Cutting equipment

By designing automated cutting equipment, the problem of difficult to maintain material positioning accuracy and safety risks in manual operations in traditional cutting operations is solved, and an efficient and safe automatic cutting process is achieved, which improves production efficiency and safety.

CN120286765APending Publication Date: 2025-07-11BOLIGAN (XIAMEN) COMPOSITE MATERIALS CO LTD
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Patent Information

Application Number
CN202510664071.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

In traditional cutting operations, it is difficult to maintain material positioning accuracy by manual operation, resulting in increased waiting time for equipment, low production efficiency, and safety risks. Especially in cutting large diameter pipes or high-strength alloy materials, manual operation difficulty and risk are significantly increased.

Method used

A cutting equipment is designed, including water tray, loading guide plate, feeding assembly, loading assembly and cutting assembly. Through automated loading, pushing and cutting, manual intervention is reduced, and the guide block and guide groove are used to constrain the chain movement path, ensure the linear motion of the chain, and achieve accurate push. Combined with spinning assembly and clamping assembly, prevent workpieces from disengaging and shaking, and positioning assembly ensures cutting accuracy.

Benefits of technology

It realizes automatic loading, pushing and cutting, improves production efficiency, reduces equipment waiting time, ensures continuous operation, reduces manual safety risks, and meets the needs of large-scale cutting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The cutting equipment comprises a water disc, a bearing guide plate, a feeding assembly, a feeding assembly and a cutting assembly, the water disc is fixedly installed on a rack, the water disc is provided with an installation groove, a discharging groove is formed in the bottom of the installation groove, the bearing guide plate is fixedly installed in the installation groove, and the bearing guide plate is used for bearing a workpiece; the feeding assembly is used for pushing and feeding workpieces located on the bearing guide plate, the feeding assembly is located on one side of the rack, the feeding assembly is provided with two stock bins and used for alternately conveying the workpieces in the two stock bins to the bearing guide plate, the cutting assembly is used for cutting the workpieces pushed by the feeding assembly, and the discharging groove is located at the position of the cutting assembly. Through cooperation of the bearing guide plate, the feeding assembly, the feeding assembly and the cutting assembly, automatic feeding, pushing, cutting and discharging are achieved, manual intervention is reduced, and the production efficiency is improved; the double-stock-bin design of the feeding assembly can supply materials alternately, so that the equipment does not need to be shut down, the waiting time of the equipment is shortened, and continuous operation is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of cutting, and particularly to a cutting device. Background Art

[0002] In the field of machining, the cutting process of pipes and bars, as a basic production link, directly affects the overall production efficiency and operation safety. In traditional cutting operations, operators need to participate in the whole process of material loading and positioning, feeding adjustment, and cutting implementation. There are significant limitations in the operation process. In the manual loading process, different lengths and weights of metal materials need to be repeatedly carried, which not only has a high labor intensity, but also the positioning accuracy between the material and the equipment is difficult to maintain stably, resulting in an increase in equipment waiting time and restricting the continuous operation efficiency of the production line. In the cutting implementation stage, the operator needs to operate the cutting equipment at close range. When holding the material for positioning, it is easily affected by equipment vibration, flying debris, and cutting reaction force, and there are safety risks such as accidental contact with the tool by the body or ejection of high-temperature debris. Especially in the cutting operation of large-diameter pipes or high-strength alloy materials, the physical properties of the material itself further exacerbate the difficulty and danger of manual operation. This operation mode relying on manual operation not only fails to meet the requirements of modern production for processing rhythm and production capacity scale, but also becomes a technical bottleneck restricting the automation upgrade of the industry due to quality fluctuations and safety hazards caused by human factors. Therefore, we provide a cutting device to solve the above problems. Summary of the Invention

[0003] The purpose of the present invention is to overcome the shortcomings of the prior art and provide a cutting device.

[0004] The purpose of the present invention is achieved through the following technical solutions:

[0005] A cutting device includes:

[0006] A water tray fixedly installed on a frame. The water tray has an installation groove, and a blanking groove is opened at the bottom of the installation groove;

[0007] A bearing guide plate fixedly installed in the installation groove for bearing workpieces;

[0008] A feeding component fixedly installed on the frame for pushing and feeding workpieces located on the bearing guide plate;

[0009] A loading component located on one side of the frame. The loading component has two bins and is used for alternately transporting workpieces in the two bins to the bearing guide plate;

[0010] Cutting assembly, the cutting assembly is located at the end of the bearing guide plate, and the cutting assembly is used to cut the workpiece pushed by the feeding assembly. The blanking chute is located at the position of the cutting assembly.

[0011] Preferably, the feeding assembly includes a guide block. A guide groove is formed in the guide block along the length direction. A chain with at least part of it located inside is arranged in the guide groove. A first push plate is installed at the end of the rotary driving assembly. The first push plate is located at the position of the bearing guide plate. A rotary driving assembly is fixedly installed on the frame. The rotary driving assembly is in transmission connection with the chain. The rotary driving assembly is used to drive the chain to move in the guide block towards or away from the cutting assembly.

[0012] Preferably, a spinning assembly and a clamping assembly are arranged on the path of the bearing guide plate. The spinning assembly is located between the rotary driving assembly and the cutting assembly. The clamping assembly is located at the cutting position of the cutting assembly. The spinning assembly includes a first rotary driving member. A pressing plate is installed at the rotary end of the first rotary driving member. The first rotary driving member drives the pressing plate to move towards or away from the bearing guide plate. The clamping assembly includes a first linear driving member located on one side of the bearing guide plate. A clamping block is fixedly installed at the end of the first linear driving member. The first linear driving member is used to drive the clamping block to move towards or away from the bearing guide plate.

[0013] Preferably, a positioning assembly is arranged on the bearing guide plate at the position of the cutting assembly. The positioning assembly includes a slider slidably installed on the bearing guide plate. A sliding rod is slidably installed in the first inner hole of the slider. A driven rod is slidably installed in the second inner hole of the slider. A moving plate is fixedly installed with the sliding rod and the driven rod on one side of the slider. A proximity switch is arranged on the side of the slider away from the slider. The proximity switch is located at the position of the driven rod. A fixed block is also fixedly installed on the bearing guide plate. A first threaded rod is installed on the fixed block. The end of the first threaded rod is connected to the slider. Second avoidance grooves are formed on both the moving plate and the slider.

[0014] Preferably, the loading assembly includes two support frames installed on the machine platform, an installation space is formed between the two support frames, a first limit frame and a second limit frame are arranged in the installation space, a blocking member is arranged between the first limit frame and the second limit frame, and the blocking member has an installation room, the first limit frame and the second limit frame and the blocking member respectively define a first material bin and a second material bin, a lifting assembly is installed in the blocking member, and the lifting assembly is used to alternately lift the workpieces in the first material bin and the second material bin, a support assembly is fixedly installed on the second limit frame, a moving end of the support assembly passes through the second material bin and is erected on the top of the blocking member to form a transfer surface, a first pushing assembly is fixedly installed on the first limit frame, and the first pushing assembly is used to push the top workpiece in the first material bin and the second material bin toward the cutting assembly, and a conveying plate is fixedly installed on the second limit frame, and the conveying plate is located on the side of the second limit frame away from the blocking member.

[0015] Preferably, the first limiting frame and the second limiting frame are both slidably arranged on the machine platform, and a spacing adjustment component is also installed on the machine platform, the spacing adjustment component is transmission-connected with the first limiting frame and the second limiting frame, and the spacing adjustment component is used to drive the first limiting frame and the second limiting frame to move toward or away from each other;

[0016] The support assembly includes a fourth rotation driving member fixedly mounted on the second limiting frame, a rotation guide plate is provided at a rotation end of the fourth rotation driving member, and the fourth rotation driving member drives the rotation guide plate to rotate toward or away from the blocking member.

[0017] Preferably, the lifting assembly includes a guide rod fixedly mounted on the machine platform, a lifting plate is slidably arranged on the guide rod, a second threaded rod is also rotatably mounted on the machine platform, the second threaded rod is transmission-connected to the lifting plate, a second rotating drive component for driving the second threaded rod to rotate is mounted on the machine platform, third rotating drive components are fixedly mounted at both ends of the lifting plate, and a support plate is mounted on the rotating end of the third rotating drive component.

[0018] Preferably, the cutting assembly includes a base, on which a mounting plate is rotatably installed. A cutting blade is rotatably installed on the mounting plate, and a fifth rotation driving member is fixedly installed. The fifth rotation driving member drives the cutting blade to rotate. A sixth rotation driving member is arranged on one side of the mounting plate, and the rotating end of the sixth rotation driving member is in transmission connection with the mounting plate. The sixth rotation driving member drives the mounting plate to swing about the base. A second material pushing assembly is arranged on one side of the base. A first avoidance groove is formed on the bearing guide plate. The driven end of the second material pushing assembly penetrates through the first avoidance groove to push the workpiece cut on the bearing guide plate into the blanking groove. The mounting plate is also fixedly connected with a second limiting member.

[0019] Preferably, the base includes a fixing plate, on which a first through hole and a long arc hole are formed. A rotating plate is arranged on one side of the fixing plate. The mounting plate is rotatably installed on the rotating plate. A rotating shaft and a guide shaft are arranged on the rotating plate. The rotating shaft is rotatably installed in the first through hole, and the guide shaft extends into the long arc hole. Fixing members are arranged on both sides of the fixing plate, and screwing members are screwed and installed on the fixing members. The screwing members screw towards or away from the rotating plate.

[0020] Preferably, the second material pushing assembly includes a third linear driving member. A mounting block is fixedly installed on the moving end of the third linear driving member. A third pushing plate is installed on the mounting block. The third linear driving member drives the third pushing plate to penetrate through the first avoidance groove through the mounting block to push the workpiece on the bearing guide plate out for blanking.

[0021] The present invention has the following advantages:

[0022] 1. Through the cooperation of the bearing guide plate, the feeding assembly, the loading assembly and the cutting assembly, the present invention realizes automatic feeding, pushing, cutting and blanking, reduces manual intervention and improves production efficiency. The dual-bin design of the loading assembly can supply materials alternately, so that the equipment does not need to stop, reduces the waiting time of the equipment, and ensures continuous operation.

[0023] 2. The present invention restricts the moving path of the chain through the guide groove of the guide block, avoids the chain bending and instability, ensures that the rotation driving assembly drives the chain to move linearly through the sprocket, drives the first pushing plate to accurately push the workpiece to the cutting assembly, and realizes automatic feeding. Description of the Drawings

[0024] Figure 1 It is a schematic diagram of the overall structure of the cutting equipment of the present invention.

[0025] Figure 2 It is a schematic diagram of the structure of the feeding assembly of the present invention.

[0026] Figure 3Schematic diagram of the assembled state of the rotary drive assembly, guide block, chain and first push plate of the present invention.

[0027] Figure 4 Schematic side view of the assembled state of the guide block, chain and first push plate of the present invention.

[0028] Figure 5 Schematic diagram of the spinning assembly of the present invention.

[0029] Figure 6 Schematic diagram of the clamping assembly of the present invention.

[0030] Figure 7 Schematic diagram of the positioning assembly of the present invention.

[0031] Figure 8 Schematic diagram of the loading assembly of the present invention.

[0032] Figure 9 Schematic diagram of the exploded state of the loading assembly of the present invention.

[0033] Figure 10 Schematic diagram of the lifting assembly of the present invention.

[0034] Figure 11 Schematic diagram of the first pusher assembly of the present invention.

[0035] Figure 12 Schematic diagram of the cutting assembly of the present invention.

[0036] Figure 13 Schematic diagram of the exploded state of the base of the present invention.

[0037] Figure 14 Schematic diagram of the second pusher assembly of the present invention.

[0038] In the figure, 100 is a water tray; 110 is a blanking chute; 120 is a material receiving chute; 200 is a bearing guide plate; 201 is a first avoidance groove; 202 is a sliding groove; 210 is a first plate body; 220 is a second plate body; 300 is a feeding component; 310 is a guide block; 311 is a guide groove; 320 is a chain; 330 is a first push plate; 340 is a rotation driving component; 341 is a driving motor; 342 is a sprocket; 350 is a positioning component; 351 is a slider; 352 is a sliding rod; 353 is a driven rod; 354 is a proximity switch; 355 is a moving plate; 356 is a fixed block; 357 is a first threaded rod; 358 is a second avoidance groove; 360 is a spinning component; 361 is a first rotation driving member; 362 is a pressing plate; 370 is a clamping component; 371 is a first linear driving member; 372 is a clamping block; 380 is a photoelectric sensor; 390 is a storage component; 391 is a guide wheel; 392 is a storage box; 400 is a loading component; 410 is a support frame; 420 is a first limiting frame; 430 is a second limiting frame; 440 is a blocking component; 441 is a first partition; 442 is a second partition; 450 is a lifting component; 451 is a guide rod; 452 is a lifting plate; 453 is a second threaded rod; 454 is a second rotation driving member; 455 is a third rotation driving member; 456 is a support plate; 457 is a top plate; 460 is a support component; 461 is a fourth rotation driving member; 462 is a rotating guide plate; 470 is a first pushing component; 471 is a second linear driving member; 472 is a second push plate; 480 is a spacing adjusting component; 490 is a conveying plate; 4110 is a limiting plate; 500 is a cutting component; 510 is a base; 511 is a fixing plate; 5111 is a first through hole; 5112 is a long arc hole; 512 is a rotating plate; 5121 is a rotating shaft; 5122 is a guide shaft; 5123 is a first limiting member; 513 is a fixing member; 514 is a screwing member; 520 is a mounting plate; 521 is a second limiting member; 522 is a handle; 530 is a cutting blade; 540 is a fifth rotation driving member; 550 is a sixth rotation driving member; 560 is a second pushing component; 561 is a third linear driving member; 562 is a mounting block; 563 is a third push plate. Detailed implementation manners

[0039] To make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. Usually, the components of the embodiments of the present invention described and shown in the drawings here can be arranged and designed in various different configurations.

[0040] Accordingly, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.

[0041] As Figure 1 — Figure 14 shown in the embodiments.

[0042] An embodiment of the present application provides a cutting device, which includes a water tray 100, a carrying guide plate 200, a feeding component 300, a loading component 400, and a cutting component 500.

[0043] In some specific embodiments, the water tray 100 is fixedly installed on the frame. The water tray 100 has a mounting groove, and a blanking groove 110 is opened at the bottom of the mounting groove. The carrying guide plate 200 is fixedly installed in the mounting groove. The carrying guide plate 200 is used to carry the workpiece. The feeding component 300 is fixedly installed on the frame. The feeding component 300 is used to push the workpiece on the carrying guide plate 200 for feeding. The loading component 400 is located on one side of the frame. The loading component 400 has two bins. The loading component 400 is used to alternately convey the workpieces in the two bins to the carrying guide plate 200. The cutting component 500 is located at the end of the carrying guide plate 200. The cutting component 500 is used to cut the workpiece pushed by the feeding component 300. The blanking groove 110 is located at the position of the cutting component 500.

[0044] In this embodiment, the workpiece mentioned above can be materials such as pipes and bars. In practice, it can also be other types of materials, which are not specifically limited here. Materials such as pipes and bars are expressed as workpieces in the following text.

[0045] Please refer to Figure 1 shown. In this embodiment, first, the loading component 400 conveys the workpieces in its two bins to the position of the feeding component 300 on the carrying guide plate 200. Then, the feeding component 300 pushes the workpiece at its position on the carrying guide plate 200 to the position of the cutting component 500. Finally, the cutting component 500 cuts the workpiece located on the carrying guide plate 200. The cut workpiece of the preset length will be discharged through the blanking groove 110, thus completing the cutting process. It can be understood that when a section of the length of the workpiece is cut off, the remaining length of the workpiece can still be pushed to the position of the cutting component 500 by the feeding component 300, so as to be cut again. This process is repeated to complete the cutting of the entire workpiece. After the first workpiece is cut, the workpiece is conveyed to the carrying guide plate 200 again through the loading component 400, and the above operation is repeated to cut the workpiece again.

[0046] As described above, in the processes of feeding, pushing, and cutting the workpiece, manual participation is not required, which greatly improves the cutting efficiency of the workpiece, meets the requirements for large-scale cutting of the workpiece, and prevents the possible injuries and quality instability problems caused by manual participation in the cutting process.

[0047] Please refer to Figure 2 and Figure 6 As shown, in this embodiment, the bearing guide plate 200 includes a first plate body 210 and a second plate body 220 which are separately arranged, and the first plate body 210 and the second plate body 220 are at a right angle. The first plate body 210 is used to bear the workpiece, and the second plate body 220 abuts against the peripheral surface of the workpiece to achieve blocking and limiting. It can be understood that the first plate body 210 and the second plate body 220 are provided with cutting grooves for avoiding cutting at the position of the cutting assembly 500, so as to prevent the cutting assembly 500 from cutting the first plate body 210 and the second plate body 220.

[0048] The purpose of separately arranging the first plate body 210 and the second plate body 220 is that when the contact surface between the first plate body 210 and the workpiece is damaged and cannot be used, it can be disassembled and then flipped to use the other side, so as to achieve repeated use and reduce the maintenance cost of the equipment. Similarly, when the surface of the second plate body 220 in contact with the workpiece is damaged, the second plate body 220 can also be disassembled and flipped to use the opposite side, reducing the maintenance cost of the equipment.

[0049] In some specific embodiments, the feeding assembly 300 includes a guide block 310. The guide block 310 is provided with a guide groove 311 along the length direction. A chain 320 with at least part of it located inside is arranged in the guide groove 311. A first push plate 330 is installed at the end of the rotary drive assembly 340. The first push plate 330 is located at the position of the bearing guide plate 200. The rotary drive assembly 340 is fixedly installed on the frame. The rotary drive assembly 340 is in transmission connection with the chain 320. The rotary drive assembly 340 is used to drive the chain 320 to move in the guide block 310 towards or away from the cutting assembly 500.

[0050] Please refer to Figure 2 、 Figure 3 and Figure 4As shown, when the workpiece from the feeding component 400 is conveyed onto the bearing guide plate 200, it is first detected by the photoelectric sensor 380 installed on the guide block 310. When the photoelectric sensor 380 detects the appearance of a workpiece on the bearing guide plate 200, the rotation drive component 340 can be activated to drive the chain 320 to move in the guide groove 311, thereby driving the first push plate 330 at the end of the chain 320 to move as well. The first push plate 330 is located at the position of the bearing guide plate 200, so that the workpiece on the bearing guide plate 200 can be pushed to the cutting component 500 for cutting through the first push plate 330, realizing feeding for the cutting component 500.

[0051] Please refer to Figure 4 As shown, it can be understood that if the chain 320 is not limited, it will bend under force and cannot convert the rotational force from the rotation drive component 340 into a linear pushing force. After the chain 320 enters the guide groove 311, the chain 320 is restricted in both the height direction and the lateral direction. At this time, the chain 320 cannot bend, so it can move linearly in the guide groove 311, and then can drive the first push plate 330 to move to push the workpiece to the cutting component 500 for cutting. Further, when the workpiece on the bearing guide plate 200 is cut, the rotation drive component 340 drives the chain 320 and the first push plate 330 to move to the initial position to wait for the next workpiece to be pushed for feeding.

[0052] In this embodiment, the rotation drive component 340 includes a drive motor 341 installed on the frame. The rotating end of the drive motor 341 is equipped with a sprocket 342, and the sprocket 342 is meshed with the chain 320. When the drive motor 341 drives the sprocket 342 to rotate, it can drive the chain 320 to move in the guide groove 311, realizing the movement of the first push plate 330 to push the workpiece.

[0053] Please continue to refer to Figure 2 and Figure 3 As shown, in order to prevent the chain 320 from getting entangled when it returns to its initial state, a storage component 390 is provided at the end of the guide block 310 facing away from the cutting component 500 for storing the chain 320. Specifically, the storage component 390 includes a guide wheel 391 rotatably installed at the position of the sprocket 342, and the chain 320 is laid on the guide wheel 391. A storage box 392 installed on the frame is provided below the guide wheel 391. Through the guidance of the guide wheel 391, the chain 320 is stored in the storage box 392 to prevent the chain 320 from accumulating and getting entangled.

[0054] In some specific embodiments, a spinning assembly 360 and a clamping assembly 370 are provided on the path of the bearing guide plate 200, the spinning assembly 360 is located between the rotating drive assembly 340 and the cutting assembly 500, and the clamping assembly 370 is located at the cutting position of the cutting assembly 500; the spinning assembly 360 includes a first rotating drive member 361, and a pressure plate 362 is installed at the rotating end of the first rotating drive member 361, and the first rotating drive member 361 drives the pressure plate 362 to move toward or away from the bearing guide plate 200; the clamping assembly 370 includes a first linear drive member 371 located on one side of the bearing guide plate 200, and a clamping block 372 is fixedly installed at the end of the first linear drive member 371, and the first linear drive member 371 is used to drive the clamping block 372 to move toward or away from the bearing guide plate 200.

[0055] See also Figure 2 and Figure 5 Since the bearing guide plate 200 is made of metal, when the workpiece from the loading assembly 400 rolls down and is transported to the bearing guide plate 200, it is easy to rebound due to the collision between the workpiece and the bearing guide plate 200 and fall off the bearing guide plate 200 into the water tray 100. Therefore, when the workpiece rolls onto the bearing guide plate 200, the workpiece is blocked by the spinning assembly 360 to prevent it from falling off. Specifically, the first rotating drive member 361 can drive the pressure plate 362 to rotate to the position of the bearing guide plate 200, and the pressure plate 362 closes the side of the first plate body 210 away from the second plate body 220, thereby blocking the workpiece located on the first plate body 210 and preventing it from falling off the first plate body 210.

[0056] See also Figure 2 and Figure 6 As shown, when the workpiece is pushed to the position of the cutting assembly 500 for cutting, in order to prevent movement and affect the cutting accuracy, the workpiece located on the first plate 210 is clamped and fixed by the clamping assembly 370 to prevent the workpiece from shaking. Specifically, after the workpiece is pushed to the position of the cutting assembly 500, the first linear drive member 371 drives the clamping block 372 to clamp and fix it toward the position of the workpiece.

[0057] Exemplarily, the first rotary drive member 361 and the first linear drive member 371 are both rotary cylinders.

[0058] In some specific embodiments, a positioning assembly 350 is provided on the bearing guide plate 200 at the position of the cutting assembly 500, and the positioning assembly 350 includes a slider 351 slidably installed on the bearing guide plate 200, a slider 352 is slidably installed in the first inner hole of the slider 351, and a driven rod 353 is slidably installed in the second inner hole of the slider 351, and a movable plate 355 fixedly installed with the slider 352 and the driven rod 353 is provided on one side of the slider 351, and a proximity switch 354 is provided on the side of the slider 351 away from the slider 351, and the proximity switch 354 is located at the position of the driven rod 353. A fixed block 356 is also fixedly installed on the bearing guide plate 200, and a first threaded rod 357 is installed on the fixed block 356, and the end of the first threaded rod 357 is connected to the slider 351; a second avoidance groove 358 is provided on both the movable plate 355 and the slider 351.

[0059] See also Figure 1 , Figure 2 as well as Figure 7 As shown, in order to achieve precise cutting of the workpiece, a positioning assembly 350 is set at the tail of the supporting guide plate 200 and the position of the cutting assembly 500 to position the workpiece. That is, when the workpiece is pushed to the position of the cutting assembly 500 and contacts the positioning assembly 350, the push of the first push plate 330 on the workpiece is released, and then the first linear drive member 371 can be started to drive the clamping block 372 to move and clamp the workpiece to fix it in preparation for cutting.

[0060] See also Figure 7 As shown, the movable plate 355 can move under the guidance of the sliding rod 352 and the driven rod 353, and a spring is arranged on the sliding rod 352 or the driven rod 353. When there is no external force on the movable plate 355, the movable plate 355 is restored to its initial position under the action of the spring. Specifically, when the workpiece contacts the movable plate 355, as the workpiece is pushed, the movable plate 355 is driven to overcome the elastic force of the spring and move toward the sliding block 351. At this time, the driven rod 353 moves with the movable plate 355, and the end of the driven rod 353 away from the movable plate 355 moves to the position of the proximity switch 354. At this time, the proximity switch 354 senses the existence of the driven rod 353, and it can be judged that the workpiece has reached the predetermined position. The first linear drive member 371 drives the clamping block 372 to move and clamp the workpiece to complete the positioning of the workpiece. Next, the workpiece can be cut to a preset length through the cutting assembly 500.

[0061] Please continue reading Figure 7As shown, a chute 202 is formed on the second plate body 220, and the slider 351 is slidably installed on the chute 202. In order to adjust the length of the workpiece to be cut, the slider 351 can be driven to move left and right by screwing the first threaded rod 357, so as to adjust the distance between the side surface of the moving plate 355 and the cutting position of the cutting assembly 500, realizing the adjustment of the cutting length of the workpiece. Exemplarily, the first threaded rod 357 is a lead screw, and the first threaded rod 357 is in transmission connection with the fixed block 356. In order to facilitate the rotation of the first threaded rod 357, a handwheel is installed at the end of the first threaded rod 357 away from the slider 351.

[0062] In some specific embodiments, the loading assembly 400 includes two support frames 410 installed on the machine table. An installation space is formed between the two support frames 410. A first limit frame 420 and a second limit frame 430 are arranged at intervals in the installation space. A barrier member 440 is arranged between the first limit frame 420 and the second limit frame 430. The barrier member 440 has an installation chamber. The first limit frame 420, the second limit frame 430 and the barrier member 440 respectively define a first material bin and a second material bin. A lifting assembly 450 is installed in the barrier member 440. The lifting assembly 450 is used to alternately lift the workpieces in the first material bin and the second material bin. A support assembly 460 is fixedly installed on the second limit frame 430. The moving end of the support assembly 460 passes through the second material bin and is placed on the top of the barrier member 440 to form a transfer surface. A first pushing assembly 470 is fixedly installed on the first limit frame 420. The first pushing assembly 470 is used to push the topmost workpiece in the first material bin and the second material bin towards the cutting assembly 500. A conveying plate 490 is fixedly installed on the second limit frame 430. The conveying plate 490 is located on the side of the second limit frame 430 away from the barrier member 440.

[0063] In this embodiment, workpieces in a stacked state are arranged in both the first material bin and the second material bin. In the initial state, the workpieces in the stacked state are restricted in the first material bin by the first limit frame 420 and the barrier member 440, and are restricted in the second material bin by the second limit frame 430 and the barrier member 440, and the workpieces are supported on the plane formed by the two support frames 410.

[0064] Please refer to Figure 8 and Figure 9As shown in the figure, when the feeding component 400 is required to push and provide workpieces for the feeding component 300, since the feeding component 400 has a first bin and a second bin, it is necessary to batch transport the workpieces in the first bin and the second bin to the bearing guide plate 200 in sequence. Specifically, for example, when it is necessary to transport the workpieces in the first bin to the bearing guide plate 200, first, the supporting component 460 places its moving end on the blocking component 440, thereby closing the top of the second bin. At this time, the top of the blocking component 440, the moving end of the supporting component 460, and the conveying plate 490 form a conveying path for the workpieces from the first bin. Next, the lifting component 450 lifts the stacked workpieces in the first bin upward. When the workpieces in the first bin are lifted to the pushing path of the first pushing component 470, the lifting stops. At this time, the first pushing component 470 pushes the topmost workpiece in the first bin towards the bearing guide plate 200. The workpiece will pass through the top of the blocking component 440, the moving end of the supporting component 460, and the conveying plate 490 to the bearing guide plate 200, completing the feeding of the first workpiece.

[0065] Further, after the feeding of the workpieces in the first bin is completed, when it is necessary to feed the workpieces in the second bin, first, the moving end of the supporting component 460 releases the closure of the top of the second bin, so that the workpieces in the second bin can be pushed from the top. Specifically, the lifting component 450 lifts the stacked and palletized workpieces in the second bin upward until the topmost workpiece in the second bin is located in the pushing path of the first pushing component 470. Next, the first pushing component 470 pushes the topmost workpiece in the second bin to the bearing guide plate 200, completing the feeding of the workpieces in the second bin.

[0066] It can be understood that during the process of pushing the workpieces in the second bin to the bearing guide plate 200, the first bin can be replenished manually. During the process of pushing the workpieces in the first bin to the bearing guide plate 200, the second bin can be replenished. Thus, the feeding can be achieved without stopping by repeating this process, thereby improving the cutting efficiency of the workpieces and meeting the requirements of mass production.

[0067] In some specific embodiments, both the first limiting frame 420 and the second limiting frame 430 are slidably arranged on the machine table. A spacing adjusting component 480 is also installed on the machine table. The spacing adjusting component 480 is in transmission connection with both the first limiting frame 420 and the second limiting frame 430. The spacing adjusting component 480 is used to drive the first limiting frame 420 and the second limiting frame 430 to move closer to or away from each other.

[0068] Please refer to Figure 8 and Figure 9As shown, in order to enable the first material bin and the second material bin to store different specifications at the same time, the first limit frame 420 and the second limit frame 430 can be slidably installed on the machine platform, and the first limit frame 420 and the second limit frame 430 are both connected to the spacing adjustment component 480 for transmission, and the spacing adjustment component 480 drives the first limit frame 420 and the second limit frame 430 to move closer to or away from each other. As the distance between the first limit frame 420 and the second limit frame 430 changes, the distance between the first limit frame 420 and the blocking member 440 and the distance between the second limit frame 430 and the blocking member 440 change, so that the first material bin and the second material bin can store and stack workpieces of different specifications.

[0069] Exemplarily, the spacing adjustment assembly 480 may include a screw rod rotatably installed through a mounting seat, a handwheel is installed at the end of the screw rod, and the spacing adjustment assembly 480 is transmission-connected with the first limit frame 420 and the second limit frame 430. The rotation of the screw rod can drive the first limit frame 420 and the second limit frame 430 to move closer to or away from each other to adjust the width of the first material bin and the second material bin. Specifically, the screw rod is a positive and negative thread screw rod.

[0070] In another embodiment, the spacing adjustment component 480 can also be two cylinders, which are respectively connected to the first limit frame 420 and the second limit frame 430 by transmission. The spacing between the first limit frame 420 and the second limit frame 430 is adjusted by the two cylinders, so as to adjust the width of the first silo and the second silo.

[0071] The supporting assembly 460 includes a fourth rotating driving member 461 fixedly mounted on the second limiting frame 430 . A rotating guide plate 462 is disposed at a rotating end of the fourth rotating driving member 461 . The fourth rotating driving member 461 drives the rotating guide plate 462 to rotate toward or away from the blocking member 440 .

[0072] See also Figure 8 and Figure 9 As shown, in order to enable the workpiece from the first silo to pass through the top of the second silo without falling into it, a fourth rotating drive member 461 is installed on the second limit frame 430, and the rotating guide plate 462 is driven by the fourth rotating drive member 461 to rotate toward the top of the blocking member 440, so that the rotating guide plate 462 is placed on the top of the blocking member 440. Specifically, the rotating guide plate 462 is placed in the groove on the upper surface of the lifting assembly 450, so that the surface of the rotating guide plate 462 is flush with the surface of the top plate 457, and the workpiece from the first silo can pass through the top plate 457 more easily. At this time, the top of the second silo is closed by the rotating guide plate 462, and the rotating guide plate 462 forms a plane for the workpiece from the first silo to pass through.

[0073] In this embodiment, two support components 460 are installed on the second limiting frame 430 to facilitate the passage of workpieces. The rotating guide plate 462 is a plate member.

[0074] In some specific embodiments, the lifting component 450 includes a guide rod 451 fixedly installed on the machine table. A lifting plate 452 is slidably arranged on the guide rod 451. A second threaded rod 453 is also rotatably installed on the machine table. The second threaded rod 453 is in transmission connection with the lifting plate 452. A second rotation driving member 454 for driving the second threaded rod 453 to rotate is installed on the machine table. Third rotation driving members 455 are fixedly installed at both ends of the lifting plate 452. A support plate 456 is installed at the rotation end of the third rotation driving member 455.

[0075] Please continue to refer to Figure 8 and Figure 9 As shown, in this embodiment, the barrier member 440 includes a first partition plate 441 and a second partition plate 442 fixedly installed on the machine table at intervals. The first partition plate 441 and the second partition plate 442 define an installation chamber. The tops of the first partition plate 441 and the second partition plate 442 are both fixedly connected to the top plate 457. The top of the installation chamber is closed by the top plate 457 to prevent the workpieces from falling into the installation chamber when the first feeding component 470 pushes and feeds the workpieces in the first bin.

[0076] Refer to Figure 9 and Figure 10As shown, in order to be able to lift the workpieces in the first bin and the second bin respectively, a cutting assembly 500 is installed in the installation chamber formed by the loading assembly 400. Specifically, for example, when it is necessary to lift the workpieces in the first bin, first, the second rotating drive 454 drives the second threaded rod 453 to rotate, thereby driving the lifting plate 452 to descend below the support surface of the support frame 410. Next, the third rotating drives 455 on both sides of the lifting plate 452 drive the support plate 456 to rotate, so that the support plate 456 rotates below the first bin. Next, the second rotating drive 454 can be started to continue driving the second threaded rod 453 to rotate to drive the lifting plate 452 to move upward, so that the support plate 456 abuts against the workpieces in the first bin. As the lifting plate 452 continues to lift upward, the support plate 456 will support and lift the workpieces in the first bin until the top workpiece in the first bin is located in the pushing path of the first pusher assembly 470. After the first pusher assembly 470 pushes the workpieces in the first bin onto the loading conveyor and finishes the feeding, the second rotating drive 454 can drive the lifting plate 452 to move downward until the lifting plate 452 moves below the support surface of the support frame 410. Next, the third rotating drives 455 on both sides can drive the support plate 456 to rotate below the first bin. Similarly, the second rotating drive 454 drives the second threaded rod 453 to rotate to drive the lifting plate 452 to lift, so that the support plate 456 contacts the workpieces in the first bin and lifts the workpieces upward, so that the top workpiece in the first bin is located in the pushing path of the first pusher assembly 470. The first pusher assembly 470 pushes the top workpiece in the second bin onto the loading guide plate 200.

[0077] Please refer to Figure 11 As shown, in order to be able to push the workpieces located on its path, the first pusher assembly 470 includes a second linear drive 471 fixedly installed on the first limit frame 420. A second push plate 472 is fixedly installed on the moving end of the second linear drive 471. The second linear drive 471 drives the second push plate 472 to move towards the loading guide plate 200 to realize pushing the workpieces. Specifically, when it is necessary to push the top workpiece in the second bin, the second linear drive 471 should be in the initial state at the position of the barrier 440. The purpose is to prevent the top workpiece from rolling into the first bin, thus realizing the blocking function.

[0078] In this embodiment, in order to facilitate the workpieces to enter the loading guide plate 200 more easily, the conveying plate 490 is inclined, and an angle less than ninety degrees is formed between the conveying plate 490 and the second limit frame 430, so as to facilitate the workpieces to roll onto the loading guide plate 200 under the action of gravity when passing through the conveying plate 490.

[0079] In this embodiment, a limiting plate 4110 is vertically arranged on one side of one of the support frames 410. The limiting plate 4110 limits the ends of the workpieces located in the first bin and the second bin, so that the workpieces are neatly stacked in the first bin and the second bin.

[0080] In some specific embodiments, the cutting assembly 500 includes a base 510. An installation plate 520 is rotatably installed on the base 510. A cutting blade 530 is rotatably installed on the installation plate 520, and a fifth rotation driving member 540 is fixedly installed. The fifth rotation driving member 540 drives the cutting blade 530 to rotate. A sixth rotation driving member 550 is arranged on one side of the installation plate 520. The rotating end of the sixth rotation driving member 550 is in transmission connection with the installation plate 520. The sixth rotation driving member 550 drives the installation plate 520 to swing about the base 510. A second pushing assembly 560 is arranged on one side of the base 510. A first avoidance groove 201 is formed on the bearing guide plate 200. The driven end of the second pushing assembly 560 passes through the first avoidance groove 201 to push the workpieces cut on the bearing guide plate 200 into the blanking groove 110. The installation plate 520 is also fixedly connected with a second limiting member 521.

[0081] Please refer to Figure 12 and Figure 13 As shown, after the workpiece is pushed to the position of the cutting assembly 500, when the workpiece needs to be cut, first, the fifth rotation driving member 540 drives the cutting blade 530 to rotate. Next, the sixth rotation driving member 550 drives the installation plate 520 to rotate towards the bearing guide plate 200, so that the cutting blade 530 contacts the workpiece and cuts the workpiece, realizing the automatic cutting process. After cutting, the second pushing assembly 560 pushes the cut part on the bearing guide plate 200 into the blanking groove 110 to realize blanking.

[0082] In this embodiment, the fifth rotation driving member 540 is a motor, and the sixth rotation driving member 550 is a motor. Specifically, the sixth rotation driving member 550 is a servo motor. By controlling the rotation angle of the sixth rotation driving member 550, the rotation angle of the cutting blade 530 is controlled to prevent over-cutting from damaging the bearing guide plate 200 and other components, and to prevent under-cutting from causing the workpiece to not be cut off.

[0083] In this embodiment, a handle 522 is also installed on the installation plate 520. The handle 522 is flat. When the force in the left-right direction of the handle 522 is too large, it can deform to a certain extent, so that the installation plate 520 will not move due to excessive left-right force, improving the accuracy during manual cutting. It can be understood that during equipment debugging, the handle 522 can be used to drive the installation plate 520 to rotate for trial cutting of the workpiece.

[0084] In some specific embodiments, the base 510 includes a fixing plate 511. The fixing plate 511 is provided with a first through hole 5111 and a long arc hole 5112. On one side of the fixing plate 511, there is a rotating plate 512. The mounting plate 520 is rotatably mounted on the rotating plate 512. The rotating plate 512 is provided with a rotating shaft 5121 and a guide shaft 5122. The rotating shaft 5121 is rotatably mounted in the first through hole 5111, and the guide shaft 5122 extends into the long arc hole 5112. Fixing members 513 are provided on both sides of the fixing plate 511, and screwing members 514 are screwed and installed on the fixing members 513. The screwing members 514 are screwed to move the rotating plate 512 closer to or away from it.

[0085] Please refer to Figure 13 As shown, in order to enable the cutting blade 530 to cut the workpiece vertically or obliquely, the inclination angle of the cutting blade 530 is adjusted by screwing the screwing members 514 on both sides of the fixing plate 511. Specifically, the rotating plate 512 is rotatably connected to the fixing plate 511 through the cooperation of the rotating shaft 5121 and the first through hole 5111, and the rotation angle of the rotating plate 512 is limited by the cooperation of the guide shaft 5122 and the long arc hole 5112, that is, the rotating plate 512 can rotate at a certain angle under the limitation of the long arc hole 5112, so as to realize the angle adjustment of the mounting plate 520 and the inclination angle adjustment of the cutting blade 530.

[0086] In this embodiment, the long arc hole 5112 is an arc-shaped groove with the first through hole 5111 as the center; the fixing members 513 are fixedly installed on both sides of the fixing plate 511, and the end of the screwing member 514 abuts against the side wall of the rotating plate 512 to limit its angle, so as to realize the angle limitation of the mounting plate 520 and the cutting blade 530, that is, when the angle of the rotating plate 512 needs to be adjusted to realize the angle adjustment of the cutting blade 530, the screwing members 514 on both sides can be screwed to adjust the angle of the rotating plate 512.

[0087] In this embodiment, the screwing member 514 is a bolt.

[0088] Furthermore, when the sixth rotation driving member 550 drives the mounting plate 520 to rotate, in order to prevent the mounting plate 520 from colliding with other components due to excessive rotation angle, a second limiting member 521 is provided on the mounting plate 520 and a first limiting member 5123 is provided on the rotating plate 512 to limit the maximum angle of the mounting plate 520; the second limiting member 521 can be a rubber pad, and the first limiting member 5123 can be an adjusting bolt, and the maximum rotation angle of the mounting plate 520 is limited by the length of the adjusting bolt extending out.

[0089] In some specific embodiments, the second material pushing assembly 560 includes a third linear driving member 561. An installation block 562 is fixedly installed on the moving end of the third linear driving member 561. A third pushing plate 563 is installed on the installation block 562. The third linear driving member 561 drives the third pushing plate 563 through the installation block 562 to penetrate through the first avoidance groove 201 and push out the workpiece located on the bearing guide plate 200 for blanking.

[0090] Please refer to Figure 7 , Figure 12 and Figure 14 As shown, in order to blank the cut workpieces of a preset length, the third linear driving member 561 can be started to drive the third pushing plate 563 connected to the installation block 562 to move, so that the third pushing plate 563 passes through the first avoidance groove 201 to hold the workpiece, thereby pushing the cut workpieces of a preset length out of the bearing guide plate 200 into the blanking groove 110 to achieve blanking.

[0091] Please refer to Figure 7 As shown, the first avoidance groove 201 is opened at the junction of the first plate body 210 and the second plate body 220. In this embodiment, the first plate body 210 can be composed of multiple segments, that is, the first plate body 210 at the position of the first avoidance groove 201 and the first plate body 210 at the position of the feeding assembly 300 are arranged separately, and the second plate body 220 at the position of the first avoidance groove 201 and the second plate body 220 at the position of the feeding assembly 300 are arranged separately. Thus, while meeting the requirements for blanking the workpiece, when the first plate body 210 and the second plate body 220 at the position of the feeding assembly 300 are damaged, the other sides of the first plate body 210 and the second plate body 220 at the position of the feeding assembly 300 can also be reused.

[0092] In this embodiment, a receiving groove 120 is arranged below the blanking groove 110. The workpiece falls into the receiving groove 120 through the blanking groove 110. The receiving groove 120 is used to collect the cut workpieces. And a coolant groove is arranged on one side of the receiving groove 120. The receiving groove 120 is connected to the coolant groove, so that the coolant in the water pan 100 flows into the receiving groove 120 through the blanking groove 110, and then the coolant flows into the water tank, realizing the collection of the coolant. Correspondingly, a water pump is also installed on the base frame. The water pump pumps the coolant in the water tank to the position of the cutting blade 530 to cool the cutting blade 530. In this embodiment, the coolant is water.

[0093] The working process of the present invention is as follows: The feeding assembly 400 conveys workpieces alternately through two bins, namely the first bin and the second bin. When the workpieces in the first bin need to be fed, the lifting assembly 450 lifts the stacked workpieces through the support plate 456, and the second push plate 472 of the first pusher assembly 470 pushes the topmost workpiece to the bearing guide plate 200. At this time, the rotating guide plate 462 of the support assembly 460 is driven by the fourth rotation driving member 461 to rotate to the top of the barrier member 440 to close the second bin, forming a conveying channel. The workpiece rolls down through the conveying plate 490 to the bearing guide plate 200. When feeding the second bin, the lifting assembly 450 lifts its workpieces, the support assembly 460 releases the closure, and the first pusher assembly 470 pushes the workpieces in the second bin.

[0094] The rotation driving assembly 340 of the feeding assembly 300 drives the chain 320 to move in the guide groove 311 of the guide block 310, driving the first push plate 330 to push the workpiece on the bearing guide plate 200 to the position of the cutting assembly 500. During the pushing process, the pressing plate 362 of the spinning assembly 360 is pressed down by the first rotation driving member 361 to prevent the workpiece from rebounding. When the workpiece contacts the moving plate 355 of the positioning assembly 350, the moving plate 355 drives the driven rod 353 to move and trigger the proximity switch 354, and the first linear driving member 371 of the clamping assembly 370 drives the clamping block 372 to clamp the workpiece.

[0095] The fifth rotation driving member 540 of the cutting assembly 500 drives the cutting blade 530 to rotate, and the sixth rotation driving member 550 drives the mounting plate 520 to swing, so that the cutting blade 530 contacts the workpiece to complete the cutting. After cutting, the third linear driving member 561 of the second pusher assembly 560 drives the third push plate 563 to pass through the first avoidance groove 201 and push the workpiece into the blanking groove 110. The screwing member 514 of the base 510 can adjust the angle of the rotating plate 512 to control the inclination angle of the cutting blade 530. The cut workpiece falls into the receiving groove 120 through the blanking groove 110 to complete the cycle.

[0096] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A cutting device, characterized in that, Comprising: A water tray (100), which is fixedly installed on the frame. The water tray (100) has a mounting groove, and a blanking groove (110) is formed at the bottom of the mounting groove; A carrying guide plate (200), which is fixedly installed in the mounting groove and is used for carrying workpieces; A feeding component (300), which is fixedly installed on the frame and is used for pushing the workpieces located on the carrying guide plate (200) into the machine for feeding; A loading component (400), which is located on one side of the frame. The loading component (400) has two bins and is used for alternately conveying the workpieces in the two bins to the carrying guide plate (200); A cutting component (500), which is located at the end of the carrying guide plate (200) and is used for cutting the workpieces pushed by the feeding component (300). The blanking groove (110) is located at the position of the cutting component (500).

2. The cutting device according to claim 1, wherein: The feeding component (300) includes a guide block (310). The guide block (310) is provided with a guide groove (311) along its length direction. A chain (320) with at least part of it located inside is arranged in the guide groove (311). A first push plate (330) is installed at the end of the rotary driving component (340). The first push plate (330) is located at the position of the carrying guide plate (200). A rotary driving component (340) is fixedly installed on the frame. The rotary driving component (340) is in transmission connection with the chain (320) and is used for driving the chain (320) to move in the guide block (310) towards or away from the cutting component (500).

3. The cutting device according to claim 2, characterized in that: A spinning component (360) and a clamping component (370) are arranged on the path of the carrying guide plate (200). The spinning component (360) is located between the rotary driving component (340) and the cutting component (500), and the clamping component (370) is located at the cutting position of the cutting component (500); The spinning component (360) includes a first rotary driving part (361). A pressing plate (362) is installed at the rotating end of the first rotary driving part (361). The first rotary driving part (361) drives the pressing plate (362) to move towards or away from the carrying guide plate (200); The clamping component (370) includes a first linear driving part (371) located on one side of the carrying guide plate (200). A clamping block (372) is fixedly installed at the end of the first linear driving part (371). The first linear driving part (371) is used for driving the clamping block (372) to move towards or away from the carrying guide plate (200).

4. A cutting device according to claim 2, characterized in that: A positioning assembly (350) is provided on the bearing guide plate (200) at the position of the cutting assembly (500), and the positioning assembly (350) comprises a slider (351) slidably mounted on the bearing guide plate (200), a slide bar (352) is slidably mounted in a first inner hole of the slider (351), a driven rod (353) is slidably mounted in a second inner hole of the slider (351), and a movable plate (352) is fixedly mounted on one side of the slider (351) and the slide bar (352) and the driven rod (353). 5), a proximity switch (354) is provided on the side of the slider (351) facing away from the slider (351), and the proximity switch (354) is located at the position of the driven rod (353); a fixed block (356) is also fixedly installed on the bearing guide plate (200), and a first threaded rod (357) is installed on the fixed block (356), and the end of the first threaded rod (357) is connected to the slider (351); a second avoidance groove (358) is provided on both the movable plate (355) and the slider (351).

5. A cutting device according to claim 1, characterized in that: The loading assembly (400) includes two support frames (410) installed on the machine platform, an installation space is formed between the two support frames (410), a first limiting frame (420) and a second limiting frame (430) are arranged in the installation space, a blocking member (440) is arranged between the first limiting frame (420) and the second limiting frame (430), and the blocking member (440) has an installation chamber, the first limiting frame (420) and the second limiting frame (430) and the blocking member (440) are respectively defined to form a first material bin and a second material bin, and a lifting assembly (450) is installed in the blocking member (440), and the lifting assembly (450) is used to alternately The workpieces in the first and second silos are lifted, and a support assembly (460) is fixedly mounted on the second limiting frame (430), and the movable end of the support assembly (460) passes through the second silo and is placed on the top of the blocking member (440) to form a transfer surface. A first pushing assembly (470) is fixedly mounted on the first limiting frame (420), and the first pushing assembly (470) is used to push the top workpieces in the first and second silos toward the cutting assembly (500). A conveying plate (490) is fixedly mounted on the second limiting frame (430), and the conveying plate (490) is located on the side of the second limiting frame (430) away from the blocking member (440).

6. The cutting device according to claim 5, characterized in that: The first limiting frame (420) and the second limiting frame (430) are both slidably arranged on the machine platform, and a spacing adjustment component (480) is also installed on the machine platform. The spacing adjustment component (480) is transmission-connected with the first limiting frame (420) and the second limiting frame (430), and the spacing adjustment component (480) is used to drive the first limiting frame (420) and the second limiting frame (430) to move toward or away from each other; The support assembly (460) includes a fourth rotation drive member (461) fixedly installed on the second limit frame (430). A rotation guide plate (462) is provided at the rotation end of the fourth rotation drive member (461). The fourth rotation drive member (461) drives the rotation guide plate (462) to rotate towards or away from the barrier member (440).

7. A cutting device according to claim 5, characterized in that: The lifting assembly (450) includes a guide rod (451) fixedly installed on the machine table. A lifting plate (452) is slidably arranged on the guide rod (451). A second threaded rod (453) is also rotatably installed on the machine table. The second threaded rod (453) is in transmission connection with the lifting plate (452). A second rotation drive member (454) for driving the second threaded rod (453) to rotate is installed on the machine table. Third rotation drive members (455) are fixedly installed at both ends of the lifting plate (452). A support plate (456) is installed at the rotation end of the third rotation drive member (455).

8. A cutting device according to claim 1, characterized in that: The cutting assembly (500) includes a base (510). A mounting plate (520) is rotatably installed on the base (510). A cutting blade (530) is rotatably installed on the mounting plate (520) and a fifth rotation drive member (540) is fixedly installed. The fifth rotation drive member (540) drives the cutting blade (530) to rotate. A sixth rotation drive member (550) is arranged on one side of the mounting plate (520). The rotation end of the sixth rotation drive member (550) is in transmission connection with the mounting plate (520). The sixth rotation drive member (550) drives the mounting plate (520) to swing about the base (510). A second pushing assembly (560) is arranged on one side of the base (510). A first avoidance groove (201) is formed on the carrying guide plate (200). The driven end of the second pushing assembly (560) penetrates through the first avoidance groove (201) to push the workpiece cut on the carrying guide plate (200) into the blanking groove (110). The mounting plate (520) is also fixedly connected with a second limiting member (521).

9. A cutting device according to claim 8, characterized in that: The base (510) includes a fixing plate (511). The fixing plate (511) is provided with a first through hole (5111) and a long arc hole (5112). A rotation plate (512) is arranged on one side of the fixing plate (511). The mounting plate (520) is rotatably installed on the rotation plate (512). A rotation shaft (5121) and a guide shaft (5122) are arranged on the rotation plate (512). The rotation shaft (5121) is rotatably installed in the first through hole (5111). The guide shaft (5122) extends into the long arc hole (5112). Fixing members (513) are arranged on both sides of the fixing plate (511). A screwing member (514) is screwed and installed on the fixing member (513). The screwing member (514) screws towards or away from the rotation plate (512).

10. A cutting device according to claim 8, characterized in that: The second material pushing component (560) includes a third linear driving member (561). An installation block (562) is fixedly installed on the moving end of the third linear driving member (561). A third push plate (563) is installed on the installation block (562). The third linear driving member (561) drives the third push plate (563) through the installation block (562) to penetrate through the first avoidance groove (201) to push out the workpiece located on the bearing guide plate (200) for blanking.