Slicing equipment based on bamboo processing

By designing a slicer for bamboo processing, and using gear transmission system and adjustment device to achieve automatic push and precise slitting of bamboo slices, the problems of low efficiency and unstable accuracy of existing bamboo slice slitting equipment are solved, and production efficiency and product quality are improved.

CN120206595AInactive Publication Date: 2025-06-27SHUANGPAI SHUANGSHUN WOOD IND CO LTD
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Patent Information

Application Number
CN202510610116.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-06-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing bamboo slice slicing equipment has low efficiency, high labor intensity, unstable cutting accuracy, difficult processing of long bamboo slices and low automation.

Method used

A slicer equipment based on bamboo processing is designed, using supporting seats, conveying rollers, flip frames and blades to realize automatic pushing and precise slitting of bamboo sheets through the gear transmission system, and improve slitting efficiency and accuracy through adjustment devices and fixing devices.

Benefits of technology

It improves the efficiency and accuracy of bamboo slice slicing, reduces manual intervention and labor intensity, reduces the risk of bamboo slice drop and repeated handling, and improves product quality and working environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of bamboo processing, in particular to slicing equipment based on bamboo processing. The slicing equipment based on bamboo processing comprises a supporting seat serving as a bearing main body, a fixing frame is fixedly connected to the upper surface of the supporting seat, conveying rollers which are symmetrically distributed up and down are rotationally connected to the fixing frame, a first gear is fixedly connected to the end of each conveying roller, and the two first gears are meshed with each other; a motor is installed on the supporting base, an output shaft of the motor is connected with the adjacent conveying roller through a transmission assembly, guiding pieces which are symmetrically distributed are fixedly connected to the fixing frame, and a turning frame is rotationally connected between the guiding pieces which are symmetrically distributed. By adjusting the position of the blade and designing the fixing device, the slitting efficiency is improved, manual intervention is reduced, and the labor intensity is reduced; the slitting precision is ensured, and the output of slices with uniform thickness is realized; bamboo chip falling and repeated carrying are reduced, the damage risk is reduced, and the product quality is improved.
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Description

Technical Field

[0001] The present invention relates to the field of bamboo processing, and in particular to a slicing device based on bamboo processing. Background Art

[0002] Due to its natural environmental protection, high strength and renewable characteristics, bamboo is widely used in the fields of architecture, furniture, handicrafts, etc. During the bamboo processing process, it is usually necessary to cut the original bamboo or thick bamboo slices after rough processing into thin slices with uniform thickness to meet the needs of subsequent deep processing.

[0003] However, currently most of the bamboo slice cutting still relies on manual operation or semi-automatic equipment. The operation process is cumbersome and it is difficult to achieve continuous and efficient cutting operations. Especially during large-scale production, it is necessary to frequently adjust the position of the bamboo slices and carry the cut bamboo slices, resulting in a low overall processing efficiency; during the manual operation process, it is necessary to frequently interact with the equipment, such as adjusting the position of the bamboo slices, fixing the cutting tools, etc. This not only increases the labor intensity of the workers, but also may lead to fatigue operations, further reducing the work efficiency and quality; the existing layering devices lack intelligent and automated function designs and cannot meet the requirements of modern bamboo processing for high efficiency, precision and safety. Especially during the cutting process of long bamboo slices, the proportion of manual operation is relatively large, making it difficult to meet the industrial production requirements.

[0004] Based on the above situation, there is an urgent need for a slicing device based on bamboo processing. Summary of the Invention

[0005] In order to overcome the disadvantages of the existing bamboo slice cutting equipment, such as low efficiency, high labor intensity, unstable cutting accuracy, difficulty in processing long bamboo slices and low automation degree, the technical problem to be solved is: to provide a slicing device based on bamboo processing.

[0006] The technical implementation solution of the present invention is: a slicing device based on bamboo processing, including a support base as a load-bearing main body, on the upper surface of which a fixed frame is fixedly connected. A conveying roller is rotatably connected to the fixed frame and is symmetrically distributed up and down. And a first gear is fixedly connected to the end of each conveying roller, and the two first gears are meshed with each other. A motor is installed on the support base, and its output shaft is connected to the adjacent conveying roller through a transmission component. Symmetrically distributed guiding members are fixedly connected to the fixed frame, and a turning frame is rotatably connected between the symmetrically distributed guiding members. Symmetrically distributed blades are provided on the turning frame.

[0007] As an improvement of the above solution, symmetrically distributed adjusting screws are threadedly connected to the turning frame, and blades are rotatably connected between adjacent adjusting screws.

[0008] As an improvement of the above solution, a brush motor is installed on the guiding member, and its output shaft is connected to the turning frame through a coupling.

[0009] As an improvement of the above solution, a guiding frame is fixedly connected to the middle of the fixing frame. An arc surface is provided on the lower surface of the guiding frame, and this arc surface is in close fit with the lower conveying roller.

[0010] As an improvement of the above solution, symmetrically distributed limiting frames are fixedly connected to the turning frame. A rotating shaft is rotatably connected between adjacent limiting frames, and a torsion spring is connected between each of them and the limiting frame. The torsion springs are respectively wound around the adjacent rotating shafts, and pressing rods are fixedly connected to the symmetrically distributed torsion springs, and pressing rollers are rotatably connected to the pressing rods.

[0011] As an improvement of the above solution, symmetrically distributed image detectors are installed on the fixing frame, and they are electrically connected to the brush motor through a control module; symmetrically distributed switch buttons are installed on the guiding member, and they are electrically connected to the servo motor.

[0012] As an improvement of the above solution, symmetrically distributed support frames are fixedly connected to the fixing frame, and incomplete gears are fixedly connected to the support frames. A reverse pushing roller is rotatably connected between adjacent limiting frames, and a second gear is fixedly connected to each end of the reverse pushing roller. Symmetrically distributed brackets are also fixedly connected to the turning frame, and a gear set is rotatably connected to each of the brackets, forming a gear transmission system.

[0013] As an improvement of the above solution, symmetrically distributed guiding frames are fixedly connected to the turning frame.

[0014] As an improvement of the above solution, symmetrically distributed bearing frames are fixedly connected to the support base, and bearing plates are slidably connected to the bearing frames. A drag reducing member is rotatably connected to the bearing plates, and symmetrically distributed return springs are connected between each bearing plate and the adjacent bearing frame, and the return springs are respectively wound around the adjacent bearing frames.

[0015] The present invention has the following advantages: By adjusting the position of the blade and the design of the fixing device, the present invention improves the slitting efficiency, reduces manual intervention, and lowers the labor intensity; ensures the slitting accuracy and realizes the production of thin sheets with uniform thickness; reduces the dropping and repeated handling of bamboo slices, reduces the risk of damage, and improves the product quality.

[0016] The present invention utilizes a gear transmission system to realize the automatic pushing of bamboo slices during the slitting process, eliminating the need for manual repeated operation, significantly improving the working efficiency; avoiding the problem that workers need to manually push bamboo slices multiple times in the traditional method, reducing the labor intensity, and improving the working environment; effectively reducing the slitting error caused by unstable manual operation, thereby improving the slitting accuracy and product quality.

[0017] By introducing a buffer mechanism, the present invention solves the problems brought by the unbalanced state and gravity drop during the rotation of the guiding frame, significantly improving the stability and service life of the equipment. Description of the Drawings

[0018] Figure 1 This is a schematic three-dimensional structure diagram of the present invention.

[0019] Figure 2 This is a schematic three-dimensional structure diagram of components such as the servo motor, fixed bracket, and guiding bracket of the present invention.

[0020] Figure 3 This is a schematic three-dimensional structure diagram of components such as the guiding member, turning frame, and image detector of the present invention.

[0021] Figure 4 This is a schematic three-dimensional structure diagram of components such as the rotating shaft, torsion spring, and pressing roller of the present invention.

[0022] Figure 5 This is a schematic three-dimensional structure diagram of components such as the support frame, deficient gear, and gear set of the present invention.

[0023] Names and serial numbers of components in the figure: 1. Support base, 11. Servo motor, 12. Transmission assembly, 13. Fixed bracket, 131. Image detector, 14. Guiding bracket, 15. Conveyor roller, 16. First gear, 17. Guiding member, 171. Switch button, 172. Adjusting screw, 18. Turning frame, 19. Brushed motor, 110. Blade, 111. Limiting bracket, 112. Rotating shaft, 113. Torsion spring, 114. Pressing rod, 115. Pressing roller, 2. Support frame, 21. Deficient gear, 22. Bracket, 23. Gear set, 24. Second gear, 25. Reverse pushing roller, 3. Carrying frame, 31. Drag reduction member, 32. Carrying plate, 33. Guiding frame, 34. Return spring. Specific embodiments

[0024] The embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0025] Embodiment 1: Refer to the appendix Figures 1-4, A slicing device based on bamboo processing, including a support base 1 as the load-bearing main body, on the upper surface of which a fixed frame 13 is fixedly connected. Rotatably connected to the fixed frame 13 are conveying rollers 15 symmetrically distributed up and down, and a first gear 16 is fixedly connected to the end of each conveying roller 15. The two first gears 16 mesh with each other. A servo motor 11 is fixed to the support base 1 by bolts, and its output shaft is connected to the adjacent conveying roller 15 through a transmission assembly 12. The transmission assembly 12 is composed of two transmission wheels and a flat belt. One pulley is connected to the output shaft of the servo motor 11 through a coupling, and the other pulley is connected to the lower conveying roller 15. A flat belt is wound around the two pulleys. Symmetrically distributed guide members 17 are fixedly connected to the fixed frame 13. A turning frame 18 is rotatably connected between the symmetrically distributed guide members 17. Symmetrically distributed blades 110 are provided on the turning frame 18, one of which is in a horizontal state and the other is in an inclined state.

[0026] When it is necessary to cut thick bamboo slices into thin slices with uniform thickness, start the servo motor 11. The lower conveying roller 15 is driven to rotate counterclockwise through the transmission assembly 12, thereby driving the first gear 16 connected thereto to rotate, and then driving the upper first gear 16 meshing therewith to rotate, and finally making the upper conveying roller 15 rotate clockwise. Since the two conveying rollers 15 rotate in opposite directions, when the thick bamboo slice is fed from the right to the left between the two conveying rollers 15, it will be stably conveyed to the left under the clamping action of the two conveying rollers 15. As the bamboo slice moves to the left, its front end gradually contacts the left blade 110, and the left blade 110 will perform precise cutting operations on the bamboo slice, thereby dividing the thick bamboo slice into thin slices with half the thickness. If further refined cutting is required, the bamboo slice after the initial cutting can be fed between the conveying rollers 15 again, repeating the above process until thin slices of the required specification are obtained.

[0027] Symmetrically distributed adjusting screws 172 are threadedly connected to the turning frame 18, and the blades 110 are rotatably connected between adjacent adjusting screws 172, aiming to adjust the position of the blades 110.

[0028] When it is necessary to cut thick bamboo slices into thin slices with the required thickness, the blades 110 can be driven to move in the vertical direction by rotating the adjusting screws 172. In the initial calibration state of the device, the central axis of the horizontally positioned blade 110 exactly coincides with the vertical symmetry plane of the clamping gap formed by the two groups of conveying rollers 15. Therefore, when the thick bamboo slice is cut, it will be evenly divided into two thin slices with equal thickness. For example, if it is necessary to cut a thick bamboo slice into a thin slice with a quarter thickness and a thin slice with a three-quarter thickness, the adjusting screw 172 can be adjusted to move the adjusting blade 110 down to the position corresponding to the quarter thickness, so as to achieve precise cutting. And so on, the cutting thickness can be flexibly adjusted according to actual needs.

[0029] A brush motor 19 is installed on the guide member 17, and its output shaft is connected to the turning frame 18 through a coupling. When the brush motor 19 drives the turning frame 18 to rotate to the right, the blade 110 thereon also rotates accordingly, so that the right blade 110 is in a horizontal state, while the left blade 110 is in an inclined state with the left side higher and the right side lower. At this time, the thick bamboo sheet can be fed from the left to the right between the two conveying rollers 15, and the right blade 110 will perform precise cutting operations on the bamboo sheet; conversely, when the brush motor 19 drives the turning frame 18 to rotate to the left, the left blade 110 is in a horizontal state, while the right blade 110 is in an inclined state with the right side higher and the left side lower. At this time, the thick bamboo sheet can be fed from the right to the left between the two conveying rollers 15. Therefore, the feeding direction can be selected according to needs to achieve flexible processing operations.

[0030] When cutting a long and thick bamboo sheet, due to the certain toughness of the bamboo, after the bamboo sheet is fed between the conveying rollers 15, the bamboo sheet may be slightly bent when it comes out of the conveying rollers 15. This bending may cause the bamboo sheet to be misaligned with the blade 110, resulting in the inability to achieve precise cutting, and further causing the thickness of the cut bamboo sheet to be uneven. Therefore, in this embodiment, measures need to be taken to ensure that the thick bamboo sheet can enter the conveying rollers 15 in a straight line and ensure good alignment when passing through the blade 110 to achieve precise and uniform cutting effects.

[0031] Specifically, a guide frame 14 is fixedly connected to the middle of the fixed frame 13, and an arc surface is provided on the lower surface of the guide frame 14, and this arc surface is in close contact with the lower conveying roller 15. When the thick bamboo sheet enters between the two conveying rollers 15, the guide frame 14 can hold the bamboo sheet and ensure its stable conveyance in a straight line. In this way, when the bamboo sheet contacts the blade 110, a precise and uniform cutting effect can be achieved.

[0032] During the process of cutting the thick bamboo sheet into thin slices, due to the action of the cutting force, the cut thin slices will directly fall to the ground. If the cut thin slices need to be further refined, the bamboo sheets that have fallen to the ground need to be fed between the conveying rollers 15 again for processing. However, this operation method is not only inefficient but also may increase the risk of damage due to repeated handling of the bamboo sheets, thus affecting the quality and production efficiency of the final product.

[0033] Reference appendix Figure 4 , therefore, this embodiment requires a device that can fix the bamboo sheet to be cut, so as to directly fix and further process the thin slices during the cutting process, avoid the problems of bamboo sheet dropping and repeated handling, and thus improve the cutting efficiency and product quality.

[0034] Specifically, the turning frame 18 is fixedly connected with symmetrically distributed limiting frames 111. A rotating shaft 112 is rotatably connected between adjacent limiting frames 111, and a torsion spring 113 is connected between each of them and the limiting frame 111. The torsion springs 113 are respectively wound around the adjacent rotating shafts 112. Pressing rods 114 are fixedly connected to the symmetrically distributed torsion springs 113, and pressing rollers 115 are rotatably connected thereto. A certain gap is reserved between the pressing roller 115 and the top wall of the adjacent blade 110 to ensure that the sliced thin sheets can pass through smoothly and be effectively pressed by the fixing device.

[0035] As described above, during the process of slicing the thick bamboo sheet into thin sheets, when the thick bamboo sheet is fed between the two conveying rollers 15 from right to left, the left blade 110 will perform a preliminary slicing on the bamboo sheet. After the slicing is completed, the bamboo sheet is cut into a thin sheet with three - quarters of the thickness on the upper side and a thin sheet with one - quarter of the thickness on the lower side.

[0036] Among them, the three - quarters - thickness thin sheet on the upper side will move leftward through the reserved gap between the pressing roller 115 and the blade 110, and squeeze the pressing roller 115 during the movement. At this time, the left pressing rod 114 will drive the rotating shaft 112 to deflect slightly upward, and the torsion spring 113 will be twisted, thereby effectively fixing the upper - side thin sheet, while the one - quarter - thickness thin sheet on the lower side will directly fall to the ground from under the left blade 110.

[0037] As the conveying roller 15 continues to convey the incompletely sliced bamboo sheet to the left, the pressing roller 115 rolls accordingly until the entire bamboo sheet is completely sliced. At this time, the conveying roller 15 stops applying the conveying force to the bamboo sheet, and the three - quarters - thickness thin sheet on the upper side will be firmly pressed by the left pressing rod 114. If it is necessary to further refine - cut the three - quarters - thickness thin sheet, the thin sheet can be conveyed to the right, causing the turning frame 18 to deflect to the right, so that the left blade 110 is in an inclined state and the right blade 110 is in a horizontal state.

[0038] Subsequently, the right blade 110 performs a secondary slicing on the three - quarters - thickness thin sheet, cutting it into a one - quarter - thickness thin sheet and a one - half - thickness thin sheet. Among them, the one - half - thickness thin sheet on the upper side will be pressed by the right pressing rod 114, while the one - quarter - thickness thin sheet on the lower side will directly fall to the ground.

[0039] Repeat the above operation, continue to push the one - half - thickness thin sheet pressed by the right pressing rod 114 to the left, and further slice it into two one - quarter - thickness thin sheets by the left blade 110. Finally, after the slicing is completed, the one - quarter - thickness thin sheet pressed by the pressing rod 114 can be directly removed.

[0040] Through the above design, this embodiment can effectively prevent the sliced thin sheets from falling to the ground, reduce the damage risk caused by repeated handling, and at the same time significantly improve the slicing efficiency and product quality, ensuring the continuity and stability of the slicing process.

[0041] In this embodiment, a fixing device is used to fix the bamboo slices that need to be further finely cut, while the bamboo slices with qualified thickness directly fall to the ground. When the bamboo slices to be finely cut need to be pushed in the opposite direction, the servo motor 11 and the brushed motor 19 can automatically adjust the rotation direction according to the actual situation. The specific technical solution is as follows: Symmetrically distributed image detectors 131 are installed on the fixing frame 13, which are electrically connected to the brushed motor 19 through a control module. The image detector 131 is located directly above the pressing roller 115 and is used to detect whether there are bamboo slices to be finely cut pressed below the pressing roller 115, and accordingly control the rotation direction of the brushed motor 19.

[0042] Symmetrically distributed switch buttons 171 are installed on the guiding member 17, which are electrically connected to the servo motor 11. When the turning frame 18 rotates to the left, it will press on the left switch button 171, thereby triggering the two conveying rollers 15 to convey the bamboo slices to the left; conversely, when the turning frame 18 rotates to the right, it will press on the right switch button 171, thereby triggering the two conveying rollers 15 to convey the bamboo slices to the right.

[0043] Through the above design, this embodiment realizes the automatic direction control and efficient fixing function during the bamboo slice slicing process, significantly improving the slicing efficiency and operation convenience.

[0044] During the process of cutting thick bamboo slices into thin slices, the traditional method requires workers to manually push the bamboo slices repeatedly many times, seriously affecting the work efficiency. Therefore, this embodiment designs an automatic pushing mechanism to realize the automatic pushing of bamboo slices during the slicing process, thereby avoiding repeated manual operations and significantly improving the work efficiency.

[0045] Refer to the appendix Figure 5 Specifically, symmetrically distributed support frames 2 are fixedly connected to the fixing frame 13, and missing gears 21 are fixedly connected thereto. Anti-pushing rollers 25 are rotatably connected between adjacent limiting frames 111, and second gears 24 are fixedly connected to their ends. In addition, symmetrically distributed brackets 22 are fixedly connected to the turning frame 18, and gear sets 23 are rotatably connected thereto. The gear set 23 is composed of a large gear and a small gear, wherein the large gear meshes with the adjacent second gear 24, and the small gear meshes with the adjacent missing gear 21, thus forming a complete gear transmission system.

[0046] When the turning frame 18 rotates to the right, components such as the support 22, gear set 23, limit frame 111, reverse pushing roller 25, and second gear 24 on it rotate to the left together. Since the small gear in the gear set 23 meshes with the missing gear 21, the small gear will drive the entire gear set 23 to rotate. Then, through the meshing of the large gear and the second gear 24, the reverse pushing roller 25 on the left is driven to rotate to the left.

[0047] The reverse pushing roller 25 rotating to the left can automatically push the bamboo slices below the pressing roller 115 to the right through the structural design in the middle, thus realizing the function of automatic material pushing. Conversely, when the turning frame 18 rotates to the left, the above components rotate to the right. Through the reverse action of the gear transmission system, the reverse pushing roller 25 on the right rotates to the right, also realizing the function of automatic material pushing.

[0048] This embodiment uses a gear transmission system to realize the automatic pushing of bamboo slices during the cutting process, eliminating the need for repeated manual operations, significantly improving work efficiency; avoiding the problem that workers need to manually push bamboo slices multiple times in the traditional method, reducing labor intensity, and improving the working environment; effectively reducing the cutting error caused by unstable manual operations, thereby improving the cutting accuracy and product quality.

[0049] Embodiment 2: Refer to the appendix Figure 1 During the process of cutting thick bamboo slices into thin slices, since some bamboo slices are relatively long and have a certain toughness, their tails will droop due to gravity when entering between the two conveying rollers 15, thus generating a downward pulling force on the heads, which easily causes the bamboo slices to break or have other adverse effects during the cutting process. To solve this problem, this embodiment supports the bamboo slices during the cutting process to reduce the pulling force generated by the self-gravity of the bamboo slices.

[0050] Specifically, symmetrically distributed guide frames 33 are fixedly connected to the turning frame 18, which are divided into upper and lower two-layer structures: the upper layer is used to support the bamboo slices to be finely cut, and the lower layer is used to guide the bamboo slices with qualified thickness to slide to the ground.

[0051] When thick bamboo slices need to be cut, the bamboo slices are placed on the upper tray of the right guide frame 33. At this time, the turning frame 18 deflects to the left, and the upper tray of the right guide frame 33 is in an inclined state. Therefore, when the thick bamboo slices are placed on the upper tray of the right guide frame 33, they will automatically slide into between the two conveying rollers 15 under the action of their own gravity and be conveyed to the left.

[0052] The two conveying rollers 15 push the thick bamboo slices to the left, making them pass through the blade 110 for cutting. The bamboo slices above the blade 110 will be caught by the upper tray of the left guide frame 33, while the bamboo slices with qualified thickness move from below the blade 110 to the lower tray of the left guide frame 33 and slide to the ground along it.

[0053] When the turning frame 18 rotates to the right, the guiding frame 33 deflects accordingly. The left guiding frame 33 tilts up, and the right guiding frame 33 lies flat. At this time, the bamboo slices to be refined and cut are in an inclined state with the left side higher and the right side lower, which helps the reverse pushing roller 25 push the bamboo slices more smoothly, effectively solving the problem of pulling caused by the gravity drop of the long strip-shaped bamboo slices during the cutting process, and significantly improving the stability of the cutting process and the product quality.

[0054] During the multiple cutting processes of the bamboo slices, the turning frame 18 may need to rotate left and right multiple times. Since the bamboo slices are supported on one side of the guiding frame 33, an unbalanced state will occur on both sides during the rotation process. At the same time, the guiding frame 33 itself has a certain gravity, and when the turning frame 18 rotates, it will tend to drop by itself, which may increase the burden on the turning frame 18. To solve this problem, a buffer mechanism is introduced during the rotation of the guiding frame 33 in this embodiment to reduce the load on the turning frame 18.

[0055] Specifically, symmetrically distributed bearing frames 3 are fixedly connected to the support base 1, and bearing plates 32 are slidably connected thereto. A resistance reducing member 31 is rotatably connected to the bearing plate 32. Symmetrically distributed return springs 34 are connected between the bearing plate 32 and the adjacent bearing frame 3, and they are respectively wound around the adjacent bearing frame 3.

[0056] When the turning frame 18 rotates to the left, the left guiding frame 33 is in a pressed state, and the left guiding frame 33 will press on the left resistance reducing member 31, so that the left bearing plate 32 is pressed and the left return spring 34 is compressed; at this time, the right guiding frame 33 is in a tilted state, and the right guiding frame 33 does not press on the right resistance reducing member 31.

[0057] Conversely, when the turning frame 18 rotates to the right, the right guiding frame 33 is in a pressed state, and the right guiding frame 33 will press on the right resistance reducing member 31, so that the right bearing plate 32 is pressed and the right return spring 34 is compressed.

[0058] This embodiment solves the problems brought by the unbalanced state and gravity drop of the guiding frame 33 during the rotation process by introducing a buffer mechanism, and significantly improves the stability and service life of the equipment.

[0059] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.

Claims

1. A bamboo processing-based slicing device, comprising a support seat (1), a fixing frame (13) fixedly connected to the upper surface of the support seat, a conveying roller (15) symmetrically distributed up and down is rotatably connected to the fixing frame (13), and a first gear (16) is fixedly connected to the end of each conveying roller (15), and the two first gears (16) are meshed with each other. A motor is installed on the support seat (1), and the output shaft of the motor is connected to the adjacent conveying roller (15) through a transmission assembly (12), characterized in that: The fixed frame (13) is fixedly connected with symmetrically distributed guide members (17), a flip frame (18) is rotatably connected between the symmetrically distributed guide members (17), and the flip frame (18) is provided with symmetrically distributed blades (110).

2. A bamboo processing-based slicing device according to claim 1, characterized in that: The flip frame (18) is threadedly connected with symmetrically distributed adjusting screws (172), and blades (110) are rotatably connected between adjacent adjusting screws (172).

3. A bamboo processing-based slicing device according to claim 2, characterized in that: A brush motor (19) is installed on the guide member (17), and its output shaft is connected to the flip frame (18) through a coupling.

4. A bamboo processing-based slicing device according to claim 3, characterized in that: A guide frame (14) is fixedly connected to the middle of the fixed frame (13), and a curved surface is provided on the lower surface of the guide frame (14), and the curved surface is tightly fitted with the conveying roller (15) at the lower side.

5. A bamboo processing-based slicing device according to claim 4, characterized in that: The flip frame (18) is fixedly connected to symmetrically distributed limiting frames (111), adjacent limiting frames (111) are rotatably connected to rotating shafts (112), and torsion springs (113) are connected to the limiting frames (111), the torsion springs (113) are respectively wound around adjacent rotating shafts (112), and the symmetrically distributed torsion springs (113) are fixedly connected to pressing rods (114), and pressing rollers (115) are rotatably connected to the pressing rods (114).

6. A bamboo-based slicing device according to claim 5, characterized in that: The fixing frame (13) is provided with symmetrically distributed image detectors (131) which are electrically connected to the brushed motor (19) via a control module; the guide member (17) is provided with symmetrically distributed switch buttons (171) which are electrically connected to the servo motor (11).

7. A bamboo-based slicing device according to claim 6, characterized in that: The fixed frame (13) is fixedly connected to symmetrically distributed support frames (2), each of which is fixedly connected to a missing gear (21); adjacent limiting frames (111) are rotatably connected to reverse thrust rollers (25), each of which has a second gear (24) fixedly connected to its end; the flip frame (18) is also fixedly connected to symmetrically distributed brackets (22), each of which has a gear set (23) rotatably connected to it, forming a gear transmission system.

8. A bamboo-based slicing device according to claim 7, characterized in that: The flipping frame (18) is fixedly connected to symmetrically distributed guide frames (33).

9. A bamboo processing-based slicing device according to claim 8, characterized in that: The support seat (1) is fixedly connected to symmetrically distributed bearing frames (3), each of which is slidably connected to a bearing plate (32), and a drag reduction member (31) is rotatably connected to the bearing plate (32). Symmetrically distributed return springs (34) are connected between the bearing plate (32) and the adjacent bearing frames (3), and are respectively wound around the adjacent bearing frames (3).