Columnar radish processing and slitting device

By designing a radish strip cutting device with a detachable blade, the problems of complex structure and difficult adjustment of existing equipment are solved, and low-cost, efficient strip cutting effect and diversified applicability are achieved.

CN223369481UActive Publication Date: 2025-09-23WEIFANG ACADEMY OF AGRICULTURAL SCIENCES ( WEIFANG BRANCH OF SHANDONG ACADEMY OF AGRICULTURAL SCIENCES )
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Patent Information

Application Number
CN202520153277.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2025-09-23
Estimated Expiration
2035-01-23

AI Technical Summary

Technical Problem

The existing radish strip cutting equipment has a complex structure, high manufacturing cost, is easy to damage and cannot adjust the thickness of the strips.

Method used

A radish processing and cutting device is designed, which includes a base, a storage box, a cutting assembly and a drive assembly. The cutting assembly is composed of detachable blades. The driving motor drives the push rod to push the radish for cutting. The number and spacing of the blades can be adjusted according to needs to adjust the thickness of the cut strips.

Benefits of technology

The invention realizes simple structure, convenient operation, low cost and uniform cutting, meets different market demands, and improves product quality and device applicability.

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Abstract

The utility model relates to the technical field of radish slitting equipment, in particular to a columnar radish processing and slitting device which comprises a base, a storage box is fixedly installed at the top of the base and is of a hollow structure with an opening in the top, a discharging opening is formed in the lower portion of one side wall of the storage box in a penetrating mode, and a slitting assembly is arranged in the discharging opening. A through hole is formed in the side wall, opposite to the discharging port, of the storage box and right faces the discharging port, a push rod is slidably arranged in the through hole, and the end, away from the storage box, of the push rod is in transmission connection with a driving assembly. The slitting assembly comprises a cutter ring fixedly arranged on the inner wall of the discharging opening, a cutter holder is concentrically arranged in the cutter ring, and a plurality of blades are evenly and detachably connected between the cutter ring and the cutter holder; the slitting device is simple in structure, convenient to operate, low in manufacturing cost and not prone to damage, and the slitting thickness can be adjusted according to use requirements.
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Description

Technical Field

[0001] The utility model relates to the technical field of radish strip cutting equipment, in particular to a columnar radish processing and strip cutting device. Background Art

[0002] Radish is rich in carbohydrates, vitamins, and inorganic salts such as phosphorus and iron. It not only promotes metabolism but also helps digestion, dissipates heat, and quenches thirst. It can be used to treat fever, thirst, and polydipsia, and helps prevent gallstone formation. Radish is considered a common vegetable in autumn and winter, and is a popular choice internationally for its diverse cooking methods.

[0003] After searching, the Chinese patent application number 202020519637.2 discloses a radish strip cutting device, and in particular, relates to a radish strip cutting device. The technical problem to be solved by the present invention is to provide a radish strip cutting device that can cut radish strips evenly and can directly push the cut radish strips off. A radish strip cutting device includes a support frame, the support frame is used to support the entire device; a box body, the box body is arranged on the upper part of the support frame; a left-right moving mechanism, the left-right moving mechanism is arranged on one side of the box body; a guide plate, the guide plate is arranged in the middle of the box body; a grid blade net, the grid blade net is arranged on the side of the box body away from the left-right moving mechanism; a moving rod, the moving rod is slidably arranged in the middle of the guide plate. The utility model achieves the effect of evenly cutting radish strips and directly pushing the cut radish strips off. The blade nets in the grid blade net are evenly spaced, the cut radish strips are consistent in size, and the cutting quality is high.

[0004] However, the above-mentioned strip cutting equipment still has many shortcomings. First, the above-mentioned strip cutting equipment has a complex structure and many parts, which leads to high manufacturing costs and is prone to damage. In addition, the thickness of the strips cannot be adjusted according to usage requirements. Utility Model Content

[0005] The main technical problem to be solved by the utility model is to provide a columnar radish processing and cutting device which has a simple structure, is easy to operate, has a low manufacturing cost, is not prone to damage, and can adjust the thickness of the cut strips according to usage requirements.

[0006] In order to solve the above technical problems, the present invention provides the following technical solutions:

[0007] A device for processing and cutting columnar radishes into strips comprises a base, a storage box fixedly mounted on the top of the base, and the storage box is a hollow structure with an opening at the top; a discharge port is formed through the lower side wall of the storage box, a strip cutting assembly is arranged in the discharge port, a through hole is formed in the side wall of the storage box opposite to the discharge port, and the through hole is arranged directly opposite the discharge port, a push rod is slidably arranged in the through hole, and a driving assembly is connected to the end of the push rod away from the storage box; the strip cutting assembly comprises a knife ring fixedly arranged on the inner wall of the discharge port, a knife seat is concentrically arranged inside the knife ring, and a plurality of blades are evenly and detachably connected between the knife ring and the knife seat.

[0008] The following is a further optimization of the above technical solution by the present invention:

[0009] The driving assembly includes a driving motor fixedly arranged on the top of the base, and a power output end of the driving motor is transmission-connected to a rotating plate.

[0010] Further optimization: a driving rod is eccentrically hinged on the rotating plate, and the other end of the driving rod is hinged to the push rod.

[0011] Further optimization: a support plate is fixedly provided at a position of the base close to the rotating plate, and the support plate is rotatably connected to the rotating plate.

[0012] Further optimization: a slide groove is provided on the top of the base, a guide block is slidably provided in the slide groove, and the top end of the guide block is fixedly connected to the push rod.

[0013] Further optimization: a plurality of first embedding grooves and second embedding grooves are respectively provided on the outer side walls relative to each other of the knife ring and the knife seat.

[0014] Further optimization: the first embedding slots and the second embedding slots correspond one to one, and the number of the first embedding slots and the second embedding slots is consistent with the maximum number of blades.

[0015] Further optimization: the head and tail ends of the blade are respectively clamped in the first embedding groove and the second embedding groove.

[0016] Further optimization: the side of the blade close to the push rod is the blade edge, and the other side is the blade back.

[0017] Further optimization: the blade is a convex arc structure, and the blade back is a rectangular plane.

[0018] By adopting the above technical solution, the utility model has a simple structure, convenient operation, low manufacturing cost, is not prone to damage, and can adjust the thickness of the cut strips according to usage requirements.

[0019] The utility model arranges a knife seat concentrically inside the knife ring, and a plurality of detachable blades are evenly distributed between the two. Such a structure enables the radish to be cut by the action of a plurality of evenly distributed blades when the radish is pushed by the push rod through the strip cutting assembly, thereby ensuring that the cut radish strips are more uniform in size, thickness, etc., which helps to improve product quality and enable it to better meet the requirements of product specifications for subsequent processing, packaging or sales.

[0020] The utility model adopts a detachable connection mode for the blade. As the use time increases, the blade will inevitably wear and become blunt. The detachable design makes it easy to remove the worn blade and replace it with a new sharp blade in time to ensure that the cutting effect is always good. In addition, during daily cleaning and maintenance, the blade can be easily disassembled for thorough cleaning to remove residual radish residues and other impurities, thereby preventing impurities from affecting the cutting effect or breeding bacteria and affecting the sanitary condition.

[0021] The utility model has the advantage that the blades are evenly and detachably connected between the knife ring and the knife seat. According to the actual requirements of different widths, thicknesses and other specifications of radish strips, the number of installed blades can be flexibly selected and the spacing between the blades can be adjusted, thereby changing the specifications of the cut strips and meeting diverse market demands. This greatly enhances the applicability and versatility of the device and enables it to meet the needs of different customers and different processing techniques. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the utility model;

[0023] Figure 2 This is a schematic structural diagram of the strip cutting assembly in an embodiment of the present utility model;

[0024] Figure 3 This is a partial three-dimensional view of the cutting strip assembly in an embodiment of the present utility model;

[0025] Figure 4 It is a partial three-dimensional view of the knife ring in the embodiment of the present utility model.

[0026] In the figure: 1-base; 2-storage box; 3-discharging port; 4-strip cutting assembly; 41-knife ring; 42-knife holder; 43-blade; 431-knife edge; 432-knife back; 5-push rod; 6-drive assembly; 61-drive motor; 62-rotating plate; 63-drive rod; 64-support plate; 7-slide groove; 8-first embedded groove; 9-second embedded groove; 10-support leg. DETAILED DESCRIPTION

[0027] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] like Figure 1-4 As shown, a columnar radish processing and cutting device includes a base 1, a storage box 2 is fixedly mounted on the top of the base 1, and the storage box 2 is a hollow structure with an open top, a discharge port 3 is opened through the bottom of one side wall of the storage box 2, a strip cutting assembly 4 is arranged in the discharge port 3, a through hole is opened on the side wall of the storage box 2 opposite to the discharge port 3, and the through hole is arranged directly opposite the discharge port 3, a push rod 5 is slidably arranged in the through hole, and the push rod 5 is transmission-connected to the driving assembly 6 at one end away from the storage box 2; the strip cutting assembly 4 includes a knife ring 41 fixedly arranged on the inner wall of the discharge port 3, a knife seat 42 is concentrically arranged inside the knife ring 41, and a plurality of blades 43 are evenly and detachably connected between the knife ring 41 and the knife seat 42.

[0029] With this design, first, the storage box 2 is used to place columnar radishes, and a discharge port 3 is provided on one side wall thereof for discharging the radishes after being cut into strips. A through hole is provided on the opposite side wall for the push rod 5 to slide, and the push rod 5 is driven by the driving component 6 to push the radish toward the strip cutting component 4 at the discharge port 3. The entire layout makes the process of radish placement, pushing and cutting, and then discharging natural and smooth, in line with the processing logic, and convenient for the operating workers to load, monitor the processing process, and collect the finished radish strips in an orderly manner, thereby ensuring the continuity of the processing process.

[0030] Secondly, a knife seat 42 is concentrically arranged inside the knife ring 41, and a number of detachable blades 43 are evenly distributed between the two. This structure enables the radish to be cut by multiple evenly distributed blades 43 when it is pushed by the push rod 5 through the cutting assembly 4, ensuring that the cut radish strips are more uniform in size, thickness, etc., which helps to improve product quality and enable it to better meet the product specification requirements of subsequent processing, packaging or sales.

[0031] Thirdly, the blade 43 is connected in a detachable manner. As the use time increases, the blade 43 will inevitably wear and become blunt. The detachable design makes it easy to remove the worn blade 43 and replace it with a new sharp blade 43 in time to ensure that the cutting effect is always good; and during daily cleaning and maintenance, the blade 43 can also be easily disassembled for thorough cleaning to remove residual radish residues and other impurities to prevent impurities from affecting the cutting effect or breeding bacteria and affecting hygiene.

[0032] Finally, since the blades 43 are evenly and detachably connected between the knife ring 41 and the knife seat 42, the number of installed blades 43 and the spacing between the blades 43 can be flexibly selected according to the actual requirements of different widths, thicknesses and other specifications of the radish strips, thereby changing the specifications of the strips to meet diverse market demands, greatly enhancing the applicability and versatility of the device, so that it can meet the needs of different customers and different processing techniques.

[0033] The driving assembly 6 includes a driving motor 61 fixedly arranged on the top of the base 1 , and a power output end of the driving motor 61 is transmission-connected to a rotating plate 62 .

[0034] In this embodiment, the driving motor 61 is a QS400 motor produced by Zhucheng Dayang Food Machinery Co., Ltd.

[0035] A driving rod 63 is eccentrically hinged on the rotating plate 62 , and the other end of the driving rod 63 is hinged to the push rod 5 .

[0036] In this design, first, the driving motor 61 outputs a rotational motion, which is connected to the rotating plate 62 through its power output end. The rotating plate 62 is eccentrically hinged to the driving rod 63, and the driving rod 63 is hinged to the push rod 5, thereby converting the rotational motion of the motor into the reciprocating linear motion of the push rod 5. This conversion method has a relatively simple and efficient structure, which enables the device to use the stable rotational power of the motor to drive the push rod 5 to perform reciprocating motion back and forth according to a predetermined rule, thereby meeting the need to push the columnar radish to the cutting assembly 4, and meeting the working requirements of intermittent pushing of materials during the radish processing and cutting process.

[0037] Secondly, by adjusting the speed of the driving motor 61, the reciprocating frequency of the push rod 5 can be changed, thereby facilitating the control of the pushing speed, and then accurately controlling the speed at which the push rod 5 pushes the radish, so that the device can better adapt to different processing scenarios and process requirements.

[0038] A support plate 64 is fixedly provided at a position of the base 1 close to the rotating plate 62 , and the support plate 64 is rotatably connected to the rotating plate 62 .

[0039] This design, first of all, provides reliable support, withstands the force generated by the rotation of the rotating plate 62, ensures its smooth rotation, ensures stable operation of the drive system and orderly progress of the strip cutting work; at the same time, maintains rotation accuracy, accurately defines the position of the rotating axis, reduces rotation deviation, and improves the strip cutting size accuracy and quality consistency.

[0040] Secondly, the force on the rotating plate 62 is shared, so that the force on the connection parts is more uniform and reasonable, the wear rate is slowed down, the service life of related parts is extended, and the maintenance and replacement costs are reduced.

[0041] Thirdly, it is convenient for positioning and installation, helping the staff to determine the position and connection method of the rotating plate 62, thereby improving assembly efficiency; it is conducive to debugging and optimization, and convenient for checking and solving potential problems during rotation.

[0042] Finally, it prevents the rotating plate 62 from accidentally disengaging from the drive system, avoids harm to the operator, ensures personal safety, reduces safety hazards such as device damage, and makes the device run more reliably.

[0043] A slide groove 7 is provided on the top of the base 1 , and a guide block is slidably provided in the slide groove 7 , and the top end of the guide block is fixedly connected to the push rod 5 .

[0044] This design, first of all, can ensure the accurate linear motion of the push rod 5, avoid its deviation and shaking, and ensure the accuracy and quality of the strip cutting operation; it can also improve the stability of the movement, and maintain a stable linear motion state even if it is disturbed by external forces or component vibrations.

[0045] Secondly, the force is dispersed to reduce component wear, extend the service life of related components and reduce maintenance costs; at the same time, it avoids direct friction damage between the push rod 5 and other components, ensuring its normal pushing function.

[0046] A plurality of first embedding grooves 8 and second embedding grooves 9 are respectively formed on the outer side walls of the knife ring 41 and the knife seat 42 that face each other.

[0047] The first embedding slots 8 and the second embedding slots 9 correspond to each other one by one, and the number of the first embedding slots 8 and the second embedding slots 9 is consistent with the maximum number of the blades 43.

[0048] The leading and trailing ends of the blade 43 are respectively engaged in the first embedding groove 8 and the second embedding groove 9 .

[0049] With this design, first, the first embedding groove 8 and the second embedding groove 9 correspond one to one, and the number is consistent with the maximum number of blades 43, which allows each blade 43 to have a corresponding accurate position when installed, ensuring that the blades 43 can be installed according to a preset uniform distribution method, ensuring the regularity and accuracy of the arrangement of the blades 43 between the knife ring 41 and the knife seat 42, so that the radish can be evenly cut when being pushed through the cutting assembly 4, which helps to improve the quality of the cutting strips and the consistency of specifications.

[0050] Secondly, the head and tail ends of the blade 43 are respectively clamped in the corresponding first embedding groove 8 and second embedding groove 9. This clamping method can firmly fix the blade 43 between the knife ring 41 and the knife seat 42, so that when cutting radishes, especially columnar radishes with a harder texture, the blade 43 is not prone to loosening or displacement, thereby ensuring the stability of the position of the blade 43 during the cutting process, continuously providing stable and reliable cutting force, and ensuring the smooth progress of the strip cutting operation.

[0051] Again, since the blade 43 is installed by being snapped into the first embedding groove 8 and the second embedding groove 9, the blade 43 can be disassembled and installed without complicated disassembly tools or tedious installation steps, which not only makes it easy to replace the damaged blade 43 but also makes it easy to remove the blade 43 for thorough cleaning, preventing impurities from affecting performance and breeding bacteria, thereby extending the service life. At the same time, the number of blades 43 can be flexibly increased or decreased, and the thickness of the cut strips can be quickly adjusted according to demand; it is also convenient to accurately adjust the spacing and more finely control the thickness of the cut strips to meet diverse needs.

[0052] Finally, the manufacturing process of forming the first embedding groove 8 and the second embedding groove 9 on the knife ring 41 and the knife seat 42 respectively is relatively simple, does not require complex high-precision processing equipment or special molding technology, can be easily mass-produced, and effectively reduces the manufacturing cost of these two components.

[0053] The blade 43 has a blade edge 431 on one side close to the push rod 5 and a blade back 432 on the other side.

[0054] This design can first achieve efficient cutting. The sharp blade 431 can easily cut into the radish, ensuring processing efficiency; it can also ensure the cutting quality, making the cutting surface flat and smooth. The cut radish strips are regular in shape and neat in edges, meeting the requirements of subsequent links.

[0055] Secondly, the force can be reasonably dispersed, and the blade back 432 can transmit the reaction force to prevent the blade 43 from breaking or deforming, thereby extending its life; it can also enhance the cutting stability, allowing the blade 43 to maintain a stable posture, and improve the uniformity and accuracy of the cutting strips.

[0056] Once again, the operation risk can be reduced, and the blade 431 faces away from the operator, reducing the possibility of injury; it is easy to install and identify, which is conducive to accurate installation of the blade 43, and also convenient for observing the wear and tear and timely processing.

[0057] The blade 431 is a convex arc structure, and the blade back 432 is a rectangular plane.

[0058] With this design, when the convex curved blade 431 cuts a radish, the force applied by the radish to the blade 431 is evenly distributed along the curved surface and then transmitted to the blade holder 42, the cutting ring 41, and other components via the rectangular plane of the blade back 432. This uniform force distribution prevents excessive force from being applied to a part of the blade 431, reducing the probability of damage such as chipping and curling of the blade 431. It also ensures that the reaction force on the blade back 432 is transmitted more smoothly and evenly, protecting the entire blade 43 and its connected components and extending the service life of the blade 43 and the entire slicing assembly 4.

[0059] Secondly, the blade back 432 is designed as a rectangular plane, and its flat structure provides stable support for the blade 431. During the cutting process, it cooperates with the convex arc-shaped blade 431 to make the overall force structure of the blade 43 more reasonable and stable; and the rectangular plane blade back 432 can better fit the blade holder 42 and other fixed parts to ensure that the blade 43 will not easily shake, twist, etc. during cutting, which will affect the cutting accuracy and stability, further enhancing the structural stability of the blade 43 during the cutting operation and ensuring the accuracy and continuity of the cutting action.

[0060] Thirdly, the convex arc-shaped blade 431 is less likely to accidentally protrude or be exposed when cutting radishes under normal working conditions, thereby reducing the possibility of operators accidentally touching the blade 431 when operating, observing or cleaning around the device, effectively reducing the risk of injury due to accidental contact with the blade 431, improving the operational safety of the entire processing process, and ensuring the personal safety of the staff.

[0061] Finally, the obvious shape difference between the blade 431 being a convex arc and the blade back 432 being a rectangular plane makes it convenient for operators to clearly distinguish the blade 431 and the blade back 432 during daily inspection and maintenance, and can quickly and accurately judge the wear of the blade 43; it also makes it convenient to correctly install the blade 43 between the knife ring 41 and the knife seat 42 according to the shape characteristics when installing the blade 43, avoiding operational errors such as reverse installation, thereby improving the convenience of equipment maintenance and operation.

[0062] Support legs 10 are fixedly connected to the four corners of the bottom of the base 1.

[0063] With this design, support legs 10 are provided at the four corners to form a stable support plane, which evenly shares the weight of the entire columnar radish processing and cutting device. Therefore, whether it is the structural weight of the device itself or the additional load generated by placing the radish during the processing, it can be smoothly transferred to the ground through the support legs 10, making it less likely for the device to shake or fall over during operation, thereby ensuring the stability of the overall structure of the device and facilitating the continuous and stable cutting work.

[0064] Working principle: First, place the radish to be processed and cut into strips in the storage box 2, ensuring that the radish is in the appropriate position and can be pushed to the discharge port 3 for cutting into strips by subsequent operations; at the same time, according to the requirements of the thickness of the strips, etc., select the appropriate number of blades 43, and respectively clamp the head and tail ends of the blades 43 into the first embedding groove 8 of the knife ring 41 and the second embedding groove 9 of the knife seat 42. Since the first embedding groove 8 and the second embedding groove 9 correspond to each other one by one and the number is consistent with the maximum number of blades 43, the blades 43 can be accurately installed and fixed, thereby preparing the strip cutting assembly 4.

[0065] The drive motor 61 is then started, and the power output of the drive motor 61 begins to rotate the rotating plate 62. A drive rod 63 is eccentrically hinged to the rotating plate 62. As the rotating plate 62 rotates, the drive rod 63 swings in response to the eccentric motion of the rotating plate 62. Because the other end of the drive rod 63 is hinged to the push rod 5, when the drive rod 63 swings, it pulls the push rod 5 to perform reciprocating linear motion along the chute 7. The chute 7 guides a guide block sliding therein, and the top of the guide block is fixedly connected to the push rod 5, thereby ensuring the smooth and directional movement of the push rod 5, allowing the push rod 5 to slide back and forth accurately within the through hole, pushing the radish toward the interior of the storage box 2.

[0066] When the push rod 5 pushes the radish toward the inside of the storage box 2, the radish will be pushed toward the discharge port 3. Since the strip cutting assembly 4 is provided in the discharge port 3, the radish will contact a plurality of blades 43 evenly distributed and detachably connected between the knife ring 41 and the knife seat 42. The radish continues to move forward under the thrust of the push rod 5. The blade 43 with a convex arc structure will cut into the radish. Because the side of the blade 43 close to the push rod 5 is the blade 431 and the other side is the blade back 432 (the blade back 432 is a rectangular plane), the radish will be cut into strips by the blade 431. The cut radish strips will be discharged from the storage box 2 through the discharge port 3, completing the strip cutting process of the columnar radish.

[0067] The driving motor 61 is continuously running, the rotating plate 62 is continuously rotating, and the driving rod 63 drives the push rod 5 to do reciprocating motion, so that the radishes in the storage box 2 can be pushed and cut one by one. The above-mentioned strip cutting process is repeated until all the radishes in the storage box 2 are processed into strips, completing the batch columnar radish strip cutting work.

[0068] The above are only preferred embodiments of the present invention and do not limit the present invention. Any modification to the technical solutions described in the aforementioned embodiments and any equivalent replacement of some of the technical features therein fall within the scope of protection of the present invention.

Claims

1. A columnar radish processing and cutting device, comprising a base (1), characterized in that: A storage box (2) is fixedly mounted on the top of the base (1), and the storage box (2) is a hollow structure with an opening on the top. A discharge port (3) is provided through the bottom of one side wall of the storage box (2), and a strip cutting assembly (4) is provided in the discharge port (3). A through hole is provided on the side wall of the storage box (2) opposite to the discharge port (3), and the through hole is arranged in a direction opposite to the discharge port (3). A push rod (5) is slidably arranged in the through hole, and the end of the push rod (5) away from the storage box (2) is connected to the driving assembly (6); the strip cutting assembly (4) includes a knife ring (41) fixedly arranged on the inner wall of the discharge port (3), a knife seat (42) is concentrically arranged inside the knife ring (41), and a plurality of blades (43) are evenly and detachably connected between the knife ring (41) and the knife seat (42).

2. The columnar radish processing and cutting device according to claim 1, characterized in that: The driving assembly (6) comprises a driving motor (61) fixedly arranged on the top of the base (1), and a power output end of the driving motor (61) is transmission-connected to a rotating plate (62).

3. The columnar radish processing and cutting device according to claim 2, characterized in that: A driving rod (63) is eccentrically hinged on the rotating plate (62), and the other end of the driving rod (63) is hinged to the push rod (5).

4. The columnar radish processing and cutting device according to claim 3, characterized in that: A support plate (64) is fixedly provided on the base (1) at a position close to the rotating plate (62), and the support plate (64) is rotatably connected to the rotating plate (62).

5. The columnar radish processing and strip cutting device according to claim 4, characterized in that: A slide groove (7) is provided on the top of the base (1), a guide block is slidably provided in the slide groove (7), and the top end of the guide block is fixedly connected to the push rod (5).

6. The columnar radish processing and strip cutting device according to claim 5, characterized in that: A plurality of first embedding grooves (8) and second embedding grooves (9) are respectively provided on the outer side walls opposite to each other of the knife ring (41) and the knife seat (42).

7. The columnar radish processing and strip cutting device according to claim 6, characterized in that: The first embedding grooves (8) and the second embedding grooves (9) correspond one to one, and the number of the first embedding grooves (8) and the second embedding grooves (9) is consistent with the maximum number of blades (43).

8. The columnar radish processing and strip cutting device according to claim 7, characterized in that: The leading and trailing ends of the blade (43) are respectively engaged in the first embedding groove (8) and the second embedding groove (9).

9. The columnar radish processing and strip cutting device according to claim 8, characterized in that: The side of the blade (43) close to the push rod (5) is a blade edge (431), and the other side is a blade back (432).

10. The columnar radish processing and strip cutting device according to claim 9, characterized in that: The blade (431) is a convex arc structure, and the blade back (432) is a rectangular plane.

Citation Information

Patent Citations

  • Radish strip cutting equipment

    CN212553949U