Gomphna plant processing and shearing equipment

By designing a processing and cutting device for Uncaria rhynchophylla plants, the problems of high manual processing intensity and high cost of semi-automatic equipment were solved, enabling efficient and low-cost processing of medium to large batches of Uncaria rhynchophylla plants.

CN224544662UActive Publication Date: 2026-07-24JIANGXI LANMUDA TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGXI LANMUDA TECHNOLOGY CO LTD
Filing Date
2025-09-04
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

The processing of Uncaria rhynchophylla plants in the current technology has the problems of high labor intensity and low efficiency. Manual cutting is suitable for small-batch production, while semi-automatic equipment is expensive and not suitable for individual users or small-scale growers.

Method used

A processing and shearing device for Uncaria rhynchophylla plants was designed, including a fixed frame, a drive unit, a transmission mechanism, and a shearing blade mechanism. It adopts an adjustable blade distance component and a metric component to reduce the intensity of manual operation and improve production efficiency, and is suitable for medium and large batch production.

Benefits of technology

It reduces the intensity of manual labor, improves production efficiency, is simple and safe to operate, easy to move, and has low cost, making it suitable for medium to large-scale processing of Uncaria rhynchophylla plants.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to auncaria plant processing technology field, specifically disclose auncaria plant processing shearing equipment, include: fixed frame, the lower end of fixed frame is installed with drive part, drive part is connected with transmission mechanism, transmission mechanism is connected with shearing knife mechanism, the utility model discloses through the current semi -automatic processing mode processing uncaria stem, has spared the step of manual shearing, has reduced the strength of manual operation to a certain extent, the application can continue to operate, only needs manual feeding, compared with the action of needing to complete the material and shearing of manual processing, improves production efficiency to a certain extent, the application is in operation, only needs manual to complete the initial sorting of raw material and simple feeding operation, the action of shearing and preliminary screening can be completed by machine, need not complex operation, and the operation is simple, the machine of the application, the whole machine volume is small, and the weight is light, can portable removal.
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Description

Technical Field

[0001] This utility model belongs to the field of Uncaria rhynchophylla plant processing technology, specifically relating to a cutting device for processing Uncaria rhynchophylla plants. Background Technology

[0002] Uncaria rhynchophylla, a plant of the Rubiaceae family, is a traditional Chinese medicine with the effects of calming wind and relieving convulsions, clearing heat and soothing the liver. It is commonly used for symptoms such as internal liver wind, epilepsy with convulsions, high fever with convulsions, colds with convulsions, infantile convulsions, pregnancy pain, headaches, and dizziness. The stems and branches are cylindrical or nearly square, with two downward-curving hooks on most nodes. In practical use, the long vines of Uncaria rhynchophylla usually need to be cut into short sections according to the hooks. Therefore, precise cutting and processing of the vines is necessary to divide them into multiple small sections. During the cutting process, it is necessary to select nodes with hooks and those without.

[0003] In current processing, the long, varied, and easily tangled branches of Uncaria rhynchophylla plants present certain processing challenges. Therefore, manual cutting is a commonly used method in Uncaria rhynchophylla production areas. The tool required for manual processing is scissors, which are simple, reliable, inexpensive, and easy to use, making them popular among processors. However, this method is physically demanding, and workers are prone to fatigue from prolonged repetitive work, ultimately leading to decreased processing efficiency. This method is suitable for small-batch processing of Uncaria rhynchophylla plants in family workshops but not for centralized, medium- to large-scale production.

[0004] Besides manual shearing of Uncaria rhynchophylla plants, semi-automated processing equipment is also used in actual production. This semi-automated machine involves manual feeding, while internal sensors identify and detect the hooked sections of the vine, and then mechanical shears cut through these areas. This processing method is more modern, has a certain degree of advancement, and is more efficient, making it suitable for large-scale integrated production environments. However, this equipment is expensive, and for individual users or small-scale growers, the high purchase cost can easily lead to losses. Utility Model Content

[0005] The purpose of this invention is to provide a processing and cutting device for Uncaria rhynchophylla plants to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A processing and cutting device for Uncaria rhynchophylla plants, comprising:

[0008] A fixed frame is provided, with a driving component installed at the lower end of the fixed frame. The driving component is connected to a transmission mechanism, which is connected to a shearing blade mechanism. The shearing blade mechanism includes a blade assembly and is connected to a movable blade holder to form an adjustable blade distance assembly.

[0009] The tool assembly includes a splined shaft, a blade holder, a bladed blade, and a non-bladed blade. The bladed blade is mounted on the splined shaft via the blade holder, and the non-bladed blade is mounted on the fixed frame. The non-bladed blade has a through hole inside and is located on one side of the bladed blade.

[0010] It also includes an outer casing, with the mounting frame located inside the outer casing.

[0011] Preferably, the blade retainer is mounted on the splined shaft by screws. The blade retainer is configured as an elliptical teardrop shape. One side of the blade retainer is provided with a locking boss, and the inside of one side of the blade is provided with a groove that mates with the locking boss.

[0012] Preferably, the transmission mechanism includes a crank, a connecting rod assembly, and a rocker arm. The output end of the drive component is connected to the crank via a rotating shaft. The crank is connected to the rocker arm via the connecting rod assembly, and the rocker arm is connected to the spline shaft.

[0013] Preferably, the connecting rod assembly includes a hexagonal nut, a fixing bolt, a locking nut, a spherical connector, a reverse threaded screw, a forward and reverse threaded nut, and an insulating screw. The spherical connector is configured in two sets, with the fixing bolt installed at one end of each spherical connector. The end of the fixing bolt is provided with a sliding boss. The rocker arm and the crank arm both have internal grooves that mate with the sliding boss. One set of spherical connectors is threadedly connected to the reverse threaded screw, and the other set of spherical connectors is threadedly connected to the insulating screw. The reverse threaded screw and the insulating screw are threadedly connected by the forward and reverse threaded nut.

[0014] The locking nut and the hexagonal nut are respectively installed on the fixing bolt, and the locking nut and the hexagonal nut are located on both sides of the fisheye connector.

[0015] Preferably, the driving component is a drive motor.

[0016] Preferably, the outer casing includes an outer casing one, which is located outside the fixed frame;

[0017] The adjustable tool spacing assembly includes a tool assembly, a movable tool holder, an insulating pad, and a force-equalizing block. One side of the bladeless blade is attached to the side of the movable tool holder. The movable tool holder is mounted on the housing through the force-equalizing block. The insulating pad is provided at the bottom of the movable tool holder.

[0018] Preferably, the outer casing is provided with a first guide plate and a second guide plate, the first guide plate and the second guide plate form a herringbone structure, and the first guide plate and the second guide plate are located below the shearing blade mechanism.

[0019] Preferably, the outer casing further includes outer casing two, outer casing three, and outer casing four;

[0020] The upper end of the outer shell 1 is also provided with the outer shell 2, which is hinged to serve as a flip cover. One side of the outer shell 4 is provided with a right-angled trapezoidal notch. The outer shell 1 is provided with an inclined surface. The inclined surface of the right-angled trapezoid of the outer shell 4 (1804) is coplanar with the inclined surface of the outer shell 1. The outer shell 3 is installed on the top of the right-angled trapezoid of the outer shell 4.

[0021] Preferably, it also includes a switching power supply, an integrated circuit board, a start / stop control switch, a speed control switch, a foot switch, an indicator light, and a buzzer;

[0022] A switching power supply is provided on one inner side of the housing as a power supply device. An integrated circuit board is also provided on one inner side of the housing as a control center. The integrated circuit board is connected to the switching power supply, the start / stop control switch, the speed control switch, the foot switch, the indicator light, the buzzer, and the drive motor.

[0023] Preferably, the fixed frame includes frame one, frame two, frame three, frame four, and frame five. Frame three is connected to frame five, specifically through side tenons and bottom bolts. Frame four is connected to both frame three and frame five, specifically through side tenons and bottom bolts. Frame one and frame two are mounted on frame four, specifically through grooves and tenons, and frame one and frame two are bolted to frame three through bottom bolt holes.

[0024] Compared with the prior art, the beneficial effects of this utility model are:

[0025] (1) Reduce the intensity of manual labor: The traditional manual processing of Uncaria rhynchophylla stems requires people to continuously perform sorting and cutting operations, which is labor-intensive. However, the existing semi-automated processing method for processing Uncaria rhynchophylla stems eliminates the manual cutting step, which reduces the intensity of manual operation to a certain extent.

[0026] (2) Improve production efficiency: This application can operate continuously and only requires manual feeding. Compared with manual processing, which requires sorting and cutting, it improves production efficiency to a certain extent.

[0027] (3) Simple operation, safe and convenient: When this application is running, only manual labor is required to complete the initial sorting and simple feeding of raw materials. The cutting and preliminary screening can be completed by the machine. No complicated operation is required, and the operation is simple. This application has multiple anti-cutting hand settings, small size, light weight, easy to move, good environmental adaptability, and low cost. Attached Figure Description

[0028] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0029] Figure 2 This is a partial internal structure diagram of the present invention;

[0030] Figure 3 This is a partially enlarged schematic diagram of the present invention;

[0031] Figure 4 This is a schematic diagram of the frame structure of this utility model;

[0032] Figure 5 This is a schematic diagram of the rear structure of this utility model;

[0033] In the diagram: 1. Fixed frame; 101. Frame 1; 102. Frame 2; 103. Frame 3; 104. Frame 4; 105. Frame 5; 2. Drive motor; 3. Crank; 4. Hex nut; 5. Fixing bolt; 6. Locking nut; 7. Fish-eye connector; 8. Reverse thread screw; 9. Threaded nut; 10. Insulating screw; 11. Rocker arm;

[0034] 12. Ceramic bearing; 13. Splined shaft; 14. Tool assembly; 1401. Blade holder; 1402. Edged blade; 1403. Edgeless blade; 15. Movable tool holder; 16. Insulating pad one; 1801. Housing one; 1802. Housing two; 1803. Housing three; 1804. Housing four; 19. Start / stop control switch; 20. Speed ​​control switch; 21. Indicator light; 23. Pressure equalizer; 24. Flow guide plate one; 25. Flow guide plate two; 27. Switching power supply; 28. Buzzer; 29. ​​Integrated circuit board; 30. Foot switch. Detailed Implementation

[0035] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0036] Example:

[0037] Please see Figures 1-5 As shown, a processing and cutting device for Uncaria rhynchophylla plants includes:

[0038] A fixed frame 1 is provided, and a driving component is installed at the lower end of the fixed frame. The driving component is connected to a transmission mechanism, and the transmission mechanism is connected to a shearing blade mechanism. The shearing blade mechanism includes a blade assembly 14 and a movable blade holder 15, forming an adjustable blade distance assembly.

[0039] The tool assembly 14 includes a splined shaft 13, a blade holder 1401, a bladed blade 1402, and a bladeless blade 1403. The bladed blade 1402 is mounted on the splined shaft 13 through the blade holder 1401, and the bladeless blade 1403 is mounted on the fixed frame 1. The bladeless blade 1403 has a through hole inside, specifically, the through hole inside the bladeless blade 1403 is larger than the diameter of the splined shaft 13, for installing a lubrication bushing and allowing the splined shaft 13 to pass through. When the splined shaft 13 rotates and drives the bladed blade 1402 to swing up and down, the bladed blade 1402 can then cooperate with the corresponding bladeless blade 1403 to complete the shearing action. The bladeless blade 1403 is located on one side of the bladed blade 1402.

[0040] It also includes an outer casing, with the mounting frame 1 located inside the outer casing.

[0041] refer to Figures 1-5 As shown, the blade holder 1401 is mounted on the spline shaft 13 with screws. The flower-shaped through hole of the blade holder 1401 is coupled with the tooth profile of the spline shaft 13 to ensure that the blade holder 1401 and the bladed blade 1402 will not rotate relative to the spline shaft 13. The blade holder 1401 is designed with an elliptical teardrop shape to ensure the strength of the parts. A locking boss is provided on one side of the blade holder 1401, and a slot that mates with the locking boss is provided on one side of the bladed blade 1402. This facilitates the connection between the blade holder and the bladed blade. When the spline shaft 13 rotates, it can drive the blade holder and the bladed blade to swing up and down and cooperate with the bladeless blade to complete the cutting action, which is beneficial for cutting the hooks and vines.

[0042] refer to Figures 1-5As shown, the transmission mechanism includes a crank 3, a connecting rod assembly, and a rocker arm 11. The output end of the drive unit is connected to the crank 3 via a rotating shaft. The crank 3 is connected to the rocker arm 11 via the connecting rod assembly. The rocker arm 11 is connected to the splined shaft 13. Thus, when the drive unit is working, it can drive the splined shaft 13 and the bladed blade to move through the crank 4, the connecting rod assembly, and the rocker arm 11. Furthermore, the crank 4 is connected to the splined shaft 13 via bolts, and the rocker arm 11 is also connected to the splined shaft 13 via bolts.

[0043] refer to Figures 1-5 As shown, the connecting rod assembly includes a hexagonal nut 4, a fixing bolt 5, a locking nut 6, a fisheye connector 7, a reverse threaded screw 8, a forward and reverse threaded nut 9, and an insulating screw 10. The fisheye connector 7 is configured in two sets. One end of the fisheye connector 7 is equipped with a fixing bolt 5, and the end of the fixing bolt 5 is provided with a sliding boss. The rocker arm 11 and the crank 3 are both provided with sliding grooves that cooperate with the sliding boss. One set of fisheye connectors 7 is threadedly connected to the reverse threaded screw 8, and the other set of fisheye connectors 7 is threadedly connected to the insulating screw 10. The reverse threaded screw 8 and the insulating screw 10 are threadedly connected by the forward and reverse threaded nut 9.

[0044] Specifically, a fixing bolt 5 is installed at one end of the fisheye connector 7. The end of the fisheye connector 7 has a mounting hole that mates with the fixing bolt. A bearing is installed inside the mounting hole, allowing for flexible angle adjustment and eliminating unnecessary torsional and shear stresses. A sliding boss is provided at the end of the fixing bolt 5. The rocker arm 11 and crank 4 have grooves inside that mate with the sliding boss, facilitating sliding without rotation and easy fixation to the crank 4 and rocker arm 11. The effective movement length of the rocker arm 11 can be adjusted by moving the sliding boss at the end of the fixing bolt 5 within the groove of the rocker arm 11. Furthermore, by tightening... The hexagonal nut 4 is fitted to the surface of the rocker arm 11 to fix the fixing bolt 5 to the rocker arm 11. The two fish-eye connectors 7 are threaded to the reverse threaded screw 8 and the insulating screw 10 respectively. As part of ensuring the insulation of the machine's shearing part from the machine body, when the forward or reverse threaded nut 9 is turned, the reverse threaded screw 8 and the insulating screw 10 can be screwed into or out of the threaded hole of the fish-eye connector 7 at the same time to achieve the effect of adjusting the length of the connecting rod. The two fish-eye connectors 7, the reverse threaded screw 8, the insulating rod 10 and the forward and reverse threaded nuts 9 together form the connecting rod in the crank 4 rocker arm 11 mechanism, which in turn drives the rocker arm 11 to swing.

[0045] Locking nuts 6 and hexagonal nuts 4 are respectively installed on the fixing bolts 5, and the locking nuts 6 and hexagonal nuts 4 are located on both sides of the fisheye joint 7.

[0046] refer to Figures 1-5 As shown, the driving component is set as a drive motor 2, which can be a DC brushed motor, and is mounted on the fixed frame 105 by screws.

[0047] refer to Figures 1-5As shown, the outer casing includes an outer casing 1801, which is located outside the fixed frame 1;

[0048] The adjustable tool spacing assembly includes a tool assembly 14, a movable tool holder 15, an insulating pad 16, and a force equalizing block 23. One side of the bladeless blade 1403 is attached to the side of the movable tool holder 15. The movable tool holder 15 is mounted on the housing 1801 via the force equalizing block 23. An insulating pad 16 is provided at the bottom of the movable tool holder 15.

[0049] Furthermore, one side of the bladeless insert 1403 is fitted against the side of the movable tool holder 15 and fixed by bolts. The through hole of the bladeless insert 1403 and the through hole on the side of the movable tool holder 15 are the same size and share a bushing, which bears part of the shear stress. The movable tool holder 15 is fixed by screwing an insulating screw into the countersunk hole on the force equalizing block 23, passing through the straight groove on the bottom surface of the movable tool holder 15, passing through the through hole on the inclined surface of the outer shell 1801, and screwing it into the threaded hole of the frame 3 103. The insulated screws allow for horizontal movement of the movable tool holder 15 and the bladeless blade 1403. An insulating pad 16 is attached to the bottom of the movable tool holder 15 to insulate the adjustable blade spacing assembly from the frame 103 and the outer casing 1801, thus ensuring the insulation of the machine's shearing part from the machine body. The bladed blade 1402 is fixed to the spline shaft 13 by the blade retainer 1401. Loosening the fastening screws on the side of the blade retainer allows the bladed blade 1402 to be moved left and right to adjust the blade spacing.

[0050] refer to Figures 1-5 As shown, the outer casing 1801 is provided with a flow guide plate 24 and a flow guide plate 25. The flow guide plate 24 and the flow guide plate 25 form a herringbone structure. The flow guide plate 24 and the flow guide plate 25 are located below the shearing blade mechanism, which splits the hooks and scrap materials cut by the machine to the left and right. The scrap materials go to the left and the hooks go to the right.

[0051] refer to Figures 1-5 As shown, the outer casing also includes outer casing 2 1802, outer casing 3 1803 and outer casing 4 1804;

[0052] The upper end of the outer shell 1801 is also provided with the outer shell 2 1802, which is hinged as a flip cover. Opening the outer shell 2 1802 makes it easy to feed the hook vine plant into the shearing blade mechanism, which can then cut the hook vine plant. One side of the outer shell 4 1804 is provided with a right-angled trapezoidal notch, and the outer shell 1 1801 is provided with an inclined surface. The inclined surface of the right-angled trapezoid of the outer shell 4 1804 is coplanar with the inclined surface of the outer shell 1 1801. The outer shell 3 1803 is installed on the top of the right-angled trapezoid of the outer shell 4 1804. The notch formed is beneficial to prevent the overly long hook vine plant from being blocked by the outer shell on the right side when it is fed into the shearing blade mechanism.

[0053] refer to Figures 1-5As shown, it also includes a switching power supply 27, an integrated circuit board 29, a start / stop control switch 19, a speed control switch 20, a foot switch 30, an indicator light 21, and a buzzer 28;

[0054] A switching power supply 27 is installed inside the outer casing 1801 as a power supply device. An integrated circuit board 29 is also installed inside the outer casing 1801 as a control center. The integrated circuit board 29 is connected to the switching power supply 27, the start / stop control switch 19, the speed control switch 20, the foot switch 30, the indicator light 21, the buzzer 28, and the drive motor 2, i.e., electrically connected.

[0055] refer to Figures 1-5 As shown, the fixed frame 1 includes frame one 101, frame two 102, frame three 103, frame four 104 and frame five 105. Frame three 103 is connected to frame five 105, specifically through side tenons and bottom bolts. Frame four 104 is connected to both frame three 103 and frame five 105, specifically through side tenons and mortise structures. Frame one 101 and frame two 102 are mounted on frame four 104, specifically through grooves and tenons. Frame one 101 and frame two 102 are bolted to frame three 103 through bottom screw holes. One end of the splined shaft 13 passes through the ceramic bearing 12 and is connected to frame five 105.

[0056] Furthermore, the back of the casing also features a three-prong socket with a built-in fuse and a power switch, allowing power to be drawn from a 220V AC socket via a power cord connection.

[0057] Specifically, a foot switch 30 is installed on the side of the outer casing 1801 to control the start and stop of the equipment during normal operation; a switching power supply 28 is installed inside the outer casing 4 1804 to rectify and step down the voltage of the power supply to provide power to the equipment; an integrated circuit board is installed inside the outer casing 1801 to control and alarm the shearing action of the equipment; a start / stop control switch 19 is installed on the top of the outer casing 4 1804 to control the start, stop, and reverse rotation of the shearing equipment; a speed control switch 20 is installed on the outer casing to adjust the shearing speed during normal operation; an indicator light 21 is installed on the outer casing to provide light indication of the equipment's working status; and a buzzer 28 is connected to the integrated circuit board 29 to provide audible indication of the equipment's working status.

[0058] This application enables the pruning and processing of Uncaria rhynchophylla plants. Most importantly, it mechanizes the manual pruning action. Users simply place the Uncaria rhynchophylla branches to be processed in the pruning area, and the mechanical structure performs the pruning action and simple sorting. Regarding cost, the core components of this application all use metric components. For example, the motor, transmission parts, and shear assembly all use metric pre-made components. The use of these metric components minimizes customization and usage costs, achieving maximum cost savings while ensuring processing quality. Furthermore, it facilitates maintenance and reduces maintenance costs. For safety reasons, this application is equipped with fuses, a three-position switch, a capacitive contact human body induction switch, a buzzer, an alarm light, and overload and overcurrent detection. This enables shutdown due to stall, overload, or overcurrent, emergency start / stop, emergency stop upon human contact with the shear assembly, control of blade reversal, and abnormal status alarms to ensure user safety. For customization, this application includes a speed control circuit, allowing the pruning rate to be adjusted according to the user's specific needs.

[0059] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A processing and cutting device for Uncaria rhynchophylla plants, characterized in that, include: A fixed frame (1) is provided with a drive unit installed at the lower end of the fixed frame (1). The drive unit is connected to a transmission mechanism, and the transmission mechanism is connected to a shearing blade mechanism. The shearing blade mechanism includes a blade assembly (14) and a movable blade holder (15) is connected to the shearing blade mechanism to form an adjustable blade distance assembly. The tool assembly (14) includes a splined shaft (13), a blade holder (1401), a bladed blade (1402), and a bladeless blade (1403). The bladed blade (1402) is mounted on the splined shaft (13) through the blade holder (1401). The bladeless blade (1403) is mounted on the fixed frame (1). The bladeless blade (1403) has a through hole inside and is located on one side of the bladed blade (1402). It also includes an outer casing, with the mounting frame (1) located inside the outer casing.

2. The processing and cutting equipment for Uncaria rhynchophylla plants according to claim 1, characterized in that: The blade holder (1401) is mounted on the spline shaft (13) by screws. The blade holder (1401) is configured as an elliptical teardrop shape. A locking boss is provided on one side of the blade holder (1401). A slot that mates with the locking boss is provided inside one side of the blade (1402).

3. The processing and cutting equipment for Uncaria rhynchophylla plants according to claim 2, characterized in that: The transmission mechanism includes a crank (3), a connecting rod assembly and a rocker arm (11). The output end of the drive unit is connected to the crank (3) via a rotating shaft. The crank (3) is connected to the rocker arm (11) via the connecting rod assembly. The rocker arm (11) is connected to the spline shaft (13).

4. The processing and cutting equipment for Uncaria rhynchophylla plants according to claim 3, characterized in that: The connecting rod assembly includes a hexagonal nut (4), a fixing bolt (5), a locking nut (6), a fisheye connector (7), a reverse threaded screw (8), a forward and reverse threaded nut (9), and an insulating screw (10). The fisheye connector (7) is configured in two sets. One end of the fisheye connector (7) is respectively installed with the fixing bolt (5). The end of the fixing bolt (5) is provided with a sliding boss. The rocker arm (11) and the crank (3) are both provided with a sliding groove that cooperates with the sliding boss. One set of fisheye connectors (7) is threadedly connected to the reverse threaded screw (8), and the other set of fisheye connectors (7) is threadedly connected to the insulating screw (10). The reverse threaded screw (8) and the insulating screw (10) are threadedly connected through the forward and reverse threaded nut (9). The locking nut (6) and the hexagonal nut (4) are respectively installed on the fixing bolt (5), and the locking nut (6) and the hexagonal nut (4) are located on both sides of the fisheye connector (7).

5. The processing and cutting equipment for Uncaria rhynchophylla plants according to claim 4, characterized in that: The driving component is configured as a drive motor (2).

6. The processing and cutting equipment for Uncaria rhynchophylla plants according to claim 5, characterized in that: The outer casing includes an outer casing (1801), which is located outside the fixed frame (1); The adjustable tool spacing assembly includes a tool assembly (14), a movable tool holder (15), an insulating pad (16), and a force equalizing block (23). One side of the bladeless blade (1403) is attached to the side of the movable tool holder (15). The movable tool holder (15) is mounted on the outer shell (1801) via the force equalizing block (23). The insulating pad (16) is provided at the bottom of the movable tool holder (15).

7. The Uncaria rhynchophylla plant processing and cutting device according to claim 6, characterized in that: The outer casing (1801) is provided with a first guide plate (24) and a second guide plate (25), which form a herringbone structure and are located below the shearing blade mechanism.

8. The Uncaria rhynchophylla plant processing and cutting device according to claim 7, characterized in that: The outer shell also includes outer shell two (1802), outer shell three (1803) and outer shell four (1804); The upper end of the first outer shell (1801) is also provided with the second outer shell (1802). The fourth outer shell (1804) has a right-angled trapezoidal notch on one side. The first outer shell (1801) has an inclined surface. The inclined surface of the right-angled trapezoid of the fourth outer shell (1804) is coplanar with the inclined surface of the first outer shell (1801). The third outer shell (1803) is installed on the top of the right-angled trapezoid of the fourth outer shell (1804).

9. The Uncaria rhynchophylla plant processing and cutting device according to claim 8, characterized in that: It also includes a switching power supply (27), an integrated circuit board (29), a start / stop control switch (19), a speed control switch (20), a foot switch (30), an indicator light (21), and a buzzer (28); A switching power supply (27) is provided inside the outer casing (1801), and an integrated circuit board (29) is also provided inside the outer casing (1801). The integrated circuit board (29) is connected to the switching power supply (27), the start / stop control switch (19), the speed control switch (20), the foot switch (30), the indicator light (21), the buzzer (28), and the drive motor (2).

10. The Uncaria rhynchophylla plant processing and cutting device according to claim 9, characterized in that: The fixed frame (1) includes frame one (101), frame two (102), frame three (103), frame four (104) and frame five (105). Frame three (103) is connected to frame five (105). Frame four (104) is connected to frame three (103) and frame five (105) respectively. Frame one (101) and frame two (102) are respectively installed on frame four (104). One end of the spline shaft (13) passes through the through hole of the ceramic bearing (12) and frame five (105).