Multi-portitioned areca nut slicing device

The design of a multi-position areca nut slicing device has enabled automated and efficient production of areca nut slices, solving the problem of low efficiency in traditional slicing and improving the uniformity and production efficiency of the slices.

CN224295932UActive Publication Date: 2026-05-29HUNAN KOUWEIWANG GRP

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUNAN KOUWEIWANG GRP
Filing Date
2025-07-03
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Traditional areca nut slicing processes are inefficient, involve complex manual operations, and produce uneven slice thickness, making it difficult to meet the needs of large-scale production.

Method used

A multi-position areca nut slicing device is designed, which uses multiple feeding channels and cylinder-driven cutting blades to achieve automated slicing. The stability and flatness of the areca nuts during the slicing process are ensured by the extrusion plate and limiting structure.

Benefits of technology

It improves the production efficiency and flatness of areca nut slices, reduces labor intensity, adapts to the slicing needs of areca nuts of different sizes, and has high versatility and flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of multi-port bit arecanut slicing device, specifically relate to arecanut processing technical field, including: pedestal, the upper side of the pedestal is equipped with multiple conveying channels at equal intervals, the left end of the conveying channel is nested with extrusion plate, the right end of the conveying channel is slidably nested with pusher block;The top wall of the bracket is slidably nested with moving rod at the position corresponding to each conveying channel, the lower end of the moving rod is connected with corresponding extrusion plate, two first air cylinders are provided on the bracket, and the telescopic end of two first air cylinders is commonly connected with cutting blade;The telescopic end of the second air cylinder is connected with push-pull plate.The utility model is provided with multiple conveying channels, can simultaneously slice multiple arecanut synchronously, significantly improve the production efficiency of arecanut slice, and utilize cylinder to realize the automation of pushing and cutting, reduce manual intervention, reduce labor intensity, improve the flatness and thickness uniformity of slice simultaneously.
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Description

Technical Field

[0001] This utility model relates to the field of areca nut processing technology, specifically to a multi-orifice areca nut slicing device. Background Technology

[0002] Areca nut is the dried, mature seed of a palm tree (Aralia elata). It has the effects of expelling and killing intestinal parasites, relieving indigestion and bloating, and promoting the body's water metabolism. It is commonly used to treat abdominal pain caused by parasites, bloating caused by indigestion, and edema. Areca nut also contains more than 20 trace elements, 11 of which are essential trace elements for the human body.

[0003] In traditional areca nut processing, the slicing step is typically done manually or with a single-slice slicing device. Manual slicing is inefficient and produces uneven slices, making it difficult to meet the demands of large-scale production. While existing single-slice slicing devices can improve production efficiency to some extent, they still suffer from slow processing speeds and complex operation. Utility Model Content

[0004] The purpose of this invention is to provide a multi-orifice areca nut slicing device to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a multi-orifice areca nut slicing device, comprising:

[0006] The base has multiple conveying channels evenly spaced on its upper side. The two ends of the conveying channels extend to the left and right sides of the base, respectively. An extrusion plate is nested at the left end of the conveying channel, and a pusher block is slidably nested at the right end of the conveying channel.

[0007] The bracket is fixed to the upper left side of the base. The top wall of the bracket is slidably nested with moving rods corresponding to the positions of each of the material conveying channels. The lower end of the moving rod is connected to the corresponding extrusion plate. A spring is provided between the extrusion plate and the top wall of the bracket. The bracket is equipped with two first cylinders. The telescopic ends of the two first cylinders are connected to a cutting blade.

[0008] The second cylinder has its cylinder body nested within the base. The telescopic end of the second cylinder is connected to a push-pull plate. A connecting rod is fixed to the left side of the push-pull plate at the position corresponding to each of the material conveying channels. The connecting rod is connected to the corresponding push block.

[0009] Furthermore, a limiting seat is fixed to the left end of both the front and rear sides of the base. A sliding groove is opened at the end of the two limiting seats that are close to each other. The end of the cutting blade is slidably nested in the sliding groove. The right side wall of the cutting blade is in sliding contact with the left side wall of the base and the bracket, which provides a stable movement trajectory for the cutting blade and ensures that the cutting blade can run smoothly during the slicing process, avoiding uneven slicing caused by blade shaking.

[0010] Furthermore, supports are fixed on both the front and rear sides of the upper side of the bracket, and the two first cylinders are respectively installed on the two supports, which can provide stable support for the first cylinders.

[0011] Furthermore, the extrusion plate includes a flat pressing part and a guiding part, the guiding part and the flat pressing part are integrally formed, the guiding part is located at the right end of the flat pressing part, and the end of the guiding part away from the flat pressing part is inclined upward, so that the areca nut can move along the guiding part to the bottom of the flat pressing part and be squeezed when pushed, ensuring the stability of the areca nut when slicing.

[0012] Furthermore, the spring is sleeved on the movable rod, the lower end of the movable rod is connected to the flat pressure part, and the upper end of the movable rod slides through the bracket and is connected to the limit plate.

[0013] Furthermore, a baffle is installed at the upper opening of the conveying channel. The baffle is located to the right of the guide section, which can effectively prevent the areca nuts from jumping out of the conveying channel during the extrusion and pushing process, while facilitating the movement of the areca nuts to the area below the extrusion plate.

[0014] Furthermore, both the front and rear parts of the right side of the base are slidably nested with limit rods. The right end of the limit rod is connected to the push-pull plate. The setting of the limit rod provides a stable movement trajectory for the push-pull plate, ensuring that the push-pull plate can run smoothly when pushing the push block, and avoiding inaccurate pushing movement caused by the shaking of the push-pull plate.

[0015] The technical effects and advantages provided by this utility model in the above technical solution are as follows:

[0016] 1. By setting up multiple feeding channels, multiple areca nuts can be sliced ​​simultaneously, which significantly improves the production efficiency of areca nut slicing. Furthermore, the use of cylinders to automate the feeding and cutting processes reduces manual intervention, lowers labor intensity, and improves the flatness and thickness uniformity of the slices.

[0017] 2. The device ensures the stability and smoothness of the areca nut during the slicing process by using a moving rod, spring, and extrusion plate, thereby improving the flatness and thickness uniformity of the slices. At the same time, this device can adapt to areca nuts of different sizes, and has high versatility and flexibility. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2 This utility model Figure 1 Another perspective illustration;

[0021] Figure 3 This utility model Figure 2 Another perspective illustration;

[0022] Figure 4 This is a schematic diagram showing the connection between the bracket and the extrusion plate of this utility model;

[0023] Figure 5 This utility model Figure 4 Another perspective illustration;

[0024] Figure 6 This is a schematic diagram of the extrusion plate structure of this utility model.

[0025] Explanation of reference numerals in the attached figures:

[0026] 1. Base; 2. Conveying channel; 3. Extrusion plate; 4. Pushing block; 5. Support; 6. Moving rod; 7. First cylinder; 8. Cutting blade; 9. Second cylinder; 10. Push-pull plate; 11. Connecting rod; 12. Limiting seat; 13. Slide groove; 14. Support; 15. Flat pressing part; 16. Guide part; 17. Limiting plate; 18. Baffle; 19. Limiting rod; 20. Spring. Detailed Implementation

[0027] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0028] This utility model provides, for example Figures 1 to 6 The multi-orifice areca nut slicing device shown includes:

[0029] The base 1 has multiple conveying channels 2 evenly spaced on its upper side. The two ends of the conveying channels 2 extend to the left and right sides of the base 1 respectively. The left end of the conveying channel 2 is nested with an extrusion plate 3, and the right end of the conveying channel 2 is slidably nested with a pusher block 4.

[0030] The bracket 5 is fixed on the upper left side of the base 1. The top wall of the bracket 5 is slidably nested with moving rods 6 corresponding to the positions of each material conveying channel 2. The lower end of the moving rod 6 is connected to the corresponding extrusion plate 3. A spring 20 is provided between the extrusion plate 3 and the top wall of the bracket 5. The bracket 5 is equipped with two first cylinders 7. The telescopic ends of the two first cylinders 7 are connected to the cutting blade 8.

[0031] The second cylinder 9 has its cylinder body nested inside the base 1. The telescopic end of the second cylinder 9 is connected to a push-pull plate 10. A connecting rod 11 is fixed on the left side of the push-pull plate 10 at the position corresponding to each material conveying channel 2. The connecting rod 11 is connected to the corresponding push block 4.

[0032] Limiting seats 12 are fixed to the left ends of both the front and rear sides of the base 1. Each of the two limiting seats 12 has a sliding groove 13 at the end that is close to each other. The end of the cutting blade 8 is slidably nested in the sliding groove 13. The right side wall of the cutting blade 8 is in sliding contact with the left side wall of the base 1 and the bracket 5, providing a stable movement trajectory for the cutting blade 8, ensuring that the cutting blade 8 can run smoothly during the slicing process, and avoiding uneven slicing caused by blade shaking.

[0033] Supports 14 are fixed on both the front and rear sides of the upper side of the bracket 5. The two first cylinders 7 are respectively installed on the two supports 14, which can provide stable support for the first cylinders 7.

[0034] The extrusion plate 3 includes a flat pressing part 15 and a guide part 16. The guide part 16 and the flat pressing part 15 are integrally formed. The guide part 16 is located at the right end of the flat pressing part 15. The end of the guide part 16 away from the flat pressing part 15 is inclined upward, so that the areca nut can move along the guide part 16 to the bottom of the flat pressing part 15 and be squeezed when pushed, ensuring the stability of the areca nut when slicing.

[0035] Spring 20 is sleeved on moving rod 6. The lower end of moving rod 6 is connected to flat pressure part 15. The upper end of moving rod 6 slides through bracket 5 and is connected to limit plate 17.

[0036] A baffle 18 is installed on the upper opening of the conveying channel 2. The baffle 18 is located to the right of the guide section 16. It can effectively prevent the areca nuts from jumping out of the conveying channel 2 during the extrusion and pushing process, and at the same time facilitate the movement of the areca nuts to the bottom of the extrusion plate 3.

[0037] Both the front and rear parts on the right side of the base 1 are slidably nested with limit rods 19. The right end of the limit rod 19 is connected to the push-pull plate 10. The limit rod 19 provides a stable movement trajectory for the push-pull plate 10, ensuring that the push-pull plate 10 can run smoothly when pushing the pusher block 4, and avoiding inaccurate pushing movement caused by the shaking of the push-pull plate 10.

[0038] In this invention, areca nuts are placed sequentially in each conveying channel 2, with the areca nuts positioned between the baffle 18 and the pusher block 4. Then, the two first cylinders 7 work synchronously, driving the cutting blade 8 to move up and down reciprocally. At the same time, the second cylinder 9 retracts, pulling the push-pull plate 10. The push-pull plate 10 pushes each pusher block 4 through each connecting rod 11, causing the pusher block 4 to move within the conveying channel 2 and push the areca nuts. The areca nuts pass under the extrusion plate 3 after passing the baffle 18. The pusher block 4 continues to push the areca nuts, causing the end of the areca nuts away from the pusher block 4 to be slowly pushed out of the conveying channel 2. Simultaneously, the cutting blade 8 moves up and down reciprocally to slice the areca nuts. The operation of the first cylinders 7 and the second cylinder 9 can be controlled by a control program. After completion, the second cylinder 9 extends and retracts to push the push-pull plate 10 to move. The movement of the push-pull plate 10 causes each pusher block 4 to reset, and areca nuts are placed back into each conveying channel 2. The above operation is repeated.

[0039] By setting up multiple feeding channels 2, multiple areca nuts can be sliced ​​simultaneously, which significantly improves the production efficiency of areca nut slicing. Furthermore, the use of cylinders to automate the feeding and cutting processes reduces manual intervention, lowers labor intensity, and improves the flatness and thickness uniformity of the slices.

[0040] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A multi-orifice areca nut slicing device, characterized in that, include: The base (1) has multiple material conveying channels (2) evenly spaced on its upper side. The two ends of the material conveying channels (2) extend to the left and right sides of the base (1) respectively. The left end of the material conveying channel (2) is nested with an extrusion plate (3), and the right end of the material conveying channel (2) is slidably nested with a pusher block (4). The bracket (5) is fixed on the upper left side of the base (1). The top wall of the bracket (5) is slidably nested with moving rods (6) corresponding to the positions of each of the conveying channels (2). The lower end of the moving rods (6) is connected to the corresponding extrusion plate (3). A spring (20) is provided between the extrusion plate (3) and the top wall of the bracket (5). The bracket (5) is provided with two first cylinders (7). The telescopic ends of the two first cylinders (7) are connected to the cutting blade (8). The second cylinder (9) has its cylinder body nested in the base (1). The telescopic end of the second cylinder (9) is connected to a push-pull plate (10). A connecting rod (11) is fixed on the left side of the push-pull plate (10) corresponding to the position of each of the material conveying channels (2). The connecting rod (11) is connected to the corresponding push block (4).

2. The multi-orifice areca nut slicing device according to claim 1, characterized in that: The left ends of the front and rear sides of the base (1) are fixed with limiting seats (12). The two limiting seats (12) are provided with sliding grooves (13) at their close ends. The end of the cutting blade (8) is slidably nested in the sliding groove (13). The right side wall of the cutting blade (8) is in sliding contact with the left side wall of the base (1) and the bracket (5).

3. The multi-orifice areca nut slicing device according to claim 1, characterized in that: The bracket (5) has supports (14) fixed on both the front and rear sides of the upper side, and the two first cylinders (7) are respectively installed on the two supports (14).

4. The multi-orifice areca nut slicing device according to claim 1, characterized in that: The extrusion plate (3) includes a flat pressing part (15) and a guide part (16). The guide part (16) and the flat pressing part (15) are integrally formed. The guide part (16) is located at the right end of the flat pressing part (15). The end of the guide part (16) away from the flat pressing part (15) is inclined upward.

5. A multi-orifice areca nut slicing device according to claim 4, characterized in that: The spring (20) is sleeved on the moving rod (6), the lower end of the moving rod (6) is connected to the flat pressing part (15), and the upper end of the moving rod (6) slides through the bracket (5) and is connected to the limiting plate (17).

6. The multi-orifice areca nut slicing device according to claim 4, characterized in that: A baffle (18) is installed on the upper opening of the conveying channel (2), and the baffle (18) is located to the right of the guide (16).

7. The multi-orifice areca nut slicing device according to claim 1, characterized in that: The base (1) has two slidingly nested limit rods (19) on the front and back sides, and the right end of the limit rods (19) is connected to the push-pull plate (10).