling conveyor belt (3).

7. The all-in-one machine for fixing and cooling Gynostemma pentaphyllum according to claim 1, characterized in that: An evacuation assembly (7) is provided below the material-lifting grid assembly (504), and the evacuation assembly (7) includes an eccentric wheel disc (701), the eccentric wheel disc (701) is fixedly provided at one end of the conveying roller (301), and the other end of the eccentric wheel disc (701) is eccentrically rotatably provided with a guide connecting plate (702), and the other end of the guide connecting plate (702) is rotatably provided with a sliding seat (703), and the top end of the sliding seat (703) is rotatably provided with an adjusting grid plate (704), and the adjusting grid plate The other end of (704) is rotatably provided with a side connecting rod (706), the other end of the side connecting rod (706) is fixedly provided with a through-gap grating (707), the end of the through-gap grating (707) is fixedly provided with a connecting cross bar (708), the connecting cross bar (708) is rotatably provided on the side of the lifting bracket (5044) close to each other, the outer side of the sliding seat (703) is slidably provided with a fixed sliding seat (705), and the fixed sliding seat (705) is fixedly provided on the outer side of the cooling conveyor belt (3).

8. The all-in-one machine for fixing and cooling Gynostemma pentaphyllum according to claim 7, characterized in that: The through-gap bars (707) are arranged crosswise with the lifting grid assembly (504); the through-gap bars (707) are located in the inter-grid material gaps (5046) and do not contact the lifting grid bars (5045); the through-gap bars (707) are inclined upward, and the lifting grid assembly (504) is inclined downward.

9. The Gynostemma pentaphyllum fixing and cooling all-in-one machine according to claim 2, characterized in that: A plurality of cooling fans (4) are provided on one side above the bulk material assembly (8), and the cooling fans (4) are fixedly connected to the cooling conveyor belt (3) via a fan frame. The cooling fans (4) are used to quickly cool the Gynostemma pentaphyllum being evacuated, and a high-temperature steam chamber (2) is provided at the top of the withering conveyor belt (1).