A slicing device for processing Notopterygium root

By designing a slicing device for processing Notopterygium incisum, which includes a feeding mechanism, a fixing mechanism, and a slicing assembly, the problems of low efficiency and uneven slicing in traditional slicing methods have been solved. This has enabled continuous and stable slicing of Notopterygium incisum, improving both slicing efficiency and quality.

CN224575776UActive Publication Date: 2026-07-31GANSU BUYUN AGRI & ANIMAL HUSBANDRY TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GANSU BUYUN AGRI & ANIMAL HUSBANDRY TECH CO LTD
Filing Date
2025-09-10
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Traditional manual slicing is inefficient, produces uneven slices that are easily broken, and electric equipment is complex in structure and expensive to purchase. Furthermore, the lack of an effective fixing and precise feeding mechanism leads to uneven slicing and waste.

Method used

A slicing device for processing Notopterygium incisum was designed, comprising a feeding mechanism, a fixing mechanism, and a slicing assembly. Through initial positioning by a positioning groove, pushing by the feeding mechanism, adaptive pressing by the fixing mechanism, and cutting by the slicing assembly, continuous and stable slicing of Notopterygium incisum is achieved.

Benefits of technology

This ensures the stability and continuity of the Notopterygium root slices, improves slicing efficiency and quality, and avoids uneven slice thickness and breakage.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a slicing device for processing Notopterygium incisum, including a frame with a cutting chamber installed on the frame. Inside the cutting chamber is a slicing assembly for slicing Notopterygium incisum. A conveying frame is located outside the feed inlet, with a positioning groove on its top. Inside the positioning groove is a feeding mechanism for conveying Notopterygium incisum to the cutting chamber. A fixing mechanism is located on one side of the cutting chamber for stable slicing of Notopterygium incisum. This utility model uses the positioning groove to initially limit the movement of Notopterygium incisum, the feeding mechanism to push it towards the cutting chamber, the fixing mechanism to self-adaptively hold and fix it, and the slicing assembly to slice it. Simultaneously, the feeding mechanism continuously and slowly pushes the Notopterygium incisum into the cutting chamber, allowing the slicing assembly to continuously slice the Notopterygium incisum. Therefore, through the above structure, the slicing process of Notopterygium incisum can be ensured to be stable and continuous, effectively improving slicing efficiency and quality.
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Description

Technical Field

[0001] This utility model relates to the technical field of Chinese medicinal material processing equipment, specifically a slicing device for processing Notopterygium incisum. Background Technology

[0002] Notopterygium root is a perennial herb belonging to the genus Notopterygium in the family Apiaceae. Its dried rhizomes and roots are traditional and commonly used Chinese medicinal materials. After harvesting, Notopterygium root needs to undergo initial processing steps such as washing, sun-drying or oven-drying. Then, it is processed through slicing, processing and other techniques to produce slices of different specifications for subsequent use in decoctions, Chinese patent medicine production or direct medicinal use. The quality of its slices directly affects the dissolution of medicinal components and clinical efficacy, which is an important reason for developing a special slicing device for Notopterygium root.

[0003] Traditional manual slicing relies on kitchen knives or guillotines, requiring manual pushing and cutting of the medicinal material. This is not only inefficient, but also relies entirely on experience to control the slice thickness, easily resulting in uneven slice thickness, affecting efficacy and product appearance. While some electric slicing equipment can improve efficiency, their complex structure and high procurement costs mean that some equipment lacks an effective fixation and precise feeding mechanism for the Notopterygium root during slicing, which can easily cause displacement or shaking, leading to uneven slice thickness, irregular shape, and even slice breakage and waste of medicinal material. Therefore, a slicing device for processing Notopterygium root needs to be designed to solve the above problems. Utility Model Content

[0004] The purpose of this invention is to provide a slicing device for processing Notopterygium incisum, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a slicing device for processing Notopterygium incisum, comprising a frame, a cutting chamber installed on the frame, a slicing assembly for slicing Notopterygium incisum located at the Notopterygium incisum feed inlet inside the frame, a conveying frame outside the feed inlet with a positioning groove on its top, a feeding mechanism for conveying Notopterygium incisum to the cutting chamber located inside the positioning groove, and a fixing mechanism for stabilizing the slices of Notopterygium incisum located on one side of the cutting chamber above the positioning groove.

[0006] Preferably, the feeding mechanism includes a push plate, and the inside of the conveyor frame is provided with a sliding groove below the positioning groove. The top of the sliding groove is provided with a movable groove that communicates with the positioning groove. A screw is rotatably connected to the inside of the sliding groove. One end of the screw is connected to the output end of a second motor installed at the end of the conveyor frame. A slider that is threadedly connected to the screw is slidably connected to the inside of the sliding groove. The push plate is installed on the top of the slider, and one end of the push plate passes through the movable groove and extends to the inside of the positioning groove.

[0007] Preferably, the inner wall of the positioning groove is provided with multiple sets of anti-slip protrusions.

[0008] Preferably, the fixing mechanism includes a pressure plate, a fixed seat is provided on one side of the cutting chamber, a rotating cylinder is rotatably connected to the fixed seat, a handwheel is installed on its top, a lifting screw is threadedly connected to its inner side, one end of the lifting screw is connected to a mounting frame, the top of the mounting frame is provided with two sets of limiting rods that are slidably connected to the fixed seat, a fixed shaft is provided on the inner side of the mounting frame, the pressure plate is sleeved on its outer ring and rotatably connected to the pressure plate through a torsion spring, and an arc-shaped groove adapted to the Qianghuo is opened on the bottom surface of the pressure plate.

[0009] Preferably, the slicing assembly includes slicing blades, and a rotating shaft is rotatably connected to the inner side of the cutting chamber. One end of the shaft extends to the outside of the cutting chamber and is connected to the output end of a first motor. The first motor is mounted on the top of a mounting base located on the top of the frame. Three sets of slicing blades are installed on the outer ring of the rotating shaft near the feed inlet.

[0010] Preferably, the bottom of the cutting chamber is provided with a discharge port.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] 1. When performing slicing of Notopterygium incisum, the Notopterygium incisum to be sliced ​​is first placed in the positioning groove, which can initially limit the position of the Notopterygium incisum. The feeding mechanism can push the Notopterygium incisum towards the cutting chamber. The fixing mechanism can adaptively press and fix the Notopterygium incisum to prevent it from shaking during the slicing process. The slicing assembly can slice the Notopterygium incisum. At the same time, the feeding mechanism can continuously and slowly push the Notopterygium incisum into the cutting chamber, so that the slicing assembly can continuously slice the Notopterygium incisum, thereby completing the continuous and stable slicing operation of Notopterygium incisum. Thus, through the above structure, the stability and continuity of the Notopterygium incisum slicing process can be ensured, effectively improving the slicing efficiency and slicing quality. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0014] Figure 2 This is a bottom view of the present invention;

[0015] Figure 3 This is a side view and a top view of the present invention;

[0016] Figure 4 This is a side sectional view of the present invention;

[0017] Figure 5 for Figure 4 Enlarged view of part A in the image;

[0018] Figure 6 for Figure 4Enlarged view of part B in the image.

[0019] In the diagram: 1. Frame, 2. Cutting chamber, 3. Discharge port, 4. Rotary shaft, 5. First motor, 6. Mounting base, 7. Slicing blade, 8. Conveyor frame, 9. Positioning groove, 10. Protruding rib, 11. Slide groove, 12. Movable groove, 13. Screw, 14. Second motor, 15. Slider, 16. Push plate, 17. Fixed base, 18. Rotary drum, 19. Handwheel, 20. Lifting screw, 21. Mounting frame, 22. Limiting rod, 23. Fixed shaft, 24. Pressure plate. Detailed Implementation

[0020] 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.

[0021] Example 1

[0022] Please refer to Figure 1-6 As shown, this utility model provides a slicing device for processing Notopterygium incisum, including a frame 1, a cutting chamber 2 installed on the frame 1, a slicing component for slicing Notopterygium incisum is provided inside the cutting chamber 2 at the Notopterygium incisum feed inlet, a conveying frame 8 is provided outside the feed inlet, a positioning groove 9 is provided on the top of the conveying frame 8, a feeding mechanism for conveying Notopterygium incisum to the cutting chamber 2 is provided inside the positioning groove 9, and a fixing mechanism for stabilizing the slices of Notopterygium incisum is provided on one side of the cutting chamber 2 above the positioning groove 9.

[0023] Specifically, when performing the slicing of Notopterygium incisum, the operator first places the Notopterygium incisum to be sliced ​​into the positioning groove 9 opened at the top of the conveyor frame 8. The positioning groove 9 can play a preliminary limiting role for the Notopterygium incisum. Then, the feeding mechanism inside the positioning groove 9 is activated. The feeding mechanism can push the Notopterygium incisum along the positioning groove 9 towards the cutting chamber 2 on the frame 1. After the front end of the Notopterygium incisum enters the cutting chamber 2 through the feed port of the cutting chamber 2, the fixing mechanism located above the positioning groove 9 on one side of the cutting chamber 2 is activated. It can adaptively press and fix the Notopterygium incisum to prevent it from shaking during the slicing process. Then, the slicing assembly can slice the Notopterygium incisum. At the same time, the feeding mechanism can continuously and slowly push the Notopterygium incisum into the cutting chamber 2, so that the slicing assembly can continuously slice the Notopterygium incisum, thereby completing the continuous and stable slicing operation of Notopterygium incisum. Through the above structure, the stability and continuity of the Notopterygium incisum slicing process can be ensured, effectively improving the slicing efficiency and slicing quality.

[0024] The feeding mechanism includes a push plate 16. A slide groove 11 is provided inside the conveyor frame 8 below the positioning groove 9. A movable groove 12, communicating with the positioning groove 9, is provided at the top of the slide groove 11. A screw 13 is rotatably connected to the inner side of the slide groove 11. One end of the screw 13 is connected to the output end of a second motor 14 installed at the end of the conveyor frame 8. A slider 15, threadedly connected to the screw 13, is slidably connected to the inner side of the slide groove 11. A push plate 16 is installed on the top of the slider 15, with one end passing through the movable groove 12 and extending to the inner side of the positioning groove 9. The inner wall of the positioning groove 9 is provided with multiple sets of anti-slip ridges 10. After the *Notopterygium incisum* to be sliced ​​is placed into the positioning groove 9, the inner wall of the positioning groove 9 is provided with... The multiple anti-slip ridges 10 increase the friction between the Notopterygium root and the groove wall, providing initial positioning for the Notopterygium root. Then, the second motor 14 is started, and the output end of the second motor 14 can drive the screw 13 to rotate. Since the inner side of the slide groove 11 is slidably connected to the slider 15 which is threadedly connected to the screw 13, the rotation of the screw 13 will drive the slider 15 to slide along the slide groove 11 towards the cutting chamber 2. The push plate 16 installed on the top of the slider 15 can move with the slider 15. The push plate 16 can push the Notopterygium root in the positioning groove 9 to be conveyed along the positioning groove 9 towards the cutting chamber 2 on the frame 1. Thus, by setting up the system, the conveying stability of the Notopterygium root is improved, laying the foundation for subsequent stable slicing.

[0025] The fixing mechanism includes a pressure plate 24. A fixed seat 17 is provided on one side of the cutting chamber 2. A rotating drum 18 is rotatably connected to the fixed seat 17. A handwheel 19 is installed on the top of the fixed seat 17, and a lifting screw 20 is threadedly connected to its inner side. One end of the lifting screw 20 is connected to a mounting frame 21. The top of the mounting frame 21 is provided with two sets of limiting rods 22 that are slidably connected to the fixed seat 17. A fixed shaft 23 is provided on the inner side of the mounting frame 21, and a pressure plate 24 is fitted around its outer ring and rotatably connected to the pressure plate 24 through a torsion spring. The bottom surface of the pressure plate 24 is provided with an arc-shaped groove adapted to the cutting chamber 2. By rotating the handwheel 19, the rotating drum 18 can be rotated. The threaded connection of the lifting screw 20, combined with the limiting action of two sets of limiting rods 22, causes the rotation of the rotating drum 18 to drive the lifting screw 20 to move downward. The mounting bracket 21 connected to one end of the lifting screw 20 can move downward accordingly. When the bottom surface of the pressure plate 24, which is rotatably connected to the outer ring of the inner fixed shaft 23 of the mounting bracket 21 through the torsion spring, contacts the surface of the Notopterygium incisum, it can adaptively conform to the shape of the Notopterygium incisum under the elastic action of the torsion spring. The arc-shaped groove on the bottom surface that is compatible with the Notopterygium incisum can tightly wrap the Notopterygium incisum, thereby pressing and fixing the Notopterygium incisum and preventing it from shaking during the slicing process. Thus, by setting it up, it can effectively prevent the Notopterygium incisum from shaking during slicing, ensuring the stability and quality of the slice.

[0026] The slicing assembly includes slicing blades 7. A rotating shaft 4 is rotatably connected to the inner side of the cutting chamber 2, with one end extending to the outside of the cutting chamber 2 and connected to the output end of a first motor 5. The first motor 5 is mounted on the top of a mounting base 6 located on the top of the frame 1. Three sets of slicing blades 7 are installed on the outer ring of the rotating shaft 4 near the feed inlet. A discharge port 3 is opened at the bottom of the cutting chamber 2. By starting the first motor 5, the output end of the first motor 5 can drive the rotating shaft 4 rotatably connected to the inner side of the cutting chamber 2 to rotate. The three sets of slicing blades 7 installed on the outer ring of the rotating shaft 4 near the feed inlet can rotate at high speed with the rotating shaft 4, thereby slicing the fixed Notopterygium root. At the same time, the second motor 14 continuously drives the screw 13 to rotate, which can cause the slider 15 to drive the push plate 16 to slowly push the Notopterygium root into the cutting chamber 2, ensuring that the three sets of slicing blades 7 can continuously and evenly slice the Notopterygium root. After slicing, the Notopterygium root can be discharged from the discharge port at the bottom of the cutting chamber 2. Thus, through the setting, continuous slicing of Notopterygium root can be achieved efficiently, and the slicing uniformity is high, improving slicing efficiency and quality.

[0027] Working principle: First, the notopterygium root to be sliced ​​is placed into the positioning groove 9. The positioning groove 9 can initially limit the notopterygium root. Then, the second motor 14 is started. The output end of the second motor 14 can drive the screw 13 to rotate. Because the inner side of the slide groove 11 is slidably connected to the slider 15 threadedly connected to the screw 13, the rotation of the screw 13 will drive the slider 15 to slide along the slide groove 11 towards the cutting chamber 2. The push plate 16 installed on the top of the slider 15 can move with the slider 15. The push plate 16 can push the notopterygium root in the positioning groove 9 along the positioning groove 9 towards the cutting chamber 2 on the frame 1. When the front end of the notopterygium root passes through the feed port, the handwheel 19 can be turned to drive the rotating drum 18 to rotate. Because the inner side of the rotating drum 18 is threadedly connected to the lifting screw 20, and with the limiting action of the two sets of limiting rods 22, the rotation of the rotating drum 18 will drive the lifting screw 20 to move downward. The mounting bracket 21 connected at one end can move down accordingly. When the bottom surface of the pressure plate 24, which is connected to the inner fixed shaft 23 of the mounting bracket 21 through the torsion spring, contacts the surface of Notopterygium incisum, it can adapt to the shape of Notopterygium incisum under the elastic action of the torsion spring, thereby pressing and fixing Notopterygium incisum. Then, by starting the first motor 5, the output end of the first motor 5 can drive the rotating shaft 4 connected to the inner side of the cutting chamber 2 to rotate. The three sets of slicing blades 7 installed near the feed port on the outer ring of the rotating shaft 4 can rotate at high speed with the rotating shaft 4, thereby slicing the fixed Notopterygium incisum. At the same time, the second motor 14 continuously drives the screw 13 to rotate, which can drive the slider 15 to drive the push plate 16 to slowly push Notopterygium incisum into the cutting chamber 2, ensuring that the three sets of slicing blades 7 can continuously and evenly slice Notopterygium incisum. After slicing, Notopterygium incisum can be discharged from the discharge port at the bottom of the cutting chamber 2, thus completing the entire operation process.

[0028] The contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0029] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A slicing device for processing Notopterygium, comprising a frame (1), characterized in that: The frame (1) is equipped with a cutting chamber (2), and inside the chamber is a slicing assembly for slicing the glutinous rice at the feed inlet. The feed inlet is provided with a conveying frame (8), and a positioning groove (9) is provided on its top. The inner side of the positioning groove (9) is provided with a feeding mechanism for conveying the glutinous rice to the cutting chamber (2). One side of the cutting chamber (2) above the positioning groove (9) is provided with a fixing mechanism for stabilizing the slices of glutinous rice. The fixing mechanism includes a pressure plate (24), a fixing seat (17) is provided on one side of the cutting chamber (2), a rotating cylinder (18) is rotatably connected to the fixing seat (17), a handwheel (19) is installed on its top, a lifting screw (20) is threaded on its inner side, a mounting frame (21) is connected to one end of the lifting screw (20), two sets of limiting rods (22) are provided on the top of the mounting frame (21) and are slidably connected to the fixing seat (17), a fixing shaft (23) is provided on the inner side of the mounting frame (21), the pressure plate (24) is sleeved on its outer ring and is rotatably connected to the pressure plate (24) through a torsion spring, and an arc groove adapted to the Qianghuo is opened on the bottom surface of the pressure plate (24).

2. The slicing device for processing of Qiang- uo herb according to claim 1, characterized in that: The feeding mechanism includes a push plate (16). The inside of the conveyor frame (8) is provided with a slide groove (11) located below the positioning groove (9). The top of the slide groove (8) is provided with a movable groove (12) that communicates with the positioning groove (9). A screw (13) is rotatably connected to the inside of the slide groove (11). One end of the screw (13) is connected to the output end of a second motor (14) installed at the end of the conveyor frame (8). A slider (15) that is threadedly connected to the screw (13) is slidably connected to the inside of the slide groove (11). The push plate (16) is installed on the top of the slider (15). One end of the push plate passes through the movable groove (12) and extends to the inside of the positioning groove (9).

3. The slicing device for processing of Qiang- uo as claimed in claim 2, wherein: The inner wall of the positioning groove (9) is provided with multiple sets of anti-slip protrusions (10).

4. The slicing device for processing of Cowage as claimed in claim 1, wherein: The slicing assembly includes a slicing blade (7). A rotating shaft (4) is rotatably connected to the inner side of the cutting chamber (2). One end of the shaft extends to the outside of the cutting chamber (2) and is connected to the output end of a first motor (5). The first motor (5) is mounted on the top of a mounting base (6) located on the top of the frame (1). Three sets of the slicing blades (7) are mounted on the outer ring of the rotating shaft (4) near the feed inlet.

5. The slicing device for processing of Qiang- uo as claimed in claim 4, wherein: The bottom of the cutting chamber (2) is provided with a discharge port (3).