A slitting device for processing stainless steel strips

By designing a stainless steel belt slitting device that includes flip and grinding functions, the problems of rectangular stainless steel plate adsorption and cut burrs in traditional devices are solved, and a more efficient and safe processing process is achieved.

CN119304716BActive Publication Date: 2025-06-27BEILIU XINYUE STAINLESS STEEL PRODUCTS CO LTD
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Patent Information

Application Number
CN202411430170.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-06-27
Estimated Expiration
2044-10-14

AI Technical Summary

Technical Problem

When the traditional stainless steel belt slitting device recycles rectangular stainless steel plates, the plates are easily adsorbed together, affecting the forming and processing efficiency, and the cuts are prone to burrs, which is dangerous and inconvenient for processing.

Method used

A slitting device including a roller conveying mechanism, an operating frame, a flip mechanism, a grinding mechanism, a conveyor belt and a discharge frame is designed. After the stainless steel plate is cut, the rectangular stainless steel plate is flipped to a vertical state through a flip mechanism, and the cut is polished through a grinding mechanism to prevent adsorption and burrs.

Benefits of technology

By stacking rectangular stainless steel plates vertically, the adsorption of the plates is avoided and the forming and processing efficiency is improved. At the same time, the grinding cut is safe and not easy to damage the equipment, which improves the safety and efficiency of the processing process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a slitting device for stainless steel strip processing, belonging to the technical field of stainless steel processing equipment, which includes a roller conveying mechanism, an operation frame, a flipping mechanism, a grinding mechanism, a conveyor belt and a discharge frame. The roller conveying mechanism is fixedly connected above the conveyor belt, the operation frame is fixedly connected between the roller conveying mechanism and the conveyor belt, the flipping mechanism is arranged on one side of the operation frame, the grinding mechanism is arranged inside the operation frame, and the discharge frame is placed on the conveyor belt. The present invention can flip the rectangular stainless steel plate formed after the slitting of the immortal steel strip, so that when recycling, the rectangular stainless steel plates are vertically stacked together, effectively preventing the rectangular stainless steel plates formed after the slitting of the immortal steel strip from adsorbing each other and affecting the working efficiency of subsequent forming processing.
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Description

Technical Field

[0001] The present invention belongs to the technical field of stainless steel processing equipment, and particularly relates to a slitting device for processing stainless steel strips. Background Art

[0002] Due to its excellent corrosion resistance, strength, durability, and workability, stainless steel strips are widely used in multiple industries. For example, in the construction and decoration industries, automotive parts, food processing equipment, medical devices, structural parts and interior parts of aircraft, etc. The versatility of stainless steel strips lies in its ability to adapt to various processing requirements, from simple cutting, bending to complex forming and welding, all of which can meet the requirements of different industrial standards.

[0003] Generally, the process of processing stainless steel strips into workpieces required by various industries is as follows: first, unroll the stainless steel strip coil, then flatten the stainless steel strip, transfer the flattened stainless steel strip to a slitting device to cut it into rectangular stainless steel plates of the required length, and finally perform forming processing on the cut rectangular stainless steel plates to finally produce different finished products.

[0004] Conventionally, a traditional stainless steel strip slitting device usually conveys the cut rectangular stainless steel plates to a designated location for unified recycling through an ordinary conveyor, so as to facilitate the next-step forming processing of the rectangular stainless steel plates. The cut rectangular stainless steel plates are simply stacked together to complete unified recycling. However, such a recycling method affects the next-step forming processing of the rectangular stainless steel plates. Since the surface of stainless steel is smooth, the rectangular stainless steel plates stacked together are likely to be adsorbed together due to factors such as gravity and static electricity, which is inconvenient for separation and greatly affects the forming processing efficiency of the rectangular stainless steel plates. Secondly, burrs or rough edges are likely to be generated at the cut edges of the rectangular stainless steel plates after cutting, which are likely to cut the hands of operators during the transfer process or cut the components in the processing equipment during the processing process. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to overcome the above-mentioned disadvantages of the prior art and provide a slitting device for processing stainless steel strips. The present invention can flip the rectangular stainless steel plates formed after the slitting of the stainless steel strips, so that when recycling uniformly, the rectangular stainless steel plates are vertically stacked together, effectively preventing the rectangular stainless steel plates from being adsorbed to each other and affecting the working efficiency of subsequent forming processing. At the same time, during the discharging process of the rectangular stainless steel plates, the cut edges can be polished to prevent cutting the hands of operators during the transfer process or cutting the components in the processing equipment during the processing process.

[0006] The technical solution adopted to solve the above technical problems is as follows: A slitting device for processing stainless steel strips, comprising a roller conveying mechanism, an operation frame, a flipping mechanism, a grinding mechanism, a conveyor belt and a discharge frame. The roller conveying mechanism is fixedly connected above the conveyor belt. The operation frame is fixedly connected between the roller conveying mechanism and the conveyor belt. The flipping mechanism is arranged on one side of the operation frame. The grinding mechanism is arranged inside the operation frame. The discharge frame is placed on the conveyor belt;

[0007] A cutting component is fixedly connected to the roller conveying mechanism;

[0008] The flipping mechanism can flip the rectangular stainless steel plate formed after slitting on the roller conveying mechanism into the operation frame, and the grinding mechanism can grind the cut on the rectangular stainless steel plate;

[0009] The discharge frame on the conveyor belt can receive the rectangular stainless steel plate that has been ground in the operation frame.

[0010] Through the above technical solution, during processing, the flattened stainless steel strip enters the roller conveying mechanism. The cutting component on the roller conveying mechanism cuts the stainless steel strip into rectangular stainless steel plates. The rectangular stainless steel plates are conveyed to the operation frame through the roller conveying mechanism. The flipping mechanism flips the rectangular stainless steel plates so that the rectangular stainless steel plates enter the operation frame vertically. The grinding mechanism inside the operation frame can grind the cuts on the rectangular stainless steel plates that enter the operation frame vertically. The ground rectangular stainless steel plates fall into the discharge frame on the conveyor belt for unified recycling. The rectangular steel plates in the discharge frame are stacked vertically, and adjacent rectangular steel plates will not adsorb to each other, which is convenient to take. It effectively improves the efficiency of the subsequent forming and processing steps of the rectangular stainless steel plates. Moreover, the cuts of the rectangular stainless steel plates are ground, effectively preventing the hands of the operators from being cut during the transfer process or the parts in the processing equipment from being cut during the processing process.

[0011] Furthermore, the cutting component includes a cutter. The cutter is vertically slidably connected above the roller conveying mechanism. A driving roller is rotatably connected to the roller conveying mechanism in front of the cutter. A driving motor is fixedly connected to one side of the roller conveying mechanism. The rotating shaft of the driving motor is fixedly connected to the driving roller.

[0012] Through the above technical solution, since a driving motor is fixedly connected to one side of the roller conveying mechanism and the rotating shaft of the driving motor is fixedly connected to the driving roller, the driving motor can drive the driving roller to rotate. The rotation of the driving roller can drive the stainless steel strip to move between the driving roller and the roller conveying mechanism. When the cutting component drives the cutter to cut the stainless steel strip, the driving roller and the roller conveying mechanism cooperate to clamp the stainless steel strip, effectively helping the stainless steel strip to be cut stably.

[0013] Furthermore, a horizontal track is provided inside the operation box. One side at the rear of the top of the operation box is fixedly connected with a supporting vertical plate, a vertical track is fixedly connected to the supporting vertical plate, vertical plates are symmetrically and fixedly connected to the front side of the top of the operation box, a supporting cross plate is fixedly connected to one side at the rear of the operation box, and a discharge port is provided at the front side of the bottom of the operation box.

[0014] Through the above technical solution, since a discharge port is provided at the front side of the bottom of the operation box, the rectangular stainless steel plate polished by the operation box can vertically pass through the discharge port and fall below the operation box, that is, into the discharge box on the conveyor belt.

[0015] Furthermore, the flipping mechanism includes a pressing component and a pushing component. The pressing component is arranged above the operation box and in front of the roller conveying mechanism. The pushing component is arranged at the rear of the operation box and below the roller conveying mechanism.

[0016] Through the above technical solution, since the pressing component is arranged above the operation box and in front of the roller conveying mechanism, and the pushing component is arranged at the rear of the operation box and below the roller conveying mechanism, after the rectangular stainless steel plate formed after the immortal steel belt is cut is conveyed by the roller conveying mechanism, the pressing component can be lowered to press down the front end of the rectangular stainless steel plate, so that the horizontal rectangular stainless steel plate becomes vertical, and the pushing component can push the vertical rectangular stainless steel plate into the operation box.

[0017] Furthermore, the pressing component includes a first eccentric wheel, a first connecting rod and a pressing frame. The first eccentric wheel is rotatably connected to the top of the supporting vertical plate. One end of the first connecting rod is hinged to the edge of the first eccentric wheel, the other end of the first connecting rod is hinged to the top of the pressing frame, a pressing shaft is rotatably connected to the bottom of the pressing frame, and the pressing frame is slidably connected to the vertical track.

[0018] Through the above technical solution, since the first eccentric wheel is rotatably connected to the top of the supporting vertical plate, one end of the first connecting rod is hinged to the edge of the first eccentric wheel, the other end of the first connecting rod is hinged to the top of the pressing frame, a pressing shaft is rotatably connected to the bottom of the pressing frame, and the pressing frame is slidably connected to the vertical track, the rotation of the first eccentric wheel can drive the pressing frame to vertically lift on the vertical track through the first connecting rod, so that the pressing shaft at the bottom of the pressing frame can press down the front end of the rectangular stainless steel plate cut on the roller conveying mechanism, realizing the change of the stainless steel plate from a horizontal state to a vertical state.

[0019] Furthermore, the material pushing component includes a second eccentric wheel, a second connecting rod, a material pushing frame, and a control motor. The second eccentric wheel is rotatably connected to the tail end of the supporting cross plate. One end of the second connecting rod is hinged to the edge of the second eccentric wheel, and the other end of the second connecting rod is hinged to the rear side of the material pushing frame. The control motor is fixedly connected to the supporting cross plate, and the control motor shaft is fixedly connected to the second eccentric wheel shaft. The material pushing frame is slidably connected to the horizontal track.

[0020] Through the above technical solution, since the second eccentric wheel is rotatably connected to the tail end of the supporting cross plate, one end of the second connecting rod is hinged to the edge of the second eccentric wheel, the other end of the second connecting rod is hinged to the rear side of the material pushing frame, the control motor is fixedly connected to the supporting cross plate, the control motor shaft is fixedly connected to the second eccentric wheel shaft, and the material pushing frame is slidably connected to the horizontal track, when the second eccentric wheel rotates, it can drive the material pushing frame to horizontally slide on the horizontal track through the second connecting rod, so that the pressing shaft presses down the front end of the rectangular stainless steel plate. When the stainless steel plate changes from a horizontal state to a vertical state, the rectangular stainless steel plate falls into the material pushing frame, and then the material pushing frame drives the stainless steel plate into the operation frame.

[0021] Furthermore, a first transmission wheel is fixedly connected to the first eccentric wheel shaft, a second transmission wheel is fixedly connected to the second eccentric wheel shaft, and the first transmission wheel and the second transmission wheel are connected by a transmission chain.

[0022] Through the above technical solution, since a first transmission wheel is fixedly connected to the first eccentric wheel shaft, a second transmission wheel is fixedly connected to the second eccentric wheel shaft, and the first transmission wheel and the second transmission wheel are connected by a transmission chain, when the control motor drives the second eccentric wheel to rotate, it can drive the first eccentric wheel to rotate.

[0023] Furthermore, the grinding mechanism includes an upper grinding component and a lower grinding component. The upper grinding component is vertically slidably connected to the vertical plate, the lower grinding component is fixedly connected to the bottom of the operation frame, an installation cross beam is fixedly connected to the top of the upper grinding component, installation holes are provided at both ends of the installation cross beam, an installation groove is provided on the vertical plate, and the upper grinding component can be fixed to the vertical plate through installation bolts passing through the installation groove and the installation holes.

[0024] Through the above technical solution, since the upper grinding component is vertically slidably connected to the vertical plate, the lower grinding component is fixedly connected to the bottom of the operation frame, an installation cross beam is fixedly connected to the top of the upper grinding component, installation holes are provided at both ends of the installation cross beam, an installation groove is provided on the vertical plate, and the upper grinding component can be fixed to the vertical plate through installation bolts passing through the installation groove and the installation holes, the upper grinding component can adjust its vertical height on the vertical plate, that is, the distance between the upper grinding component and the lower grinding component can be adjusted, so as to adapt to rectangular stainless steel plates with different cutting lengths, and after the vertical height of the upper grinding component is adjusted in place, it can be fixed to the vertical plate.

[0025] Further, the upper grinding component further includes a first substrate and a first grinding plate, and the lower grinding component includes a second substrate and a second grinding plate. The first substrate is fixedly connected to the bottom of the installation cross beam, the first grinding plate is arranged below the first substrate, and a plurality of adjusting springs are fixedly connected between the first substrate and the first grinding plate. The second substrate is fixedly connected to the bottom of the operation frame, the second grinding plate is arranged above the second substrate, and a plurality of adjusting springs are fixedly connected between the second substrate and the second grinding plate.

[0026] Through the above technical solution, since the first substrate is fixedly connected to the bottom of the installation cross beam, the first grinding plate is arranged below the first substrate, and a plurality of adjusting springs are fixedly connected between the first substrate and the first grinding plate, the second substrate is fixedly connected to the bottom of the operation frame, the second grinding plate is arranged above the second substrate, and a plurality of adjusting springs are fixedly connected between the second substrate and the second grinding plate, the distance between the first grinding plate and the second grinding plate can be fixed to be less than the height of the rectangular stainless steel plate in the vertical state. And slopes are arranged on both sides of the first grinding plate and the second grinding plate close to the roller conveying mechanism. The arrangement of the adjusting springs enables the rectangular stainless steel plate in the vertical state to enter between the first grinding plate and the second grinding plate through the slopes, and the first grinding plate and the second grinding plate clamp the rectangular stainless steel plate. Thus, when the pushing frame slides horizontally to push the rectangular stainless steel plate, the cuts at the top and bottom of the rectangular stainless steel plate can be ground.

[0027] Further, a driven shaft is arranged on the conveyor belt, the driven shaft can drive the conveyor belt, a third transmission wheel is fixedly connected to one side of the driving roller, a fourth transmission wheel is fixedly connected to one side of the driven shaft, and the third transmission wheel and the fourth transmission wheel are connected by a transmission chain.

[0028] Through the above technical solution, since a driven shaft is arranged on the conveyor belt, the driven shaft can drive the conveyor belt, a third transmission wheel is fixedly connected to one side of the driving roller, a fourth transmission wheel is fixedly connected to one side of the driven shaft, and the third transmission wheel and the fourth transmission wheel are connected by a transmission chain, when the driving motor drives the driving roller to rotate to convey the stainless steel belt, the conveyor belt can be driven at the same time. The conveyor belt can convey the discharging frame backward, so that the rectangular stainless steel plates falling successively from the discharging port of the operation frame can gradually fill the discharging frame.

[0029] The beneficial effects of the present invention are as follows:

[0030] (1) In the present invention, the distance between the first grinding plate and the second grinding plate can be fixed to be less than the height of the rectangular stainless steel plate in the vertical state. Ramps are provided on both sides of the first grinding plate and the second grinding plate close to the roller conveying mechanism. At this time, the bottom of the rectangular stainless steel plate in the vertical state in the material pushing frame is at the bottom of the operation frame. Then, after the pressing is completed, the pressing frame rises, and the material pushing frame slides forward horizontally on the horizontal track. The rectangular stainless steel plate enters between the first grinding plate and the second grinding plate through the ramp. The adjustment spring is arranged so that the first grinding plate and the second grinding plate clamp the rectangular stainless steel plate. Thus, when the material pushing frame slides forward horizontally to push the rectangular stainless steel plate, the cuts at the top and bottom of the rectangular stainless steel plate can be ground, effectively preventing the hands of the operating personnel from being cut during the transfer process or the components in the processing equipment from being cut during the processing process;

[0031] (2) In the present invention, the ground rectangular stainless steel plate falls into the discharge frame on the conveyor belt. The driving motor drives the driving roller to rotate to convey the stainless steel belt and can drive the conveyor belt at the same time. The conveyor belt can convey the discharge frame backward, so that the rectangular stainless steel plates that fall successively from the discharge port of the operation frame can gradually fill the discharge frame, which is convenient for the discharge frame to centrally recycle the rectangular stainless steel plates. Moreover, the rectangular steel plates in the discharge frame are vertically stacked, and adjacent rectangular steel plates will not adsorb to each other, which is convenient for taking and effectively improves the efficiency of the subsequent forming processing steps of the rectangular stainless steel plates. Brief Description of the Drawings

[0032] Figure 1 is a schematic structural diagram of a slitting device for processing stainless steel belts according to the present invention;

[0033] Figure 2 is a schematic structural diagram of the roller conveying mechanism of a slitting device for processing stainless steel belts according to the present invention;

[0034] Figure 3 is a schematic structural diagram of the cutting tool of a slitting device for processing stainless steel belts according to the present invention;

[0035] Figure 4 is a schematic structural diagram of the cooperation of the roller conveying mechanism, the operation frame and the flipping mechanism of a slitting device for processing stainless steel belts according to the present invention;

[0036] Figure 5 is a schematic internal structural diagram of the operation frame of a slitting device for processing stainless steel belts according to the present invention after partial sectioning;

[0037] Figure 6 is a schematic structural diagram of the operation frame of a slitting device for processing stainless steel belts according to the present invention;

[0038] Figure 7 is a schematic structural diagram of the flipping mechanism of a slitting device for processing stainless steel belts according to the present invention;

[0039] Figure 8 It is a schematic structural diagram of the pressing component of a slitting device for processing stainless steel strips according to the present invention;

[0040] Figure 9 It is an exploded structural schematic diagram of the pushing component of a slitting device for processing stainless steel strips according to the present invention;

[0041] Figure 10 It is a schematic structural diagram of the grinding mechanism of a slitting device for processing stainless steel strips according to the present invention;

[0042] Figure 11 It is a schematic structural diagram of the cooperation between the driving roller and the driven shaft of a slitting device for processing stainless steel strips according to the present invention.

[0043] Reference numerals: 1, roller conveying mechanism; 2, operation frame; 3, flipping mechanism; 4, grinding mechanism; 5, conveyor belt; 6, discharge frame; 11, cutting component; 12, driving roller; 13, driving motor; 111, cutter; 121, third transmission wheel; 21, horizontal track; 22, vertical track; 23, vertical plate; 24, supporting cross plate; 25, discharge port; 31, pressing component; 32, pushing component; 311, first eccentric wheel; 312, first connecting rod; 313, pressing frame; 321, second eccentric wheel; 322, second connecting rod; 323, pushing frame; 324, control motor; 3111, first transmission wheel; 3211, second transmission wheel; 3131, pressing shaft; 41, upper grinding component; 42, lower grinding component; 411, installation cross beam; 412, first base plate; 413, first grinding plate; 421, second base plate; 422, second grinding plate; 51, driven shaft; 511, fourth transmission wheel. Detailed implementation manners

[0044] In order to make the objectives, technical solutions and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0045] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "top / bottom end", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0046] Such as Figure 1 - Figure 2As shown in the figure, a slitting device for processing stainless steel strips includes a roller conveying mechanism 1, an operation frame 2, a flipping mechanism 3, a grinding mechanism 4, a conveyor belt 5 and a discharge frame 6. The roller conveying mechanism 1 is fixedly connected above the conveyor belt 5. The operation frame 2 is fixedly connected between the roller conveying mechanism 1 and the conveyor belt 5. The flipping mechanism 3 is arranged on one side of the operation frame 2. The grinding mechanism 4 is arranged inside the operation frame 2. A discharge frame 6 is placed on the conveyor belt 5.

[0047] A cutting component 11 is fixedly connected to the roller conveying mechanism 1.

[0048] The flipping mechanism 3 can flip the rectangular stainless steel plate formed after slitting on the roller conveying mechanism 1 into the operation frame 2. The grinding mechanism 4 can grind the cut on the rectangular stainless steel plate.

[0049] The discharge frame 6 on the conveyor belt 5 can receive the rectangular stainless steel plate polished in the operation frame 2.

[0050] In this embodiment, during processing, the flattened stainless steel strip enters the roller conveying mechanism 1. The cutting component 11 on the roller conveying mechanism 1 cuts the stainless steel strip into rectangular stainless steel plates. The rectangular stainless steel plates are conveyed from the roller conveying mechanism 1 to the operation frame 2. The flipping mechanism 3 flips the rectangular stainless steel plates so that the rectangular stainless steel plates vertically enter the operation frame 2. The grinding mechanism 4 in the operation frame 2 can grind the cuts on the rectangular stainless steel plates vertically entering the operation frame 2. The polished rectangular stainless steel plates fall into the discharge frame 6 on the conveyor belt 5 for unified recycling. The rectangular steel plates in the discharge frame 6 are vertically stacked, and adjacent rectangular steel plates will not adsorb to each other, which is convenient to take, effectively improving the working efficiency of the subsequent forming processing steps of the rectangular stainless steel plates. Moreover, the cuts of the rectangular stainless steel plates are polished, effectively preventing from cutting the hands of operators during the transfer process or cutting the parts in the processing equipment during the processing process.

[0051] As Figure 1 - Figure 3 shown, the cutting component 11 includes a cutter 111. The cutter 111 is vertically slidably connected above the roller conveying mechanism 1. A driving roller 12 is rotatably connected to the roller conveying mechanism 1 in front of the cutter 111. A driving motor 13 is fixedly connected to one side of the roller conveying mechanism 1. The rotating shaft of the driving motor 13 is fixedly connected to the driving roller 12.

[0052] In this embodiment, the driving motor 13 can drive the driving roller 12 to rotate. The rotation of the driving roller 12 can drive the stainless steel strip to move between the driving roller 12 and the roller conveying mechanism 1. When the cutting component 11 drives the cutter 111 to cut the stainless steel strip, the driving roller 12 and the roller conveying mechanism 1 cooperate to clamp the stainless steel strip, effectively helping the stainless steel strip to be stably cut.

[0053] As Figure 4 -Figure 9 As shown in Figure 9 , a horizontal track 21 is provided inside the operation frame 2. At the rear side of the top of the operation frame 2, a support vertical plate is fixedly connected. A vertical track 22 is fixedly connected to the support vertical plate. At the front side of the top of the operation frame 2, vertical plates 23 are symmetrically and fixedly connected. At one side of the rear side of the operation frame 2, a support horizontal plate 24 is fixedly connected. At the front side of the bottom of the operation frame 2, a discharge port 25 is provided;

[0054] The flipping mechanism 3 includes a material pressing component 31 and a material pushing component 32. The material pressing component 31 is arranged above the operation frame 2 and in front of the roller conveying mechanism 1. The material pushing component 32 is arranged at the rear side of the operation frame 2 and below the roller conveying mechanism 1;

[0055] The material pressing component 31 includes a first eccentric wheel 311, a first connecting rod 312, and a material pressing frame 313. The first eccentric wheel 311 is rotatably connected to the top of the support vertical plate. One end of the first connecting rod 312 is hinged to the edge of the first eccentric wheel 311, and the other end of the first connecting rod 312 is hinged to the top of the material pressing frame 313. A material pressing shaft 3131 is rotatably connected to the bottom of the material pressing frame 313, and the material pressing frame 313 is slidably connected to the vertical track 22;

[0056] The material pushing component 32 includes a second eccentric wheel 321, a second connecting rod 322, a material pushing frame 323, and a control motor 324. The second eccentric wheel 321 is rotatably connected to the end of the support horizontal plate 24. One end of the second connecting rod 322 is hinged to the edge of the second eccentric wheel 321, and the other end of the second connecting rod 322 is hinged to the rear side of the material pushing frame 323. The control motor 324 is fixedly connected to the support horizontal plate 24, and the rotating shaft of the control motor 324 is fixedly connected to the rotating shaft of the second eccentric wheel 321. The material pushing frame 323 is slidably connected to the horizontal track 21;

[0057] A first transmission wheel 3111 is fixedly connected to the rotating shaft of the first eccentric wheel 311, and a second transmission wheel 3211 is fixedly connected to the rotating shaft of the second eccentric wheel 321. The first transmission wheel 3111 and the second transmission wheel 3211 are connected by a transmission chain.

[0058] In this embodiment, when the control motor 324 drives the second eccentric wheel 321 to rotate, the first eccentric wheel 311 can be driven to rotate;

[0059] The rotation of the first eccentric wheel 311 can drive the material pressing frame 313 to vertically lift and lower on the vertical track 22 through the first connecting rod 312, so that the material pressing shaft 3131 at the bottom of the material pressing frame 313 can press down the front end of the rectangular stainless steel plate cut on the roller conveying mechanism 1, realizing the change of the stainless steel plate from a horizontal state to a vertical state;

[0060] When the second eccentric wheel 321 rotates, it can drive the material pushing frame 323 to slide horizontally on the horizontal track 21 through the second connecting rod 322, so as to realize the downward pressing of the front end of the rectangular stainless steel plate by the material pressing shaft 3131. When the stainless steel plate changes from the horizontal state to the vertical state, the rectangular stainless steel plate falls into the material pushing frame 323, and then the material pushing frame 323 drives the stainless steel plate into the operation frame 2.

[0061] As Figure 5 - Figure 6 and Figure 10 shown in the figure, the grinding mechanism 4 includes an upper grinding component 41 and a lower grinding component 42. The upper grinding component 41 is vertically slidably connected to the vertical plate 23, and the lower grinding component 42 is fixedly connected to the bottom of the operation frame 2. A mounting cross beam 411 is fixedly connected to the top of the upper grinding component 41. Mounting holes are provided at both ends of the mounting cross beam 411, and a mounting groove is provided on the vertical plate 23. The upper grinding component 41 can be fixed on the vertical plate 23 through the mounting bolts passing through the mounting groove and the mounting holes;

[0062] The upper grinding component 41 further includes a first substrate 412 and a first grinding plate 413, and the lower grinding component 42 includes a second substrate 421 and a second grinding plate 422. The first substrate 412 is fixedly connected to the bottom of the mounting cross beam 411, the first grinding plate 413 is arranged below the first substrate 412, and a plurality of adjusting springs are fixedly connected between the first substrate 412 and the first grinding plate 413. The second substrate 421 is fixedly connected to the bottom of the operation frame 2, the second grinding plate 422 is arranged above the second substrate 421, and a plurality of adjusting springs are fixedly connected between the second substrate 421 and the second grinding plate 422.

[0063] In this embodiment, the vertical height of the upper grinding component 41 can be adjusted on the vertical plate 23, that is, the distance between the upper grinding component 41 and the lower grinding component 42 can be adjusted, so as to adapt to rectangular stainless steel plates with different cutting lengths. After the vertical height of the upper grinding component 41 is adjusted in place, it can be fixed on the vertical plate 23;

[0064] The distance between the first grinding plate 413 and the second grinding plate 422 can be fixed to be less than the height of the rectangular stainless steel plate in the vertical state. Ramps are provided on both sides of the first grinding plate 413 and the second grinding plate 422 close to the roller conveying mechanism 1. The setting of the adjusting springs enables the rectangular stainless steel plate in the vertical state to enter between the first grinding plate 413 and the second grinding plate 422 through the ramps. The first grinding plate 413 and the second grinding plate 422 clamp the rectangular stainless steel plate, so that when the material pushing frame 323 slides horizontally to push the rectangular stainless steel plate, the cuts at the top and bottom of the rectangular stainless steel plate can be ground.

[0065] As Figure 11As shown in the figure, a driven shaft 51 is provided on the conveyor belt 5. The driven shaft 51 can drive the conveyor belt 5. One side of the driving roller 12 is fixedly connected with a third transmission wheel 121, and one side of the driven shaft 51 is fixedly connected with a fourth transmission wheel 511. The third transmission wheel 121 and the fourth transmission wheel 511 are connected by a transmission chain.

[0066] In this embodiment, while the driving motor 13 drives the driving roller 12 to rotate to convey the stainless steel belt, it can also drive the conveyor belt 5. The conveyor belt 5 can convey the discharge frame 6 backward, so that the rectangular stainless steel plates that successively fall from the discharge port 25 of the operation frame 2 can gradually fill the discharge frame 6.

[0067] Working principle:

[0068] During operation, the flattened stainless steel belt enters the roller conveying mechanism 1. Starting the driving motor 13 can drive the driving roller 12 to rotate. When the driving roller 12 rotates, it can drive the stainless steel belt to move between the driving roller 12 and the roller conveying mechanism 1. When the cutting component 11 drives the cutter 111 to cut the stainless steel belt, the driving roller 12 and the roller conveying mechanism 1 cooperate to clamp the stainless steel belt, effectively helping the stainless steel belt to be stably cut;

[0069] At this time, starting the control motor 324 to drive the second eccentric wheel 321 to rotate can drive the first eccentric wheel 311 to rotate;

[0070] The rotation of the first eccentric wheel 311 can drive the pressing frame 313 to vertically descend on the vertical rail 22 through the first connecting rod 312, so that the pressing shaft 3131 at the bottom of the pressing frame 313 can press down the front end of the rectangular stainless steel plate cut on the roller conveying mechanism 1, realizing the change of the stainless steel plate from a horizontal state to a vertical state;

[0071] When the second eccentric wheel 321 rotates, it can drive the pushing frame 323 to horizontally slide on the horizontal rail 21 through the second connecting rod 322. When the pressing shaft 3131 presses down the front end of the rectangular stainless steel plate and the stainless steel plate changes from a horizontal state to a vertical state, the rectangular stainless steel plate falls into the pushing frame 323;

[0072] The distance between the first grinding plate 413 and the second grinding plate 422 can be fixed to be less than the height of the rectangular stainless steel plate in the vertical state, and slopes are provided on one side of the first grinding plate 413 and the second grinding plate 422 close to the roller conveying mechanism 1. At this time, the bottom of the rectangular stainless steel plate in the vertical state in the pushing frame 323 is at the bottom of the operation frame 2;

[0073] Then, the blank holder frame 313 after the blank holding ends rises, and the pusher frame 323 slides forward horizontally on the horizontal rail 21. The rectangular stainless steel plate enters between the first grinding plate 413 and the second grinding plate 422 through the ramp. The setting of the adjusting spring is adjusted so that the first grinding plate 413 and the second grinding plate 422 clamp the rectangular stainless steel plate. Thus, when the pusher frame 323 slides forward horizontally to push the rectangular stainless steel plate, the cuts at the top and bottom of the rectangular stainless steel plate can be ground;

[0074] The rectangular stainless steel plate after grinding falls into the discharge frame 6 on the conveyor belt 5. The drive motor 13 drives the drive roller 12 to rotate to convey the stainless steel belt and can drive the conveyor belt 5 at the same time. The conveyor belt 5 can convey the discharge frame 6 backward, so that the rectangular stainless steel plates successively falling from the discharge port 25 of the operation frame 2 can gradually fill the discharge frame 6, which is convenient for the discharge frame 6 to centrally recycle the rectangular stainless steel plates. Moreover, the rectangular steel plates in the discharge frame 6 are vertically stacked, and adjacent rectangular steel plates will not adsorb to each other, which is convenient for taking and effectively improves the efficiency of the subsequent forming and processing steps of the rectangular stainless steel plates;

[0075] The upper grinding component 41 can adjust the vertical height on the vertical plate 23, that is, the distance between the upper grinding component 41 and the lower grinding component 42 can be adjusted. After the vertical height of the upper grinding component 41 is adjusted in place, it can be fixed on the vertical plate 23, so as to adapt to rectangular stainless steel plates with different cutting lengths.

[0076] The above is only a preferred embodiment of the present invention and is not intended to limit the protection scope of the present invention.

Claims

1. A slitting device for processing stainless steel strips, comprising a roller conveying mechanism (1), an operating frame (2), a turning mechanism (3), a grinding mechanism (4), a conveyor belt (5) and a discharging frame (6), characterized in that: The roller conveying mechanism (1) is fixedly connected above the conveyor belt (5); the operating frame (2) is fixedly connected between the roller conveying mechanism (1) and the conveyor belt (5); the turning mechanism (3) is arranged on one side of the operating frame (2); the grinding mechanism (4) is arranged in the operating frame (2); and a discharging frame (6) is placed on the conveyor belt (5); A material cutting component (11) is fixedly connected to the roller conveying mechanism (1); The flipping mechanism (3) is capable of flipping the rectangular stainless steel plate formed by cutting on the roller conveying mechanism (1) into the operating frame (2), and the grinding mechanism (4) is capable of grinding the cut on the rectangular stainless steel plate; The discharging frame (6) on the conveyor belt (5) is capable of receiving the polished rectangular stainless steel plate in the operating frame (2); The operating frame (2) is provided with a horizontal track (21), a supporting vertical plate is fixedly connected to one side of the top rear side of the operating frame (2), a vertical rail (22) is fixedly connected to the supporting vertical plate, a vertical plate (23) is symmetrically fixedly connected to the top front side of the operating frame (2), a supporting horizontal plate (24) is fixedly connected to one side of the rear side of the operating frame (2), and a discharge port (25) is provided at the bottom front side of the operating frame (2); The turning mechanism (3) comprises a material pressing component (31) and a material pushing component (32), wherein the material pressing component (31) is arranged above the operating frame (2), the material pressing component (31) is arranged at the front side of the roller conveying mechanism (1), the material pushing component (32) is arranged at the rear side of the operating frame (2), and the material pushing component (32) is arranged below the roller conveying mechanism (1); The grinding mechanism (4) comprises an upper grinding component (41) and a lower grinding component (42); the upper grinding component (41) is vertically slidably connected to the vertical plate (23); the lower grinding component (42) is fixedly connected to the bottom of the operating frame (2); a mounting crossbeam (411) is fixedly connected to the top of the upper grinding component (41); mounting holes are provided at both ends of the mounting crossbeam (411); a mounting groove is provided on the vertical plate (23); and the upper grinding component (41) can be fixed to the vertical plate (23) by means of mounting bolts penetrating the mounting groove and the mounting hole.

2. A slitting device for processing stainless steel strip according to claim 1, characterized in that: The cutting component (11) comprises a cutter (111), the cutter (111) being vertically slidably connected above the roller conveying mechanism (1), a driving roller (12) being rotatably connected to the roller conveying mechanism (1) in front of the cutter (111), a driving motor (13) being fixedly connected to one side of the roller conveying mechanism (1), and a rotating shaft of the driving motor (13) being fixedly connected to the driving roller (12).

3. A slitting device for processing stainless steel strip according to claim 1, characterized in that: The pressing component (31) comprises a first eccentric wheel (311), a first connecting rod (312) and a pressing frame (313); the first eccentric wheel (311) is rotatably connected to the top of the supporting vertical plate; one end of the first connecting rod (312) is hinged to the edge of the first eccentric wheel (311); the other end of the first connecting rod (312) is hinged to the top of the pressing frame (313); the bottom of the pressing frame (313) is rotatably connected to a pressing shaft (3131); and the pressing frame (313) is slidably connected to the vertical rail (22).

4. A slitting device for processing stainless steel strip according to claim 3, characterized in that: The pusher component (32) comprises a second eccentric wheel (321), a second connecting rod (322), a pusher frame (323) and a control motor (324); the second eccentric wheel (321) is rotatably connected to the rear end of the supporting transverse plate (24); one end of the second connecting rod (322) is hinged to the edge of the second eccentric wheel (321); the other end of the second connecting rod (322) is hinged to the rear side of the pusher frame (323); the control motor (324) is fixedly connected to the supporting transverse plate (24); the rotating shaft of the control motor (324) is fixedly connected to the rotating shaft of the second eccentric wheel (321); and the pusher frame (323) is slidably connected to the horizontal track (21).

5. A slitting device for processing stainless steel strip according to claim 4, characterized in that: A first transmission wheel (3111) is fixedly connected to the rotating shaft of the first eccentric wheel (311), a second transmission wheel (3211) is fixedly connected to the rotating shaft of the second eccentric wheel (321), and the first transmission wheel (3111) and the second transmission wheel (3211) are connected via a transmission chain.

6. A slitting device for processing stainless steel strip according to claim 1, characterized in that: The upper grinding component (41) further comprises a first substrate (412) and a first grinding plate (413); the lower grinding component (42) comprises a second substrate (421) and a second grinding plate (422); the first substrate (412) is fixedly connected to the bottom of the mounting crossbeam (411); the first grinding plate (413) is arranged below the first substrate (412); a plurality of adjustment springs are fixedly connected between the first substrate (412) and the first grinding plate (413); the second substrate (421) is fixedly connected to the bottom of the operating frame (2); the second grinding plate (422) is arranged above the second substrate (421); a plurality of adjustment springs are fixedly connected between the second substrate (421) and the second grinding plate (422).

7. A slitting device for processing stainless steel strip according to claim 2, characterized in that: A driven shaft (51) is provided on the conveyor belt (5), and the driven shaft (51) is capable of driving the conveyor belt (5); a third transmission wheel (121) is fixedly connected to one side of the driving roller (12); a fourth transmission wheel (511) is fixedly connected to one side of the driven shaft (51); and the third transmission wheel (121) and the fourth transmission wheel (511) are connected via a transmission chain.

Citation Information

Patent Citations

  • Full-automatic blanking and blank arranging machine suitable for rotary press

    CN115339862A

  • Wood cabinet plate polishing device

    CN115890378A