A cutting device for processing high-precision cold-drawn steel
By introducing cleaning and feeding components into the steel plate cutting device, the problem of oil impurities affecting cutting accuracy is solved, efficient cleaning and automatic discharge are achieved, cutting quality and production efficiency are improved, and equipment life is extended.
Patent Information
- Application Number
- CN202510695472.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2045-05-28
AI Technical Summary
Existing steel plate cutting equipment cannot effectively clean oil and impurities before cutting, resulting in a decrease in cutting accuracy and quality, and inconvenient debris handling after cutting, affecting production efficiency and safety.
A high-precision cold-drawn steel processing cutting device is designed, equipped with a cleaning mechanism and feeding assembly. The oil and impurities on the surface of the steel plate are cleaned through the extrusion assembly and water jet holes, and combined with feeding and preheating functions, the cutting accuracy and efficiency are ensured; the cutting mechanism realizes automatic feeding and debris collection, and optimizes waste treatment.
Improves cutting quality and accuracy, reduces cutting defects, reduces dimensional deviations, simplifies debris handling, and improves production efficiency and equipment service life.
Smart Images

Figure CN120228334B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cutting settings, and specifically relates to a cutting device for processing high-precision cold-drawn steel. Background Technique
[0002] In the patent application with the application publication number CN215787060U, it includes a base. Four corners of the lower end of the base are fixedly installed with support columns, and fixed blocks are fixedly installed at the lower ends of the four support columns. A group of columns are fixedly installed at the left and right parts of the upper end of the base, and the two groups of columns are symmetrically distributed left and right. Sliding grooves are opened between the two groups of columns. A support plate is fixedly installed in the middle of the upper end of the base. Fixators are fixedly installed at the four corners of the upper end of the base. A cutting groove is opened in the middle of the upper end of the support plate. An adjusting device is fixedly installed between the two groups of columns, and a cutting device is fixedly installed at the lower end of the adjusting device. The above-mentioned patent's high-precision cutting machine for cutting steel plates can control the forward and backward movement of the cutting machine under the action of the adjusting device to improve the cutting effect, and then the steel plate can be limited by the limit block to improve the accuracy of the steel plate cut.
[0003] In the above patent, most steel plate cutting equipment cannot clean the oil stains on the steel plate before cutting the steel plate. During cutting, the oil stains and impurities will interfere with the contact between the saw blade and the steel plate, making obvious marks and unevenness on the cutting surface. The oil stains and impurities will cause the saw blade to vibrate or deviate during the cutting process, thus affecting the cutting accuracy. The presence of oil stains and impurities will make the cutting resistance of the saw blade uneven, resulting in the saw blade shaking or deviating from the predetermined cutting path during the cutting process, increasing the dimensional deviation of the cut steel plate. And the presence of oil stains and impurities on the steel plate will affect the extrusion positioning of the steel plate. When the saw blade contacts the steel plate, a lateral force will be generated, causing the steel plate to shift horizontally during the cutting process, affecting the cutting accuracy. Most steel plate cutting settings cannot clean the debris by themselves after cutting, causing the debris to accumulate and affecting the cutting quality. Summary of the Invention
[0004] The purpose of the present invention is to provide a cutting device for processing high-precision cold-drawn steel to solve the problems raised in the above background technique.
[0005] To solve the above technical problems, the technical solution of the present invention is: A cutting device for processing high-precision cold-drawn steel, the cutting equipment is composed of a guiding support and a circular knife cutting mechanism, including a workbench and a cutting equipment arranged on the workbench for cutting steel plates. A cleaning mechanism is arranged on the workbench, and a blanking mechanism is arranged on one side of the workbench away from the cleaning mechanism. The cleaning mechanism includes an extrusion component arranged on the workbench, a feeding component is arranged on one side of the extrusion component, and a moving component for driving the extrusion component to move up and down is arranged below the extrusion component;
[0006] The extrusion assembly includes an inverted U-shaped frame fixedly arranged at the upper end of the workbench. One side of the inverted U-shaped frame is fixedly connected with a connecting cross bar. A triangular rod is fixedly connected below one side of the connecting cross bar. A plurality of water spraying holes are obliquely arranged on one side of the connecting cross bar. A plurality of guiding holes are arranged on the triangular rod, and the positions of the guiding holes correspond to those of the water spraying holes. A connecting pipe for connecting a water pipe is arranged on one side of the inverted U-shaped frame. The lower end of the inverted U-shaped frame is fixedly connected with a connecting base.
[0007] Preferably, the feeding assembly includes a plurality of rotating rods rotatably arranged below the interior of the inverted U-shaped frame. One end of the rotating rod passes through the inverted U-shaped frame through a connecting rod and is fixedly connected with a rotating wheel. A first rotating belt is jointly movably connected to a plurality of the rotating wheels. A driven gear is fixedly arranged on the outer side of the connecting rod at one end of one of the rotating rods. A first motor is fixedly connected to the upper end of the inverted U-shaped frame. The output end of the first motor is fixedly connected with a driving gear, and the driving gear is meshed and connected with the first motor. A preheating plate is fixedly arranged below the interior of the inverted U-shaped frame.
[0008] Preferably, the moving assembly includes two connecting short plates fixedly connected to the lower end of the connecting base. A connecting rotating plate is rotatably connected between the two connecting short plates. The other ends of the two connecting rotating plates are respectively rotatably connected with sliding blocks. A left and right hand thread bidirectional threaded rod is threadedly connected to the two sliding blocks. A second motor is arranged inside the workbench. The output end of the second motor is fixedly connected with a first rotating wheel. One end of the left and right hand thread bidirectional threaded rod is fixedly connected with a second rotating wheel. A second rotating belt is jointly movably arranged on the outer sides of the second rotating wheel and the first rotating wheel.
[0009] Preferably, a sliding groove is arranged on the workbench. The sliding groove is in a concave shape and is located directly below the inverted U-shaped frame. The second motor is fixedly connected to the lower part inside the sliding groove. An installation groove is arranged on one side of the workbench away from the sliding groove. Support legs are fixedly connected below the workbench.
[0010] Preferably, the blanking mechanism includes two baffles arranged on the workbench. The baffles are located on both sides above the installation groove. A slag collecting assembly is arranged inside the installation groove. A driving assembly is arranged below the slag collecting assembly. A material blocking assembly is arranged on one side of the slag collecting assembly.
[0011] Preferably, the slag collecting assembly includes a rotating blanking plate rotatably connected inside the installation groove. A plurality of material leakage holes are arranged on the rotating blanking plate. An aggregate tank is jointly arranged below the plurality of material leakage holes. A jack is arranged at one end of the rotating blanking plate away from the cutting device. A plurality of rotating grooves are arranged above the rotating blanking plate. A blanking rotating rod is rotatably connected inside the rotating grooves.
[0012] Preferably, the driving assembly includes a connecting short rod fixedly connected to the lower end of the rotating blanking plate. A rotating plate is rotatably connected below the connecting short rod. The other end of the rotating plate is rotatably connected to a sliding cross bar. Sliding rods are provided at both ends of the sliding cross bar. The sliding rods at both ends of the sliding cross bar are slidably connected to both sides of the inner wall of the installation groove. A mounting plate is fixedly connected to the lower end of the sliding cross bar. A fixed cross plate is fixedly connected to the inner wall of the installation groove. A telescopic electric cylinder is fixedly arranged below the fixed cross plate. The output end of the telescopic electric cylinder is fixedly connected to the mounting plate.
[0013] Preferably, the blanking blocking assembly includes a blanking blocking plate arranged on one side of the rotating blanking plate. A blanking insertion rod is fixedly connected to one side of the blanking blocking plate. The blanking insertion rod corresponds to the insertion hole on one side of the rotating blanking plate.
[0014] Compared with the prior art, the technical solution of the present invention has the following advantages:
[0015] (1) An extrusion assembly, a feeding assembly and a slag collection assembly are arranged on the workbench. The moving assembly drives the extrusion assembly to descend, so that the preheating plate and the rotating roller extrude and position the steel plate, preventing the steel plate from sliding on the workbench due to the lateral force when contacting the circular saw cutting machine during the cutting process, resulting in the deviation of the steel plate and affecting the cutting accuracy. The steel plate is pretreated by the cleaning mechanism, effectively improving the cutting quality and efficiency. Before cutting, the oil stains and impurities on the surface of the steel plate are scraped off by the triangular rods. At the same time, the water supply device sprays water through the water spraying holes to further disperse the oil stains and impurities, making the surface of the steel plate cleaner. After the oil stains on the surface of the steel plate are cleaned, the problem of unstable positioning of the steel plate caused by the existence of oil stains is reduced when the preheating plate and the rotating roller extrude and position the steel plate. This cleaning method reduces the interference of impurities on the cutting process and avoids cutting defects and rough cutting surfaces caused by impurities, thereby improving the cutting quality. In addition, the surface of the cleaned steel plate is clean, and the cutting equipment can perform cutting positioning more accurately, reducing dimensional deviation and ensuring cutting accuracy. At the same time, the cleaning process is combined with the feeding process, and the first motor drives the rotating roller to rotate to realize the automatic feeding of the steel plate, improving the cutting efficiency. After the steel plate is cleaned, the preheating plate heats it, so that the remaining water on the steel plate is dried, and at the same time, the steel plate is preheated to prevent the steel plate from deforming due to thermal stress caused by temperature difference during cutting, further ensuring the cutting quality. This combination of cleaning and preheating not only improves the cutting quality, but also reduces the subsequent grinding and trimming work caused by cutting defects, improving the overall production efficiency;
[0016] (2) The device effectively optimizes the blanking and waste disposal processes. The cut steel plates and debris all fall on the rotating blanking plate. By driving the driving component to act through the telescopic electric cylinder, the rotating blanking plate is tilted, enabling the steel plates to slide smoothly towards the lower end, achieving automatic blanking, reducing manual intervention, and improving work efficiency. At the same time, the setting of the blanking rotating rod assists the steel plates to slide downward, preventing the steel plates from getting stuck on the rotating blanking plate, further ensuring the smoothness of blanking. During the blanking process, the debris generated by cutting will slide along the inclined surface of the rotating blanking plate and fall into the material leakage holes and then into the aggregate trough, realizing the automatic collection of debris. This design avoids the accumulation of debris on the workbench, reduces interference and damage to the cutting equipment, and also facilitates subsequent cleaning work. When it is necessary to clean the debris in the aggregate trough, by removing the plugging rod, and again using the driving component to drive the rotating blanking plate to tilt, the debris in the aggregate trough can be poured out. The cleaning process is simple and convenient. This optimized blanking and waste disposal method not only improves production efficiency but also keeps the working environment clean, reduces safety hazards and equipment failures caused by debris accumulation, and extends the service life of the equipment. Description of the Drawings
[0017] Figure 1 Schematic diagram of the overall structure of the present invention;
[0018] Figure 2 Schematic diagram of the workbench structure of the present invention;
[0019] Figure 3 Schematic diagram of the cleaning mechanism structure of the present invention;
[0020] Figure 4 Schematic diagram of the extrusion component structure of the present invention;
[0021] Figure 5 Schematic diagram of the moving component structure of the present invention;
[0022] Figure 6 Schematic diagram of the feeding component structure of the present invention;
[0023] Figure 7 Schematic diagram of the blanking mechanism and workbench structure of the present invention;
[0024] Figure 8 Schematic diagram of the blanking mechanism structure of the present invention;
[0025] Figure 9 Schematic diagram of the slag collection component structure of the present invention;
[0026] Figure 10 Schematic diagram of the driving component structure of the present invention.
[0027] In the figure: 1. Workbench; 11. Chute; 12. Installation groove; 13. Leg; 2. Cutting equipment; 3. Cleaning mechanism; 31. Extrusion assembly; 311. Inverted U-shaped frame; 312. Connecting cross bar; 313. Triangular bar; 314. Water spraying hole; 315. Guide hole; 316. Connecting pipe; 317. Connecting base; 32. Feeding assembly; 321. Rotating rod; 322. Preheating plate; 323. Rotating wheel; 324. First rotating belt; 325. Driven gear; 326. First motor; 327. Driving gear; 33. Moving assembly; 331. Connecting short plate; 332. Connecting rotating plate; 333. Sliding block; 334. Second motor; 335. First runner; 336. Positive and negative thread double-headed screw rod; 337. Second runner; 338. Second rotating belt; 4. Material discharging mechanism; 41. Baffle; 42. Slag collection assembly; 421. Rotating material discharging plate; 422. Material leakage hole; 423. Aggregate tank; 424. Rotating groove; 425. Material discharging rotating rod; 43. Driving assembly; 431. Connecting short rod; 432. Rotating plate; 433. Sliding cross bar; 434. Mounting plate; 435. Fixed cross plate; 436. Telescopic electric cylinder; 44. Blocking material assembly; 441. Blocking material plate; 442. Blocking material inserting rod. Detailed implementation manners
[0028] To make the objectives, technical solutions and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present disclosure. Apparently, the described embodiments are some but not all of the embodiments of the present disclosure. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present disclosure without creative efforts shall fall within the scope of protection of the present disclosure.
[0029] Unless otherwise defined, the technical terms or scientific terms used in the present disclosure shall have the ordinary meanings understood by those of ordinary skill in the art to which the present disclosure pertains. The words such as "including" or "comprising" used in the present disclosure mean that the elements or objects appearing before this word cover the elements or objects enumerated after this word and their equivalents, without excluding other elements or objects. "Connection" or "connection" and other similar words are not limited to physical or mechanical connections, and may also include electrical connections, whether direct or indirect. "Upper", "lower", "left", "right", etc. are only used to represent relative position relationships, and when the absolute position of the object being described changes, the relative position relationship may also change accordingly.
[0030] As Figures 1 to 10As shown in the figure, a cutting device for processing high-precision cold-drawn steel includes a workbench 1 and a cutting device 2 arranged on the workbench 1 for cutting steel plates. The cutting device 2 is composed of a guiding support and a circular knife cutting mechanism. A cleaning mechanism 3 is arranged on the workbench 1, and a blanking mechanism 4 is arranged on one side of the workbench 1 away from the cleaning mechanism 3. The cleaning mechanism 3 includes an extrusion component 31 arranged on the workbench 1. A feeding component 32 is arranged on one side of the extrusion component 31, and a moving component 33 for driving the extrusion component 31 to move up and down is arranged below the extrusion component 31;
[0031] The extrusion component 31 includes an inverted U-shaped frame 311 fixedly arranged at the upper end of the workbench 1. A heating plate is arranged in the workbench 1 below the inverted U-shaped frame 311. A connecting cross bar 312 is fixedly connected to one side of the inverted U-shaped frame 311. The connecting cross bar 312 is a water passing pipe inside. A triangular rod 313 is fixedly connected to the lower side of one side of the connecting cross bar 312. A plurality of water spraying holes 314 are obliquely arranged on one side of the connecting cross bar 312. A plurality of guiding holes 315 are arranged on the triangular rod 313. The guiding holes 315 correspond to the positions of the water spraying holes 314. A connecting pipe 316 for connecting a water pipe is arranged on one side of the inverted U-shaped frame 311. The connecting pipe 316 is externally connected to a water supply device. The connecting pipe 316 is connected in communication with the water passing pipe and the water spraying holes 314 inside the connecting cross bar 312. The lower end of the inverted U-shaped frame 311 is fixedly connected with a connecting base 317.
[0032] The feeding component 32 includes a plurality of rotating rods 321 rotatably arranged below the inside of the inverted U-shaped frame 311. One end of the rotating rod 321 passes through the inverted U-shaped frame 311 through a connecting rod and is fixedly connected with a rotating wheel 323. A first rotating belt 324 is jointly movably connected on a plurality of rotating wheels 323. A driven gear 325 is fixedly arranged on the outer side of the connecting rod at one end of one of the rotating rods 321. A first motor 326 is fixedly connected to the upper end of the inverted U-shaped frame 311. The output end of the first motor 326 is fixedly connected with a driving gear 327. The driving gear 327 is meshed and connected with the first motor 326. A preheating plate 322 is fixedly arranged below the inside of the inverted U-shaped frame 311. The lowermost part of the rotating rod 321, the lowermost part of the triangular rod 313, and the lowermost part of the preheating plate 322 are on the same horizontal line.
[0033] The moving component 33 includes two connecting short plates 331 fixedly connected to the lower end of the connecting base 317. A connecting rotating plate 332 is rotatably connected between the two connecting short plates 331. The other ends of the two connecting rotating plates 332 are respectively rotatably connected with sliding blocks 333. A left and right hand threaded bidirectional threaded rod 336 is threadedly connected to the two sliding blocks 333. A second motor 334 is arranged in the workbench 1. The output end of the second motor 334 is fixedly connected with a first rotating wheel 335. One end of the left and right hand threaded bidirectional threaded rod 336 is fixedly connected with a second rotating wheel 337. A second rotating belt 338 is jointly movably arranged on the outer sides of the second rotating wheel 337 and the first rotating wheel 335.
[0034] A chute 11 is formed on the workbench 1, and the connecting base 317 slides in the chute 11. The chute 11 is concave-shaped and is located directly below the inverted U-shaped frame 311. The second motor 334 is fixedly connected to the lower part inside the chute 11. The sliding block 333 is slidably arranged at the lower part inside the chute 11. An installation groove 12 is formed on one side of the workbench 1 away from the chute 11, and supporting legs 13 are fixedly connected below the workbench 1.
[0035] The blanking mechanism 4 includes two baffles 41 arranged on the workbench 1. The baffles 41 are located on both sides above the installation groove 12. A slag collection component 42 is arranged in the installation groove 12. A driving component 43 is arranged below the slag collection component 42. A material blocking component 44 is arranged on one side of the slag collection component 42.
[0036] The slag collection component 42 includes a rotating blanking plate 421 rotatably connected inside the installation groove 12. A plurality of material leakage holes 422 are formed in the rotating blanking plate 421. A material collection groove 423 is jointly arranged below the plurality of material leakage holes 422. A jack is formed at one end of the rotating blanking plate 421 away from the cutting device 2. A plurality of rotating grooves 424 are formed above the rotating blanking plate 421, and a blanking rotating rod 425 is rotatably connected in the rotating grooves 424.
[0037] The driving component 43 includes a connecting short rod 431 fixedly connected to the lower end of the rotating blanking plate 421. A rotating plate 432 is rotatably connected below the connecting short rod 431. The other end of the rotating plate 432 is rotatably connected to a sliding cross bar 433. Sliding rods are arranged at both ends of the sliding cross bar 433, and the sliding rods at both ends of the sliding cross bar 433 are slidably connected to both sides of the inner wall of the installation groove 12. An installation plate 434 is fixedly connected to the lower end of the sliding cross bar 433. A fixed cross plate 435 is fixedly connected to the inner wall of the installation groove 12. A telescopic electric cylinder 436 is fixedly arranged below the fixed cross plate 435, and the output end of the telescopic electric cylinder 436 is fixedly connected to the installation plate 434.
[0038] The material blocking component 44 includes a material blocking plate 441 arranged on one side of the rotating blanking plate 421. A material blocking insertion rod 442 is fixedly connected to one side of the material blocking plate 441, and the material blocking insertion rod 442 corresponds to the jack on one side of the rotating blanking plate 421.
[0039] Working principle of the present invention: When cutting a steel plate, the steel plate is placed below the inverted U-shaped frame 311. The output shaft of the second motor 334 drives the first runner 335 to rotate. The first runner 335 drives the left-handed and right-handed double-threaded screw rod 336 to rotate through the second transmission belt 338 and the second runner 337. The left-handed and right-handed double-threaded screw rod 336 drives the two sliding blocks 333 to move, increasing the distance between the two sliding blocks 333. The sliding block 333 drives the connecting short plate 331 to descend through the connecting rotating plate 332. The connecting short plate 331 drives the connecting base 317 to descend. The connecting base 317 drives the inverted U-shaped frame 311 to descend, causing the inverted U-shaped frame 311 to drive the rotating rod 321 and the preheating plate 322 to contact the steel plate, squeezing and fixing the steel plate. This prevents lateral force from being generated when the circular saw cutting machine contacts the steel plate during the cutting of the steel plate, which may cause the steel plate to shift horizontally during the cutting process and affect the cutting accuracy. The output end of the first motor 326 drives the driving gear 327 to drive the driven gear 325 to rotate. The driven gear 325 drives one of the rotating wheels 323 to rotate. The rotating wheel 323 drives the first transmission belt 324 to drive the other rotating wheels 323 to rotate. The rotating wheel 323 drives the rotating rod 321 to rotate through the connecting rod. When the rotating rod 321 rotates to drive the steel plate to move, the triangular rod 313 cleans the surface of the steel plate. The triangular rod 313 scrapes off the oil stains and impurities on the steel plate. The water supply device sprays water from the water spray holes 314 through the connecting pipe 316 and the water passing pipe in the connecting cross bar 312. The water is sprayed onto the steel plate from the guiding holes 315, and by the way, washes away the oil stains and impurities scraped off by the triangular rod 313. After the water is sprayed out, the oil stains and impurities on the steel plate are washed away, facilitating the subsequent scraping of the oil stains and impurities by the triangular rod 313. When the steel plate passes below the inverted U-shaped frame 311 with water, the preheating plate 322 heats the steel plate, drying the remaining water on the steel plate and heating the steel plate to prevent thermal stress from causing deformation during cutting, preventing the oil stains and impurities from interfering with the contact between the saw blade and the steel plate during the cutting process, which may cause obvious marks and unevenness on the cutting surface. Moreover, after cleaning the oil stains on the steel plate, the rotating rod 321 and the preheating plate 322 will not contact the oil stains, preventing sliding when positioning the steel plate, which may affect the cutting accuracy;
[0040] After the cutting device 2 cuts the steel plate, the chips generated by cutting and the cut steel plate are both on the rotating blanking plate 421. At this time, the output end of the telescopic electric cylinder 436 retracts, the telescopic electric cylinder 436 drives the mounting plate 434 to move, the mounting plate 434 drives the sliding cross bar 433 to move, the sliding cross bar 433 pulls the connecting short rod 431 to descend through the rotating plate 432, the connecting short rod 431 drives one end of the rotating blanking plate 421 to descend, the other end of the rotating blanking plate 421 rotates in the mounting groove 12, the rotating blanking plate 421 inclines, and the steel plate slides towards the lower end of the rotating blanking plate 421. When the steel plate slides on the rotating blanking plate 421, the blanking rotating rod 425 assists the steel plate to slide downward to prevent the steel plate from getting stuck on the rotating blanking plate 421. When the chips generated by cutting slide along the inclined surface of the rotating blanking plate 421, they fall into the material leakage hole 422 and enter the aggregate tank 423. After cutting is completed, the chips are cleaned and the steel plate is blanked to prevent chip accumulation from affecting cutting. When it is necessary to clean the chips in the aggregate tank 423, the bolt is removed, the plugging rod 442 is removed from one side of the rotating blanking plate 421, and the rotating blanking plate 421 is driven by the driving assembly 43 to incline so that the chips in the aggregate tank 423 are poured out.
[0041] The above embodiments are only exemplary embodiments of the present invention and are not used to limit the present invention. The protection scope of the present invention is defined by the claims. Those skilled in the art can make various modifications or equivalent replacements within the essence and protection scope of the present invention, and such modifications or equivalent replacements should also be regarded as falling within the protection scope of the present invention.
Claims
1. A cutting device for processing high-precision cold-drawn steel, comprising a workbench (1) and a cutting device (2) arranged on the workbench (1) for cutting steel plates. The cutting device (2) consists of a guiding support and a circular knife cutting mechanism. A cleaning mechanism (3) is arranged on the workbench (1), and a blanking mechanism (4) is arranged on one side of the workbench (1) far from the cleaning mechanism (3), characterized in that: The cleaning mechanism (3) includes a squeezing component (31) arranged on the workbench (1). A feeding component (32) is arranged on one side of the squeezing component (31), and a moving component (33) for driving the squeezing component (31) to move up and down is arranged below the squeezing component (31). The squeezing component (31) includes an inverted U-shaped frame (311) fixedly arranged at the upper end of the workbench (1). A connecting cross bar (312) is fixedly connected to one side of the inverted U-shaped frame (311). A triangular rod (313) is fixedly connected to the lower side of one side of the connecting cross bar (312). A plurality of water spraying holes (314) are obliquely arranged on one side of the connecting cross bar (312). A plurality of guiding holes (315) are arranged on the triangular rod (313), and the guiding holes (315) correspond to the positions of the water spraying holes (314). A connecting pipe (316) for connecting a water pipe is arranged on one side of the inverted U-shaped frame (311). A connecting base (317) is fixedly connected to the lower end of the inverted U-shaped frame (311). The feeding component (32) includes a plurality of rotating rods (321) rotatably arranged below the inside of the inverted U-shaped frame (311). One end of the rotating rod (321) is fixedly connected with a rotating wheel (323) through a connecting rod penetrating through the inverted U-shaped frame (311). A first rotating belt (324) is jointly movably connected to the plurality of rotating wheels (323). A driven gear (325) is fixedly arranged on the outer side of the connecting rod at one end of one of the rotating rods (321). A first motor (326) is fixedly connected to the upper end of the inverted U-shaped frame (311). The output end of the first motor (326) is fixedly connected with a driving gear (327). The driving gear (327) is meshed and connected with the first motor (326). A preheating plate (322) is fixedly arranged below the inside of the inverted U-shaped frame (311). The moving component (33) includes two connecting short plates (331) fixedly connected to the lower end of the connecting base (317). A connecting rotating plate (332) is rotatably connected between the two connecting short plates (331). The other ends of the two connecting rotating plates (332) are respectively rotatably connected with sliding blocks (333). A left and right hand threaded bidirectional threaded rod (336) is threadedly connected to the two sliding blocks (333). A second motor (334) is arranged inside the workbench (1). The output end of the second motor (334) is fixedly connected with a first rotating wheel (۳۳۵). One end of the left and right hand threaded bidirectional threaded rod (336) is fixedly connected with a second rotating wheel (۳۳۷). A second rotating belt (۳۳۸) is jointly movably arranged on the outer sides of the second rotating wheel (۳۳۷) and the first rotating wheel (۳۳۵).
2. The cutting device for processing high-precision cold-drawn steel according to claim 1, characterized in that: A sliding groove (11) is arranged on the workbench (1). The sliding groove (11) is concave-shaped and is located directly below the inverted U-shaped frame (311). The second motor (334) is fixedly connected to the lower part inside the sliding groove (11). An installation groove (12) is arranged on one side of the workbench (1) far away from the sliding groove (11). Legs (13) are fixedly connected below the workbench (1).
3. A cutting device for processing high-precision cold-drawn steel, as described in claim 1, characterized in that: The blanking mechanism (4) includes two baffles (41) arranged on the workbench (1). The baffles (41) are located on both sides above the installation groove (12). A slag collection component (42) is arranged in the installation groove (12). A driving component (43) is arranged below the slag collection component (42). A material blocking component (44) is arranged on one side of the slag collection component (42).
4. A cutting device for processing high-precision cold-drawn steel, according to claim 3, characterized in that: The slag collection component (42) includes a rotating blanking plate (421) rotatably connected inside the installation groove (12). A plurality of material leakage holes (422) are formed in the rotating blanking plate (421). An aggregate trough (423) is jointly arranged below the plurality of material leakage holes (422). A jack is formed at one end of the rotating blanking plate (421) away from the cutting device (2). A plurality of rotating grooves (424) are formed above the rotating blanking plate (421). A blanking rotating rod (425) is rotatably connected in the rotating grooves (424).
5. A cutting device for processing high-precision cold-drawn steel, according to claim 4, characterized in that: The driving component (43) includes a connecting short rod (431) fixedly connected to the lower end of the rotating blanking plate (421). A rotating plate (432) is rotatably connected below the connecting short rod (431). The other end of the rotating plate (432) is rotatably connected to a sliding cross bar (433). Sliding rods are arranged at both ends of the sliding cross bar (433). The sliding rods at both ends of the sliding cross bar (433) are slidably connected to both sides of the inner wall of the installation groove (12). An installation plate (434) is fixedly connected to the lower end of the sliding cross bar (433). A fixed cross plate (435) is fixedly connected to the inner wall of the installation groove (12). A telescopic electric cylinder (436) is fixedly arranged below the fixed cross plate (435). The output end of the telescopic electric cylinder (436) is fixedly connected to the installation plate (434).
6. The cutting device for processing high-precision cold-drawn steel according to claim 4, wherein: The material blocking component (44) includes a material blocking plate (441) arranged on one side of the rotating blanking plate (421). A material blocking insertion rod (442) is fixedly connected to one side of the material blocking plate (441). The material blocking insertion rod (442) corresponds to the jack on one side of the rotating blanking plate (421).
Citation Information
Patent Citations
High-cutting-precision cutting machine for steel plate cutting
CN215787060U
Rapid cutting device for hardware fittings
CN119525603A
Edge cutting device for manufacturing tank body of tank truck
CN219324811U