一种辣椒干旋转式切片粉碎机
By designing a rotary chili slicer and shredder, which uses a gear-driven roller and cutter structure, the chili slicing and shredding are integrated, solving the problems of high purchase cost and high power consumption of traditional equipment, and making it suitable for large-scale factory production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QINGDAO SINOPAPRIKA SPICE CO LTD
- Filing Date
- 2025-08-13
- Publication Date
- 2026-07-17
AI Technical Summary
In traditional chili powder production, household grinders are not suitable for factory use, resulting in high purchase costs and high power consumption. Furthermore, traditional factory processing methods require multiple machines, increasing equipment and energy consumption.
Design a rotary chili slicer and shredder, which adopts a gear-driven roller and cutter structure to achieve integrated chili slicing and shredding, and uses a partition structure to discharge the chilies in segments.
It reduces purchase costs, lowers power consumption, improves processing efficiency, expands the scope of application, and is suitable for factory-scale production.
Smart Images

Figure CN224507248U_ABST
Abstract
Claims
1. A rotary slicing and pulverizing machine for dried red pepper, characterized in that, include: The base box (20) is a hollow box with an open top. The base box (20) is semi-capsule shaped. A rectangular discharge port is provided at the bottom of the cavity of the base box (20). A motor (23) is fixedly connected to the front wall of the base box (20). The processing structure is set inside the cavity of the base box (20) for processing dried chili peppers. The processing structure includes: a support plate (31), a first rotating roller (32), a second rotating roller (33), a cutter (34), and a segmenting knife (36). The support plate (31) is symmetrically fixedly connected to both sides of the cavity of the base box (20). The first rotating roller (32) is rotatably connected to the symmetrical support plate (31) on one side. The second rotating roller (33) is rotatably connected to the symmetrical support plate (31) on the other side. The cutter (34) is fixedly connected to the outer wall of the first rotating roller (32). The segmenting knife (36) is rotatably connected to the rear wall of the cavity of the base box (20). The segmenting knife (36) can cut the dried chili peppers that enter the cavity of the base box (20).
2. The rotary type slicing and pulverizing machine for dried red pepper according to claim 1, wherein The support plate (31) is a plate with an opening on the side wall. The first roller (32) and the second roller (33) are cylindrical. The opening on the side wall of the support plate (31) can be adapted to the corresponding diameter of the first roller (32) and the second roller (33). The cutter (34) is a ring blade. Multiple identical cutters (34) are arranged in a linear array on the wall of the first roller (32). Multiple identical cutters (34) are also arranged on the arc surface of the second roller (33). Each cutter (34) on the wall of the first roller (32) and the second roller (33) is staggered and has a gap. The segmented cutter (36) is a cross-shaped blade.
3. The rotary type slicing and pulverizing machine for dried red pepper according to claim 1, wherein The processing structure also includes a drive gear (30), a driven gear (35), a feed pipe (22), and a drain pipe (37). The drive gear (30) is rotatably connected to the front wall of the cavity of the base box (20). The output end of the motor (23) passes through the wall of the base box (20) through a coupling to drive the drive gear (30) to rotate. The driven gear (35) is fixedly connected to the front wall of the segmenting cutter (36). The feed pipe (22) is fixedly connected to the rear wall of the base box (20) in parallel. The drain pipe (37) is arranged in parallel inside the cavity of the base box (20).
4. The rotary dicer of claim 3, wherein The driving gear (30) is gear-shaped, and the driving gear (30) and the driven gear (35) are the same size. The driving gear (30) is located directly in front of the driven gear (35). The front and rear arc surfaces of the second roller (33) and the first roller (32) are respectively fixedly connected with gear teeth. The outer wall surface of the driving gear (30) can simultaneously mesh with the gear teeth on the front wall surfaces of the second roller (33) and the first roller (32). The outer wall surface of the driven gear (35) can simultaneously mesh with the gear teeth on the second roller (33) and the first roller (32). The gear teeth mesh on the rear wall, the feed pipe (22) is a concave cross-section pipe, and two oblique feed pipes (22) are arranged parallel to each other on the rear wall of the base box (20). The feed pipe (22) can pass through the wall of the base box (20). The drain pipe (37) is also a concave cross-section pipe. The bottom of the upper drain pipe (37) can be fixedly connected to the top of the lower drain pipe (37). The rear wall of the two drain pipes (37) can be aligned with the front end of the two feed pipes (22). The segmenting knife (36) is located between the drain pipe (37) and the feed pipe (22).
5. The rotary dicer of claim 3, wherein The processing structure also includes a top cover (21), a partition (38), and a scraper (39). The top cover (21) is rotatably connected to the top of the base box (20). The top cover (21) is installed on the top of the base box (20) by a hinge. The top of the uppermost pipe (37) is fixedly connected to the bottom of the top cover (21). The partition (38) is symmetrically fixedly connected to the cavity of the base box (20). The front and rear walls of the partition (38) can be connected to the front and rear walls of the cavity of the base box (20). The symmetrical partitions (38) are located directly above the second roller (33) and the cutter (34), respectively. The partition (38) is a rectangular plate. The scraper (39) is fixedly connected to the bottom of each partition (38). The scraper (39) is a rectangular rod. Multiple identical scrapers (39) are provided at the bottom of each partition (38). Each scraper (39) is located between adjacent cutters (34).
6. The rotary dicer of claim 5, wherein, The partition (38) has a partition structure on its wall surface. The partition structure includes a slot (40), a partition box (41), a locking rod (42), and a rotating cover (24). The slot (40) is opened on the top of each partition (38). The partition box (41) is snapped between the symmetrical partitions (38). The locking rod (42) is symmetrically fixedly connected to the top of the partition box (41). The rotating cover (24) is rotatably connected to the front wall of the base box (20).
7. The rotary dicer of claim 6, wherein, The slot (40) is a rectangular slot adapted to the size of the card rod (42). The partition box (41) is a tube with a U-shaped cross section. The opening on the rear wall of the partition box (41) can be aligned with the front ends of the two pipes (37). The partition box (41) is located above the cutter (34) and the second roller (33). The base box (20) wall at the rotating cover (24) has a circular slot. The rotating cover (24) can cover the circular slot. The circular slot is located at the front opening of the partition box (41). The cavity of the partition box (41) has a slope that is inclined forward.