Cutting device for instant noodle barrel production

By introducing chip extraction components and destatic components into the instant noodle barrel production and cutting device, the problem of poor debris and electrostatic cleaning in the cutting device is solved, efficient cleaning and high-precision cutting are achieved, reducing production costs and improving adaptability.

CN120327014AInactive Publication Date: 2025-07-18GUANGZHOU SONGYI PLASTIC CO LTD
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Patent Information

Application Number
CN202510803918.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-17
Publication Date
2025-07-18
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing instant noodle barrel production cutting device has poor effect in removing cutting debris and frictional static electricity, which affects the cutting quality and aggravates the aging of the cutting head.

Method used

A cutting device including a chip extraction assembly and a destatic assembly is designed to clean up debris and neutralize static electricity during the rise and fall of the cutting head with cylinder-driven negative pressure chip extraction and electrostatic elimination rods, reducing dependence on additional air pumps or power components.

Benefits of technology

Efficient debris cleaning and electrostatic neutralization without additional air pumps or power components are achieved, improving cutting accuracy and cleanliness of the cutter head, reducing production costs and enhancing adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the field of instant noodle barrel production, and provides a cutting device for instant noodle barrel production, which comprises a cutting table, a support is arranged in the middle of the bottom end of the cutting table, feeding mechanisms for conveying raw material paper of instant noodle barrels are arranged on two sides of the support at the bottom of the cutting table, and connecting frames are arranged on two sides of one end of the bottom of the cutting table. A conveying mechanism used for conveying the cut instant noodle barrel bottoms is arranged at the top between the two sets of connecting frames, a machine cover is arranged at the top of the cutting table, an air cylinder is installed on the inner side of the machine cover, and the output end of the air cylinder is connected with a mounting plate; according to the cutting device, the scrap extracting assembly matched with the air cylinder is arranged, scraps on the tool bit can be automatically and circumferentially extracted from the outer side of the tool bit in the cutting process, the scrap removing effect is good, an additional air pump or a power assembly is not needed, meanwhile, the static electricity removing assembly is arranged, the scrap residue problem caused by static electricity is solved, the cleanliness of the tool bit is guaranteed, and the cutting efficiency is improved. And the die cutting quality and precision of the raw material paper of the instant noodle barrel are improved.
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Description

Technical Field

[0001] The present invention belongs to the field of instant noodle bucket production, and specifically relates to a cutting device for instant noodle bucket production. Background Art

[0002] An instant noodle bucket includes a barrel body and a barrel bottom. The barrel body is formed by rolling a rectangular sheet of raw material paper into a barrel shape, and the barrel bottom is a circular paper adhered to the barrel body. During the production of instant noodle buckets, cutting is one of the key steps, that is, a cutting device is required to cut the raw material paper into the required shape. In the process of cutting the raw material paper of instant noodle buckets by existing cutting devices, since the materials of the instant noodle bucket bottom are generally paper, plastic, composite materials, etc., some tiny particles on the material surface may be cut off when being cut by a die-cutting knife, thus adhering to the tool head. Moreover, the friction between the tool head and the material will generate static electricity, which will make the tool head surface carry charges, and further make the debris more likely to adsorb on the tool head. Therefore, a cleaning component is usually equipped to clean the debris.

[0003] However, although existing cutting devices are equipped with cleaning components, there are obvious deficiencies: the suction-type cleaning component relies on an additional air pump or power component, with a high cost; the brush cleaning will even increase the generation of static electricity due to contact. Neither of the two common cleaning methods eliminates the static electricity on the tool head, and the cleaning effect is not good.

[0004] Therefore, those skilled in the art have proposed a cutting device for instant noodle bucket production to solve the problems raised in the background art. Summary of the Invention

[0005] In order to solve the above technical problems, the present invention provides a cutting device for instant noodle bucket production to solve the problems that the existing cutting devices have poor effects in removing cutting debris and frictional static electricity on the tool head, affecting the cutting effect and accelerating the aging of the tool head.

[0006] A cutting device for instant noodle bucket production includes a cutting table. A support is provided in the middle of the bottom end of the cutting table. On both sides of the support at the bottom of the cutting table, a feeding mechanism for conveying the raw material paper of the instant noodle bucket is provided. On both sides at one end of the bottom of the cutting table, connecting frames are provided. On the top between the two groups of connecting frames, a feeding mechanism for conveying the cut instant noodle bucket bottom is provided. A machine cover is provided on the top of the cutting table. A cylinder is installed inside the machine cover. The output end of the cylinder is connected to a mounting plate. Two tool seats are symmetrically installed at the bottom of the mounting plate. A tool head is provided at the bottom of the tool seat. An anti-chip component cooperating with the cylinder is provided outside the tool head. The anti-chip component includes a negative pressure cylinder, a chip outlet pipe, a chip inlet pipe and a fixing ring. The two ends of the bottom of the negative pressure cylinder are respectively communicated with the chip outlet pipe and the chip inlet pipe. One end of the chip outlet pipe is connected through the side wall of the machine cover. One end of the chip inlet pipe is connected to the fixing ring. The fixing ring is located outside the tool head. An anti-static component is provided on the top of the fixing ring.

[0007] Preferably, the feeding mechanism includes a first vertical plate, a second vertical plate, a feeding roller, a winding roller and a winding motor. Two groups of first vertical plates and two groups of second vertical plates are correspondingly arranged at both ends of the bottom of the cutting table. A feeding roller is rotatably arranged between the two groups of first vertical plates, and a winding roller is rotatably arranged between the two groups of second vertical plates. A winding motor is installed on the outer side of the corresponding second vertical plate, and the output end of the winding motor is connected to the winding roller.

[0008] Preferably, the feeding mechanism includes a conveying frame and a conveying belt. The conveying frame is installed at the top end between the two sets of connecting frames, and the conveying frame is provided with a conveying belt for conveying the bottom of the instant noodle barrel.

[0009] Preferably, limit rods are symmetrically arranged on both sides of the inside of the hood, two groups of limit rods are slidably connected with sliding sleeves, and the mounting plate is connected between the two groups of sliding sleeves.

[0010] Preferably, an annular adsorption chamber is provided inside the fixed ring, one end of the chip feed pipe is communicated with the annular adsorption chamber, and adsorption ports communicated with the annular adsorption chamber are equidistantly provided on the inner side of the fixed ring.

[0011] Preferably, the chip extraction assembly also includes a piston, a connecting rod, a first one-way valve and a second one-way valve. The first one-way valve is arranged on the chip input pipe, and the second one-way valve is arranged on the chip output pipe. The piston is slidably arranged on the inner side of the negative pressure cylinder. A connecting rod passing through the negative pressure cylinder is arranged on the top of the piston, and the end of the connecting rod facing away from the piston is connected to the mounting plate.

[0012] Preferably, a placement frame is provided on one side of the hood, a dust filter frame for collecting paper scraps is slidably provided on the placement frame, the side of the dust filter frame facing the chip discharge pipe is provided as an open structure, and a handle is provided on the top of the dust filter frame.

[0013] Preferably, the anti-static component includes a connecting ring, a distance adjustment mechanism, a moving block, a vertical shaft, a mounting ring and a static elimination rod. The connecting ring is arranged on the top of the fixed ring. The outer side of the connecting ring is provided with multiple groups of slots equidistantly arranged in a circle. Moving blocks are slidably penetrated in the multiple groups of slots. One end of the top of the multiple groups of moving blocks is connected to a vertical shaft. A mounting ring is arranged on the top of the vertical shaft. A static elimination rod is installed through the middle of the mounting ring. The tip of the static elimination rod faces the cutter head. The connecting ring is also provided with a distance adjustment mechanism for adjusting the distance between the multiple groups of static elimination rods and the cutter head.

[0014] Preferably, the pitch adjustment mechanism includes a mounting frame, a worm gear ring, a worm, a reducing arc slot, a push shaft and a turning handle. A mounting frame is provided on one side of the connecting ring, a worm is rotatably provided on the mounting frame, a turning handle is provided at one end of the worm, a worm gear ring is meshed with one side of the worm, and the worm gear ring is rotatably provided on the top of the connecting ring. A plurality of groups of reducing arc slots are equidistantly arranged on the circumference of the worm gear ring, the other ends of the tops of the plurality of groups of moving blocks are connected to push shafts, and the top ends of the plurality of groups of push shafts are respectively interspersed with the corresponding reducing arc slots.

[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention is provided with a chip extraction component cooperating with a cylinder. During the process of the cylinder driving the tool head to rise after cutting, the piston can be driven to move upward through a connecting rod, so that a negative pressure is formed in the negative pressure cylinder. Cooperating with the fixed ring, the chip outlet pipe and the chip inlet pipe, circumferential chip extraction is carried out from the outside of the tool head. No additional air pump or power component is required, reducing the space occupation of the equipment and lowering the overall production cost.

[0016] 2. The present invention is provided with an anti-static component. The static eliminator rod can play a role during the rising and falling processes of the tool head, continuously neutralizing the charge on the surface of the tool head, reducing the problem of chip residue caused by static electricity, ensuring the cleanliness of the tool head, and thus improving the die-cutting quality and accuracy of the raw material paper of the instant noodle bucket. At the same time, through the distance adjustment mechanism, the distance between multiple groups of static eliminator rods and the tool head can be synchronously adjusted, so as to adapt to tool heads of different diameters, improving the overall adaptability and versatility. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is the front view structure diagram of the present invention; Figure 2 is the rear view structure diagram of the present invention; Figure 3 is the side sectional structure diagram of the machine cover of the present invention; Figure 4 is the rear view structure diagram of the machine cover of the present invention; Figure 5 is the front view structure diagram of the machine cover of the present invention; Figure 6 is the structure diagram of the chip extraction component and the static elimination component of the present invention; Figure 7 of the present invention Figure 6 is the partial sectional structure diagram; Figure 8 of the present invention Figure 3 is the enlarged structure diagram of part A; Figure 9 of the present invention Figure 7 is the enlarged structure diagram of part B.

[0018] In the figure: 1. Cutting table; 2. Support; 3. Feeding mechanism; 301. First vertical plate; 302. Second vertical plate; 303. Unwinding roller; 304. Rewinding roller; 305. Rewinding motor; 4. Connecting frame; 5. Material conveying mechanism; 501. Conveying frame; 502. Conveyor belt; 6. Chip extraction assembly; 601. Negative pressure cylinder; 602. Chip discharge pipe; 603. Chip inlet pipe; 604. Fixed ring; 6041. Annular adsorption cavity; 6042. Adsorption port; 605. Piston; 606. Connecting rod; 607. First one-way valve; 608. Second one-way valve; 7. Static elimination assembly; 701. Connecting ring; 702. Spacing adjustment mechanism; 7021. Mounting frame; 7022. Worm gear ring; 7023. Worm; 7024. Variable diameter arc-shaped notch; 7025. Pushing shaft; 7026. Rotary handle; 703. Moving block; 704. Vertical shaft; 705. Mounting ring; 706. Static eliminator bar; 707. Slot; 8. Machine cover; 9. Cylinder; 10. Mounting plate; 11. Tool holder; 12. Tool bit; 13. Limiting rod; 14. Sliding sleeve; 15. Placing frame; 16. Dust collection filter frame; 17. Handle. Detailed implementation mode

[0019] The following further describes the implementation mode of the present invention in detail in conjunction with the drawings and embodiments. The following embodiments are used to illustrate the present invention, but cannot be used to limit the scope of the present invention.

[0020] As shown in the attached Figure 1 to the attached Figure 9 figure: The present invention provides a cutting device for instant noodle bucket production, including a cutting table 1. A support 2 is arranged in the middle of the bottom end of the cutting table 1. On both sides of the support 2 at the bottom of the cutting table 1, a feeding mechanism 3 for conveying the raw paper of the instant noodle bucket is arranged. On both sides of one end of the bottom of the cutting table 1, connecting frames 4 are arranged. On the top between the two groups of connecting frames 4, a material conveying mechanism 5 for conveying the bottom of the cut instant noodle bucket is arranged. A machine cover 8 is arranged on the top of the cutting table 1. A cylinder 9 is installed inside the machine cover 8. The output end of the cylinder 9 is connected with a mounting plate 10. Two groups of tool holders 11 are symmetrically installed at the bottom of the mounting plate 10. A tool bit 12 is arranged at the bottom of the tool holder 11. A chip extraction assembly 6 cooperating with the cylinder 9 is arranged outside the tool bit 12. The chip extraction assembly 6 includes a negative pressure cylinder 601, a chip discharge pipe 602, a chip inlet pipe 603 and a fixed ring 604. The two ends of the bottom of the negative pressure cylinder 601 are respectively communicated with the chip discharge pipe 602 and the chip inlet pipe 603. One end of the chip discharge pipe 602 is connected through the side wall of the machine cover 8. One end of the chip inlet pipe 603 is connected with a fixed ring 604. The fixed ring 604 is located outside the tool bit 12. A static elimination assembly 7 is arranged on the top of the fixed ring 604.

[0021] It should be further noted that two sets of annular relief grooves are provided on the cutting table 1, and the two sets of annular relief grooves are respectively arranged corresponding to the two sets of cutter heads 12, which are used to prevent the cutter heads 12 from making hard contact with the cutting table 1 when cutting the raw paper, thereby improving the protection of the cutting table 1.

[0022] Reference Figure 1 and Figure 2 , the feeding mechanism 3 includes a first vertical plate 301, a second vertical plate 302, a feeding roller 303, a winding roller 304 and a winding motor 305. Two sets of first vertical plates 301 and two sets of second vertical plates 302 are respectively arranged corresponding to the two ends at the bottom of the cutting table 1. A feeding roller 303 is rotatably arranged between the two sets of first vertical plates 301, a winding roller 304 is rotatably arranged between the two sets of second vertical plates 302, a winding motor 305 is installed outside the corresponding second vertical plate 302, and the output end of the winding motor 305 is connected to the winding roller 304.

[0023] Among them, the winding motor 305 drives the winding roller 304 to rotate, so as to collect the cut raw waste paper, and at the same time can drive the feeding roller 303 to rotate adaptively, so as to transmit and feed the raw paper from the cutting table 1.

[0024] It should be further noted that limiting plates for limiting the conveying raw materials are symmetrically arranged on both the winding roller 304 and the feeding roller 303.

[0025] Reference Figure 1 and Figure 2 , the material conveying mechanism 5 includes a conveying frame 501 and a conveyor belt 502. The conveying frame 501 is installed at the top between the two sets of connecting frames 4, and a conveyor belt 502 for conveying the bottom of the instant noodle bucket is drivingly arranged on the conveying frame 501.

[0026] It should be further noted that two sets of rotating rollers are symmetrically and rotatably arranged on the inner side of the conveying frame 501, the conveyor belt 502 is rotatably arranged between the two sets of rotating rollers, and a conveying motor is installed at one end outside the conveying frame 501, and the output end of the conveying motor is connected to one of the rotating rollers.

[0027] Reference Figure 5 , two sets of limiting rods 13 are symmetrically arranged on both sides inside the machine cover 8, sliding sleeves 14 are slidably connected to the two sets of limiting rods 13, and the mounting plate 10 is connected between the two sets of sliding sleeves 14.

[0028] Among them, the movement track of the mounting plate 10 is limited through the cooperation of the limiting rod 13 and the sliding sleeve 14, ensuring the stability of the movement of the mounting plate 10 under the action of the air cylinder 9.

[0029] Reference Figure 3 and Figure 8, an annular adsorption cavity 6041 is formed inside the fixed ring 604. One end of the chip inlet pipe 603 communicates with the annular adsorption cavity 6041. The inner side of the fixed ring 604 is provided with adsorption ports 6042 that communicate with the annular adsorption cavity 6041 at equal circumferential intervals.

[0030] Among them, when a negative pressure is generated in the negative pressure cylinder 601 through the cooperation of the annular adsorption cavity 6041 and the adsorption ports 6042, the annular adsorption cavity 6041 can be driven to generate suction force through the chip inlet pipe 603, so that a plurality of adsorption ports 6042 can perform circumferential dust suction on the tool head 12, improving the removal effect of paper scraps.

[0031] Reference Figure 3 and Figure 6 , the chip extraction assembly 6 further includes a piston 605, a connecting rod 606, a first one-way valve 607 and a second one-way valve 608. The first one-way valve 607 is arranged on the chip inlet pipe 603, and the second one-way valve 608 is arranged on the chip outlet pipe 602. The piston 605 is slidably arranged inside the negative pressure cylinder 601. A connecting rod 606 passing through the negative pressure cylinder 601 is arranged on the top of the piston 605. One end of the connecting rod 606 away from the piston 605 is connected to the mounting plate 10.

[0032] It should be further noted that the first one-way valve 607 enables the negative pressure cylinder 601 to intake air inward only through the chip inlet pipe 603 when generating negative pressure suction, and the second one-way valve 608 enables the negative pressure cylinder 601 to exhaust air outward only through the chip outlet pipe 602 when exhausting air outward.

[0033] Among them, when the air cylinder 9 drives the piston 605 to rise inside the negative pressure cylinder 601 through the mounting plate 10 and the connecting rod 606, the negative pressure cylinder 601 generates negative pressure suction, and the chip suction operation is performed on the tool head 12 after cutting the raw material by the fixed ring 604 through the chip inlet pipe 603. When the air cylinder 9 drives the piston 605 to descend inside the negative pressure cylinder 601 through the mounting plate 10 and the connecting rod 606, the chips entering the negative pressure cylinder 601 are discharged through the chip outlet pipe 602.

[0034] Reference Figure 4 and Figure 5 , a placement frame 15 is arranged on one side of the machine cover 8. A dust collection filter frame 16 for collecting paper scraps is slidably arranged on the placement frame 15. The side of the dust collection filter frame 16 facing the chip outlet pipe 602 is set as an open structure, and a handle 17 is arranged on the top of the dust collection filter frame 16.

[0035] Among them, the shredded paper scraps discharged through the chip outlet pipe 602 will enter the inside of the dust collection filter frame 16 for collection, and the dust collection filter frame 16 can be taken out from the placement frame 15 through the handle 17, which is convenient for unified treatment of the shredded paper scraps.

[0036] Reference Figure 6 、 Figure 7 and Figure 9, the static elimination component 7 includes a connecting ring 701, a distance adjusting mechanism 702, a moving block 703, a vertical shaft 704, a mounting ring 705, and a static eliminator bar 706. The connecting ring 701 is arranged on the top of the fixed ring 604. A plurality of groups of slots 707 are equidistantly arranged in a circumferential manner on the outer side of the connecting ring 701. A moving block 703 is slidably penetrated through each of the plurality of groups of slots 707. One end of the top of each of the plurality of moving blocks 703 is connected to a vertical shaft 704. The top end of the vertical shaft 704 is provided with a mounting ring 705. A static eliminator bar 706 is installed through the middle of the mounting ring 705. The tip of the static eliminator bar 706 faces the cutter head 12. The connecting ring 701 is also provided with a distance adjusting mechanism 702 for adjusting the distance between the plurality of static eliminator bars 706 and the cutter head 12.

[0037] Among them, by arranging the static eliminator bar 706 on the connecting ring 701 and keeping a certain distance between the tip of the static eliminator bar 706 and the cutter head 12, when the cutter head 12 moves from the middle of the connecting ring 701, the static eliminator bar 706 neutralizes the static electricity on the cutter head 12 by releasing ions, reducing the problem of debris residue caused by static electricity and ensuring the cleanliness of the cutter head 12.

[0038] It should be further explained that the cross-sections of the slot 707 and the moving block 703 are set to be mutually adapted T-shaped structures, so that the two form vertical limits, ensuring the stability of the movement of the moving block 703 relative to the slot 707.

[0039] Reference Figure 7 and Figure 9 , the distance adjusting mechanism 702 includes a mounting frame 7021, a worm gear ring 7022, a worm 7023, a variable-diameter arc-shaped notch 7024, a push shaft 7025, and a turning handle 7026. A mounting frame 7021 is arranged on one side of the connecting ring 701. A worm 7023 is rotatably arranged on the mounting frame 7021. A turning handle 7026 is arranged at one end of the worm 7023. A worm gear ring 7022 is meshed on one side of the worm 7023. The worm gear ring 7022 is rotatably arranged on the top of the connecting ring 701. A plurality of groups of variable-diameter arc-shaped notches 7024 are equidistantly arranged in a circumferential manner on the worm gear ring 7022. The other ends of the tops of the plurality of moving blocks 703 are respectively connected to a push shaft 7025. The top ends of the plurality of push shafts 7025 are respectively inserted into the corresponding variable-diameter arc-shaped notches 7024.

[0040] It should be further explained that two maintenance doors are symmetrically hinged on the side of the machine cover 8 facing away from the placement frame 15. Handles are arranged on both of the two maintenance doors. The maintenance doors can be opened through the handles, and then the turning handle 7026 can be rotated.

[0041] Among them, by rotating the worm 7023 through the throttle grip 7026, the worm 7023 meshes with the worm gear ring 7022 to drive the worm gear ring 7022 to rotate. During the rotation of the worm gear ring 7022, the inner wall of the variable-diameter arc-shaped notch 7024 pushes the push shaft 7025 to drive the moving block 703 to move along the slot 707. During the movement of the moving block 703, the static eliminator bar 706 is synchronously driven through the vertical shaft 704 and the mounting ring 705, so that the positions of multiple static eliminator bars 706 can be synchronously adjusted according to the diameter of the cutter head 12, improving the overall applicability.

[0042] Working principle: During specific operation, the cylinder 9 drives the mounting plate 10 to descend. The mounting plate 10 drives the cutter head 12 through the tool holder 11 to punch the raw paper. After punching, the cylinder 9 drives the mounting plate 10 and the cutter head 12 to rise. During the rising process of the cutter head 12, it will pass through the fixed ring 604 and the connecting ring 701. During the rising process of the mounting plate 10, the piston 605 is driven to rise in the negative pressure cylinder 601 through the connecting rod 606, causing the negative pressure cylinder 601 to generate negative pressure suction, and then the cutter head 12 after cutting the raw material passing through the fixed ring 604 is subjected to chip suction operation through the chip inlet pipe 603. The annular adsorption cavity 6041 and the adsorption port 6042 of the fixed ring 604 cooperate to perform circumferential dust suction on the cutter head 12. When the cutter head 12 continues to move upward, it will approach the static eliminator bar 706, and the static eliminator bar 706 neutralizes the static electricity on the cutter head 12 by releasing ions, reducing the problem of chip residue caused by static electricity. When the cylinder 9 drives the mounting plate 10 to descend, the mounting plate 10 drives the piston 605 to synchronously descend in the negative pressure cylinder 601 through the connecting rod 606, so that the shredded paper scraps entering the negative pressure cylinder 601 are discharged through the chip outlet pipe 602 and collected in the dust collection filter frame 16.

[0043] The embodiments of the present invention are given for the purpose of illustration and description. Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A cutting device for the production of instant noodle buckets, characterized in that, It includes a cutting table (1). In the middle of the bottom end of the cutting table (1), there is a support (2). On both sides of the support (2) at the bottom of the cutting table (1), there is a feeding mechanism (3) for conveying the raw paper of the instant noodle bucket. On both sides at one end of the bottom of the cutting table (1), there are connecting frames (4). On the top between the two groups of connecting frames (4), there is a feeding mechanism (5) for conveying the bottom of the cut instant noodle bucket. On the top of the cutting table (1), there is a machine cover (8). Inside the machine cover (8), there is a cylinder (9) installed. The output end of the cylinder (9) is connected to a mounting plate (10). At the bottom of the mounting plate (10), two groups of tool holders (11) are symmetrically installed. At the bottom of the tool holder (11), there is a tool bit (12). Outside the tool bit (12), there is a chip extraction component (6) cooperating with the cylinder (9). The chip extraction component (6) includes a negative pressure cylinder (601), a chip discharge pipe (602), a chip inlet pipe (603), and a fixing ring (604). At both ends of the bottom of the negative pressure cylinder (601), the chip discharge pipe (602) and the chip inlet pipe (603) are respectively communicated. One end of the chip discharge pipe (602) is connected through the side wall of the machine cover (8). One end of the chip inlet pipe (603) is connected with a fixing ring (604). The fixing ring (604) is located outside the tool bit (12). On the top of the fixing ring (604), there is an electrostatic removal component (7).

2. The cutting device for instant noodle bucket production according to claim 1, characterized in that: The feeding mechanism (3) includes a first vertical plate (301), a second vertical plate (302), a feeding roller (303), a winding roller (304), and a winding motor (305). At both ends of the bottom of the cutting table (1), two groups of first vertical plates (301) and two groups of second vertical plates (302) are correspondingly arranged. Between the two groups of first vertical plates (301), a feeding roller (303) is rotatably arranged. Between the two groups of second vertical plates (302), a winding roller (304) is rotatably arranged. Outside the corresponding second vertical plate (302), a winding motor (305) is installed. The output end of the winding motor (305) is connected to the winding roller (304).

3. The cutting device for instant noodle bucket production according to claim 1, characterized in that: The feeding mechanism (5) includes a conveying frame (501) and a conveyor belt (502). The conveying frame (501) is installed at the top between the two groups of connecting frames (4). On the conveying frame (501), a conveyor belt (502) for conveying the bottom of the instant noodle bucket is drivably arranged.

4. The cutting device for instant noodle bucket production according to claim 1, characterized in that: On both sides inside the machine cover (8), limiting rods (13) are symmetrically arranged. On both groups of limiting rods (13), sliding sleeves (14) are slidably connected. The mounting plate (10) is connected between the two groups of sliding sleeves (14).

5. The cutting device for instant noodle bucket production according to claim 1, wherein: Inside the fixing ring (604), an annular adsorption cavity (6041) is opened. One end of the chip inlet pipe (603) communicates with the annular adsorption cavity (6041). Inside the fixing ring (604), adsorption ports (6042) communicating with the annular adsorption cavity (6041) are arranged at equal intervals in a circumferential manner.

6. The cutting device for instant noodle bucket production according to claim 1, characterized in that: The chip extraction assembly (6) further comprises a piston (605), a connecting rod (606), a first one-way valve (607) and a second one-way valve (608); the first one-way valve (607) is arranged on the chip inlet pipe (603), the second one-way valve (608) is arranged on the chip outlet pipe (602), the piston (605) is slidably arranged inside the negative pressure cylinder (601), the top of the piston (605) is provided with a connecting rod (606) passing through the negative pressure cylinder (601), and the end of the connecting rod (606) facing away from the piston (605) is connected to the mounting plate (10).

7. The cutting device for instant noodle bucket production according to claim 1, characterized in that: A placement frame (15) is provided on one side of the machine cover (8), a dust collection filter frame (16) for collecting paper scraps is slidably provided on the placement frame (15), a side of the dust collection filter frame (16) facing the chip discharge pipe (602) is provided as an open structure, and a handle (17) is provided on the top of the dust collection filter frame (16).

8. The cutting device for instant noodle bucket production according to claim 1, characterized in that: The anti-static component (7) comprises a connecting ring (701), a distance adjustment mechanism (702), a moving block (703), a vertical shaft (704), a mounting ring (705) and a static elimination rod (706). The connecting ring (701) is arranged at the top of the fixed ring (604). The outer side of the connecting ring (701) is provided with a plurality of groups of slots (707) equidistantly arranged in a circular pattern. The moving blocks (703) are slidably penetrated in the plurality of groups of slots (707). One end of the top of the plurality of groups of moving blocks (703) is connected to the vertical shaft (704). The top of the vertical shaft (704) is provided with a mounting ring (705). The middle of the mounting ring (705) is penetrated and installed with a static elimination rod (706). The tip of the static elimination rod (706) faces the blade head (12). The connecting ring (701) is also provided with a distance adjustment mechanism (702) for adjusting the distance between the plurality of groups of static elimination rods (706) and the blade head (12).

9. The cutting device for instant noodle bucket production according to claim 8, characterized in that: The pitch adjustment mechanism (702) comprises a mounting frame (7021), a worm wheel ring (7022), a worm (7023), a diameter-changing arc-shaped notch (7024), a push shaft (7025) and a turning handle (7026). A mounting frame (7021) is provided on one side of the connecting ring (701), a worm (7023) is rotatably provided on the mounting frame (7021), a turning handle (7026) is provided at one end of the worm (7023), and the worm (7023) is provided with a turning handle (7026). A worm gear ring (7022) is meshed with one side of the connecting ring (7023), and the worm gear ring (7022) is rotatably arranged on the top of the connecting ring (701). A plurality of groups of variable diameter arc-shaped slots (7024) are equidistantly arranged on the worm gear ring (7022) in a circumferential manner. The other ends of the tops of the plurality of groups of moving blocks (703) are connected to push shafts (7025), and the top ends of the plurality of groups of push shafts (7025) are respectively interlaced with the corresponding variable diameter arc-shaped slots (7024).