Slicing device for rough processing of konjak

By using a drive motor and belt transmission mechanism to drive the turntable for slicing, combined with a reciprocating motion mechanism and extrusion slider design, the problem of uneven slicing and low efficiency in konjac slicing equipment is solved, realizing automated slicing and convenient blade replacement, which is suitable for mass production of konjac.

CN224074468UActive Publication Date: 2026-04-03YUNNAN CHUJI KONJAC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-10
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional konjac slicing equipment results in loose, clogged slices that block the blade gaps. Manual slicing is also inefficient and results in uneven slice thickness. Blade replacement is also complicated, making it unsuitable for mass production.

Method used

The system uses a drive motor and belt drive mechanism to rotate the turntable and cutter. Combined with a reciprocating motion mechanism and extrusion slider design, it achieves automatic slicing and continuous feeding. The cutter is detachable for easy replacement, ensuring slicing uniformity and efficiency.

Benefits of technology

It achieves uniformity and high efficiency in konjac slicing, meets the needs of mass production, reduces blade slit clogging, and lowers maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a slicing device for rough processing of konjak, and belongs to the technical field of konjak processing. The device mainly comprises a supporting frame, a rotating shaft, a rotating disc, a cutter, a driving motor, a sliding groove, a reciprocating motion mechanism, an extrusion sliding block and a connecting rod. The driving motor and the belt transmission mechanism drive the rotating disc and the cutter to rotate, automatic slicing is achieved, the slicing thickness can be better controlled, the slicing uniformity is guaranteed, the product quality is improved, compared with manual slicing, the slicing efficiency is improved, and the requirement for mass production can be met; according to the konjak slicing machine, slicing operation can be continuously conducted, meanwhile, konjak can be continuously extruded and pushed in the slicing process, slices are prevented from being loosely accumulated at the position of a cutter, therefore, blockage of gaps of blades is reduced, and it is guaranteed that follow-up processing is conducted smoothly; and replacement can be conveniently carried out, and the maintenance cost is reduced.
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Description

Technical Field

[0001] This utility model belongs to the field of konjac processing technology, specifically relating to a slicing device for coarse processing of konjac. Background Technology

[0002] The components inside konjac can lower blood lipids, blood sugar, and blood pressure. At the same time, it can promote blood circulation, remove blood stasis, detoxify, reduce swelling, and treat other ailments. Eating konjac has good effects. Konjac is processed into a variety of snack foods, among which konjac chips are convenient to eat and are very popular with consumers.

[0003] Traditional konjac slicing mainly relies on two methods: manual slicing and slicing equipment. In the manual slicing process, operators use knives to manually cut konjac into thin slices, but the thickness of manual slices is difficult to guarantee, and the slicing efficiency is low, which cannot meet the needs of mass production. When konjac is sliced ​​by slicing equipment, the slices are loose and tend to accumulate at the cutting edge, clogging the blade gaps and affecting subsequent processing. In addition, when the blades wear out, replacement is complicated. Utility Model Content

[0004] To overcome the challenges of inconsistent konjac slicing thickness, low efficiency, and inability to meet the demands of mass production, and to address the issues of slices accumulating at the cutting edge and clogging the blades when using slicing equipment, as well as the complex replacement of worn blades, this invention provides a slicing device for coarse konjac processing. A drive motor and belt transmission mechanism rotate the turntable and cutting blade, enabling automatic slicing. This allows for better control of slice thickness, ensuring uniformity and improving slicing efficiency to meet the needs of mass production. The reciprocating motion mechanism and extrusion slider design allow for continuous slicing, while simultaneously compressing and pushing the konjac slices during the slicing process, preventing loose slice accumulation at the cutting edge and reducing clogging of the blade gaps. The cutting blade is detachably mounted on the turntable via fastening bolts, allowing for easy replacement when worn, thus reducing maintenance costs.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: A slicing device for coarse processing of konjac mainly includes a support frame, a rotating shaft, a turntable, a cutter, a drive motor, a slide groove, a reciprocating motion mechanism, an extrusion slider, and a connecting rod. The rotating shaft is rotatably mounted on the support frame, the turntable is mounted on the rotating shaft, the cutter is detachably mounted on the turntable by fastening bolts, the drive motor is mounted on the support frame, the rotating shaft is connected to the drive motor via a belt transmission mechanism, the slide groove is mounted on one side of the support frame, the reciprocating motion mechanism is mounted on the slide groove, the extrusion slider is slidably mounted in the slide groove, one end of the connecting rod is connected to the reciprocating motion mechanism, and the other end is connected to the extrusion slider.

[0006] The reciprocating motion mechanism includes a mounting frame, a motor, a connecting plate, a disc, a crank, a slider, a guide wheel, and a cross. The mounting frame is installed on one side of the support frame, the motor is installed on the mounting frame, the connecting plate is installed on one side of the mounting frame, the disc is fixedly installed on the connecting plate, the crank is rotatably installed at the center of the disc, the slider is installed at the end of the crank, the crank is connected to the output end of the motor, the guide wheel is rotatably installed on the disc, and the cross is slidably installed between the guide wheels. A waist-shaped groove is opened on the vertical rod of the cross, and the slider is located inside the waist-shaped groove.

[0007] The cutting blade is provided in 4 sets.

[0008] A collection tray is installed on one side of the support frame, located below the turntable and cutter.

[0009] The chute is equipped with a conveying trough at its end.

[0010] The height of the extrusion slider is higher than that of the chute.

[0011] The beneficial effects of this utility model are:

[0012] The drive motor and belt transmission mechanism rotate the turntable and cutter, realizing automatic slicing. The slice thickness can be better controlled, ensuring the uniformity of the slices and improving product quality. Compared with manual slicing, it improves slicing efficiency and can meet the needs of mass production. The reciprocating motion mechanism and the extrusion slider design can continuously perform slicing operations. At the same time, the konjac is continuously squeezed and pushed during the slicing process, avoiding loose accumulation of slices at the cutter, thereby reducing the blockage of the blade gap and ensuring the smooth progress of subsequent processing. The cutter is detachably mounted on the turntable by fastening bolts. When the blade wears out, it can be easily replaced, reducing maintenance costs. Attached Figure Description

[0013] Figure 1 This is an isometric schematic diagram of the present invention.

[0014] Figure 2 This is a three-dimensional schematic diagram of the present invention.

[0015] Figure 3 This is a top view of the structure of this utility model.

[0016] Figure 4 This is a schematic diagram of the structure of this utility model viewed from below. Detailed Implementation

[0017] To make the objectives, technical solutions, and beneficial effects of this utility model clearer, the preferred embodiments of this utility model will be described in detail below with reference to the accompanying drawings, so as to facilitate the understanding of those skilled in the art.

[0018] This utility model discloses a slicing device for coarse processing of konjac. The slicing device for coarse processing of konjac mainly includes a support frame 1, a rotating shaft 2, a turntable 3, a cutter 4, a drive motor 5, a slide groove 6, a reciprocating motion mechanism 7, an extrusion slider 8, and a connecting rod 9. The rotating shaft 2 is rotatably mounted on the support frame 1, the turntable 3 is mounted on the rotating shaft 2, the cutter 4 is detachably mounted on the turntable 3 by fastening bolts, the drive motor 5 is mounted on the support frame 1, and the rotating shaft 2 is connected to the drive motor 5 through a belt transmission mechanism. The slide groove 6 is mounted on one side of the support frame 1, the reciprocating motion mechanism 7 is mounted on the slide groove 6, the extrusion slider 8 is slidably mounted in the slide groove 6, and one end of the connecting rod 9 is connected to the reciprocating motion mechanism, and the other end is connected to the extrusion slider 8.

[0019] like Figure 2 , Figure 3 , Figure 4 As shown, the reciprocating motion mechanism 7 includes a mounting frame 71, a motor 72, a connecting plate 73, a disc 74, a crank 75, a slider 76, guide wheels 77, and a cross 78. The mounting frame 71 is mounted on one side of the support frame 1, the motor 72 is mounted on the mounting frame 71, the connecting plate 73 is mounted on one side of the mounting frame 71, the disc 74 is fixedly mounted on the connecting plate 73, the crank 75 is rotatably mounted at the center of the disc 74, the slider 76 is mounted at the end of the crank 75, the crank 75 is connected to the output end of the motor 72, the guide wheel 77 is rotatably mounted on the disc 74, and the cross 78 is slidably mounted between the guide wheels 77. The vertical rod of the cross 78 has a waist-shaped groove 781, and the slider 76 is located inside the waist-shaped groove 781. The motor 72 rotates and drives the crank 75 to rotate. Because the slider 76 is installed at the end of the crank 75, as the crank 75 rotates, the slider 76 makes a circular motion at the center of the disk 74. When the slider 76 makes a circular motion, because it is located inside the waist-shaped groove 781 of the vertical rod of the cross 78, it will drive the cross 78 to slide regularly between the guide wheels 77. The cross 78 is connected to the connecting rod 9, and the other end of the connecting rod 9 is connected to the extrusion slider 8, so that the extrusion slider 8 makes a reciprocating sliding motion in the groove 6.

[0020] like Figure 1 , Figure 3 As shown, the cutting blade 4 is provided with 4 sets; the distributed layout of the four sets of cutting blades enables continuous cutting and improves slicing efficiency.

[0021] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, a collection tray 10 is installed on one side of the support frame 1, located below the turntable 3 and the cutter 4; the konjac slices cut by the cutter 4 fall into the collection tray 10 under the action of gravity for centralized collection and processing.

[0022] like Figure 1, Figure 3 As shown, a conveying groove 11 is installed at the end of the chute 6; the konjac to be processed slides into the chute 6 through the inclined conveying groove 11 for slicing.

[0023] like Figure 1 , Figure 3 As shown, the height of the extrusion slider 8 is higher than that of the chute 6, ensuring that a single konjac stalk slides into the chute 6 for slicing.

[0024] Work process:

[0025] The drive motor 5 drives the rotating shaft 2 to rotate at a constant speed via a belt transmission mechanism. The turntable 3 fixed on the rotating shaft 2 rotates synchronously. Four sets of detachable cutters 4 evenly installed around the turntable 3 form a rotary cutting unit. The konjac to be processed slides into the slide 6 through the inclined conveying groove 11. At this time, the motor 72 of the reciprocating motion mechanism 7 drives the crank 75 to rotate. The slider 76 at the end of the crank 75 slides in the waist-shaped groove 781 of the cross 78, forcing the cross 78 to make horizontal reciprocating motion on the disc 74 via the guide wheel 77. This motion is converted into the reciprocating pushing of the extrusion slider 8 in the slide 6 via the connecting rod 9. When the extrusion slider 8 moves forward, its structure design above the slide 6 effectively clamps the konjac, while ensuring that a single konjac slides into the slide 6 for slicing. The extrusion slider 8 stably pushes the konjac to the cutting area of ​​the high-speed rotating cutter 4. The cutter 4 on the turntable 3 moves with the konjac. Rotating with the turntable 3, the konjac slices are cut. Each 90° rotation of the turntable 3 results in one slicing action by a set of cutters 4. The distributed layout of the four sets of cutters 4 enables continuous cutting. The cutting thickness is determined by the matching relationship between the pushing frequency of the reciprocating motion mechanism 7 and the rotation speed of the turntable 3. After cutting, the konjac slices are separated from the cutter 4 area by centrifugal force and fall naturally to be collected by the collection tray 10 installed below the support frame 1. After the extrusion slider 8 completes the pushing, it retracts and resets with the reciprocating motion mechanism 7. At this time, the subsequent konjac in the conveying trough 11 automatically fills the empty space of the slide 6 under the action of gravity, waiting for the next pushing and cutting, forming a continuous operation cycle. This device realizes full automation of the conveying-positioning-cutting-collection process through mechanical linkage, effectively solving the problems of low efficiency and uneven thickness of traditional manual slicing. It is particularly suitable for large-scale production scenarios of konjac primary processing.

[0026] Finally, it should be noted that the above preferred embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although the utility model has been described in detail through the above preferred embodiments, those skilled in the art should understand that various changes can be made to it in form and detail without departing from the scope defined by the claims of this utility model.

Claims

1. A slicing device for coarse processing of konjac, characterized in that: The slicing device for coarse processing of konjac includes a support frame (1), a rotating shaft (2), a turntable (3), a cutter (4), a drive motor (5), a chute (6), a reciprocating motion mechanism (7), an extrusion slider (8), and a connecting rod (9). The rotating shaft (2) is rotatably mounted on the support frame (1), the turntable (3) is mounted on the rotating shaft (2), the cutter (4) is detachably mounted on the turntable (3) by fastening bolts, the drive motor (5) is mounted on the support frame (1), the rotating shaft (2) is connected to the drive motor (5) by a belt drive mechanism, the chute (6) is mounted on one side of the support frame (1), the reciprocating motion mechanism (7) is mounted on the chute (6), the extrusion slider (8) is slidably mounted in the chute (6), one end of the connecting rod (9) is connected to the reciprocating motion mechanism, and the other end is connected to the extrusion slider (8).

2. The slicing device for coarse processing of konjac as described in claim 1, characterized in that: The reciprocating motion mechanism (7) includes a mounting frame (71), a motor (72), a connecting plate (73), a disc (74), a crank (75), a slider (76), a guide wheel (77), and a cross (78). The mounting frame (71) is mounted on one side of the support frame (1), the motor (72) is mounted on the mounting frame (71), the connecting plate (73) is mounted on one side of the mounting frame (71), the disc (74) is fixedly mounted on the connecting plate (73), the crank (75) is rotatably mounted at the center of the disc (74), the slider (76) is mounted at the end of the crank (75), the crank (75) is connected to the output end of the motor (72) for transmission, the guide wheel (77) is rotatably mounted on the disc (74), and the cross (78) is slidably mounted between the guide wheels (77). A waist-shaped groove (781) is provided on the vertical rod of the cross (78), and the slider (76) is located inside the waist-shaped groove (781).

3. A slicing device for coarse processing of konjac as described in claim 1 or 2, characterized in that: The cutter (4) is provided in 4 sets.

4. A slicing device for coarse processing of konjac as described in claim 1 or 2, characterized in that: The support frame (1) is equipped with a collection tray (10) on one side, located below the turntable (3) and the cutter (4).

5. A slicing device for coarse processing of konjac as described in claim 1 or 2, characterized in that: The chute (6) is equipped with a conveying trough (11) at its end.

6. A slicing device for coarse processing of konjac as described in claim 1 or 2, characterized in that: The height of the extrusion slider (8) is higher than that of the groove (6).