A stainless steel cold-rolled coil production deviation cutting prevention device

By designing the inclined groove column, inclined slider, pressure plate ring, and conveyor roller, the problem of coil offset during the cutting process was solved, achieving precise cutting and stable conveying of stainless steel cold-rolled coils and improving the performance of the cutting equipment.

CN122142405APending Publication Date: 2026-06-05GUANGDONG HONGYU NEW MATERIAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGDONG HONGYU NEW MATERIAL TECH CO LTD
Filing Date
2026-04-29
Publication Date
2026-06-05

AI Technical Summary

Technical Problem

During the production of stainless steel cold-rolled coils, the coils are prone to slippage and deviation during cutting, which can cause the longitudinal slitting position to shift and affect the accuracy of the cutting edges.

Method used

The anti-slip pad structure, which combines inclined groove columns and inclined sliders, increases the friction at the bottom of the coil through the rubber anti-slip pad and restricts the movement and deviation of the coil by the inclined groove columns; combined with the cooperation of the pressure plate ring and the ring cutter, it provides power and prevents deviation; the material transfer roller is designed to increase friction; the leveling mechanism adjusts the pressure through the screw to adapt to different leveling requirements.

Benefits of technology

It effectively prevents the roll from shifting during cutting and conveying, ensuring cutting precision and stability, and improving cutting accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a stainless steel cold-rolled plate production anti-deviation cutting equipment, and relates to the cutting equipment field.The stainless steel cold-rolled plate production anti-deviation cutting equipment is characterized by the cooperation of the inclined groove of the inclined groove column and the inclined sliding block.In the process of longitudinally cutting the plate, the pressure on the plate during cutting is used to press the anti-skid pad of rubber material at the bottom of the plate, so that the anti-skid pad is deformed to adhere to the bottom of the plate and the contact area is increased.When the plate is longitudinally cut and appears the deviation and inclination trend, the anti-skid pad is transmitted to the inclined sliding block, so that the inclined sliding block appears the sliding trend synchronously.When the plate appears the inclination deviation trend to the two sides after being longitudinally cut, the inclined sliding plate appears the upward movement trend, and the plate movement deviation is limited by the cooperation of the pressure on the plate during the longitudinal cutting and the inclined groove of the inclined groove column.
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Description

Technical Field

[0001] This invention specifically relates to an anti-deviation cutting device for the production of stainless steel cold-rolled coils, and pertains to the field of cutting equipment. Background Technology

[0002] Cutting equipment for stainless steel cold-rolled coil production refers to specialized metallurgical finishing and cutting single-unit mechanical equipment used in the finishing and deep processing of cold-rolled stainless steel coils or strips after they have been rolled into finished products. This equipment is used to cut cold-rolled stainless steel coils or strips to length, longitudinally slit, trim edges or remove waste, so as to achieve specification splitting, length flattening or edge trimming. A precision plate cutting device, disclosed in CN107053293B, includes a support base and a movable base. The vertical cross-section of the support base is a horizontally L-shaped structure. The right side of the support base is higher than the left side. Several sets of evenly distributed limiting seats are fixed to the upper surface of the left side of the support base. A debris collection groove is formed in the lower part of the right side of the support base, and a cutting device is provided in the upper part. The movable base is a cuboid with a base at the bottom. Four universal wheels are evenly installed on the bottom of the base. A plate limiting and pressing device is provided on the movable base. The movable base is located to the right of the support base, and a limiting device is provided between the two. This invention has a simple structure. The relative position between the movable base and the support base can be adjusted, that is, the plate cutting length can be adjusted. During plate cutting, the plate limiting and pressing cylinder ensures accurate plate cutting. After the movable base and the support base are separated, the debris in the debris collection groove can be easily disposed of. In existing equipment, during the longitudinal slitting process of the coil, the coils on both sides are prone to slipping and shifting during the cutting process, which causes the longitudinal slitting position of the coil to shift, affecting the longitudinal cutting effect and causing the cut edge to tilt. Summary of the Invention

[0003] To address the aforementioned problems, a technical solution is proposed: an anti-deviation cutting device for the production of stainless steel cold-rolled coils, comprising: The frame has side support plates installed on both sides of the top of the frame. A first motor and a second motor are installed on the outer side of the side support plates. A leveling mechanism and a material conveying mechanism are installed between the side support plates. A longitudinal cutting mechanism is installed inside the side support plates. An output plate is installed on the side of the side support plates away from the material conveying mechanism. The longitudinal cutting mechanism includes a shaft hole plate, which is fixedly installed on the inner wall of the leveling mechanism. Inclined slot columns are fixedly installed between the shaft hole plates. An annular groove is formed at the center of the outer side of each inclined slot column. Inclined slots are formed on both sides of the top of each inclined slot column. An inclined slider is slidably installed at the inclined slot of each inclined slot column. An annular groove is formed at the top of each inclined slider. Through the cooperation of the inclined slots and the inclined slider, during the longitudinal cutting of the rolled plate, the pressure on the rolled plate during cutting causes the bottom of the rolled plate to press against a rubber anti-slip pad, causing the anti-slip pad to deform and conform to the rolled plate. At the bottom, the contact area is increased. After the coil plate is longitudinally cut, a tendency to shift or tilt occurs. The anti-slip pad transmits the signal to the inclined slider, causing the inclined slider to slide synchronously. When the coil plate shifts to the sides after longitudinal cutting, the inclined groove of the inclined column causes the inclined slide plate to move obliquely upward. This, combined with the pressure on the coil plate during longitudinal cutting, restricts the movement and shift of the coil plate. The top of the inclined slider is flush with the top of the inclined column. An anti-slip pad is fixedly installed in the annular groove of the inclined slider. The anti-slip pad is made of rubber, and the top of the anti-slip pad is higher than the top of the inclined column.

[0004] Preferably, a ring cutter shaft is rotatably mounted between the shaft holes. One end of the ring cutter shaft is fixedly connected to the output end of the first motor. A cutter groove disk is fixedly mounted at the center of the outer side of the ring cutter shaft. A ring cutter groove is formed at the center of the outer side of the cutter groove disk, and a ring cutter is fixedly mounted at the ring cutter groove of the cutter groove disk. The ring cutter corresponds to the ring groove of the inclined groove column. Ring groove disks are fixedly mounted on both sides of the cutter groove disk, and pressure plate rings are fixedly mounted on the outer side of each ring groove disk. The pressure plate rings cooperate with the ring cutter, and the ring cutter cuts... When the coil is longitudinally cut, the pressure plate ring presses down on the coil, and at the same time, it works with the inclined groove column to drive the coil during rotation. This, combined with the material transfer mechanism, provides power for the movement of the coil. Meanwhile, the pressure plate ring presses down on both sides of the longitudinal cutting position of the coil to prevent the longitudinal cutting position of the coil from shifting from the ring cutter during the longitudinal cutting process. The bottom of the pressure plate ring is in contact with the top of the inclined groove column, and pressure plates are installed at both ends of the top of the ring cutter shaft. The bottom of the pressure plates is fixedly connected to the top of the leveling mechanism.

[0005] Preferably, the material transfer mechanism includes a fixed plate, with collars fixedly installed on opposite sides of the fixed plate. Support rollers are rotatably installed between the collars. The support rollers are symmetrically installed along the center of the axis of the fixed plate, and raised rings are evenly arranged on the outer side of the support rollers. A drive shaft is rotatably installed between the side support plates. One end of the drive shaft is fixedly connected to the output end of a second motor. A material transfer roller is fixedly installed on the outer side of the drive shaft. A support shaft is fixedly installed on the inner wall of the support roller. Both ends of the support shaft are rotatably connected to the inner wall of the side support plates. The material transfer roller is located between the support rollers, and the bottom of the material transfer roller is lower than the top of the support roller. Utilizing the characteristic that the bottom of the material transfer roller is lower than the top of the support roller, during the material transfer process, the coil is pressed by the material transfer roller and supported by the support roller at the bottom of the coil, causing the coil to bend and deform between the material transfer rollers. After bending, the material transfer roller conforms to the bottom curved surface of the material transfer roller, increasing the contact area and improving the friction between the material transfer roller and the coil, thus preventing slippage during the material transfer process.

[0006] Preferably, the leveling mechanism includes a connecting plate, on which shaft grooves are symmetrically formed on opposite sides. A screw hole plate is fixedly installed on the top of the connecting plate, and the screw hole plate corresponds one-to-one with the shaft groove. A screw is rotatably installed on the inner wall of the screw hole plate. A sleeve is slidably installed at the shaft groove of the connecting plate, and a pressure roller plate is slidably installed at the shaft groove of the connecting plate. The bottom of the pressure roller plate is in contact with the top of the sleeve, and a rotating cylinder is rotatably installed on the top of the pressure roller plate.

[0007] Preferably, the inner wall of the rotating drum is slidably adapted to the bottom end of the screw, and an elastic pad made of rubber is fixedly installed between the bottom end of the screw and the inner wall of the rotating drum. A pressure roller is installed between the sleeves, and the two ends of the pressure roller are rotatably adapted to the inner wall of the sleeve. A top plate roller is rotatably installed between the connecting plates and is threadedly connected to the screw through a screw hole plate. In the initial state of the pressure roller, the deformation and compression degree of the elastic pad can be changed by rotating the screw, and the range of upward movement of the pressure roller can be adjusted according to the pressure required for leveling the rolled plate, thereby improving the adjustability during leveling. The top plate roller and the pressure roller correspond one-to-one.

[0008] This invention provides an anti-deviation cutting device for the production of stainless steel cold-rolled coils, which has the following beneficial effects: (i) By using the inclined groove of the inclined column and the inclined slider in combination, during the longitudinal cutting of the coil plate, the pressure on the coil plate during cutting is used to press the anti-slip pad of the rubber material on the bottom of the coil plate, so that the anti-slip pad deforms and fits the bottom of the coil plate, increasing the contact area. After the coil plate has a tendency to shift or tilt after longitudinal cutting, the anti-slip pad is transmitted to the inclined slider, so that the inclined slider has a tendency to slide synchronously. When the coil plate has a tendency to tilt or shift to both sides after longitudinal cutting, the inclined groove of the inclined column is used to make the inclined slider move obliquely upward, which, together with the pressure on the coil plate during longitudinal cutting, restricts the movement and shift of the coil plate.

[0009] (ii) When the coil is longitudinally cut by the ring cutter, the pressure ring presses on the coil and, together with the inclined groove column, drives the coil during rotation. This, along with the material transfer mechanism, provides power for the movement of the coil. At the same time, the pressure ring presses on both sides of the longitudinal cutting position of the coil to prevent the longitudinal cutting position of the coil from deviating from the ring cutter during the longitudinal cutting process.

[0010] (III) Taking advantage of the fact that the bottom of the conveyor roller is lower than the top of the support roller, during the conveying process, the coil is pressed by the conveyor roller and supported by the support roller at the bottom of the coil. This causes the coil to bend and deform between the conveyor rollers, so that the bending of the conveyor roller fits the bottom curved surface of the conveyor roller, increasing the contact area and improving the friction between the conveyor roller and the coil, thus preventing slippage during the conveying process.

[0011] (iv) Through the threaded connection between the screw plate and the screw, in the initial state of the pressure roller, the deformation and compression degree of the elastic pad can be changed by rotating the screw. At the same time, the range of the pressure roller moving upward can be adjusted according to the pressure required for the leveling of the plate, thereby improving the adjustability during leveling. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the material transfer mechanism and the leveling mechanism of the present invention; Figure 3 This is a partial structural schematic diagram of the material transfer mechanism of the present invention; Figure 4 This is a schematic diagram of the leveling mechanism and the longitudinal cutting mechanism of the present invention; Figure 5 This is a cross-sectional view of the leveling mechanism of the present invention; Figure 6 For the present invention Figure 5 A magnified schematic diagram of the structure A; Figure 7 This is a schematic diagram of the longitudinal cutting mechanism of the present invention; Figure 8This is a partial sectional view of the longitudinal cutting mechanism of the present invention.

[0013] In the diagram: 1. Frame; 2. Material transfer mechanism; 3. Leveling mechanism; 4. Longitudinal cutting mechanism; 5. First motor; 6. Second motor; 7. Side support plate; 8. Guide plate; 21. Material transfer roller; 22. Fixing plate; 23. Support roller; 24. Drive shaft; 25. Support shaft; 26. Collar; 31. Connecting plate; 32. Pressure plate roller; 33. Top plate roller; 34. Screw hole plate; 35. Screw; 36. Elastic pad; 37. Pressure roller plate; 38. Sleeve; 39. Rotary drum; 401. Ring cutter shaft; 402. Shaft hole plate; 403. Pressure shaft plate; 404. Inclined groove column; 405. Inclined slider; 406. Anti-slip pad; 407. Cutter groove disc; 408. Ring cutter; 409. Pressure plate ring; 410. Ring groove disc. Detailed Implementation

[0014] Example 1, Reference Figures 1 to 2 and Figures 7 to 8 The present invention provides the following technical solution: An anti-deviation cutting device for the production of stainless steel cold-rolled coils, comprising: The frame 1 has side support plates 7 installed on both sides of the top of the frame 1. A first motor 5 and a second motor 6 are installed on the outside of the side support plates 7. A leveling mechanism 3 and a material conveying mechanism 2 are installed between the side support plates 7. A longitudinal cutting mechanism 4 is installed inside the side support plates 7. An output plate 8 is installed on the side of the side support plates 7 away from the material conveying mechanism 2. The longitudinal cutting mechanism 4 includes a shaft hole plate 402, which is fixedly installed on the inner wall of the leveling mechanism 3. Inclined slot columns 404 are fixedly installed between the shaft hole plates 402. An annular groove is formed at the center of the outer side of the inclined slot column 404. Inclined slots are formed on both sides of the top of the inclined slot column 404. An inclined slider 405 is slidably installed at the inclined slot of the inclined slot column 404. An annular groove is formed at the top of the inclined slider 405. During the cutting process, the annular slot discs 410 on both sides of the cutter slot disc 407 drive the pressure plate ring 409 to rotate, thus cutting the rolled plate. During passage, the pressure plate ring 409 presses down on the top of the coil plate, causing the bottom of the coil plate to be tightly against the top of the inclined groove column 404. At the same time, under the pressure, the bottom of the coil plate is pressed against the rubber anti-slip pad 406, causing the top of the anti-slip pad 406 to be in contact with the bottom of the coil plate, increasing the friction. The top of the inclined slider 405 is flush with the top of the inclined groove column 404. The anti-slip pad 406 is fixedly installed in the annular groove of the inclined slider 405. The anti-slip pad 406 is made of rubber, and the top of the anti-slip pad 406 is higher than the top of the inclined groove column 404.

[0015] A ring cutter shaft 401 is rotatably mounted between the shaft hole plates 402. One end of the ring cutter shaft 401 is fixedly connected to the output end of the first motor 5. A cutter groove disk 407 is fixedly mounted at the center of the outer side of the ring cutter shaft 401. A ring cutter groove is formed at the center of the outer side of the cutter groove disk 407, and a ring cutter 408 is fixedly mounted at the ring cutter groove of the cutter groove disk 407. The ring cutter 408 corresponds to the ring groove of the inclined groove column 404. The first motor 5 drives the ring cutter shaft 401 to rotate, and the ring cutter shaft 401 drives the cutter groove disk 407 to rotate, so that the ring cutter 408 fixedly mounted inside the cutter groove disk 407 rotates. The cutter 408 rotates, and during the rotation, it cooperates with the annular groove of the inclined groove column 404. The inclined groove column 404 supports the bottom of the coil plate. During the process of the coil plate passing through, the ring cutter 408 performs longitudinal cutting on the coil plate. Annular groove disks 410 are fixedly installed on both sides of the cutter groove disk 407. Pressure plate rings 409 are fixedly installed on the outer side of the annular groove disk 410. The bottom of the pressure plate ring 409 is in contact with the top of the inclined groove column 404. Pressure plates 403 are installed at both ends of the top of the ring cutter shaft 401. The bottom of the pressure plate 403 is fixedly connected to the top of the leveling mechanism 3.

[0016] Example 2, based on Example 1, with reference to Figure 3 The material transfer mechanism 2 includes a fixed plate 22, with collars 26 fixedly installed on opposite sides of the fixed plate 22. Support rollers 23 are rotatably installed between the collars 26. The support rollers 23 are symmetrically installed along the center of the axis of the fixed plate 22, and protruding rings are evenly distributed on their outer sides. A drive shaft 24 is rotatably installed between the side support plates 7. One end of the drive shaft 24 is fixedly connected to the output end of the second motor 6. A rolled plate passes between the support rollers 23 and the material transfer roller 21, so that the upper and lower sides of the rolled plate are tightly against the top of the support roller 23 and the bottom of the material transfer roller 21, respectively. The second motor 6 drives the drive shaft 24 to rotate, causing the drive shaft 24 to drive the material transfer roller 21 to rotate. During the process, the friction between the bottom of the transfer roller 21 and the coiled plate drives the plate to move, providing power for the plate to pass through the leveling mechanism 3. At the same time, when the coiled plate passes through the gap between the support roller 23 and the transfer roller 21, the top of the support roller 23 is higher than the bottom of the transfer roller 21, so that the coiled plate bends between the support rollers 23 under the pressure of the transfer roller 21 during the transmission process. The transfer roller 21 is fixedly installed on the outside of the transmission shaft 24, and the support shaft 25 is fixedly installed on the inner wall of the support roller 23. The two ends of the support shaft 25 are rotatably connected to the inner wall of the side support plate 7. The transfer roller 21 is located between the support rollers 23, and the bottom of the transfer roller 21 is lower than the top of the support roller 23.

[0017] Example 3, based on Examples 1 and 2, with reference to Figures 4 to 6The leveling mechanism 3 includes a connecting plate 31, with symmetrical shaft grooves on opposite sides of the connecting plate 31. A screw hole plate 34 is fixedly installed on the top of the connecting plate 31, with each screw hole plate 34 corresponding to one of the shaft grooves. A screw 35 is rotatably installed on the inner wall of the screw hole plate 34. A sleeve 38 is slidably installed at the shaft groove of the connecting plate 31. The plate passes between the top plate roller 33 and the top plate roller 32 through the cooperation of the pressure plate roller 32 and the top plate roller 33. Taking advantage of the fact that the top of the top plate roller 33 is higher than the bottom of the pressure plate roller 32, the bent plate generates an upward pushing force on the top plate roller 33 after the plate enters. A pressure roller plate 37 is slidably installed at the shaft groove of the connecting plate 31. The bottom of the pressure roller plate 37 is in contact with the top of the sleeve 38, and a rotating cylinder 39 is rotatably installed on the top of the pressure roller plate 37.

[0018] The inner wall of the rotating drum 39 is slidably fitted with the bottom end of the screw 35, and an elastic pad 36 is fixedly installed between the bottom end of the screw 35 and the inner wall of the rotating drum 39. The elastic pad 36 is made of rubber. A pressure roller 32 is installed between the sleeves 38. The two ends of the pressure roller 32 are rotatably fitted with the inner wall of the sleeve 38. The pressure is transmitted to the pressure roller plate 37 through the sleeve 38, so that the bottom end of the screw 35, which is fixedly connected to the thread inside the screw hole plate 34, presses the elastic pad 36, causing the elastic pad 36 to deform and compress inside the rotating drum 39. At the same time, the pressure roller 32 moves upward between the connecting plates 31. The elastic pad 36 deforms and generates elastic force, which is transmitted to the coil through the pressure roller 32 to level the coil. A top plate roller 33 is rotatably installed between the connecting plates 31. The top plate roller 33 corresponds one-to-one with the pressure roller 32.

[0019] In use, the coil is unwound by the unwinding device, and the coil enters the equipment from one end of the material conveying mechanism 2. The second motor 6 drives the material conveying mechanism 2 to move, which in turn drives the coil to move, so that the coil passes through the leveling mechanism 3. The leveling mechanism 3 performs leveling treatment on the coil. At the same time, during the process of passing through the leveling mechanism 3, the longitudinal cutting mechanism 4 performs longitudinal cutting treatment on the coil.

[0020] In the material transfer mechanism 2, the coiled plate passes between the support roller 23 and the transfer roller 21, so that the upper and lower sides of the coiled plate are tightly against the top of the support roller 23 and the bottom of the transfer roller 21, respectively. The second motor 6 drives the transmission shaft 24 to rotate, which in turn drives the transfer roller 21 to rotate. During the rotation, the friction between the bottom of the transfer roller 21 and the coiled plate drives the plate to move, providing power for the plate to pass through the leveling mechanism 3. At the same time, when the coiled plate passes through the gap between the support roller 23 and the transfer roller 21, the top of the support roller 23 is higher than the bottom of the transfer roller 21, so that the coiled plate bends between the support rollers 23 under the pressure of the transfer roller 21 during the transmission process.

[0021] In the leveling mechanism 3, the plate passes through the top plate roller 32 and the top plate roller 33 through the cooperation of the pressure roller 32 and the top plate roller 33. Taking advantage of the fact that the top of the top plate roller 33 is higher than the bottom of the pressure roller 32, the curved plate generates an upward pushing force on the top plate roller 33 after the plate enters. The pressure is transmitted to the pressure roller plate 37 through the sleeve 38, so that the bottom end of the screw 35, which is fixedly connected to the thread inside the screw hole plate 34, presses the elastic pad 36, causing the elastic pad 36 to deform and compress inside the rotating drum 39. At the same time, the pressure roller 32 moves upward between the connecting plates 31, and the elastic pad 36 generates elastic force after deformation, which is transmitted to the plate through the pressure roller 32 to level the plate.

[0022] In the longitudinal cutting mechanism 4, the first motor 5 drives the ring cutter shaft 401 to rotate, which in turn drives the cutter groove disk 407 to rotate. This causes the ring cutter 408, which is fixedly installed inside the cutter groove disk 407, to rotate. During the rotation, the ring cutter 408 engages with the ring groove of the inclined groove column 404, which supports the bottom of the coil plate. As the coil plate passes through, the ring cutter 408 performs longitudinal cutting on it. Simultaneously, during the cutting process, the ring groove disks 410 on both sides of the cutter groove disk 407 drive the pressure plate ring 409 to rotate. As the coil plate passes through, the pressure plate ring 409 presses down on the top of the coil plate, causing the bottom of the coil plate to press tightly against the top of the inclined groove column 404. Under this pressure, the bottom of the coil plate presses against the rubber anti-slip pad 406, causing the top of the anti-slip pad 406 to adhere to the bottom of the coil plate, increasing friction.

Claims

1. An anti-deviation cutting device for the production of stainless steel cold-rolled coils, characterized in that, include: The frame (1) has side support plates (7) installed on both sides of the top of the frame (1). A first motor (5) and a second motor (6) are installed on the outside of the side support plates (7). A leveling mechanism (3) and a material transfer mechanism (2) are installed between the side support plates (7). A longitudinal cutting mechanism (4) is installed inside the side support plates (7). An outlet plate (8) is installed on the side of the side support plates (7) away from the material transfer mechanism (2). The longitudinal cutting mechanism (4) includes a shaft hole plate (402), which is fixedly installed on the inner wall of the leveling mechanism (3). A slanted groove column (404) is fixedly installed between the shaft hole plates (402). An annular groove is provided at the center of the outer side of the slanted groove column (404). Slanted grooves are provided on both sides of the top of the slanted groove column (404). A slanted slider (405) is slidably installed at the slanted groove of the slanted groove column (404). An annular groove is provided at the top of the slanted slider (405). The top of the slanted slider (405) is flush with the top of the slanted groove column (404). An anti-slip pad (406) is fixedly installed at the annular groove of the slanted slider (405). The anti-slip pad (406) is made of rubber material. The top of the anti-slip pad (406) is higher than the top of the slanted groove column (404).

2. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 1, characterized in that: A ring cutter shaft (401) is rotatably mounted between the shaft hole plates (402). One end of the ring cutter shaft (401) is fixedly connected to the output end of the first motor (5), and a cutter groove disc (407) is fixedly mounted at the center position of the outer side of the ring cutter shaft (401). A ring cutter groove is provided at the center of the outer side of the cutter groove disk (407), and a ring cutter (408) is fixedly installed at the ring cutter groove of the cutter groove disk (407). The ring cutter (408) corresponds to the ring groove of the inclined groove column (404).

3. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 2, characterized in that: Both sides of the blade groove disc (407) are fixedly installed with ring groove discs (410), and the outer side of the ring groove discs (410) is fixedly installed with pressure plate rings (409). The bottom of the pressure plate rings (409) is in contact with the top of the inclined groove column (404). Both ends of the top of the ring cutter shaft (401) are equipped with pressure plates (403), and the bottom of the pressure plates (403) is fixedly connected to the top of the leveling mechanism (3).

4. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 3, characterized in that: The material transfer mechanism (2) includes a fixed plate (22), on which collars (26) are fixedly installed on opposite sides. Support rollers (23) are rotatably installed between the collars (26). The support rollers (23) are symmetrically installed along the center position of the axis of the fixed plate (22), and convex rings are uniformly arranged on the outer side of the support rollers (23).

5. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 4, characterized in that: A drive shaft (24) is rotatably mounted between the side support plates (7). One end of the drive shaft (24) is fixedly connected to the output end of the second motor (6). A material transfer roller (21) is fixedly mounted on the outer side of the drive shaft (24). A support shaft (25) is fixedly mounted on the inner wall of the support roller (23). Both ends of the support shaft (25) are rotatably connected to the inner wall of the side support plate (7).

6. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 5, characterized in that: The transfer roller (21) is located between the support rollers (23), and the bottom of the transfer roller (21) is lower than the top of the support rollers (23).

7. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 6, characterized in that: The leveling mechanism (3) includes a connecting plate (31), and the opposite surfaces of the connecting plate (31) are symmetrically provided with shaft grooves. A screw hole plate (34) is fixedly installed on the top of the connecting plate (31). The screw hole plate (34) corresponds one-to-one with the shaft groove, and a screw (35) is rotatably installed on the inner wall of the screw hole plate (34).

8. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 7, characterized in that: A sleeve (38) is slidably installed in the shaft groove of the connecting plate (31), and a pressure roller plate (37) is slidably installed in the shaft groove of the connecting plate (31). The bottom of the pressure roller plate (37) is in contact with the top of the sleeve (38), and a rotating drum (39) is rotatably installed on the top of the pressure roller plate (37).

9. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 8, characterized in that: The inner wall of the rotating drum (39) is slidably adapted to the bottom end of the screw (35), and an elastic pad (36) is fixedly installed between the bottom end of the screw (35) and the inner wall of the rotating drum (39). The elastic pad (36) is made of rubber.

10. The anti-deviation cutting equipment for stainless steel cold-rolled coil production according to claim 9, characterized in that: A pressure roller (32) is installed between the sleeves (38). The two ends of the pressure roller (32) are rotatably adapted to the inner wall of the sleeve (38). A top plate roller (33) is rotatably installed between the connecting plates (31). The top plate roller (33) corresponds one-to-one with the pressure roller (32).

Citation Information

Patent Citations

  • A plate cutting device with precise cutting

    CN107053293B