A slicing device for sweet potato processing
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-18
- Publication Date
- 2026-08-11
AI Technical Summary
然而,在实际应用中,该装置面临如何适应不同尺寸番薯的稳定进给问题,即在处理大小不一的番薯时,难以保持连续、平稳的喂入过程,可能影响切割质量和设备运行的稳定性
[0014]本公开实施例提供了一种番薯加工用切片装置,包括:切刀、进料槽、压紧板、导料滚筒、固定底座和调节螺杆,所述切刀设置于所述固定底座上,并与所述进料槽的出料端相对;所述进料槽位于所述固定底座上方,其底部设有导向槽;所述压紧板能滑动地设于所述进料槽的顶部;所述导料滚筒转动连接于所述进料槽的出口处;所述调节螺杆一端固定于所述压紧板一侧,另一端穿过所述进料槽并延伸至外部;其中,所述压紧板靠近所述进料槽的一侧设有弹性压垫,所述弹性压垫覆盖于所述压紧板的下表面;所述压紧板的侧面设有导向块,所述导向块滑动嵌入所述进料槽侧壁上的导向槽内;所述调节螺杆上设有外螺纹段,所述外螺纹段与所述进料槽顶部的螺孔配合。通过本公开实施例的方案,能够解决如何适应不同尺寸番薯的稳定进给。
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Figure CN224616450U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of food processing machinery technology, specifically to a slicing device for sweet potato processing. Background Technology
[0002] Sweet potato slicing devices are mechanical equipment used to uniformly cut sweet potatoes into thin slices. They typically include components such as conveying, positioning, cutting, and unloading, aiming to improve processing efficiency and slice consistency. However, in practical applications, this device faces the challenge of adapting to a stable feed of sweet potatoes of different sizes. That is, when processing sweet potatoes of varying sizes, it is difficult to maintain a continuous and stable feeding process, which may affect the cutting quality and the stability of equipment operation. Summary of the Invention
[0003] In view of the above, the present disclosure provides a slicing apparatus for sweet potato processing, which at least partially solves the problems existing in the prior art.
[0004] A sweet potato slicing device includes: a cutter, a feeding trough, a pressing plate, a guide roller, a fixed base, and an adjusting screw. The cutter is mounted on the fixed base and faces the discharge end of the feeding trough. The feeding trough is located above the fixed base and has a guide groove at its bottom. The pressing plate is slidably mounted on the top of the feeding trough. The guide roller is rotatably connected to the outlet of the feeding trough. One end of the adjusting screw is fixed to one side of the pressing plate, and the other end passes through the feeding trough and extends to the outside. An elastic pad is provided on the side of the pressing plate near the feeding trough, covering the lower surface of the pressing plate. A guide block is provided on the side of the pressing plate, slidingly embedded in a guide groove on the side wall of the feeding trough. The adjusting screw has an external thread section that engages with a threaded hole at the top of the feeding trough.
[0005] According to one embodiment, the top of the clamping plate is provided with a handle for manually adjusting the height of the clamping plate.
[0006] According to one embodiment, a spring is sleeved on the external thread section of the adjusting screw, one end of the spring abutting against the top of the feed trough and the other end abutting against the side of the clamping plate.
[0007] According to one embodiment, the guide block has an L-shaped structure, and the guide block matches the guide groove on the side wall of the feed trough.
[0008] According to one embodiment, the elastic pad is made of silicone, and the lower surface of the elastic pad is provided with a plurality of raised particles.
[0009] According to one embodiment, the guide roller includes a roller shaft and multiple sets of guide rollers, the guide rollers being evenly distributed on the roller shaft.
[0010] According to one embodiment, the cutter is fixed to the fixed base by a mounting bracket, the mounting bracket being adjustable in height in the vertical direction.
[0011] According to one embodiment, the end of the adjusting screw is provided with a limiting ring, which prevents the adjusting screw from being excessively screwed out.
[0012] According to one embodiment, the guide groove at the bottom of the feed trough is inclined at an angle of 10° to 20°. The side wall of the feed trough is provided with scale lines, which correspond to the rotation position of the adjusting screw. The bottom of the feed trough is provided with a support bracket, which is connected to the fixed base.
[0013] According to one embodiment, a connecting rod is provided between the elastic pad and the pressing plate, one end of the connecting rod is fixed to the lower surface of the pressing plate, and the other end is inserted into the elastic pad.
[0014] This disclosure provides a slicing device for sweet potato processing, comprising: a cutter, a feeding trough, a pressing plate, a guide roller, a fixed base, and an adjusting screw. The cutter is mounted on the fixed base and faces the outlet end of the feeding trough. The feeding trough is located above the fixed base and has a guide groove at its bottom. The pressing plate is slidably mounted on the top of the feeding trough. The guide roller is rotatably connected to the outlet of the feeding trough. One end of the adjusting screw is fixed to one side of the pressing plate, and the other end passes through the feeding trough and extends to the outside. An elastic pad is provided on the side of the pressing plate near the feeding trough, covering the lower surface of the pressing plate. A guide block is provided on the side of the pressing plate, slidingly embedded in a guide groove on the side wall of the feeding trough. The adjusting screw has an external thread section that engages with a threaded hole at the top of the feeding trough. This disclosure provides a solution for the stable feeding of sweet potatoes of different sizes. Attached Figure Description
[0015] In the accompanying drawings, unless otherwise specified, the same reference numerals throughout the various drawings denote the same or similar parts or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings depict only some embodiments disclosed in this application and should not be construed as limiting the scope of this application.
[0016] Figure 1 This is a perspective view of the present utility model;
[0017] Figure 2This is a schematic diagram of the structure of the clamping plate and the adjusting screw;
[0018] Figure 3 This is a magnified view of a portion of the limiting ring and spring.
[0019] In the diagram: 1. Cutter; 10. Limiting ring; 11. Scale line; 12. Support bracket; 2. Feed chute; 3. Pressure plate; 31. Elastic pressure pad; 311. Protruding particle; 32. Guide block; 33. Connecting rod; 4. Guide roller; 41. Roller shaft; 42. Guide roller; 5. Fixed base; 6. Adjusting screw; 61. External thread section; 7. Handle; 8. Spring; 9. Mounting bracket Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the embodiments of this disclosure will be further described in detail below with reference to the accompanying drawings. The illustrative implementation methods and descriptions of the embodiments of this disclosure are only used to explain the embodiments of this disclosure and are not intended to limit the embodiments of this disclosure.
[0021] like Figures 1-3 As shown, a sweet potato slicing device according to this application includes a cutter 1, a feeding trough 2, a pressing plate 3, a guide roller 4, a fixed base 5, and an adjusting screw 6. The cutter 1 is mounted on the fixed base 5 and faces the outlet end of the feeding trough 2, used to cut the sweet potatoes passing through the feeding trough 2. The feeding trough 2 is located above the fixed base 5, and its bottom is provided with a guide groove corresponding to the position of the cutter 1, used to guide the sweet potatoes passing through the feeding trough 2 to move precisely below the cutter 1. The pressing plate 3 is slidably mounted on the top of the feeding trough 2. During feeding, the pressing plate 3 can press the sweet potatoes inside the feeding trough 2 to prevent them from shifting or loosening during conveying. The guide roller 4 is rotatably connected to the outlet of the feeding trough 2. The guide roller 4 is in contact with the cutter 1, and by rotating, it conveys the sliced sweet potatoes to the collection area, realizing automated sorting and transfer. One end of the adjusting screw 6 is fixed to one side of the pressing plate 3, and the other end passes through the feeding groove 2 and extends to the outside. It is used to adjust the position of the pressing plate 3 by manual adjustment, so as to adapt to sweet potatoes of different sizes and improve slicing accuracy.
[0022] The pressing plate 3 has an elastic pressure pad 31 on the side near the feeding trough 2. The elastic pressure pad 31 covers the lower surface of the pressing plate 3, providing a soft and deformable contact surface during the pressing process to avoid damage to the sweet potatoes and ensure that the pressure is applied evenly to the sweet potatoes. The side of the pressing plate 3 has a guide block 32, which slides into the guide groove on the side wall of the feeding trough 2 to ensure the stability and guidance of the pressing plate 3 during the sliding process and prevent deviation from affecting the pressing effect. The adjusting screw 6 has an external thread section 61, which engages with the screw hole at the top of the feeding trough 2. The threaded connection allows the adjusting screw 6 to move the pressing plate 3 up and down, thereby adjusting the pressing force to accommodate sweet potatoes of different sizes.
[0023] This application adjusts the height of the pressing plate 3 by adjusting the screw 6, allowing the pressing plate 3 to adapt to the actual volume of the sweet potato, avoiding problems such as jamming due to excessively large sweet potatoes or ineffective pressing due to excessively small sweet potatoes. Simultaneously, the structural design of the pressing plate 3 and the elastic pressure pad 31 ensures stable feeding without affecting the integrity of the sweet potato, reducing breakage or uneven cutting caused by unstable sweet potatoes during operation. Combined with the guide groove of the feeding trough 2 and the guide roller 4, the overall design improves the stability and continuity of the sweet potato slicing process, effectively solving the technical problem of how to stably feed sweet potatoes of different sizes.
[0024] like Figure 2 As shown, in one embodiment, the pressure plate 3 of the sweet potato slicing device of this application is provided with a handle 7 on its top for manually adjusting the height of the pressure plate 3. The handle 7 is connected to the top of the pressure plate 3, facilitating user operation and allowing adjustment of the pressure plate 3's position by rotation or vertical movement. This structural design improves the adaptability of the equipment in processing sweet potatoes of different sizes, allowing the pressure plate 3 to fit more tightly against the feed trough 2, thereby ensuring the stability of the sweet potatoes during slicing. The connection between the handle 7 and the pressure plate 3 can be fixed or detachable, depending on the specific usage requirements. By rationally setting the position and size of the handle 7, operation becomes more convenient, improving the human-machine interaction efficiency of the equipment.
[0025] For example, the handle 7 is fixedly installed at the top center of the pressure plate 3, and is connected to the pressure plate 3 by welding or screwing. It has an overall L-shaped structure, with one end perpendicularly connected to the pressure plate 3 and the other end extending outwards for operation. During adjustment, the operator holds the handle 7 and applies force to move it vertically, causing the pressure plate 3 to slide up and down. Simultaneously, the guide block 32 slides within the guide groove on the side wall of the feed trough 2, ensuring the stability of the pressure plate 3's movement.
[0026] like Figure 2 and Figure 3 As shown in one embodiment, a slicing device for sweet potato processing according to this application is characterized in that a spring 8 is sleeved on the external thread section 61 of the adjusting screw 6. One end of the spring 8 abuts against the top of the feed trough 2, and the other end abuts against the side of the pressing plate 3. The spring 8 is disposed on the external thread portion of the adjusting screw 6 and forms a contact fit with the feed trough 2 and the pressing plate 3. The top of the feed trough 2 provides a support point for one end of the spring 8, while the side of the pressing plate 3 serves as the action surface for the other end of the spring 8, enabling the spring 8 to maintain a certain elastic force during the movement of the adjusting screw 6. This structural design helps to enhance the stable pressing effect of the pressing plate 3 on the sweet potato.
[0027] Specifically, the adjusting screw 6 extends from the side of the pressure plate 3 through the feed trough 2, and its external threaded section 61 engages with a threaded hole at the top of the feed trough 2 to achieve height adjustment. A spring 8 is fitted onto the external threaded section 61 of the adjusting screw 6, with one end abutting against the inner wall at the top of the feed trough 2 and the other end conforming to the groove structure on the side of the pressure plate 3. After the spring 8 is installed, it provides elastic feedback during the movement of the adjusting screw 6, thereby maintaining close contact between the pressure plate 3 and the sweet potato.
[0028] like Figure 1 As shown, in one embodiment, the guide block 32 of the sweet potato slicing device of this application has an L-shaped structure, and the guide block 32 matches the guide groove on the side wall of the feeding trough 2. The guide block 32 is installed on the side of the pressing plate 3, and its L-shaped structure achieves a sliding fit with the guide groove on the inner side of the feeding trough 2, ensuring that the pressing plate 3 maintains stable movement during adjustment. This design can prevent the pressing plate 3 from shifting or getting stuck, ensuring its smooth operation inside the feeding trough 2. The guide block 32 forms a sliding contact with the side wall of the feeding trough 2, enhancing the guiding effect between components and improving the overall operational stability of the device.
[0029] Specifically, the L-shaped structure of the guide block 32 includes a vertically extending portion and a horizontally embedded portion that fits tightly against the inner wall of the guide groove, while the vertical portion is connected to the side wall of the pressure plate 3. The guide block 32 is positioned on the side of the pressure plate 3 near the feed trough 2, and is entirely embedded inside the side wall of the feed trough 2, ensuring that the guide block 32 can slide smoothly along the guide groove. This structural design allows for a good sliding fit between the guide block 32 and the guide groove, preventing the pressure plate 3 from shaking or deviating during vertical adjustment.
[0030] like Figure 2As shown, in one embodiment, the elastic pressure pad 31 of the sweet potato slicing device of this application is made of silicone. This material has good flexibility and resilience, and can effectively adapt to the surface of sweet potatoes of different shapes, improving the clamping effect. The elastic pressure pad 31 covers the lower surface of the clamping plate 3 and contacts the inside of the feed trough 2 to enhance the clamping force on the sweet potato and prevent it from sliding or shifting during the cutting process. The lower surface of the elastic pressure pad 31 is provided with several raised particles 311. These particle structures can increase the friction with the sweet potato skin, and at the same time provide a more uniform pressure distribution when pressed, improving the slicing stability and cutting quality.
[0031] Specifically, the elastic pressure pad 31 is directly bonded or snapped to the bottom of the pressure plate 3, so that it fits tightly against the planar structure of the pressure plate 3. The raised particles 311 are manufactured integrally with the elastic pressure pad 31 by injection molding. The particles are distributed on the surface of the pressure pad, forming a micro-raised structure with a certain height and density, which allows them to better embed into the surface of the sweet potato during the pressing process, thereby improving friction and ensuring stability during cutting.
[0032] like Figure 1 As shown, in one embodiment, the bottom of the feed trough 2 is provided with a guide groove, which is inclined to improve the smoothness of material conveying. The angle formed between the guide groove and the horizontal plane is in the range of 10° to 20°, which helps to ensure that the sweet potato slides smoothly into the cutter 1 along the set direction and avoids material jamming. At the same time, this inclined structure can enhance the flow stability of the material, improve slicing efficiency and product quality. The bottom guide groove design of the feed trough 2 ensures that the sweet potatoes entering the device maintain a consistent feeding posture, providing stable conditions for subsequent slicing.
[0033] Specifically, the bottom guide groove of the feeding trough 2 of the sweet potato slicing device of this application is achieved by bending the side wall of the trough body downward to form a certain inclination angle, which is between 10° and 20°, so that the sweet potato automatically slides towards the cutting blade 1 area under the action of gravity, without the need for an additional driving device. The guide groove is integrally formed with the main body of the feeding trough 2 to ensure structural stability and continuity.
[0034] like Figure 1As shown, in one embodiment, the guide roller 4 of a sweet potato slicing device of this application includes a roller shaft 41 and multiple guide rollers 42. The guide rollers 42 are evenly distributed on the roller shaft 41, making the overall structure of the roller more stable and facilitating docking with the outlet position of the feed trough 2. The guide rollers 42 are fixed on the roller shaft 41 by bearings or other rotating components and can achieve rolling motion driven by the roller shaft 41. The guide roller 4 is located at the outlet of the feed trough 2, corresponding to the output end of the cutter 1, so that the sliced sweet potatoes can be smoothly transported to the subsequent collection area. The roller shaft 41 is supported on a fixed base 5 or bracket by bearings at both ends to ensure stability during operation.
[0035] For example, the guide roller 42 is connected to the outer surface of the drum shaft 41 by welding or screw fixing. Multiple guide rollers 42 are equidistantly distributed along the length of the drum shaft 41, thereby ensuring continuous bearing and conveying of the sliced material. The overall assembly of the guide roller 4 must ensure that it rotates flexibly and maintains an appropriate gap with the outlet edge of the feed chute 2 so that the material can smoothly enter the drum.
[0036] like Figure 1 As shown, in one embodiment, the cutter 1 of the sweet potato slicing device of this application is fixed to the fixed base 5 by a mounting frame 9, the mounting frame 9 being adjustable in height in the vertical direction. The mounting frame 9 and the fixed base 5 are fixed together by a connecting structure, thereby realizing the adjustment of the position of the cutter 1. This design helps to adapt to sweet potato raw materials of different sizes, ensuring that the relative position between the cutter 1 and the feed chute 2 remains stable during the cutting process, improving slicing accuracy and processing efficiency. At the same time, the mounting frame 9 makes the replacement and maintenance of the cutter 1 more convenient, improving the applicability and operability of the overall equipment.
[0037] For example, the mounting frame 9 can adopt an upper and lower guide column structure. The guide columns are fixed on the fixed base 5, while the mounting frame 9 is slidably set on the outside of the guide columns and positioned by locking bolts. The cutter 1 is installed at the bottom of the mounting frame 9. As the height of the mounting frame 9 is adjusted, the position of the cutter 1 changes accordingly, thereby meeting the needs of slicing sweet potatoes of different thicknesses.
[0038] like Figure 2 As shown, in one embodiment, the adjusting screw 6 of the sweet potato slicing device of this application is provided with a limiting ring 10 at its end to prevent the adjusting screw 6 from being excessively screwed out. The limiting ring 10 is installed on the outer end of the adjusting screw 6 and is integrally formed with the adjusting screw 6 or fixedly connected by fasteners, ensuring that it will not disengage from the structural constraints of the feed trough 2 during adjustment. The combination of the limiting ring 10 and the adjusting screw 6 makes the adjustment operation stable and reliable, avoiding abnormal equipment operation or damage to parts due to excessive rotation.
[0039] For example, after the adjusting screw 6 passes through the through hole provided at the top of the feed trough 2, the limiting ring 10 is embedded at the end of the adjusting screw 6 and located outside the feed trough 2. It achieves axial positioning by contacting the top edge of the feed trough 2, thereby limiting the maximum rotation stroke of the adjusting screw 6.
[0040] like Figure 1 and Figure 2 As shown, in one embodiment, the feeding trough 2 of the sweet potato slicing device of this application has a scale line 11 on its side wall, which corresponds to the rotation position of the adjusting screw 6. The scale line 11 visually reflects the height change of the pressing plate 3, thereby assisting the operator in accurately adjusting the material compaction level inside the feeding trough 2. By setting the scale line 11 on the side wall of the feeding trough 2, observation and control are facilitated, ensuring that the sweet potato remains stable during the slicing process. The adjusting screw 6 passes through the feeding trough 2 and is connected to the pressing plate 3. Its rotational movement can drive the pressing plate 3 to move along the guide groove, thereby adjusting the clamping force on the sweet potato.
[0041] Specifically, the scale lines 11 are vertically distributed along the side wall of the feed trough 2 and match the meshing part of the external thread section 61 of the adjusting screw 6. When the adjusting screw 6 rotates, the movement of the external thread section 61 will cause the clamping plate 3 to slide up and down along the guide block 32. At the same time, the scale lines 11 will display the corresponding height value synchronously with the rotation position of the adjusting screw 6, so as to accurately control the clamping force.
[0042] like Figure 1 As shown in one embodiment, the bottom of the feeding trough 2 of the sweet potato slicing device of this application is provided with a support bracket 12, which is connected to the fixed base 5. The support bracket 12 stabilizes the feeding trough 2, ensuring its stability during operation and preventing displacement due to equipment vibration or material impact. The fixed base 5 serves as the basic structure of the entire device, providing a stable mounting platform for the feeding trough 2 and related components. The support bracket 12 is connected to the fixed base 5 by welding, screwing, or other fixing methods, ensuring the overall structural strength and durability. Simultaneously, this arrangement helps to distribute the load on the feeding trough 2, improving the stability and service life of the equipment.
[0043] Specifically, the support bracket 12 can be made of metal profile, with one end fixed to the bottom surface of the fixed base 5 by bolts, and the other end tightly fitted to the bottom edge of the feed trough 2 to form a stable connection. This connection method ensures structural strength, facilitates disassembly and maintenance in the future, and does not change the original installation position and functional layout of the feed trough 2.
[0044] like Figure 2As shown, in one embodiment, a connecting rod 33 is provided between the elastic pressure pad 31 and the pressing plate 3 of the sweet potato processing slicing device of this application. One end of the connecting rod 33 is fixed to the lower surface of the pressing plate 3, and the other end is inserted into the elastic pressure pad 31. This structure connects the elastic pressure pad 31 and the pressing plate 3 through the connecting rod 33, ensuring that the elastic pressure pad 31 can move synchronously with the pressing plate 3 during use, while maintaining the stability and support of the elastic pressure pad 31. The setting of the connecting rod 33 can enhance the connection strength between the two and help to distribute the pressure, so that the elastic pressure pad 31 can play a more even role when under force. This design also facilitates the replacement of the elastic pressure pad 31 in the future, improving the maintenance convenience of the equipment.
[0045] For example, in actual installation, the connecting rod 33 can be made of metal. One end is fixed to the bottom of the pressure plate 3 by welding or threaded connection, while the other end is tightly embedded inside the elastic pressure pad 31 to ensure that it does not detach during movement. The connecting rod 33 is located in the lower area of the pressure plate 3, close to the edge of the elastic pressure pad 31, to ensure that its stress point corresponds to the working surface of the elastic pressure pad 31, thereby optimizing the overall force distribution.
[0046] In actual operation, when this device is used, sweet potatoes are placed inside the feeding trough 2. The sweet potatoes are guided into the cutter 1 by the guide groove at the bottom of the feeding trough 2. At the same time, the height of the pressing plate 3 is adjusted by the adjusting screw 6, so that the elastic pressure pad 31 is in close contact with the surface of the sweet potato to keep it stable and prevent displacement during the cutting process. The guide block 32 on the side of the pressing plate 3 ensures that it slides smoothly along the guide groove. The guide roller 4 is located at the outlet of the feeding trough 2 and transports the sliced sweet potatoes to the collection area, thereby realizing the automatic slicing and conveying function of sweet potatoes.
[0047] The specific embodiments described above further illustrate the purpose, technical solutions, and beneficial effects of the embodiments of this disclosure. It should be understood that the above descriptions are merely specific embodiments of the embodiments of this disclosure and are not intended to limit the scope of protection of the embodiments of this disclosure. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the embodiments of this disclosure should be included within the scope of protection of the embodiments of this disclosure.
Claims
1. A slicing device for sweet potato processing, characterized in that, include: The device comprises a cutter (1), a feed chute (2), a clamping plate (3), a guide roller (4), a fixed base (5), and an adjusting screw (6). The cutter (1) is mounted on the fixed base (5) and is opposite to the outlet end of the feed chute (2). The feed chute (2) is located above the fixed base (5) and has a guide groove at its bottom. The clamping plate (3) is slidably mounted on the top of the feed chute (2). The guide roller (4) is rotatably connected to the outlet of the feed chute (2). One end of the adjusting screw (6) is fixed to the clamping plate. (3) One end passes through the feed trough (2) and extends to the outside; wherein, the pressing plate (3) is provided with an elastic pressure pad (31) on the side near the feed trough (2), and the elastic pressure pad (31) covers the lower surface of the pressing plate (3); the side of the pressing plate (3) is provided with a guide block (32), and the guide block (32) slides into the guide groove on the side wall of the feed trough (2); the adjusting screw (6) is provided with an external thread section (61), and the external thread section (61) cooperates with the screw hole at the top of the feed trough (2).
2. The slicing device for sweet potato processing according to claim 1, characterized in that: The pressure plate (3) is provided with a handle (7) on its top for manually adjusting the height of the pressure plate (3).
3. The slicing device for sweet potato processing according to claim 1, characterized in that: A spring (8) is fitted on the external thread section (61) of the adjusting screw (6). One end of the spring (8) abuts against the top of the feed trough (2), and the other end abuts against the side of the pressing plate (3).
4. The slicing device for sweet potato processing according to claim 1, characterized in that: The guide block (32) has an L-shaped structure and matches the guide groove on the side wall of the feed trough (2).
5. A slicing device for sweet potato processing according to claim 1, characterized in that: The elastic pad (31) is made of silicone, and the lower surface of the elastic pad (31) is provided with a number of protruding particles (311).
6. The slicing device for sweet potato processing according to claim 1, characterized in that: The guide roller (4) includes a roller shaft (41) and multiple sets of guide rollers (42), which are evenly distributed on the roller shaft (41).
7. A slicing device for sweet potato processing according to claim 1, characterized in that: The cutter (1) is fixed to the fixed base (5) by a mounting bracket (9), and the mounting bracket (9) can be adjusted in height in the vertical direction.
8. A slicing device for sweet potato processing according to claim 1, characterized in that: The end of the adjusting screw (6) is provided with a limiting ring (10), which prevents the adjusting screw (6) from being excessively screwed out.
9. A slicing device for sweet potato processing according to claim 1, characterized in that: The guide groove at the bottom of the feed trough (2) is inclined at an angle of 10° to 20°. The side wall of the feed trough (2) is provided with a scale line (11), which corresponds to the rotation position of the adjusting screw (6). The bottom of the feed trough (2) is provided with a support bracket (12), which is connected to the fixed base (5).
10. A slicing device for sweet potato processing according to claim 1, characterized in that: A connecting rod (33) is provided between the elastic pad (31) and the pressing plate (3). One end of the connecting rod (33) is fixed to the lower surface of the pressing plate (3), and the other end is inserted into the elastic pad (31).