Slicing device

By designing the rotation and lifting components of the cutting device, the entire piece of material is automatically cut into a square shape, solving the problem of low manual cutting efficiency and improving cutting efficiency and material regularity.

CN120245098APending Publication Date: 2025-07-04HARBIN FUERJIA TECH CO LTD
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Patent Information

Application Number
CN202510518401.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2025-07-04

AI Technical Summary

Technical Problem

In the prior art, manual cutting of a whole piece of solid material is less efficient and there is a lack of mature devices or equipment for cutting.

Method used

A cutting device is designed, including a placement platform, a rotating assembly, a cutter assembly and a lifting assembly. The entire piece of material is cut into a square shape through rotation and two cuttings. The rotating assembly rotates the placement platform by 90°. The lifting assembly drives the cutter assembly to lift and lower at different positions, realizing the automation of the cutting process.

Benefits of technology

The cutting efficiency is improved, making material cutting more regular and accurate, with higher efficiency than manual cutting, and the cut material size is more consistent.

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Abstract

The invention relates to the technical field of processing equipment, and discloses a dicing device which comprises a placing platform, a rotating assembly, a cutter assembly and a lifting assembly, and the placing platform is provided with a placing area. The rotating assembly is suitable for driving the containing platform to rotate by 90 degrees between the first position and the second position. The cutter assembly comprises a plurality of blades which are transversely and sequentially arranged, and the blades are suitable for downward cutting. The lifting assembly is suitable for driving the cutter assembly to ascend and descend between the third position and the fourth position. When the whole material in the tray is cut, the tray is placed in the placing area on the placing platform, and the cutter assembly is lowered to the fourth position through the lifting assembly for first cutting. And after the placement platform is rotated by 90 degrees through the rotating assembly, the cutter assembly is lowered to the fourth position through the lifting assembly for secondary cutting, the two cutting lines are perpendicular, and therefore the materials are cut into square blocks. The whole material can be cut into square blocks only through one-time rotation and two-time cutting, and compared with manual cutting, the cutting efficiency is higher.
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Description

Technical Field

[0001] This application relates to the technical field of processing equipment, and particularly to a cutting device. Background Art

[0002] When preparing drugs or cosmetics, due to process requirements, various liquid materials need to be placed in a square tray for crosslinking. After crosslinking, a large square solid material with high elasticity and high viscosity is formed. Then, the solid material is processed to obtain the finished product of the required drug or cosmetic.

[0003] In order to improve the processing efficiency, the solid material in the whole tray is often cut into multiple small square solid materials for further processing. However, there is currently no mature device or equipment for cutting the whole solid material, and only manual cutting can be carried out, resulting in low cutting efficiency.

[0004] Therefore, how to solve or improve the problem of low efficiency in manual cutting of the whole solid material in related technologies has become an important technical problem to be solved by those skilled in the art. Summary of the Invention

[0005] In view of this, this application provides a cutting device to solve or improve the problem of low efficiency in manual cutting of the whole solid material.

[0006] In a first aspect, this application provides a cutting device, including:

[0007] A placement platform is provided with a placement area for placing a tray containing materials.

[0008] A rotation assembly is connected to the placement platform and is adapted to drive the placement platform to rotate between a first position and a second position. When the placement platform rotates 90°, it rotates from the first position to the second position.

[0009] A cutter assembly includes a plurality of blades arranged horizontally in sequence, and the blades are adapted to cut downward.

[0010] A lifting assembly is connected to the cutter assembly and is adapted to drive the cutter assembly to lift between a third position and a fourth position.

[0011] In a state where the cutter assembly is in the third position, each blade is located above the placement area.

[0012] In a state where the cutter assembly is in the fourth position, each blade abuts against the placement area.

[0013] Optionally, it further includes:

[0014] The scraping plate is provided with a plurality of perforations for the blades to pass through, and the perforations correspond to the blades one by one, where

[0015] In a state where the cutting tool assembly is in the third position, the scraping plate is located between the cutting tool assembly and the placement area;

[0016] In a state where the cutting tool assembly is in the fourth position, the blades respectively pass through the perforations and abut against the placement area.

[0017] Optionally, in a state where the cutting tool assembly is in the fourth position, the side wall of the blade fits against the inner wall of the perforation.

[0018] Optionally, the width of the perforation gradually increases from bottom to top, and in a state where the cutting tool assembly is in the fourth position, the side wall of the blade fits against the bottom of the inner wall of the perforation.

[0019] Optionally, it further includes:

[0020] A first limiting plate, which is arranged on the placement platform;

[0021] A first pushing plate and a first driving assembly, the first driving assembly is connected to the placement platform, the first pushing plate is connected to the first driving assembly, and the first driving assembly can drive the first pushing plate to move closer to or away from the first limiting plate, where

[0022] When the tray is placed in the placement area and the first pushing plate moves closer to the first limiting plate, the first pushing plate and the first limiting plate can clamp the tray.

[0023] Optionally, it further includes:

[0024] A second limiting plate, which is arranged on the placement platform and is perpendicular to the first limiting plate;

[0025] A second pushing plate and a second driving assembly, the second driving assembly is connected to the placement platform, the second pushing plate is connected to the second driving assembly, and the second driving assembly can drive the second pushing plate to move closer to or away from the second limiting plate, where

[0026] When the tray is placed in the placement area and the second pushing plate moves closer to the second limiting plate, the second pushing plate and the second limiting plate can clamp the tray.

[0027] Optionally, the first driving assembly includes a first air cylinder, the first air cylinder is arranged on the placement table and is connected to the first pushing plate, and the first air cylinder is used to drive the first pushing plate to slide closer to or away from the first limiting plate;

[0028] The second driving assembly includes a second cylinder, which is arranged on the placing table and connected to the second push plate, and the second cylinder is used to drive the second push plate to move closer to or away from the second limiting plate.

[0029] Optionally, the lifting assembly includes:

[0030] A linear module, which is connected to the cutter assembly and used to drive the cutter assembly to move along the length direction of the linear module;

[0031] A first electric cylinder and a second electric cylinder, which are respectively connected to both ends of the linear module, and both the first electric cylinder and the second electric cylinder are used to drive the linear module to lift, and the first electric cylinder and the second electric cylinder are respectively located on both sides of the cutter assembly.

[0032] Optionally, the rotating assembly includes:

[0033] A rotating shaft, which is vertically arranged and connected to the placing platform;

[0034] A motor, which is in transmission connection with the rotating shaft and is adapted to drive the rotating shaft to rotate.

[0035] Optionally, the cutter assembly further includes:

[0036] A frame, each of the blades is connected to the frame and arranged in sequence along the frame;

[0037] A connecting frame, each of the frames is connected to the connecting frame, and the connecting frame is connected to the lifting assembly.

[0038] A cutting device provided by the present application includes a machine body, a placing platform rotating assembly, a cutter assembly and a lifting assembly. A placing area provided on the placing platform is used to place a tray containing materials. A rotating assembly arranged on the machine body and connected to the placing platform enables the rotating assembly to drive the placing platform to rotate between a first position and a second position. When the placing platform rotates from the first position to the second position, or from the second position to the first position, the placing platform rotates 90°. The cutter assembly includes a plurality of blades, and the plurality of blades are arranged horizontally in sequence. Each blade can cut downward. The lifting assembly is connected to the cutter assembly, so as to be able to drive the cutter assembly to lift between a third position and a fourth position. When the cutter assembly rises to the third position, the blades of the cutter assembly are located above the placing area, and when the cutter assembly drops to the fourth position, the blades of the cutter assembly drop to abut against the placing area.

[0039] When cutting a whole piece of material in the tray, use the rotating component to rotate the placement platform to the first position, and use the lifting component to lift the cutter component to the third position. Then place the tray in the placement area on the placement platform, and use the lifting component to lower the cutter component to the fourth position, so that each blade makes the first cut on the material in the tray, cutting the material into strips. After the cutting is completed, use the lifting component to lift the cutter component to the third position, and use the rotating component to rotate the placement platform 90° and then turn it to the second position. Then use the lifting component to lower the cutter component to the fourth position, so that each blade makes the second cut on the material, and the two cutting lines are perpendicular, so as to cut the material into square blocks. With such a setting, only one rotation and two cuts are required to cut the whole piece of material into square blocks, which is more efficient than manual cutting. Description of the Drawings

[0040] In order to more clearly illustrate the specific embodiments of the present application or the technical solutions in the related art, the following will briefly introduce the drawings required to be used in the description of the specific embodiments or the related art. Obviously, the drawings in the following description are some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0041] Figure 1 Structural schematic diagram of a cutting device according to an embodiment of the present application;

[0042] Figure 2 Structural schematic diagram of the scraping plate of a cutting device according to an embodiment of the present application;

[0043] Figure 3 Cross-sectional schematic diagram of the scraping plate of a cutting device according to an embodiment of the present application;

[0044] Figure 4 Structural schematic diagram of the cutter component of a cutting device according to an embodiment of the present application.

[0045] Description of the reference numerals:

[0046] 1. Placement platform; 2. Rotating component; 201. Rotating shaft; 202. Motor; 3. Cutter component; 301. Blade; 302. Frame; 303. Connecting frame; 4. Lifting component; 401. Linear module; 402. First electric cylinder; 403. Second electric cylinder; 5. Scraping plate; 51. Perforation; 6. First limiting plate; 7. First pushing plate; 8. First cylinder; 9. Second limiting plate; 10. Second pushing plate; 11. Second cylinder; 12. Electrical control box; 13. First regulation switch; 14. Second regulation switch; 15. Third regulation switch; 16. Fourth regulation switch; 17. Fifth regulation switch; 18. Tray. Detailed Embodiments

[0047] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the following will clearly and completely describe the technical solutions in the embodiments of this application with reference to the accompanying drawings in the embodiments of this application. Apparently, the described embodiments are some, but not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative efforts fall within the scope of protection of this application.

[0048] The following will describe the embodiments of this application in conjunction with Figures 1 to 4 , the embodiments of this application will be described.

[0049] According to an embodiment of this application, on the one hand, a cutting device is provided. As Figure 1 shown, it includes a machine body, a placement platform 1, a rotation assembly 2, a cutter assembly 3, and a lifting assembly 4. A placement area is provided on the placement platform 1, and the placement area is used to place a tray 18 containing materials.

[0050] The rotation assembly 2 is arranged on the machine body and is connected to the placement platform 1, so that the rotation assembly 2 can drive the placement platform 1 to rotate between a first position and a second position. After placing the tray 18 in the placement area on the placement platform 1, using the rotation assembly 2 to rotate the placement platform 1 can make the tray 18 rotate together with the placement platform 1. When the placement platform 1 rotates from the first position to the second position, or from the second position to the first position, the placement platform 1 rotates 90°.

[0051] As Figure 4 shown, the cutter assembly 3 includes a plurality of blades 301, and the plurality of blades 301 are arranged horizontally in sequence. Each blade 301 is arranged vertically, so as to be able to cut downward.

[0052] The lifting assembly 4 is connected to the cutter assembly 3, so that the lifting assembly 4 can drive the cutter assembly 3 to lift between a third position and a fourth position. When the cutter assembly 3 rises to the third position, the blades 301 of the cutter assembly 3 are located above the placement area. When the cutter assembly 3 descends to the fourth position, the blades 301 of the cutter assembly 3 descend to abut against the placement area.

[0053] In this way, when cutting the whole piece of material in the tray 18, use the rotation assembly 2 to rotate the placement platform 1 to the first position, and use the lifting assembly 4 to lift the cutter assembly 3 to the third position. Then place the tray 18 in the placement area on the placement platform 1, and use the lifting assembly 4 to lower the cutter assembly 3 to the fourth position, so that each blade 301 makes a first cut on the material in the tray 18 and cuts the material into strips.

[0054] After the cutting is completed, the cutting tool assembly 3 is lifted to the third position by the lifting assembly 4, and the placing platform 1 is rotated 90° and then transferred to the second position by the rotating assembly 2. Then, the cutting tool assembly 3 is lowered to the fourth position by the lifting assembly 4, so that each blade 301 performs a second cut on the material, and the two cutting lines are perpendicular, thereby cutting the material into square blocks.

[0055] With such a setting, only one rotation and two cuts are required to cut the whole material into square blocks, which is more efficient than manual cutting.

[0056] Moreover, compared with manual cutting, the square-shaped materials after cutting are more regular and the dimensions are more accurate.

[0057] As an optional embodiment, as Figure 1 shown, the cutting block device further includes a scraping plate 5, and the scraping plate 5 can be connected to the main body or to the lifting assembly 4. The scraping plate 5 is horizontally arranged.

[0058] As Figure 2 shown, a plurality of through holes 51 are provided on the scraping plate 5, and the through holes 51 correspond to the blades 301 of the blade 301 assembly one by one.

[0059] When the cutting tool assembly 3 is in the third position, the scraping plate 5 is located between the cutting tool assembly 3 and the placing area, and when the cutting tool assembly 3 is in the fourth position, each blade 301 passes through a through hole 51 and abuts against the placing area.

[0060] In this way, when the tray 18 containing the material is placed in the placing area and the cutting tool assembly 3 is in the fourth position, the blade 301 of the cutting tool assembly 3 makes a cut on the material in the tray 18. After that, when the cutting tool assembly 3 is lifted to the third position by the lifting assembly 4, the blade 301 leaves the through hole 51. At this time, under the blocking action of the scraping plate 5, the material adhered to the blade 301 is prevented.

[0061] In a further embodiment, in the state where the cutting tool assembly 3 is in the fourth position, the inner walls of the two side walls of the blade 301 are attached to the inner wall of the through hole 51.

[0062] In this way, after the blade 301 of the cutting tool assembly 3 makes a cut on the material in the tray 18, when the cutting tool assembly 3 is lifted to the third position by the lifting assembly 4, the blade 301 leaves the through hole 51. Since the inner walls of the two side walls of the blade 301 are attached to the inner wall of the through hole 51, the material fragments adhered to the two side walls of the blade 301 are blocked by the scraping plate 5 and will not enter the through hole 51 as the blade 301 rises. Thus, the material fragments adhered to the two side walls of the blade 301 are scraped off, preventing the material adhered to the side wall of the blade 301 from affecting the next cut.

[0063] In some embodiments, as Figure 3As shown, the width of the perforation 51 gradually increases from bottom to top. When the cutter assembly 3 descends from the third position to the fourth position, as long as the blade 301 can enter the top of the perforation 51, as the blade 301 continues to descend, under the guidance of the side wall of the perforation 51, the blade 301 can pass through the perforation 51, and at this time, the side wall of the blade 301 fits with the bottom of the inner wall of the perforation 51. When the cutter assembly 3 rises from the fourth position to the third position, the material fragments adhered to the side walls of the blade 301 on both sides are blocked by the scraper 5 and will not enter the perforation 51 as the blade 301 rises. In this way, the material fragments adhered to the side walls of the blade 301 on both sides are scraped off to avoid the material adhered to the side walls of the blade 301 affecting the next cutting.

[0064] This arrangement makes installation more convenient and avoids the blade 301 from being offset and unable to accurately pass through the perforation 51 due to long-term use.

[0065] As an optional implementation, Figure 1 As shown, the block cutting device further includes a first limit plate 6, a first push plate 7 and a first drive assembly. The first limit plate 6 is fixedly arranged on the placement platform 1, and the first drive assembly is connected to the placement platform 1. The first push plate 7 is connected to the first drive assembly, and the first drive assembly can be used to drive the first push plate 7 to move closer to or away from the first limit plate 6.

[0066] After placing the tray 18 containing the materials in the placement area, the tray 18 is pressed against the first limit plate 6. Thereafter, the first push plate 7 is driven close to the first limit plate 6 until the first push plate 7 is pressed against the side of the tray 18 away from the first limit plate 6, and then the first push plate 7 and the first limit plate 6 clamp the tray 18 to fix the tray 18 and prevent the tray 18 from leaving the placement area.

[0067] In an optional embodiment, the first driving assembly includes a first cylinder 8, the cylinder body of the first cylinder 8 is installed on the placement table, the piston rod of the first cylinder 8 points to the first limit plate 6, and the first push plate 7 is connected to the piston rod of the first cylinder 8, so that when the piston rod of the first cylinder 8 moves, the first push plate 7 is driven to move closer to or away from the first limit plate 6. In this way, the first cylinder 8 can be used to drive the first push plate 7 to move closer to the first limit plate 6 or away from the first limit plate 6.

[0068] In a further embodiment, Figure 1 As shown, the block cutting device further includes a second limit plate 9, a second push plate 10 and a second drive assembly. The second limit plate 9 is fixedly arranged on the placement platform 1, and the second drive assembly is connected to the placement platform 1. The second push plate 10 is connected to the second drive assembly, and the second drive assembly can be used to drive the second push plate 10 to move closer to or away from the second limit plate 9.

[0069] After placing the tray 18 containing the materials in the placement area, the first side of the tray 18 is pressed against the first limiting plate 6, and the second side of the tray 18 adjacent to the first side is pressed against the second limiting plate 9. Thereafter, the first driving assembly is used to drive the first push plate 7 to move close to the first limiting plate 6 until the first push plate 7 is pressed against the side of the tray 18 away from the first limiting plate 6. At the same time, the second driving assembly is used to drive the second push plate 10 to move close to the second limiting plate 9 until the second push plate 10 is pressed against the side of the tray 18 away from the second limiting plate 9. Thus, the first push plate 7 and the second push plate 10 are used simultaneously to press the tray 18 in different directions, so that the stability of the tray 18 is better.

[0070] In an optional embodiment, if Figure 1 As shown, the second driving assembly includes a second cylinder 11, the cylinder body of the second cylinder 11 is installed on the placement table, the piston rod of the second cylinder 11 points to the second limit plate 9, and the second push plate 10 is connected to the piston rod of the second cylinder 11, so that when the piston rod of the second cylinder 11 moves, the second push plate 10 is driven to move closer to or away from the second limit plate 9. In this way, the second cylinder 11 can be used to drive the second push plate 10 to move closer to the second limit plate 9 or move away from the second limit plate 9.

[0071] In some embodiments, the first limit plate 6 and the second limit plate 9 are vertically connected, so that there is a 90-degree angle between the first limit plate 6 and the second limit plate 9. For a square tray 18, one of the trays 18 can be placed between the first limit plate 6 and the second limit plate 9, so that two adjacent side walls of the tray 18 are respectively against the first limit plate 6 and the second limit plate 9.

[0072] As an optional embodiment, Figure 1 As shown, the lifting assembly 4 includes a linear module 401 , a first electric cylinder 402 and a second electric cylinder 403 .

[0073] The linear module 401 is a commonly used mechanical device that converts rotational motion into linear motion, and its slider can realize linear sliding in the length direction of the linear module 401. The cutter assembly 3 is connected to the slider of the linear module 401, so that the linear module 401 can drive the cutter assembly 3 to move along the length direction of the linear module 401.

[0074] The first electric cylinder 402 is vertically arranged on the first side of the cutter assembly 3, and the second electric cylinder 403 is vertically arranged on the second side of the cutter assembly 3. The first electric cylinder 402 and the second electric cylinder 403 are relatively arranged on both sides of the cutter assembly 3, and the movable part of the first electric cylinder 402 is connected to the first end of the linear module 401, and the movable end of the second electric cylinder 403 is connected to the second end of the linear module 401. Therefore, when the first electric cylinder 402 and the second electric cylinder 403 work synchronously, they can push the linear module 401 to rise and fall, thereby driving the cutter assembly 3 to rise and fall.

[0075] Thus, when cutting the whole piece of material in the tray 18, the rotating assembly 2 is used to rotate the placement platform 1 to the first position, and the cutter assembly 3 is located directly above the placement area. The tray 18 is placed in the placement area on the placement platform 1, and the first electric cylinder 402 and the second electric cylinder 403 work synchronously, so that the cutter assembly 3 is lowered to the fourth position, so that each blade 301 performs the first cutting on the material in the tray 18 and cuts the material into strips.

[0076] After the cutting is completed, the first electric cylinder 402 and the second electric cylinder 403 work synchronously to raise the cutter assembly 3 to the third position, and the rotating assembly 2 is used to rotate the placement platform 1 90 degrees to the second position. Then the first electric cylinder 402 and the second electric cylinder 403 work synchronously to lower the cutter assembly 3 to the fourth position, so that each blade 301 cuts the material for the second time, and the two cutting lines are perpendicular, so that the material is cut into a square shape.

[0077] The linear module 401 is horizontally arranged, so as to drive the cutter assembly 3 to move horizontally between the first electric cylinder 402 and the second electric cylinder 403. In this way, the linear module 401 can be used to fine-tune the horizontal position of the cutter assembly 3 to ensure that the cutter assembly 3 is located directly above the placement area.

[0078] As an optional embodiment, Figure 1 As shown, the rotating assembly 2 includes a rotating shaft 201 and a motor 202, wherein the rotating shaft 201 is vertically arranged and connected to the placement platform 1, the placement platform 1 is horizontally arranged, and the rotating shaft 201 is perpendicular to the placement platform 1. In this way, when the rotating shaft 201 rotates, it can drive the placement platform 1 to rotate horizontally.

[0079] The motor 202 is in transmission connection with the rotating shaft 201 , so that the motor 202 can drive the rotating shaft 201 to rotate, thereby driving the placement platform 1 to rotate horizontally.

[0080] Specifically, when cutting the whole piece of material in the tray 18, the motor 202 is used to drive the rotating shaft 201 to rotate until the placement platform 1 is driven to rotate horizontally to the first position and stops, and the lifting assembly 4 is used to lift the cutter assembly 3 to the third position. Then, the tray 18 is placed in the placement area on the placement platform 1, and the lifting assembly 4 is used to lower the cutter assembly 3 to the fourth position, so that each blade 301 performs the first cutting on the material in the tray 18 and cuts the material into strips.

[0081] After cutting is completed, use the lifting assembly 4 to raise the cutter assembly 3 to the third position, and use the motor 202 to drive the rotation shaft 201 to rotate until the placement platform 1 is horizontally rotated 90° to the second position and stops. Then use the lifting assembly 4 to lower the cutter assembly 3 to the fourth position, so that each blade 301 performs a second cut on the material, and the two cutting lines are perpendicular, thereby cutting the material into square shapes.

[0082] As an optional embodiment, as Figure 4 shown, the cutter assembly 3 further includes a frame 302 and a connecting frame 303. The frame 302 includes a cross bar, a first vertical bar and a second vertical bar. The first vertical bar is connected to the first end of the cross bar and is perpendicular to the cross bar, and the second vertical bar is connected to the second end of the cross bar and is perpendicular to the cross bar. Thus, the overall shape of the frame 302 is an inverted U shape.

[0083] Connect each blade 301 perpendicular to the cross bar, so that each blade 301 is arranged in sequence along the length direction of the cross bar, and is parallel to the first vertical bar or the first and second vertical bars.

[0084] The length of the cross bar should be greater than the width of the scraper 5. When the cutter assembly 3 is in the fourth position, each blade 301 correspondingly passes through a through hole 51 and abuts against the placement area. At this time, the first vertical bar and the second vertical bar are respectively located on both sides of the scraper 5.

[0085] Each frame 302 is connected to the connecting frame 303 and is arranged in sequence along the length direction of the connecting frame 303. The connecting frame 303 is connected to the slider of the linear module 401. Thus, the connecting frame 303 is connected to the lifting assembly 4 through the linear module 401. The lifting assembly 4 drives the linear module 401 to lift, which can drive the connecting frame 303 to lift, and further drive the frame 302 and even the blade 301 to lift.

[0086] In some combined embodiments, as Figure 1 shown, the placement platform 1 is provided with a placement area, and the placement platform 1 is connected to the motor 202 through the rotation shaft 201.

[0087] The placement platform 1 is provided with a first limiting plate 6, a first pushing plate 7, a first cylinder 8, a second limiting plate 9, a second pushing plate 10, and a second cylinder 11. The first limiting plate 6 is fixedly arranged on the placement platform 1, and the first driving assembly can drive the first pushing plate 7 to move closer to or away from the first limiting plate 6. The second limiting plate 9 is fixedly arranged on the placement platform 1, and the second driving assembly can drive the second pushing plate 10 to move closer to or away from the second limiting plate 9.

[0088] On both sides of the placement platform 1, a first electric cylinder 402 and a second electric cylinder 403 are vertically arranged. The movable part of the first electric cylinder 402 is connected to the first end of the linear module 401, and the movable part of the second electric cylinder 403 is connected to the second end of the linear module 401. The cutter assembly 3 is connected to the linear module 401 and is located above the placement area.

[0089] One end of the scraper 5 is connected to the cylinder body of the first electric cylinder 402, and the other end is connected to the cylinder body of the second electric cylinder 403. A perforation 51 for the blade 301 of the cutter assembly 3 to pass through is provided on the scraper 5. The scraper 5 is located between the linear module 401 and the placement area.

[0090] When cutting the whole piece of material in the tray 18, the motor 202 is used to drive the rotating shaft 201 to rotate, thereby driving the placement platform 1 to rotate to the first position. At this time, the blade 301 of the cutter assembly 3 is located directly above the placement area. The tray 18 containing the material is placed in the placement area. At this time, the tray 18 abuts against the first limiting plate 6 and the second limiting plate 9 respectively. The first air cylinder 8 is used to drive the first push plate 7 to move close to the first limiting plate 6 to abut the tray 18 tightly, and the second air cylinder 11 is used to drive the second push plate 10 to move close to the second limiting plate 9 to further abut the tray 18 tightly.

[0091] The first electric cylinder 402 and the second electric cylinder 403 work synchronously to lower the cutter assembly 3 to the fourth position, so that each blade 301 makes the first cut on the material in the tray 18 and cuts the material into strips. After that, the first electric cylinder 402 and the second electric cylinder 403 work synchronously to raise the cutter assembly 3 to the third position.

[0092] After cutting is completed, the first electric cylinder 402 and the second electric cylinder 403 work synchronously to raise the cutter assembly 3 to the third position. The rotating assembly 2 is used to rotate the placement platform 1 by 90° and then turn it to the second position. Then the first electric cylinder 402 and the second electric cylinder 403 work synchronously to lower the cutter assembly 3 to the fourth position, so that each blade 301 makes the second cut on the material. The two cutting lines are perpendicular, so as to cut the material into square blocks.

[0093] Among them, the linear module 401 is used to drive the cutter assembly 3 to move to horizontally fine-tune the position of the cutter assembly 3 to ensure that the cutter assembly 3 is located directly above the placement area.

[0094] In an alternative embodiment, as Figure 1 shown, the block cutting device further includes an electrical control box 12. A control module is arranged in the electrical control box 12. The control module is respectively in communication connection with the motor 202, the first air cylinder 8, the second air cylinder 11, the first electric cylinder 402, the second electric cylinder 403 and the linear module 401.

[0095] The cutting device further includes a first regulation switch 13, a second regulation switch 14, a third regulation switch 15, a fourth regulation switch 16, and a fifth regulation switch 17.

[0096] The first regulation switch 13 is communicatively connected to the control module, so that the first regulation switch 13 is used to control the first cylinder 8 to drive the first push plate 7 to move.

[0097] The second regulation switch 14 is communicatively connected to the control module, so that the second regulation switch 14 is used to control the second cylinder 11 to drive the second push plate 10 to move.

[0098] The third regulation switch 15 is communicatively connected to the control module, so that the third regulation switch 15 is used to control the linear module 401.

[0099] The fourth regulation switch 16 is communicatively connected to the control module, so that the fourth regulation switch 16 is used to simultaneously control the first electric cylinder 402 and the second electric cylinder 403.

[0100] The fifth regulation switch 17 is communicatively connected to the control module, so that the fifth regulation switch 17 is used to control the motor 202 to drive the rotating shaft 201 to rotate.

[0101] Although the embodiments of the present application have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present application, and such modifications and variations all fall within the scope defined by the present application.

Claims

1. A cutting device, characterized in that, Including: A placement platform (1) is provided with a placement area for placing a tray (18) for containing materials; A rotating assembly (2) is connected to the placement platform (1) and is adapted to drive the placement platform (1) to rotate between a first position and a second position. When the placement platform (1) rotates by 90°, it rotates from the first position to the second position; A cutter assembly (3) includes a plurality of blades (301) arranged horizontally in sequence, and the blades (301) are adapted to cut downward; A lifting assembly (4) is connected to the cutter assembly (3) and is adapted to drive the cutter assembly (3) to lift between a third position and a fourth position. In a state where the cutter assembly (3) is located at the third position, each of the blades (301) is located above the placement area; In a state where the cutter assembly (3) is located at the fourth position, each of the blades (301) abuts against the placement area.

2. The dicing device according to claim 1, characterized in that, It further includes: A scraper (5) is provided with a plurality of through holes (51) for the blades (301) to pass through, and the through holes (51) correspond to the blades (301) one by one. Among them, In a state where the cutter assembly (3) is located at the third position, the scraper (5) is located between the cutter assembly (3) and the placement area; In a state where the cutter assembly (3) is located at the fourth position, the blades (301) are respectively arranged through the through holes (51) and abut against the placement area.

3. The dicing device according to claim 2, characterized in that, In a state where the cutter assembly (3) is located at the fourth position, the side walls of the blades (301) are attached to the inner walls of the through holes (51).

4. The dicing device according to claim 3, characterized in that, The width of the through hole (51) gradually increases from bottom to top. In a state where the cutter assembly (3) is located at the fourth position, the side walls of the blades (301) are attached to the bottom inner walls of the through holes (51).

5. The cutting device according to claim 1, wherein, It further includes: A first limiting plate (6) is arranged on the placement platform (1); A first pushing plate (7) and a first driving assembly. The first driving assembly is connected to the placement platform (1), the first pushing plate (7) is connected to the first driving assembly, and the first driving assembly can drive the first pushing plate (7) to move closer to or away from the first limiting plate (6). Among them, When the tray (18) is placed in the placement area and the first pushing plate (7) moves closer to the first limiting plate (6), the first pushing plate (7) and the first limiting plate (6) can clamp the tray (18).

6. The dicing device according to claim 5, characterized in that It further includes: A second limiting plate (9) is arranged on the placement platform (1) and is perpendicular to the first limiting plate (6); A second pushing plate (10) and a second driving assembly. The second driving assembly is connected to the placement platform (1), the second pushing plate (10) is connected to the second driving assembly, and the second driving assembly can drive the second pushing plate (10) to move closer to or away from the second limiting plate (9). Among them, When the tray (18) is placed in the placement area and the second push plate (10) moves close to the second limit plate (9), the second push plate (10) and the second limit plate (9) can clamp the tray (18).

7. The cutting device according to claim 6, wherein The first driving assembly includes a first cylinder (8). The first cylinder (8) is arranged on the placement table and connected to the first push plate (7). The first cylinder (8) is used to drive the first push plate (7) to slide close to or away from the first limit plate (6). The second driving assembly includes a second cylinder (11). The second cylinder (11) is arranged on the placement table and connected to the second push plate (10). The second cylinder (11) is used to drive the second push plate (10) to move close to or away from the second limit plate (9).

8. The cutting device according to claim 1, characterized in that The lifting assembly (4) includes: A linear module (401), connected to the cutter assembly (3) and used to drive the cutter assembly (3) to move along the length direction of the linear module (401). A first electric cylinder (402) and a second electric cylinder (403), respectively connected to both ends of the linear module (401). Both the first electric cylinder (402) and the second electric cylinder (403) are used to drive the linear module (401) to lift. The first electric cylinder (402) and the second electric cylinder (403) are respectively located on both sides of the cutter assembly (3).

9. The dicing device according to claim 1, characterized in that The rotating assembly (2) includes: A rotating shaft (201), vertically arranged and connected to the placement platform (1). A motor (202), drivingly connected to the rotating shaft (201) and adapted to drive the rotating shaft (201) to rotate.

10. The cutting device according to claim 1, characterized in that, The cutter assembly (3) further includes: A frame (302), each blade (301) is connected to the frame (302) and arranged in sequence along the frame (302). A connecting frame (303), each frame (302) is connected to the connecting frame (303). The connecting frame (303) is connected to the lifting assembly (4).

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