An automated secondary slitting device
By designing an automated secondary cutting device, and utilizing integrated cutting and moving components, seamless connection and efficient production of the material cutting process are achieved, solving the problem of low automation in existing technologies and improving production efficiency and product quality consistency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI INSITE TECHNOLOGY CO LTD
- Filing Date
- 2025-08-06
- Publication Date
- 2026-08-04
AI Technical Summary
Existing slitting equipment has a low degree of automation in the material slitting process, making it difficult to achieve a seamless transition from primary to secondary slitting, resulting in low production efficiency and inconsistent product quality.
An automated secondary cutting device was designed, comprising a frame, a first cutting component, a second cutting component, a first moving component, a second moving component, and a transfer table. The integrated dual cutting and dual moving components enable automated cutting and handling of materials. Guide columns and linear bearings are used to ensure the vertical movement accuracy of the cutter, and a material sensor is equipped to monitor the position in real time.
It achieves seamless integration of the material cutting process, reduces waiting time between processes, improves production efficiency, and ensures consistent cutting accuracy and product quality.
Smart Images

Figure CN224588207U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material cutting equipment technology, specifically an automated secondary cutting device. Background Technology
[0002] In modern industrial production, material cutting is an important part of the production process. It cuts raw materials or semi-finished products into sizes and shapes that meet the needs of subsequent production according to specific specifications. The accuracy and efficiency of cutting directly affect product quality.
[0003] Currently, some production facilities still use manual cutting methods. Operators operate cutting tools and cut materials according to simple markings. This method is not only time-consuming and labor-intensive, but also affected by the operator's skill level and fatigue. The size deviation of the cut materials is large, and the consistency of product quality cannot be guaranteed.
[0004] While existing slitting devices have reduced the intensity of manual operation to some extent, most of them cannot achieve full automation of the material slitting process. During the transition from the first to the second slitting, the material position needs to be manually adjusted, resulting in poor continuity of the slitting process and difficulty in improving production efficiency.
[0005] Therefore, it is necessary to design an automated secondary slitting device with a high degree of automation and high slitting efficiency. Utility Model Content
[0006] The purpose of this invention is to provide an automated secondary slitting device to solve the problems mentioned in the background art.
[0007] To solve the above-mentioned technical problems, this utility model provides the following technical solution: an automated secondary cutting device, comprising a frame, a first cutting component, a second cutting component, a first moving component, a second moving component, and a transfer platform. The transfer platform is installed on the top of the frame, the second moving component is installed on the bottom of the frame, the second cutting component and the first moving component are installed on both sides of the frame, the first cutting component is installed on one side of the frame and is located between the second cutting component and the first moving component, the first cutting component is used to cut the material into strips, the first moving component is used to transport the strips of material to the transfer platform, the second moving component is used to move the material on the transfer platform to below the second cutting component, and the second cutting component performs secondary cutting processing on the material.
[0008] According to the above technical solution, the first cutting assembly includes a first cylinder, a first upper cutter, and a first lower cutter. The movable end of the first cylinder is connected to a first slide rail mounting plate. The first upper cutter is mounted on the first slide rail mounting plate. The frame is connected to a first guide block mounting plate on the opposite side of the first slide rail mounting plate. A first feed inlet is provided on the first guide block mounting plate. A base is provided on the first feed inlet. The first lower cutter is mounted on the base. A lower guide post seat is provided on the base. Guide posts are provided on both sides of the lower guide post seat. Upper guide post seats are connected to the tops of the guide posts on both sides. A first slide rail and a linear bearing are arranged parallel to each other on both sides of the first slide rail mounting plate. The linear bearing slides linearly along the guide posts and is connected to the first slide rail mounting plate. First guide blocks are provided on both sides of the first guide block mounting plate. The first slide rail slides linearly along the first guide blocks. The first cylinder drives the first slide rail mounting plate to drive the first upper cutter downward, cooperating with the first lower cutter to cut the material.
[0009] According to the above technical solution, the first moving component is disposed on one side of the transfer platform. The first moving component includes a suction cup, a suction cup mounting plate, a suction cup lifting cylinder, and a first electric cylinder. The suction cup is mounted on the suction cup mounting plate. A first moving seat is disposed on the first electric cylinder. A first slider mounting frame is connected to the first moving seat. First sliders are connected to both ends of the first slider mounting frame. A first linear guide rail is connected to the bottom of the first slider of the frame. The first slider slides along the first linear guide rail. The suction cup lifting cylinder is mounted on the first slider mounting frame. The piston rod of the suction cup lifting cylinder passes through the first slider mounting frame and is connected to the suction cup mounting plate. First guide post seats are disposed on both sides below the suction cup mounting plate of the first slider mounting frame. The first guide post seats pass through the first slider mounting frame and guide the suction cup mounting plate to slide up and down. The first electric cylinder drives the suction cup to move to the material position cut by the first cutting component. The suction cup lifting cylinder drives the suction cup to press down and suck up the material. Then, the first electric cylinder drives the suction cup to place the material on the transfer platform.
[0010] According to the above technical solution, the second moving component is disposed at the bottom of the transfer platform. The second moving component includes a moving claw, a moving claw mounting plate, a moving claw lifting cylinder, and a second electric cylinder. The transfer platform has several straight slots that match the hooks of the moving claw, and the moving claw slides along the straight slots. The moving claw is mounted on the moving claw mounting plate. The second electric cylinder is provided with a second moving seat, and the second moving seat is connected to a second slider mounting frame. The bottom two sides of the second slider mounting frame are connected to second sliders. The frame is provided with a second linear guide rail, and the second slider slides along the second linear guide rail. The moving claw lifting cylinder is mounted on the second slider mounting frame, and the movable end of the moving claw lifting cylinder is connected to the moving claw mounting plate. The bottom two sides of the moving claw mounting plate are provided with second guide post seats, which pass through the second slider mounting frame and guide the moving claw mounting plate to slide up and down. The moving claw lifting cylinder drives the moving claw to rise into the straight slot, and then the second electric cylinder drives the moving claw to push the material on the transfer platform toward the second cutting component.
[0011] According to the above technical solution, the second cutting assembly includes a second cylinder, a transmission base, a second slide rail mounting plate, a second slide rail, a second upper cutter, and a second lower cutter. The movable end of the second cylinder is connected to the transmission base, the transmission base is connected to the second slide rail mounting plate, the second slide rail mounting plate is connected to the second upper cutter, the second slide rail is arranged parallel to both sides of the second slide rail mounting plate, and a second guide block mounting plate is connected to the frame on the opposite side of the second slide rail mounting plate. A second guide block is arranged parallel to the second guide block mounting plate, the second slide rail slides along the second guide block, and an installation opening is provided on the second guide block mounting plate. The second guide block mounting plate is connected at the installation opening. The device has a bearing housing with sliding columns passing through both sides. The sliding columns slide along the bearing housing. A limit plate is connected to the top of the sliding column, and a connecting plate is connected to the bottom of the sliding column. The connecting plate is connected to the second upper cutter. A second guide block mounting plate has a second feed port at the bottom of the mounting opening. A second lower cutter is installed at the second feed port. A second cylinder drives the transmission seat to move the second upper cutter on the second slide rail mounting plate downward. The second upper cutter cooperates with the second lower cutter to cut the material pushed by the moving claw. A discharge plate is connected to one side of the second guide block mounting plate. The discharge plate has a discharge port, and a discharge rail is installed at the discharge port.
[0012] According to the above technical solution, the top of the first guide block mounting plate is connected to a first cylinder mounting plate for mounting the first cylinder, and the first cylinder mounting plate is provided with a first material sensor for detecting the position of the material.
[0013] According to the above technical solution, the second guide block mounting plate is connected to the top of the discharge plate by a second cylinder mounting plate for mounting the second cylinder, and the second cylinder mounting plate is provided with a second material sensor for detecting the material position.
[0014] Compared with the prior art, the beneficial effects achieved by this utility model are:
[0015] (1) By setting up an integrated dual cutting component and dual moving component, the first cutting component, the first moving component, the second moving component and the second cutting component form an automated cutting system. Each component works together to reduce the waiting time of materials between processes. After the first cutting component completes the rough processing of the long strip, the transfer station can temporarily store and position the material. The material is then accurately transferred to the bottom of the second cutting component through the first moving component and the second moving component, achieving seamless connection of the cutting process, reducing manual intervention, greatly shortening the processing cycle of a single batch of materials, and improving production efficiency.
[0016] (2) By setting up a dual guiding structure with guide pillars and linear bearings, slide rails and guide blocks, the vertical movement accuracy of the tool is ensured and the cutting edge is avoided. Combined with the first material sensor and the second material sensor, the material position is monitored in real time and the handling action is automatically triggered to achieve efficient and energy-saving production. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0018] Figure 1 This is a schematic diagram of the structural composition of this utility model;
[0019] Figure 2 This is a schematic diagram of the first cutting component structure of this utility model;
[0020] Figure 3 This is a schematic diagram of the structure of the first moving component of this utility model;
[0021] Figure 4 This is a schematic diagram of the structure of the second moving component of this utility model;
[0022] Figure 5 This is a schematic diagram of the second cutting component structure of this utility model;
[0023] In the diagram: 10. Frame; 11. First guide block mounting plate; 111. First feed inlet; 112. Base; 113. Lower guide column seat; 114. Guide column; 115. Upper guide column seat; 116. First guide block; 12. First linear guide rail; 13. Second linear guide rail; 14. Second guide block mounting plate; 141. Second guide block; 142. Mounting port; 143. Bearing seat; 144. Sliding column; 145. Limiting plate; 146. Connecting plate; 147. Second feed inlet; 15. Discharge plate; 151. Discharge port; 152. Discharge track; 20. First cutting assembly; 21. First cylinder; 211. First slide rail mounting plate; 212. First slide rail; 213. Linear bearing; 214. First cylinder mounting plate; 215. First material sensor; 22. First upper cutter; 23. First lower cutter. 30. Second cutting assembly; 31. Second cylinder; 311. Transmission seat; 312. Second slide rail mounting plate; 313. Second slide rail; 314. Second cylinder mounting plate; 315. Second material sensor; 32. Second upper cutter; 33. Second lower cutter; 40. First moving assembly; 41. Suction cup; 42. Suction cup mounting plate; 421. First guide post seat; 43. Suction cup lifting cylinder; 44. First electric cylinder; 441. First moving seat; 45. First slider mounting frame; 451. First slider; 50. Second moving assembly; 51. Moving claw; 52. Moving claw mounting plate; 53. Moving claw lifting cylinder; 54. Second electric cylinder; 541. Second moving seat; 55. Second slider mounting frame; 551. Second slider; 552. Second guide post seat; 60. Transfer table; 61. Straight groove. Detailed Implementation
[0024] To enable those skilled in the art to better understand the present invention, the solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.
[0025] This utility model provides a technical solution: an automated secondary cutting device, including a frame 10, a first cutting component 20, a second cutting component 30, a first moving component 40, a second moving component 50, and a transfer table 60. The transfer table 60 is installed on the top of the frame 10, the second moving component 50 is installed on the bottom of the frame 10, the second cutting component 30 and the first moving component 40 are installed on both sides of the frame 10, the first cutting component 20 is installed on one side of the frame 10 and is located between the second cutting component 30 and the first moving component 40. The first cutting component 20 is used to cut the material into long strips, the first moving component 40 is used to transport the long strips of material to the transfer table 60, and the second moving component 50 is used to move the material on the transfer table 60 to below the second cutting component 30. The second cutting component 30 performs secondary cutting processing on the material.
[0026] Through this technical solution, the first cutting component 20, the first moving component 40, the second moving component 50, and the second cutting component 30 form an automated production line. The components work together to reduce the waiting time of materials between processes. After the first cutting component 20 completes the rough processing of the long strip, the transfer table 60 can temporarily store and position the material. The material is then accurately transferred to the bottom of the second cutting component 30 by the first moving component 40 and the second moving component 50, achieving seamless connection of the cutting process, greatly shortening the processing cycle of a single batch of materials, and improving production efficiency.
[0027] Furthermore, the first cutting assembly 20 includes a first cylinder 21, a first upper cutter 22, and a first lower cutter 23. The movable end of the first cylinder 21 is connected to a first slide rail mounting plate 211. The first upper cutter 22 is mounted on the first slide rail mounting plate 211. The frame 10 is connected to a first guide block mounting plate 11 on the opposite side of the first slide rail mounting plate 211. The first guide block mounting plate 11 has a first feed inlet 111. A base 112 is provided on the first feed inlet 111. The first lower cutter 23 is mounted on the base 112. A lower guide column seat 113 is provided on the base 112. Guide posts 114 are provided on both sides of the seat 113, and upper guide post seats 115 are connected to the top of the guide posts 114. The first slide rail mounting plate 211 is provided with a first slide rail 212 and a linear bearing 213 on both sides. The linear bearing 213 slides linearly along the guide post 114 and is connected to the first slide rail mounting plate 211. The first guide block mounting plate 11 is provided with a first guide block 116 on both sides. The first slide rail 212 slides linearly along the first guide block 116. The first cylinder 21 drives the first slide rail mounting plate 211 to drive the first upper cutter 22 downward, which cooperates with the first lower cutter 23 to cut the material.
[0028] With this technical solution, the first cylinder 21 serves as a power source, driving the first slide rail mounting plate 211 to move the first upper cutter 22 vertically, forming a shearing structure with the first lower cutter 23 fixed on the base 112. This allows for the rapid and efficient cutting of materials into strips. During the cutting process, the linear bearing 213 slides along the guide post 114, and the first slide rail 212 slides along the first guide block 116. This dual guidance provides precise vertical constraint for the movement of the first upper cutter 22, avoiding problems such as skewed cuts and burrs caused by cutter deviation, and significantly improving the processing efficiency and reliability of a single cutting process.
[0029] Furthermore, the first moving component 40 is disposed on one side of the transfer platform 60. The first moving component 40 includes a suction cup 41, a suction cup mounting plate 42, a suction cup lifting cylinder 43, and a first electric cylinder 44. The suction cup 41 is mounted on the suction cup mounting plate 42. The first electric cylinder 44 is provided with a first moving seat 441. The first moving seat 441 is connected to a first slider mounting bracket 45. The first slider mounting bracket 45 is connected to two ends of a first slider 451. The frame 10 is connected to a first linear guide rail 12 at the bottom of the first slider 451. The first slider 451 slides along the first linear guide rail 12. The suction cup lifting cylinder 43 is mounted on the first slider. On the mounting frame 45, the piston rod of the suction cup lifting cylinder 43 passes through the first slider mounting frame 45 and is connected to the suction cup mounting plate 42. The first slider mounting frame 45 is provided with first guide post seats 421 on both sides below the suction cup mounting plate 42. The first guide post seats 421 pass through the first slider mounting frame 45 and guide the suction cup mounting plate 42 to slide up and down. The first electric cylinder 44 drives the suction cup 41 to move to the material position cut by the first cutting component 20. The suction cup lifting cylinder 43 drives the suction cup 41 to press down and suck up the material. Then the first electric cylinder 44 drives the suction cup 41 to place the material on the transfer table 60.
[0030] Through this technical solution, the first electric cylinder 44 drives the first moving seat 441, which in turn drives the first slider 451 on the first slider mounting bracket 45 to slide along the first linear guide rail 12. This causes the suction cup 41 on the suction cup mounting plate 42 to move above the long strip of material. The suction cup lifting cylinder 43 drives the suction cup 41 to press down, so that the suction cup 41 contacts the material. The long strip of material is sucked up by negative pressure. The suction cup lifting cylinder 43 lifts the suction cup 41, and the first electric cylinder 44 drives the first moving seat 441 in the opposite direction to transport the material to the top of the transfer table 60. Then, the suction cup lifting cylinder 43 lowers the suction cup 41, and the suction cup 41 releases the material. The material is temporarily stored on the transfer table 60, realizing the full automation of material handling, replacing manual handling, and greatly improving production efficiency.
[0031] Furthermore, the second moving component 50 is disposed at the bottom of the transfer platform 60. The second moving component 50 includes a moving claw 51, a moving claw mounting plate 52, a moving claw lifting cylinder 53, and a second electric cylinder 54. The transfer platform 60 has several straight slots 61 that match the claw hooks of the moving claw 51, and the moving claw 51 slides along the straight slots 61. The moving claw 51 is mounted on the moving claw mounting plate 52. The second electric cylinder 54 is provided with a second moving seat 541. The second moving seat 541 is connected to a second slider mounting bracket 55. The bottom two sides of the second slider mounting bracket 55 are connected to second sliders 551. The frame 10 is provided with a second straight... The guide rail 13 and the second slider 551 slide along the second linear guide rail 13. The moving claw lifting cylinder 53 is installed on the second slider mounting frame 55. The movable end of the moving claw lifting cylinder 53 is connected to the moving claw mounting plate 52. The bottom sides of the moving claw mounting plate 52 are provided with second guide post seats 552. The second guide post seats 552 pass through the second slider mounting frame 55 and guide the moving claw mounting plate 52 to slide up and down. The moving claw lifting cylinder 53 drives the moving claw 51 to rise into the straight slot 61. Then the second electric cylinder 54 drives the moving claw 51 to push the material on the transfer table 60 toward the second cutting component 30.
[0032] With this technical solution, the moving claw 51 of the second moving component 50, driven by the moving claw lifting cylinder 53, rises from the bottom of the transfer table 60 into the straight slot 61. The claw hooks the edge of the material. The second electric cylinder 54 drives the second moving seat 541, which in turn drives the second slider 551 on the second slider mounting bracket 55 to slide along the second linear guide rail 13. This causes the moving claw 51 to push the material from the transfer table 60 to the second feed port 147 below the second cutting component 30. At this time, the material is located above the second lower cutter 33, realizing the precise pushing of the material from the temporary storage area to the secondary cutting position.
[0033] Further, the second cutting assembly 30 includes a second cylinder 31, a transmission base 311, a second slide rail mounting plate 312, a second slide rail 313, a second upper cutter 32, and a second lower cutter 33. The movable end of the second cylinder 31 is connected to the transmission base 311, the transmission base 311 is connected to the second slide rail mounting plate 312, the second slide rail mounting plate 312 is connected to the second upper cutter 32, the second slide rail 313 is arranged parallel to both sides of the second slide rail mounting plate 312, the frame 10 is connected to a second guide block mounting plate 14 on the opposite side of the second slide rail mounting plate 312, the second guide block 141 is arranged parallel to the second guide block mounting plate 14, the second slide rail 313 slides along the second guide block 141, the second guide block mounting plate 14 has an installation port 142, and a shaft is connected to the second guide block mounting plate 14 at the installation port 142. The bearing seat 143 has sliding columns 144 on both sides. The sliding columns 144 slide along the bearing seat 143. The top of the sliding column 144 is connected to a limit plate 145, and the bottom of the sliding column 144 is connected to a connecting plate 146. The connecting plate 146 is connected to the second upper cutter 32. The second guide block mounting plate 14 has a second feed port 147 at the bottom of the mounting port 142. The second lower cutter 33 is installed at the second feed port 147. The second cylinder 31 drives the transmission seat 311 to drive the second upper cutter 32 on the second slide rail mounting plate 312 downward. The second upper cutter 32 cooperates with the second lower cutter 33 to cut the material pushed by the moving claw 51. The second guide block mounting plate 14 has a discharge plate 15 on one side. The discharge plate 15 has a discharge port 151. The discharge plate 15 has a discharge rail 152 installed at the discharge port 151.
[0034] Through this technical solution, the second cylinder 31 drives the transmission seat 311 through the piston rod, which in turn drives the second slide rail 313 on the second slide rail mounting plate 312 and the slide column 144 on the second guide block mounting plate 14 to slide along the second guide block 141 and the bearing seat 143, thereby driving the second upper cutter 32 to move vertically downward. The second upper cutter 32 cooperates with the second lower cutter 33 to cut the long strip material into workpieces of the target size. After the secondary cutting is completed, the material falls from the discharge port 151 of the second guide block mounting plate 14 into the discharge track 152 and slides out of the device along the discharge track 152, completing the processing process.
[0035] Furthermore, a first cylinder mounting plate 214 for mounting the first cylinder 21 is connected to the top of the first guide block mounting plate 11, and a first material sensor 215 for detecting the position of the material is provided on the first cylinder mounting plate 214.
[0036] Through this technical solution, the first material sensor 215 monitors the material position at the first cutting component 20 in real time. When the material is cut off and falls from the first cutting component 20 and blocks the detection optical path of the first material sensor 215, it immediately sends a position signal to the control system, triggering the operation of the first moving component 40.
[0037] Furthermore, a second cylinder mounting plate 314 for mounting the second cylinder 31 is connected to the top of the second guide block mounting plate 14 and the discharge plate 15. A second material sensor 315 for detecting the material position is provided on the second cylinder mounting plate 314.
[0038] Through this technical solution, the second material sensor 315 monitors the material on the transfer station 60 in real time. When the material blocks the detection optical path of the second material sensor 315, it immediately sends a position signal to the control system, triggering the operation of the second moving component 50.
[0039] Working principle: The material enters from the first feed port 111 of the first guide block mounting plate 11 and is placed above the first lower cutter 23 on the base 112. The first cylinder 21 drives the first slide rail mounting plate 211 to move downward through the piston rod, which drives the linear bearing 213 and the first slide rail 212 to slide along the guide post 114 and the first guide block 116, thereby driving the first upper cutter 22 to move vertically downward. The first upper cutter 22 cooperates with the first lower cutter 23 to cut the material into long strips.
[0040] After the first material sensor 215 detects that the material after the first cut has arrived in place, it triggers the first moving component 40 to start operating. The first electric cylinder 44 drives the first moving seat 441, which in turn drives the first slider 451 on the first slider mounting bracket 45 to slide along the first linear guide rail 12. This causes the suction cup 41 on the suction cup mounting plate 42 to move above the long strip of material. The suction cup lifting cylinder 43 drives the suction cup 41 to press down, so that the suction cup 41 contacts the material and sucks up the long strip of material through negative pressure. The suction cup lifting cylinder 43 lifts the suction cup 41, and the first electric cylinder 44 drives the first moving seat 441 in the opposite direction to transport the material to the top of the transfer table 60. Then the suction cup lifting cylinder 43 lowers the suction cup 41, and the suction cup 41 releases the material, which is temporarily stored in the transfer table 60.
[0041] After the second material sensor 315 detects that the material has reached the transfer table 60, it triggers the second moving component 50 to start operating. The moving claw 51 of the second moving component 50 is driven by the moving claw lifting cylinder 53 to rise from the bottom of the transfer table 60 into the straight slot 61. The claw hooks the edge of the material. The second electric cylinder 54 drives the second moving seat 541, which drives the second slider 551 on the second slider mounting bracket 55 to slide along the second linear guide rail 13, thereby driving the moving claw 51 to push the material from the transfer table 60 to the second feed port 147 below the second cutting component 30. At this time, the material is located above the second lower cutter 33.
[0042] The second cylinder 31 drives the transmission seat 311 through the piston rod, which in turn drives the second slide rail 313 on the second slide rail mounting plate 312 and the slide column 144 on the second guide block mounting plate 14 to slide along the second guide block 141 and the bearing seat 143, thereby driving the second upper cutter 32 to move vertically downward. The second upper cutter 32 cooperates with the second lower cutter 33 to cut the long strip material into workpieces of the target size.
[0043] After the secondary cutting is completed, the material falls from the discharge port 151 of the second guide block mounting plate 14 into the discharge track 152, slides out of the device along the discharge track 152, and completes the processing flow.
[0044] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation or specific orientation structure and operation, and therefore should not be construed as a limitation of this utility model; the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. In addition, unless otherwise explicitly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0045] In the description of this utility model, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this utility model. In this utility model, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. Moreover, those skilled in the art can combine different embodiments or examples and features of different embodiments or examples described in this utility model without contradiction.
[0046] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An automated secondary slitting apparatus comprising a frame (10), a first cutting assembly (20), a second cutting assembly (30), a first moving assembly (40), a second moving assembly (50), and a transfer table (60), characterized in that: The transfer station (60) is installed on the top of the frame (10), the second moving component (50) is installed on the bottom of the frame (10), the second cutting component (30) and the first moving component (40) are installed on both sides of the frame (10), the first cutting component (20) is installed on one side of the frame (10) and the first cutting component (20) is located between the second cutting component (30) and the first moving component (40). The first cutting component (20) is used to cut the material into long strips, the first moving component (40) is used to transport the long strips of material to the transfer station (60), the second moving component (50) is used to move the material on the transfer station (60) to below the second cutting component (30), and the second cutting component (30) performs secondary cutting processing on the material.
2. An automated secondary slitting apparatus as claimed in claim 1, wherein: The first cutting assembly (20) includes a first cylinder (21), a first upper cutter (22), and a first lower cutter (23). The movable end of the first cylinder (21) is connected to a first slide rail mounting plate (211). The first upper cutter (22) is mounted on the first slide rail mounting plate (211). The frame (10) is connected to a first guide block mounting plate (11) on the opposite side of the first slide rail mounting plate (211). The first guide block mounting plate (11) has a first feed inlet (111). A base (112) is provided on the first feed inlet (111). The first lower cutter (23) is mounted on the base (112). A lower guide column seat (113) is provided on the base (112). 13) Guide posts (114) are provided on both sides, and upper guide post seats (115) are connected to the top of the guide posts (114) on both sides. The first slide rail mounting plate (211) is provided with a first slide rail (212) and a linear bearing (213) on both sides. The linear bearing (213) slides linearly along the guide post (114) and is connected to the first slide rail mounting plate (211). The first guide block mounting plate (11) is provided with a first guide block (116) on both sides. The first slide rail (212) slides linearly along the first guide block (116). The first cylinder (21) drives the first slide rail mounting plate (211) to drive the first upper cutter (22) downward, and cooperates with the first lower cutter (23) to cut the material.
3. An automated secondary slitting apparatus as claimed in claim 1, wherein: The first moving component (40) is disposed on one side of the transfer platform (60). The first moving component (40) includes a suction cup (41), a suction cup mounting plate (42), a suction cup lifting cylinder (43), and a first electric cylinder (44). The suction cup (41) is mounted on the suction cup mounting plate (42). A first moving seat (441) is disposed on the first electric cylinder (44). A first sliding block mounting frame (45) is connected to the first moving seat (441). A first sliding block (451) is connected to both ends of the first sliding block mounting frame (45). A first linear guide rail (12) is connected to the bottom of the first sliding block (451) of the frame (10). The first sliding block (451) slides along the first linear guide rail (12). The suction cup lifting cylinder (43) is mounted on the first sliding block mounting frame (44). On the frame (45), the piston rod of the suction cup lifting cylinder (43) passes through the first slider mounting frame (45) and is connected to the suction cup mounting plate (42). The first slider mounting frame (45) is provided with first guide post seats (421) on both sides below the suction cup mounting plate (42). The first guide post seats (421) pass through the first slider mounting frame (45) and guide the suction cup mounting plate (42) to slide up and down. The first electric cylinder (44) drives the suction cup (41) to move to the material position cut by the first cutting component (20). The suction cup lifting cylinder (43) drives the suction cup (41) to press down and suck up the material. Then the first electric cylinder (44) drives the suction cup (41) to place the material on the transfer table (60).
4. An automated secondary slitting apparatus as claimed in claim 1, wherein: The second moving component (50) is disposed at the bottom of the transfer platform (60). The second moving component (50) includes a moving claw (51), a moving claw mounting plate (52), a moving claw lifting cylinder (53), and a second electric cylinder (54). The transfer platform (60) has several straight slots (61) that match the claw hooks of the moving claw (51), and the moving claw (51) slides along the straight slots (61). The moving claw (51) is mounted on the moving claw mounting plate (52). The second electric cylinder (54) is provided with a second moving seat (541). The second moving seat (541) is connected to a second slider mounting bracket (55). The bottom sides of the second slider mounting bracket (55) are connected to second sliders (551). The frame (10) is provided with a second linear guide rail (13). The second slider (551) slides along the second linear guide rail (13). The moving claw lifting cylinder (53) is installed on the second slider mounting frame (55). The movable end of the moving claw lifting cylinder (53) is connected to the moving claw mounting plate (52). The bottom sides of the moving claw mounting plate (52) are provided with second guide post seats (552). The second guide post seats (552) pass through the second slider mounting frame (55) and guide the moving claw mounting plate (52) to slide up and down. The moving claw lifting cylinder (53) drives the moving claw (51) to rise into the straight slot (61). Then the second electric cylinder (54) drives the moving claw (51) to push the material on the transfer table (60) toward the second cutting assembly (30).
5. An automated secondary slitting apparatus as claimed in claim 4, wherein: The second cutting assembly (30) includes a second cylinder (31), a transmission base (311), a second slide rail mounting plate (312), a second slide rail (313), a second upper cutter (32), and a second lower cutter (33). The movable end of the second cylinder (31) is connected to the transmission base (311), the transmission base (311) is connected to the second slide rail mounting plate (312), the second slide rail mounting plate (312) is connected to the second upper cutter (32), and the second slide rail (313) is arranged parallel to the transmission base (311). On both sides of the second slide rail mounting plate (312), the frame (10) is connected to a second guide block mounting plate (14) on the opposite side of the second slide rail mounting plate (312). A second guide block (141) is arranged parallel to the second guide block mounting plate (14). The second slide rail (313) slides along the second guide block (141). An installation port (142) is opened on the second guide block mounting plate (14). A bearing seat (143) is connected to the second guide block mounting plate (14) at the installation port (142). The bearing... A sliding column (144) is provided on both sides of the bearing seat (143). The sliding column (144) slides along the bearing seat (143). A limit plate (145) is connected to the top of the sliding column (144), and a connecting plate (146) is connected to the bottom of the sliding column (144). The connecting plate (146) is connected to the second upper cutter (32). The second guide block mounting plate (14) has a second feed port (147) at the bottom of the mounting port (142). The second lower cutter (33) is installed at the second feed port (147). At the location, the second cylinder (31) drives the transmission seat (311) to drive the second upper cutter (32) on the second slide rail mounting plate (312) downward. The second upper cutter (32) cooperates with the second lower cutter (33) to cut the material pushed by the moving claw (51). The second guide block mounting plate (14) is connected to a discharge plate (15) on one side. The discharge plate (15) has a discharge port (151). The discharge plate (15) is equipped with a discharge rail (152) at the discharge port (151).
6. An automated secondary slitting apparatus as claimed in claim 2, wherein: The top of the first guide block mounting plate (11) is connected to a first cylinder mounting plate (214) for mounting the first cylinder (21), and a first material sensor (215) for detecting the material position is provided on the first cylinder mounting plate (214).
7. An automated secondary slitting apparatus as claimed in claim 5, wherein: The second guide block mounting plate (14) is connected to the top of the discharge plate (15) by a second cylinder mounting plate (314) for mounting the second cylinder (31), and a second material sensor (315) for detecting the material position is provided on the second cylinder mounting plate (314).