Oblique microtome
By using an alternating rotating cutter and conveyor belt design, the problems of poor cutting effect and low efficiency of existing beveling machines are solved, achieving efficient, automated and safe food cutting, and ensuring smooth and stable cut surfaces.
Patent Information
- Application Number
- CN202410078875.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-19
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2044-01-19
AI Technical Summary
Existing beveling machines suffer from poor cutting results and low efficiency, insufficient stability and precision, and the cut surface is not smooth enough.
Design a slicing machine that uses staggered first and second cutters to cut by rotation and a conveyor belt to achieve automated cutting. A positioning plate and meshing drive are used to ensure cutting accuracy and stability.
It improves the efficiency and smoothness of food cutting, realizes automated cutting, ensures the safety and reliability of the equipment, and reduces manufacturing costs.
Smart Images

Figure CN120347832B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of food cutting, and particularly relates to a beveling machine. BACKGROUND
[0002] In the prior art, food cutting is generally divided into straight cutting and beveling, wherein straight cutting refers to vertical cutting of food by a cutter, and beveling refers to cutting of food at a certain angle by a cutter. Since beveling can obtain food pieces with larger cutting surfaces and thinner food, it is beneficial to flavoring and shortening of cooking time, and thus beveling is more popular when the size of food is small. Generally, food cutting is manually processed by a chef, which is low in efficiency and difficult to control the thickness of food cutting and ensure the uniformity of food cutting. With the continuous maturity of food machinery and the rapid development of the market, beveling machines have been widely applied to large and medium-sized restaurants, hotels, food processing and manufacturing factories, and have improved the efficiency of food processing and saved costs.
[0003] However, the existing beveling machine generally comprises a plurality of lower blades arranged at intervals and inclined, a plurality of upper blades inserted into the lower blades and inclined, and the upper blades are arranged to be liftable. During cutting, food is placed on the lower blades, the upper blades are then driven to press down on the lower blades, and then the lower blades are driven to move horizontally and reciprocally to divide the food into pieces. After the food is cut, the upper blades are reset. However, the stability and precision of this beveling machine are poor, the cutting surface is not smooth enough, and the upper blades need to be reset and pressed down before each cutting, which leads to low cutting efficiency.
[0004] The technical problem to be solved by the present application is how to solve the problems of poor cutting effect and low efficiency of the existing beveling machine. SUMMARY
[0005] In order to overcome the shortcomings of the prior art, the present application aims to provide a beveling machine with good cutting effect and high efficiency.
[0006] The technical solution adopted by the present application is as follows: a beveling machine, comprising a rack, a conveying mechanism and a cutting mechanism installed on the rack;
[0007] The conveying mechanism comprises an inlet conveying belt and an outlet conveying belt arranged in sequence;
[0008] The cutting mechanism is arranged between the inlet conveying belt and the outlet conveying belt, and comprises a first cutting assembly and a second cutting assembly arranged oppositely;
[0009] The first cutting assembly comprises a first cutter shaft rotatably connected with the rack, and a plurality of first cutting knives and first partitions sleeved on the first cutter shaft. The first cutter shaft is arranged above the feeding conveyor belt and the discharging conveyor belt. The first cutting knives are arranged obliquely with the first cutter shaft. The first cutter shaft drives the first cutting knives to rotate. Each first partition is arranged alternately and spaced apart in parallel with each first cutting knife.
[0010] The second cutting assembly comprises a second cutter shaft rotatably connected with the rack, and a plurality of second cutting knives and second partitions sleeved on the second cutter shaft. The second cutter shaft is arranged below the feeding conveyor belt and the discharging conveyor belt. The second cutting knives are arranged obliquely with the second cutter shaft. The second cutter shaft drives the second cutting knives to rotate. Each second partition is arranged alternately and spaced apart in parallel with each second cutting knife. Each second cutting knife is arranged alternately and spaced apart in parallel with each first cutting knife.
[0011] The oblique cutting machine provided by the application can realize continuous cutting, which is beneficial to improving the efficiency of oblique cutting of food materials. In addition, the first cutting knives and the second cutting knives are in a rotating state during cutting, so that the cutting surface of the food materials is smoother. The first cutting knives and the second cutting knives are limited by the first partitions and the second partitions, respectively, so that the structure is more reliable and stable.
[0012] In addition, the food materials are sent to the cutting mechanism by the feeding conveyor belt for cutting, and then the cut food materials are conveyed away by the discharging conveyor belt, which is beneficial to realizing automatic cutting of food materials and avoiding manual feeding and taking of materials in the working range of the cutting mechanism, thereby being safer and more reliable.
[0013] In some embodiments, the edges of the first cutting knives and the second cutting knives overlap in the axial direction of the first cutting knives.
[0014] By adopting the above technical solutions, the first cutting knives and the second cutting knives can be ensured to cooperate to cut off the food materials.
[0015] In some embodiments, the first cutting assembly further comprises two first positioning plates fixed on the rack. The two first positioning plates are arranged oppositely on both sides of the first cutter shaft. The first positioning plates are provided with first clamping grooves and first positioning ribs. The first clamping grooves are arranged in parallel with the first partitions. The first partitions are provided with first clamping blocks matched with the first clamping grooves. The first partitions are provided with first positioning grooves matched with the first positioning ribs.
[0016] By adopting the above technical solutions, the first clamping grooves on the first positioning plates and the first clamping blocks on the first partitions, and the first positioning ribs on the first positioning plates and the first positioning grooves on the first partitions can be matched to better fix the first partitions, so that the positioning is more accurate and the first partitions are convenient to disassemble and assemble.
[0017] In some embodiments, the second cutting assembly further comprises two second positioning plates fixed on the frame, the two second positioning plates are oppositely arranged on two sides of the second cutter shaft, the second positioning plate is provided with a second clamping groove and a second positioning rib, the second clamping groove is arranged in parallel with the second partition plate, the second partition plate is provided with a second clamping block matched with the second clamping groove, and the second partition plate is provided with a second positioning groove matched with the second positioning rib.
[0018] By adopting the above technical scheme, the second partition plate can be better fixed by matching the second clamping groove on the second positioning plate with the second clamping block on the second partition plate, and matching the second positioning rib on the second positioning plate with the second positioning groove on the second partition plate, so that the positioning is more accurate, and the second partition plate is convenient to disassemble and assemble.
[0019] In some embodiments, the first cutting knife is provided with a first partition plate on one side close to the second cutting knife, and the second cutting knife is provided with a second partition plate on one side close to the first cutting knife.
[0020] By adopting the above technical scheme, the first partition plate and the second partition plate can be prevented from interfering with the cutting of food materials.
[0021] In some embodiments, the surface of the first cutter shaft is provided with a first driving tooth, the inner hole of the first cutting knife is provided with a first driven tooth matched with the first driving tooth for transmission, the surface of the second cutter shaft is provided with a second driving tooth, and the inner hole of the second cutting knife is provided with a second driven tooth matched with the second driving tooth for transmission.
[0022] By adopting the above technical scheme, the first cutter shaft and the first cutting knife are matched and transmitted, the transmission is more accurate, and the torque can be better transmitted, so that the first cutting knife has sufficient cutting force. Similarly, the second cutter shaft and the second cutting knife are matched and transmitted, the transmission is more accurate, and the torque can be better transmitted, so that the second cutting knife has sufficient cutting force and can better cut food materials.
[0023] In some embodiments, the power mechanism further comprises a rotating power member, a first transmission assembly and a second transmission assembly, the rotating power member is installed on the frame, the rotating power member drives the first cutter shaft and the second cutter shaft to rotate through the first transmission assembly, and the rotating power member drives the driving shaft of the feeding conveyor belt and the driving shaft of the discharging conveyor belt to rotate through the second transmission assembly.
[0024] By adopting the above technical scheme, the cutting mechanism and the conveying mechanism are simultaneously driven by one rotating power member, which can ensure the synchronization of the conveying mechanism and the cutting mechanism, and can save the number of power components and reduce the cost of equipment manufacturing.
[0025] In some embodiments, the first transmission assembly comprises a first sprocket, a second sprocket, a first gear and a second gear, the first sprocket is fixedly connected with the output end of the rotating power member, the second sprocket is fixedly connected with one end of the second cutter shaft, the first sprocket and the second sprocket are connected through a chain transmission, the first gear is sleeved on one end of the second cutter shaft close to the second sprocket, the second gear is sleeved on one end of the first cutter shaft close to the second sprocket, and the first gear and the second gear are in meshing transmission.
[0026] By adopting the above technical scheme, the chain sprocket and the chain are matched, and the gear is in meshing transmission, so that the transmission is more efficient and accurate, and the torque can be better transmitted.
[0027] In some embodiments, the second transmission assembly comprises a third gear, a fourth gear and a fifth gear, the third gear is sleeved on one end of the second cutter shaft away from the second sprocket, the fourth gear is sleeved on the driving shaft of the feeding conveyor belt, the fifth gear is sleeved on the driving shaft of the discharging conveyor belt, and the third gear, the fourth gear and the fifth gear are in meshing transmission.
[0028] By adopting the above technical scheme, the gear is in meshing transmission, so that the transmission is more efficient and accurate, and the torque can be better transmitted.
[0029] In some embodiments, the second transmission assembly further comprises a sixth gear and a seventh gear rotatably arranged on the rack, the sixth gear is arranged between the third gear and the fourth gear, and the sixth gear and the third gear and the fourth gear are in meshing transmission, and the seventh gear is arranged between the third gear and the fifth gear, and the seventh gear and the third gear and the fifth gear are in meshing transmission.
[0030] By adopting the above technical scheme, the gear is in meshing transmission, so that the transmission is more efficient and accurate, and the torque can be better transmitted. BRIEF DESCRIPTION OF DRAWINGS
[0031] Figure 1 is a structure schematic view of a slicing machine of a preferred embodiment of the present application;
[0032] Figure 2 is Figure 1 is another visual structure schematic view of the slicing machine shown in FIG. 1, wherein the protective cover is not shown;
[0033] Figure 3 is Figure 2 is another visual structure schematic view of the slicing machine shown in FIG. 1, wherein the protective cover is not shown;
[0034] Figure 4 is Figure 2 is a structure schematic view of a cutting mechanism in the slicing machine shown in FIG. 1;
[0035] Figure 5 is Figure 4Structure diagram of the first cutting assembly in the cutting mechanism shown;
[0036] Figure 6 For Figure 5 Structure exploded diagram of the first cutting assembly in the cutting mechanism shown;
[0037] Figure 7 For Figure 4 Structure diagram of the second cutting assembly in the cutting mechanism shown;
[0038] In the figure: 100, beveling machine; 10, rack; 20, conveying mechanism; 21, feeding conveyor belt; 22, discharging conveyor belt; 30, cutting mechanism; 31, first cutting assembly; 311, first cutter shaft; 312, first cutter; 313, first partition plate; 314, first positioning plate; 3141, first clamping groove; 3142, first positioning rib; 32, second cutting assembly; 321, second cutter shaft; 322, second cutter; 323, second partition plate; 324, second positioning plate; 3241, second clamping groove; 3242, second positioning rib; 40, power mechanism; 41, rotating power; 42, first transmission assembly; 421, first sprocket; 422, second sprocket; 423, first gear; 424, second gear; 43, second transmission assembly; 431, third gear; 432, fourth gear; 433, fifth gear; 434, sixth gear; 435, seventh gear. DETAILED DESCRIPTION
[0039] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0040] It should be noted that when an element is referred to as being “fixed” to another element, it can be directly on the other element or there can be an intervening element. When an element is referred to as being “connected” to another element, it can be directly connected to the other element or intervening elements can be present. When an element is referred to as being “a plurality of”, it can be two or more than two of any number. The terms “vertical”, “horizontal”, “left”, “right” and similar expressions used herein are for illustrative purposes only and are not intended to be the only implementation.
[0041] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in the description herein is for describing particular embodiments only and is not intended to be limiting of the application. The use herein of the terms "and / or" includes a set of one or more associated listed items.
[0042] Referring to Figures 1 to 7 A cutting machine 100 according to an embodiment of the present application comprises a frame 10, a conveying mechanism 20, a cutting mechanism 30 and a power mechanism 40, wherein the power mechanism 40 is configured to drive the conveying mechanism 20 and the cutting mechanism 30.
[0043] As shown in Figure 1 , the conveying mechanism 20 comprises an input conveying belt 21 and an output conveying belt 22 arranged in sequence, wherein the input conveying belt 21 is arranged at an input end of the frame 10, the output conveying belt 22 is arranged at an output end of the frame 10, and the input conveying belt 21 and the output conveying belt 22 are arranged horizontally. Optionally, the input conveying belt 21 and the output conveying belt 22 are track conveying belts.
[0044] Referring to Figure 2 and Figure 3 , the cutting mechanism 30 is arranged between the input conveying belt 21 and the output conveying belt 22, and the cutting mechanism 30 comprises a first cutting assembly 31 and a second cutting assembly 32 arranged oppositely, wherein the first cutting assembly 31 is arranged above the input conveying belt 21 and the output conveying belt 22, and the second cutting assembly 32 is arranged below the input conveying belt 21 and the output conveying belt 22.
[0045] Referring to Figure 4 , the first cutting assembly 31 comprises a first cutter shaft 311 rotatably connected to the frame 10, a plurality of first cutters 312 and a plurality of first partitions 313 sleeved on the first cutter shaft 311, wherein the first cutter shaft 311 is arranged above the input conveying belt 21 and the output conveying belt 22, the first cutters 312 are arranged obliquely relative to the first cutter shaft 311, the first cutter shaft 311 drives the first cutters 312 to rotate, and each first partition 313 is arranged alternately and spaced apart from each first cutter 312 in parallel.
[0046] The second cutting assembly 32 comprises a second cutter shaft 321 rotatably connected to the frame 10, a plurality of second cutters 322 and a plurality of second partitions 323 sleeved on the second cutter shaft 321, wherein the second cutter shaft 321 is arranged below the input conveying belt 21 and the output conveying belt 22, the second cutters 322 are arranged obliquely relative to the second cutter shaft 321, the second cutter shaft 321 drives the second cutters 322 to rotate, each second partition 323 is arranged alternately and spaced apart from each second cutter 322 in parallel, and each second cutter 322 is arranged alternately and spaced apart from each first cutter 312 in parallel.
[0047] Further, in order to ensure that the food material can be cut, the first cutter 312 overlaps the edge of the second cutter 322 in the axial direction of the first cutter 312. It can be ensured that the first cutter 312 and the second cutter 322 cooperate to cut the food material.
[0048] As shown in Figures 4 to 6 , the first cutting assembly 31 further comprises two first positioning plates 314 fixed on the frame 10, the two first positioning plates 314 are oppositely arranged on both sides of the first cutter shaft 311, the first positioning plate 314 is provided with a first clamping groove 3141 and a first positioning rib 3142, the first clamping groove 3141 is arranged in parallel with the first partition plate 313, the first partition plate 313 is provided with a first clamping block matched with the first clamping groove 3141, and the first partition plate 313 is provided with a first positioning groove matched with the first positioning rib 3142. By matching the first clamping groove 3141 on the first positioning plate 314 with the first clamping block on the first partition plate 313 and matching the first positioning rib 3142 on the first positioning plate 314 with the first positioning groove on the first partition plate 313, the first partition plate 313 can be better fixed, the positioning is more accurate, and the first partition plate 313 is also convenient to disassemble and assemble.
[0049] Please refer to Figure 4 and Figure 7 , the second cutting assembly 32 further comprises two second positioning plates 324 fixed on the frame 10, the two second positioning plates 324 are oppositely arranged on both sides of the second cutter shaft 321, the second positioning plate 324 is provided with a second clamping groove 3241 and a second positioning rib 3242, the second clamping groove 3241 is arranged in parallel with the second partition plate 323, the second partition plate 323 is provided with a second clamping block matched with the second clamping groove 3241, and the second partition plate 323 is provided with a second positioning groove matched with the second positioning rib 3242. By matching the second clamping groove 3241 on the second positioning plate 324 with the second clamping block on the second partition plate 323 and matching the second positioning rib 3242 on the second positioning plate 324 with the second positioning groove on the second partition plate 323, the second partition plate 323 can be better fixed, the positioning is more accurate, and the second partition plate 323 is also convenient to disassemble and assemble.
[0050] Preferably, in order to avoid the food material from slipping and affecting the cutting effect when cutting the food material that is relatively slippery, a plurality of protrusions are arranged at intervals on the edge of the second cutter 322. When cutting the food material, the protrusions will be inserted into the food material to prevent the food material from slipping.
[0051] In order to prevent the first partition 313 and the second partition 323 from interfering with the cutting of food materials, the first cutter 312 is provided with the first partition 313 on the side close to the second cutter 322, and the second cutter 322 is provided with the second partition 323 on the side close to the first cutter 312. Further, in order to prevent the first cutter 312 and the second cutter 322 from causing harm to the operator when the device is cleaned, the first cutter 312 is provided with the first partition 313 on the side close to the second cutter 322, and the edges of other parts should not protrude beyond the edges of the first partition 313, and similarly, the second cutter 322 is provided with the second partition 323 on the side close to the first cutter 312, and the edges of other parts should not protrude beyond the edges of the second partition 323.
[0052] As shown in the drawings, Figure 5 With Figure 7 In the embodiment, the surface of the first cutter shaft 311 is provided with a first driving tooth, the inner hole of the first cutter 312 is provided with a first driven tooth that meshes with the first driving tooth for transmission, the surface of the second cutter shaft 321 is provided with a second driving tooth, and the inner hole of the second cutter 322 is provided with a second driven tooth that meshes with the second driving tooth for transmission. The first cutter shaft 311 and the first cutter 312 are driven by meshing transmission, which is more accurate in transmission and can better transmit torque, ensuring that the first cutter 312 has sufficient cutting force. Similarly, the second cutter shaft 321 and the second cutter 322 are driven by meshing transmission, which is more accurate in transmission and can better transmit torque, ensuring that the second cutter 322 has sufficient cutting force and can better cut food materials.
[0053] Please refer to Figure 2 With Figure 3 The power mechanism 40 includes a rotating power member 41, a first transmission assembly 42, and a second transmission assembly 43. The rotating power member 41 is installed on the frame 10 and located inside the frame 10. The rotating power member 41 drives the first cutter shaft 311 and the second cutter shaft 321 to rotate through the first transmission assembly 42, and drives the driving shaft of the feeding conveyor belt 21 and the driving shaft of the discharging conveyor belt 22 to rotate through the second transmission assembly 43. By using one rotating power member 41 to drive the cutting mechanism 30 and the conveying mechanism 20 to operate simultaneously, on the one hand, the synchronicity of the conveying mechanism 20 and the cutting mechanism 30 can be ensured, and on the other hand, the number of power components can be reduced, thereby reducing the manufacturing cost of the device. In the embodiment, the rotating power member 41 is an electric motor, and in other embodiments, the rotating power member 41 can also be other rotating power sources that can achieve the same function.
[0054] As shown in the drawings, Figure 2As shown, the first transmission assembly 42 comprises a first sprocket 421, a second sprocket 422, a first gear 423 and a second gear 424, the first sprocket 421 is fixedly connected with the output end of the rotating power member 41, the second sprocket 422 is fixedly connected with one end of the second cutter shaft 321, the first sprocket 421 and the second sprocket 422 are connected through a chain transmission, the first gear 423 is sleeved on one end of the second cutter shaft 321 close to the second sprocket 422, the second gear 424 is sleeved on one end of the first cutter shaft 311 close to the second sprocket 422, the first gear 423 and the second gear 424 are in meshing transmission. By using the cooperation of the sprocket and the chain and the meshing transmission of the gears, the transmission is more efficient and accurate, and the torque can be better transmitted.
[0055] As shown in the drawings, Figure 3 The second transmission assembly 43 comprises a third gear 431, a fourth gear 432 and a fifth gear 433, the third gear 431 is sleeved on one end of the second cutter shaft 321 away from the second sprocket 422, the fourth gear 432 is sleeved on the driving shaft of the feeding conveyor belt 21, the fifth gear 433 is sleeved on the driving shaft of the discharging conveyor belt 22, the third gear 431, the fourth gear 432 and the fifth gear 433 are in meshing transmission.
[0056] In this embodiment, since the second cutter shaft 321 and the driving shafts of the feeding conveyor belt 21 and the discharging conveyor belt 22 are far away from each other, the transmission assembly further comprises a sixth gear 434 and a seventh gear 435 rotatably arranged on the rack 10, the sixth gear 434 is arranged between the third gear 431 and the fourth gear 432, and the sixth gear 434 and the third gear 431 and the fourth gear 432 are in meshing transmission, the seventh gear 435 is arranged between the third gear 431 and the fifth gear 433, and the seventh gear 435 and the third gear 431 and the fifth gear 433 are in meshing transmission.
[0057] In this embodiment, in order to ensure safety, a cutting protective cover (not marked in the drawings) is arranged on the cutting mechanism 30, a feeding protective cover (not marked in the drawings) is arranged on one end of the feeding conveyor belt 21 close to the cutting mechanism 30, and a discharging protective cover (not marked in the drawings) is arranged on one end of the discharging conveyor belt 22 close to the cutting mechanism 30.
[0058] When the food material is cut by using the oblique cutting machine 100, the food material is placed on the feeding conveyor belt 21, the food material is conveyed into the cutting mechanism 30 by the feeding conveyor belt 21, the first cutter shaft 311 drives the first cutter 312 to rotate, the second cutter shaft 321 drives the second cutter 322 to rotate, and the food material is obliquely cut into thin slices under the cooperation of the first cutter 312 and the second cutter 322, and the cut food material is conveyed away by the discharging conveyor belt 22.
[0059] The oblique slicer 100 of the present application is provided with the first cutter 312 and the second cutter 322 which are oppositely arranged in an interlaced manner, and the first cutter 312 and the second cutter 322 are cut by rotation, so that continuous cutting can be realized, which is beneficial to improve the efficiency of the food material oblique cutting, and during the cutting, the first cutter 312 and the second cutter 322 are both in the state of rotation, so that the cutting surface of the food material is more smooth and flat; and the first cutter 312 and the second cutter 322 are respectively limited by the first spacer and the second spacer, so that the structure is more reliable and stable; in addition, the present application sends the food material into the cutting mechanism 30 for cutting through the feeding conveyor belt 21, and then the cut food material is conveyed away through the discharging conveyor belt 22, which is beneficial to realize the automatic cutting of the food material, avoids the manual feeding and taking of the material into the working range of the cutting mechanism 30, and is more safe and reliable.
[0060] Finally, it should be noted that the above only describes the preferred examples of the present application and is not used to limit the present application, although the present application has been described in detail with reference to the foregoing examples, those skilled in the art can still modify the technical solutions recorded in the foregoing examples or make equivalent replacement for part of the technical features. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A slicing machine (100), comprising a frame (10), a conveying mechanism (20), and a cutting mechanism (30) mounted on the frame (10), characterized in that: The conveying mechanism (20) includes a feeding conveyor belt (21) and a discharging conveyor belt (22) arranged in sequence. The cutting mechanism (30) is disposed between the feeding conveyor belt (21) and the discharging conveyor belt (22). The cutting mechanism (30) includes a first cutting component (31) and a second cutting component (32) disposed opposite to each other. The first cutting assembly (31) includes a first cutter shaft (311) rotatably connected to the frame (10), and a plurality of first cutters (312) and first partitions (313) mounted on the first cutter shaft (311). The first cutter shaft (311) is positioned above the feeding conveyor belt (21) and the discharging conveyor belt (22). The first cutters (312) are inclined to the first cutter shaft (311), and the first cutter shaft (311) drives the first cutters (312) to rotate. Each of the first partitions (313) and each of the first cutters (312) are arranged alternately in parallel. The first cutting assembly (31) further includes two first positioning plates (314) fixed on the frame (10). The two first positioning plates (314) are arranged opposite to each other on both sides of the first cutter shaft (311). The first positioning plate (314) is provided with a first slot (3141) and a first positioning rib (3142). The first slot (3141) is arranged parallel to the first partition plate (313). The first partition plate (313) is provided with a first locking block that cooperates with the first slot (3141). The first partition plate (313) is provided with a first positioning groove that cooperates with the first positioning rib (3142). The second cutting assembly (32) includes a second cutter shaft (321) rotatably connected to the frame (10), and a plurality of second cutters (322) and second partitions (323) sleeved on the second cutter shaft (321). The second cutter shaft (321) is located below the feed conveyor belt (21) and the discharge conveyor belt (22). The second cutters (322) are inclined to the second cutter shaft (321), and the second cutter shaft (321) drives the second cutters (322) to rotate. Each second partition (323) and each second cutter (322) are arranged alternately in parallel, and each second cutter (322) and each first cutter (312) are arranged alternately in parallel.
2. The oblique slicer (100) according to claim 1, characterized in that, Along the axial direction of the first cutter (312), the edges of the first cutter (312) and the second cutter (322) partially overlap.
3. The oblique slicer (100) according to claim 1, characterized in that, The second cutting assembly (32) also includes two second positioning plates (324) fixed on the frame (10). The two second positioning plates (324) are arranged opposite to each other on both sides of the second cutter shaft (321). The second positioning plates (324) are provided with a second slot (3241) and a second positioning rib (3242). The second slot (3241) is arranged parallel to the second partition (323). The second partition (323) is provided with a second locking block that cooperates with the second slot (3241). The second partition (323) is provided with a second positioning groove that cooperates with the second positioning rib (3242).
4. The oblique slicer (100) according to claim 1, characterized in that, The first cutter (312) has a first partition plate (313) protruding on the side near the second cutter (322), and the second cutter (322) has a second partition plate (323) protruding on the side near the first cutter (312).
5. The oblique slicer (100) according to claim 1, characterized in that, The surface of the first cutter shaft (311) is provided with a first driving tooth, the inner hole of the first cutter (312) is provided with a first driven tooth that meshes with the first driving tooth, the surface of the second cutter shaft (321) is provided with a second driving tooth, and the inner hole of the second cutter (322) is provided with a second driven tooth that meshes with the second driving tooth.
6. The oblique slicer (100) according to claim 1, characterized in that, It also includes a power mechanism (40), which includes a rotary power component (41), a first transmission assembly (42) and a second transmission assembly (43). The rotary power component (41) is mounted on the frame (10). The rotary power component (41) drives the first cutter shaft (311) and the second cutter shaft (321) to rotate through the first transmission assembly (42). The rotary power component (41) drives the drive shaft of the feed conveyor belt (21) and the drive shaft of the discharge conveyor belt (22) to rotate through the second transmission assembly (43).
7. The oblique slicer (100) according to claim 6, characterized in that, The first transmission assembly (42) includes a first sprocket (421), a second sprocket (422), a first gear (423), and a second gear (424). The first sprocket (421) is fixedly connected to the output end of the rotating power component (41). The second sprocket (422) is fixedly connected to one end of the second cutter shaft (321). The first sprocket (421) and the second sprocket (422) are connected by a chain drive. The first gear (423) is sleeved on one end of the second cutter shaft (321) near the second sprocket (422). The second gear (424) is sleeved on one end of the first cutter shaft (311) near the second sprocket (422). The first gear (423) and the second gear (424) mesh and drive each other.
8. The oblique slicer (100) according to claim 7, characterized in that, The second transmission assembly (43) includes a third gear (431), a fourth gear (432) and a fifth gear (433). The third gear (431) is sleeved on the end of the second cutter shaft (321) away from the second sprocket (422). The fourth gear (432) is sleeved on the drive shaft of the feed conveyor belt (21). The fifth gear (433) is sleeved on the drive shaft of the discharge conveyor belt (22). The third gear (431), the fourth gear (432) and the fifth gear (433) mesh and drive each other.
9. The oblique slicer (100) according to claim 8, characterized in that, The second transmission assembly (43) further includes a sixth gear (434) and a seventh gear (435) rotatably mounted on the frame (10). The sixth gear (434) is disposed between the third gear (431) and the fourth gear (432), and the sixth gear (434) and the third gear (431) mesh with the fourth gear (432) for transmission. The seventh gear (435) is disposed between the third gear (431) and the fifth gear (433), and the seventh gear (435) and the third gear (431) mesh with the fifth gear (433) for transmission.
Citation Information
Patent Citations
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CN102744740A
Automatic squid flower cutting device
CN115413696A