Cutting device for manufacturing metal materials

CN122606049APending Publication Date: 2026-08-21SHENZHEN SANDA METAL CO LTD
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Patent Information

Application Number
CN202610942833.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-29
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

[0003]然而,现有技术中的切割装置在实际使用中,通常需要人工测量并调整限位挡块的位置,操作繁琐,且精度难以保证,不利于实现自动化定长切割,且切割后的金属材料需要人工或借助外部设备进行搬运和码放,难以与输送机构形成连贯的自动化排料流程,影响整体生产效率

Benefits of technology

[0017] This invention drives the cutting mechanism to move by a moving drive component, which can quickly and accurately adjust the distance between the cutting mechanism and the baffle, thereby achieving precise control of the cutting length of metal materials without the need for manual measurement, thus improving production efficiency and cutting accuracy.

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Abstract

The application relates to the field of metal material manufacturing, in particular to a cutting device for metal material manufacturing, which comprises a supporting table, the supporting table is provided with mounting notches and conveying rollers, further comprises a limiting and discharging mechanism, wherein the limiting and discharging mechanism comprises connecting ears, a first rotating shaft and a baffle are arranged between the connecting ears; and a cutting mechanism, wherein the cutting mechanism comprises a sliding frame, a sliding block is arranged at the bottom of the sliding frame; a moving frame, a first telescopic rod is arranged at one end of the sliding frame, the first telescopic rod is connected with the moving frame, a second guide rod is arranged at the other end of the sliding frame; an impurity collecting box, the bottom of the impurity collecting box is connected with the sliding frame, the top of the impurity collecting box is arranged in an air extraction assembly, the sidewall of the impurity collecting box is connected with a ventilation hole through a ventilation assembly; and a cutting cover, second telescopic rods are inlaid on the sidewall of the cutting cover, cutting assemblies are arranged at the end of the second telescopic rods, the metal material can be conveniently and orderly discharged after fixed-length cutting, and therefore the use of the device can be facilitated.
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Description

Technical Field

[0001] This invention relates to the field of metal material manufacturing, specifically a cutting device for metal material manufacturing. Background Technology

[0002] During the manufacturing process, metal materials often need to be cut into segments according to actual application requirements. Existing cutting equipment typically includes a conveying mechanism and a cutting mechanism. Long strips of metal material are fed to the cutting station via conveying rollers, and then cut by the cutting mechanism.

[0003] However, in actual use, existing cutting devices usually require manual measurement and adjustment of the position of the limit stop, which is cumbersome and difficult to guarantee accuracy. This is not conducive to achieving automated fixed-length cutting. Furthermore, the cut metal materials need to be handled and stacked manually or with the help of external equipment, making it difficult to form a coherent automated material feeding process with the conveying mechanism, thus affecting the overall production efficiency. Summary of the Invention

[0004] The purpose of this invention is to provide a cutting device for manufacturing metal materials to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A cutting device for manufacturing metal materials includes a support platform with an installation recess. A plurality of conveying rollers for transporting metal materials are installed at equal intervals inside the installation recess. A first groove and a second groove are respectively formed on the side walls at both ends of the support platform. The device also includes a limiting and discharging mechanism installed on the side wall of the support platform to limit the end of the metal material and discharge the cut metal material. The limiting and discharging mechanism includes a pair of connecting ears symmetrically arranged at the ends of the support platform. A first rotating shaft is rotatably mounted between the connecting ears. A baffle is mounted on the first rotating shaft, and an arc-shaped connecting plate is mounted on the baffle. A connecting block is fixedly mounted on the support platform on one side of the baffle, and a friction sleeve is embedded in the connecting block, slidingly connected to the arc-shaped connecting plate. Finally, a cutting mechanism is slidably placed on the support platform, including a sliding frame slidably mounted on the support platform. On the support platform, sliders are provided at both ends of the bottom of the sliding frame. A moving drive component is installed inside the second groove at one end, which is used to drive the slider to move horizontally and adjust its position within the second groove. A moving frame is mounted on the sliding frame, and a first telescopic rod is installed at one end of the sliding frame. The top telescopic end of the first telescopic rod is connected to the moving frame. A second guide rod is installed at the other end of the sliding frame. Both ends of the second guide rod are fixedly connected to the moving frame, and ventilation holes are provided inside the second guide rod. An impurity collection box is fixedly connected to the sliding frame at both ends of its bottom through a fixing sleeve. The top of the impurity collection box is provided with an exhaust component, and the side wall of the impurity collection box is connected to the ventilation holes through a ventilation component. A cutting cover is placed at the bottom of the moving frame and is connected to the ventilation holes. A second telescopic rod is embedded in the side wall of the cutting cover, and an adjustable-angle cutting component is provided at the telescopic end of the second telescopic rod.

[0007] Preferably, the bottom of the support platform is provided with a support base, the four corners of the bottom of the support base are provided with mounting ears, and leveling components are installed on the mounting ears.

[0008] Preferably, the leveling assembly includes a leveling screw, which is threadedly connected to the mounting lug, and a support base is provided at the bottom of the leveling screw. Brake nuts are also threadedly connected to the leveling screw located on both sides of the mounting lug.

[0009] Preferably, a control component is also installed at the top of the inside of the support base; the control component includes a processor, which is located at the top of the support base and is connected to an operation panel via a power supply line, and the operation panel is fixedly installed at the top of the support base.

[0010] Preferably, a synchronous drive assembly for driving each conveying roller to rotate synchronously is installed inside the first groove at one end; the synchronous drive assembly includes a first motor, which is disposed inside the first groove, and synchronous pulleys are installed on the motor shaft of the first motor and at the ends of each conveying roller, and the synchronous pulleys are connected to each other in sequence by a synchronous belt.

[0011] Preferably, the support base is further equipped with a rotation drive assembly for driving the first rotating shaft to rotate; the rotation drive assembly includes a fixed block, on which a second motor is mounted, and pulleys are mounted on the motor shaft of the second motor and the end of the first rotating shaft, and the pulleys are interconnected by a transmission belt.

[0012] Preferably, a mounting groove is provided on the baffle located on one side of the impurity collection box, and a laser receiver is installed inside the mounting groove; a laser probe is also installed on the impurity collection box located on one side of the baffle.

[0013] Preferably, the moving drive assembly includes a one-way screw, which is rotatably disposed inside the second groove and threadedly connected to the slider, and a third motor is also installed at the end of the one-way screw, which is disposed inside the first groove.

[0014] Preferably, the exhaust assembly includes an exhaust pump, which is located on the top outer wall of the impurity collection box, and the bottom of the exhaust pump is inserted into the impurity collection box. A filter cover is also installed on the outside of the exhaust pump located inside the impurity collection box.

[0015] Preferably, the cutting assembly includes a mounting frame connected to the telescopic end of the second telescopic rod, and the inside of the mounting frame is connected to a mounting sleeve via a second rotating shaft. A mounting block is fixedly mounted on the mounting sleeve, and cutting blades are symmetrically arranged at both ends of the bottom of the mounting block. The assembly also includes a cutting motor mounted on the mounting frame and connected to the second rotating shaft.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] This invention drives the cutting mechanism to move by a moving drive component, which can quickly and accurately adjust the distance between the cutting mechanism and the baffle, thereby achieving precise control of the cutting length of metal materials without the need for manual measurement, thus improving production efficiency and cutting accuracy.

[0018] This invention features a liftable cutting hood that fits tightly against the surface of the metal material during cutting, creating a relatively sealed space. Combined with an exhaust system, ventilation holes, and a waste collection box, it can remove and collect the high-temperature dust and fumes generated during cutting in real time, effectively improving the working environment, protecting the health of operators, and reducing dust damage to equipment.

[0019] This invention features a rotatable baffle. After cutting, the baffle can be rotated to an inclined position to form a discharge slide. The conveying roller continues to work, pushing the newly fed metal material to slide out along the baffle, thus achieving automatic discharge and facilitating the automated connection of subsequent processes.

[0020] The cutting cover of this invention descends before cutting, which not only seals and removes dust, but also clamps and fixes the metal material to prevent displacement or vibration during cutting, thereby ensuring the flatness and dimensional accuracy of the cut surface. At the same time, the cutting components work entirely inside the cutting cover, eliminating the safety hazards caused by exposed blades. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall three-dimensional structure of a cutting device for manufacturing metal materials according to the present invention.

[0022] Figure 2 This is a schematic diagram of the support base in a cutting device for manufacturing metal materials according to the present invention.

[0023] Figure 3 This is a schematic diagram of the rotation drive component in a cutting device for manufacturing metal materials according to the present invention.

[0024] Figure 4 This is a schematic diagram of the synchronous drive component in a cutting device for manufacturing metal materials according to the present invention.

[0025] Figure 5 This is a schematic diagram of the sealing plate in a cutting device for manufacturing metal materials according to the present invention.

[0026] Figure 6 This is a schematic diagram of the baffle in a cutting device for manufacturing metal materials according to the present invention.

[0027] Figure 7 This is a schematic diagram of the structure of a cutting device for manufacturing metal materials according to the present invention, in which the slider is connected to the guide rod and the moving drive assembly respectively.

[0028] Figure 8 This is a schematic diagram of the connection between the sliding frame and the movable frame in a cutting device for manufacturing metal materials according to the present invention.

[0029] Figure 9 This is a schematic diagram of the exhaust assembly in a cutting device for manufacturing metal materials according to the present invention.

[0030] Figure 10 This is a schematic diagram of the ventilation component in a cutting device for manufacturing metal materials according to the present invention.

[0031] Figure 11This is a schematic diagram of the cutting component in a cutting device for manufacturing metal materials according to the present invention.

[0032] Figure label:

[0033] 1. Support platform;

[0034] 11. Support base; 111. Mounting ears;

[0035] 12. Leveling assembly; 121. Leveling screw; 122. Support base; 123. Brake nut;

[0036] 13. Control components; 131. Processor; 132. Power supply cable; 133. Operation panel;

[0037] 14. Install notch; 15. Conveyor roller;

[0038] 16. First groove; 161. Sealing plate;

[0039] 17. Synchronous drive assembly; 171. Synchronous pulley; 172. Synchronous belt; 173. First motor;

[0040] 18. Second groove;

[0041] 2. Limiting and discharging mechanism;

[0042] 21. Connecting ear; 22. First pivot;

[0043] 23. Rotation drive assembly; 231. Fixed block; 232. Second motor; 233. Pulley; 234. Transmission belt;

[0044] 24. Baffle; 241. Mounting groove;

[0045] 25. Laser receiver;

[0046] 26. Arc-shaped connecting plate; 261. Limiting rod;

[0047] 27. Connecting block; 28. Friction sleeve;

[0048] 3. Cutting mechanism;

[0049] 31. Sliding frame; 32. Slider;

[0050] 33. Motion drive assembly; 331. One-way screw; 332. Third motor;

[0051] 34. First guide rod; 35. Movable frame; 36. First telescopic rod;

[0052] 37. Second guide rod; 371. Ventilation hole;

[0053] 38. Impurity collection box; 39. Laser probe;

[0054] 310. Fixing sleeve;

[0055] 311. Exhaust assembly; 3111. Exhaust pump; 3112. Filter cover;

[0056] 312. Cutting cover; 313. Sealing gasket;

[0057] 314. Ventilation assembly; 3141. First ventilation duct; 3142. Connecting hose; 3143. Second ventilation duct;

[0058] 315. Second telescopic pole;

[0059] 316. Cutting assembly; 3161. Mounting frame; 3162. Second rotating shaft; 3163. Cutting motor; 3164. Mounting sleeve; 3165. Mounting block; 3166. Cutting blade. Detailed Implementation

[0060] It should be noted that, unless otherwise specified, the embodiments and features described in the present invention can be combined with each other.

[0061] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the various embodiments of the present invention will be described in detail below with reference to the accompanying drawings. However, those skilled in the art will understand that many technical details have been presented in the various embodiments of the present invention to facilitate a better understanding of this application. However, the technical solutions claimed in this application can be implemented even without these technical details and various changes and modifications based on the following embodiments.

[0062] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0063] See Figure 1-11In this embodiment of the invention, a cutting device for manufacturing metal materials includes a support platform 1, on which a mounting recess 14 is provided. A plurality of conveying rollers 15 for transporting metal materials are installed at equal intervals inside the mounting recess 14. A first groove 16 and a second groove 18 are respectively provided on the side walls at both ends of the support platform 1. The device also includes a limiting and discharging mechanism 2, which is installed on the side wall of the support platform 1 and is used to limit the end of the metal material and discharge the cut metal material. The limiting and discharging mechanism 2 includes a pair of connecting lugs 21. The connecting ears 21 are symmetrically arranged at the ends of the support platform 1, and a first rotating shaft 22 is rotatably mounted between the connecting ears 21. A baffle 24 is mounted on the first rotating shaft 22, and an arc-shaped connecting plate 26 is mounted on the baffle 24. A connecting block 27 is fixedly arranged on the support platform 1 located on one side of the baffle 24. A friction sleeve 28 is embedded in the connecting block 27, and the friction sleeve 28 is slidably connected to the arc-shaped connecting plate 26. A cutting mechanism 3 is also included, which is slidably placed on the support platform 1. The cutting mechanism 3 includes a sliding frame 31, which is slidably arranged on the support platform 1, and the bottom of the sliding frame 31... The component has sliders 32 at both ends. A moving drive assembly 33 is installed inside the second groove 18 at one end. The moving drive assembly 33 is used to drive the sliders 32 to move horizontally and adjust their position inside the second groove 18. A moving frame 35 is mounted on a sliding frame 31. A first telescopic rod 36 is installed at one end of the sliding frame 31. The top telescopic end of the first telescopic rod 36 is connected to the moving frame 35. A second guide rod 37 is installed at the other end of the sliding frame 31. The two ends of the second guide rod 37 are fixedly connected to the moving frame 35, and the second guide rod 37 has ventilation openings inside. Hole 371; Impurity collection box 38, the bottom two ends of which are fixedly connected to the sliding frame 31 by fixing sleeves 310, and the top of the impurity collection box 38 is set on the exhaust assembly 311, and the side wall of the impurity collection box 38 is connected to the ventilation hole 371 through the ventilation assembly 314; Cutting cover 312, which is placed at the bottom of the movable frame 35 and is connected to the ventilation hole 371, and a second telescopic rod 315 is embedded on the side wall of the cutting cover 312, and the telescopic end of the second telescopic rod 315 is provided with an adjustable angle cutting assembly 316.

[0064] This invention uses a conveying roller 15 to transport metal material onto a support platform 1, where the ends of the metal material are blocked by a baffle 24. A moving drive assembly 33 drives a slider 32 to increase the distance between the sliding frame 31 and the baffle 24. A first telescopic rod 36 drives a moving frame 35 to move the cutting cover 312 to the surface of the metal material, achieving sealing protection and clamping at both ends of the cut. A second telescopic rod 315 drives an adjustable-angle cutting assembly 316 to perform moving cutting on the metal material. Throughout the cutting process, since the cut area of ​​the metal material is located inside the cutting cover 312, a ventilation assembly 311 creates negative pressure inside the impurity collection box 38. A ventilation assembly 314 and ventilation holes 371 then exhaust the hot air and processing dust from inside the cutting cover 312 into the impurity collection box 38, achieving dust-free cutting and facilitating the use of the device.

[0065] See Figure 2 In one embodiment of the present invention, a support base 11 is provided at the bottom of the support platform 1, and mounting ears 111 are provided at the four corners of the bottom of the support base 11. A leveling component 12 is installed on the mounting ears 111. By setting the support base 11 and the leveling component 12, the entire cutting device can be leveled and supported.

[0066] See Figure 2 In one embodiment of the present invention, the leveling assembly 12 includes a leveling screw 121, which is threadedly connected to the mounting ear 111. A support base 122 is provided at the bottom of the leveling screw 121, and brake nuts 123 are threadedly connected to the leveling screws 121 located on both sides of the mounting ear 111. By manually rotating the position of the leveling screw 121 on the mounting ear 111, and using the brake nuts 123 to brake the leveling screw 121 after the position is adjusted, the entire support base 11 can be stably supported.

[0067] See Figure 2 In one embodiment of the present invention, a control component 13 is also installed at the top of the support base 11; the control component 13 includes a processor 131, which is located on the top of the support base 11 and is connected to an operation panel 133 via a power supply line 132. The operation panel 133 is fixedly installed on the top of the support base 11 and is used as a control switch to control the operation of the entire device. The processor 131 serves as the entire processing center, used to process the data of the entire device and to continuously operate the various devices of the automatic cutting device.

[0068] See Figure 4In one embodiment of the present invention, a synchronous drive assembly 17 for driving each conveying roller 15 to rotate synchronously is installed inside the first groove 16 at one end; the synchronous drive assembly 17 includes a first motor 173, which is disposed inside the first groove 16, and synchronous pulleys 171 are installed on the motor shaft of the first motor 173 and at the ends of each conveying roller 15. The synchronous pulleys 171 are connected to each other in sequence through a synchronous belt 172. When the first motor 173 works, the first motor 173 synchronously drives the synchronous belt 172 and the synchronous pulleys 171 to drive each conveying roller 15 to rotate synchronously and convey metal materials.

[0069] See Figure 5 In one embodiment of the present invention, the outer end of the first groove 16 located outside the synchronous drive assembly 17 is sealed by a sealing plate 161, which can protect the internal components of the synchronous drive assembly 17.

[0070] See Figure 3 In one embodiment of the present invention, a rotation drive assembly 23 for driving the first rotating shaft 22 to rotate is further installed on the support base 11; the rotation drive assembly 23 includes a fixing block 231, on which a second motor 232 is installed, and pulleys 233 are installed on the motor shaft of the second motor 232 and the end of the first rotating shaft 22. The pulleys 233 are interconnected by a transmission belt 234. The second motor 232 drives the first rotating shaft 22 to adjust the rotation angle through the pulleys 233 and the transmission belt 234.

[0071] See Figure 6 and Figure 8 In one embodiment of the present invention, a mounting groove 241 is provided on the baffle 24 located on one side of the impurity collection box 38, and a laser receiver 25 is disposed inside the mounting groove 241; a laser probe 39 is also installed on the impurity collection box 38 located on one side of the baffle 24. The laser probe 39 emits a ranging laser and the laser receiver 25 receives the emitted laser, thereby enabling precise control of the distance between the baffle 24 and the sliding frame 31, thereby enabling precise length cutting of metal materials.

[0072] See Figure 6 In one embodiment of the present invention, a limiting rod 261 is also installed at the end of the arc-shaped connecting plate 26. The limiting rod 261 is used to limit the end of the arc-shaped connecting plate 26, thereby completing the sliding connection between the arc-shaped connecting plate 26 and the friction sleeve 28.

[0073] See Figure 7In one embodiment of the present invention, the moving drive assembly 33 includes a one-way screw 331, which is rotatably disposed inside the second groove 18 and threadedly connected to the slider 32. A third motor 332 is also installed at the end of the one-way screw 331. The third motor 332 is located inside the first groove 16. The operation of the third motor 332 drives the one-way screw 331 to work, and the one-way screw 331 drives the threadedly connected slider 32 to perform horizontal movement and orientation adjustment.

[0074] See Figure 7 In one embodiment of the present invention, a first guide rod 34 is fixedly installed inside the second groove 18. The first guide rod 34 is slidably connected to the slider 32, and the first guide rod 34 and the one-way screw 331 are symmetrically arranged inside the second groove 18 at both ends. The arrangement of the first guide rod 34 can guide the moving slider 32.

[0075] See Figure 9 In one embodiment of the present invention, the exhaust assembly 311 includes an exhaust pump 3111, which is located on the top outer wall of the impurity collection box 38 and its bottom is inserted into the impurity collection box 38. A filter cover 3112 is also installed on the outside of the exhaust pump 3111 located inside the impurity collection box 38. By operating the exhaust pump 3111, the interior of the impurity collection box 38 can be ventilated. The filter cover 3112 is provided to filter impurities in the ventilated air, thereby facilitating the filtration of dust generated during the cutting process and protecting the exhaust pump 3111.

[0076] See Figure 9 In one embodiment of the present invention, sealing gaskets 313 are also installed at both ends of the bottom of the cutting cover 312. The sealing gaskets 313 can ensure a tight connection between the cutting cover 312 and the metal material.

[0077] See Figure 10 In one embodiment of the present invention, the ventilation assembly 314 includes a first ventilation pipe 3141, which is conductively connected to a ventilation hole 371. The first ventilation pipe 3141 is connected to a second ventilation pipe 3143 via a connecting hose 3142. The second ventilation pipe 3143 is conductively connected to an impurity collection box 38. The arrangement of the first ventilation pipe 3141, the connecting hose 3142, and the second ventilation pipe 3143 facilitates the conductive connection between the impurity collection box 38 and the ventilation hole 371.

[0078] See Figure 11In one embodiment of the present invention, the cutting assembly 316 includes a mounting frame 3161, which is connected to the telescopic end of the second telescopic rod 315. The mounting frame 3161 is connected to a mounting sleeve 3164 via a second rotating shaft 3162. A mounting block 3165 is fixedly mounted on the mounting sleeve 3164, and cutting blades 3166 are symmetrically arranged at both ends of the bottom of the mounting block 3165. The assembly also includes a cutting motor 3163, which is mounted on the mounting frame 3161 and connected to the second rotating shaft 3162. When the cutting motor 3163 operates, it drives the mounting block 3165 to rotate via the second rotating shaft 3162 and the mounting sleeve 3164. The mounting block 3165 drives the cutting blades 3166 to rotate by an angle, thereby ensuring that the cutting blades 3166 rotate to the lower position of the cutting cover 312, thus facilitating the movement and cutting of metal materials.

[0079] See Figure 1-11 The workflow of a cutting device for manufacturing metal materials includes the following steps:

[0080] S1. The processor 131 and operation panel 133 provided on the control component 13 serve as the control system for the entire device, which is used to control the orderly operation of the entire device.

[0081] S2. The control component 13 controls the operation of the third motor 332 installed on the moving drive component 33. The third motor 332 drives the one-way screw 331 to rotate. The one-way screw 331 drives the threaded slider 32 to move horizontally under the guidance of the first guide rod 34. The slider 32 synchronously drives the sliding frame 31, the moving frame 35 and the impurity collection box 38 to move horizontally. The laser probe 39 set on the impurity collection box 38 emits a laser signal and receives it through the laser receiver 25 installed on the baffle 24. After adjusting to the set position, the third motor 332 stops working, thereby realizing the precise adjustment of the distance of the entire cutting mechanism 3 and realizing the adjustment of the cutting length of the metal material.

[0082] S3. The first motor 173 on the synchronous drive assembly 17 is driven by the control assembly 13. The first motor 173 drives each conveying roller 15 to rotate and convey metal material by the cooperation of the synchronous pulley 171 and the synchronous belt 172. The metal material is conveyed to the support platform 1, and the end is blocked by the baffle 24 to stop conveying. The first motor 173 stops working, thus ensuring the material transportation of the entire metal material.

[0083] S4. The control component 13 controls the first telescopic rod 36 to drive the moving frame 35 to move downwards. The moving frame 35 drives the cutting cover 312 to move downwards and contact and clamp the top of the metal material. The sealing gaskets 313 at both ends of the bottom of the cutting cover 312 ensure tight contact between the cutting cover 312 and the metal material, as well as the cutting points at both ends of the clamped metal material. The control component 13 also drives the second telescopic rod 315 to work, which drives the mounting frame 3161 to move horizontally. The control component 13 also drives the cutting motor 3163 to work. The cutting motor 3163 drives the mounting block 3165 to rotate at an angle through the second rotating shaft 3162 and the mounting sleeve 3164, ensuring that the cutting blade 3166 contacts and moves to cut the metal material. The entire cutting process is completed. During the process, due to the sealing protection of the cutting area by the cutting cover 312, the dust generated during cutting is stored inside the cutting cover 312. The control component 13 drives the exhaust pump 3111 to work. The exhaust pump 3111 exhausts the air inside the impurity collection box 38 through the filter cover 3112, and exhausts the air inside the cutting cover 312 through the ventilation component 314 and the ventilation hole 371. In this way, the hot air and dust generated during cutting can be drawn into the impurity collection box 38 for dust collection. Because the sealing gaskets 313 are set at both ends of the bottom of the cutting cover 312, there are gaps in the side wall of the cutting cover 312 between the sealing gaskets 313. This ensures that air can enter the cutting cover 312 and prevents the cutting cover 312 from generating negative pressure through exhaust, so that the exhaust of the entire device can be achieved.

[0084] S5. The second motor 232 on the rotation drive assembly 23 is controlled by the control assembly 13. The second motor 232 drives the first rotating shaft 22 to rotate through the synchronous pulley 233 and the transmission belt 234. The first rotating shaft 22 drives the baffle 24 to adjust the rotation angle to form an inclined discharge plate. The first motor 173 on the synchronous drive assembly 17 is driven by the control assembly 13. The first motor 173 drives each conveying roller 15 to rotate and convey metal materials through the cooperation of the synchronous pulley 171 and the synchronous belt 172. The uncut metal materials push the cut metal materials onto the inclined baffle 24 for material discharge. This makes the use of the whole device convenient.

[0085] S6. The second motor 232 on the rotation drive assembly 23 is controlled by the control assembly 13. The second motor 232 drives the first rotating shaft 22 to rotate through the synchronous pulley 233 and the transmission belt 234. The first rotating shaft 22 drives the baffle 24 to rotate back to the vertical direction for repeated metal material cutting and manufacturing.

[0086] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A cutting device for manufacturing metal materials, comprising a support platform (1), wherein the support platform (1) has an installation recess (14), and a plurality of conveying rollers (15) for transporting metal materials are installed at equal intervals inside the installation recess (14), and a first groove (16) and a second groove (18) are respectively provided on the side walls at both ends of the support platform (1); characterized in that, Also includes: Limiting material discharge mechanism (2), the limiting material discharge mechanism (2) is installed on the side wall of the support platform (1) to realize the limiting of the end of the metal material and the discharge of the cut metal material; The limiting discharge mechanism (2) includes a pair of connecting ears (21), which are symmetrically arranged at the ends of the support platform (1). A first rotating shaft (22) is rotatably installed between the connecting ears (21). A baffle (24) is installed on the first rotating shaft (22), and an arc-shaped connecting plate (26) is installed on the baffle (24). A connecting block (27) is fixedly installed on the support platform (1) located on one side of the baffle (24). A friction sleeve (28) is embedded on the connecting block (27), and the friction sleeve (28) is slidably connected to the arc-shaped connecting plate (26). and a cutting mechanism (3), which is slidably placed on a support platform (1), including: The sliding frame (31) is slidably mounted on the support platform (1), and the sliding frame (31) has sliders (32) at both ends of the bottom. A moving drive assembly (33) is installed inside the second groove (18) at one end. The moving drive assembly (33) is used to drive the slider (32) to adjust the horizontal movement direction inside the second groove (18). A movable frame (35) is mounted on a sliding frame (31), and a first telescopic rod (36) is installed at one end of the sliding frame (31). The top telescopic end of the first telescopic rod (36) is connected to the movable frame (35). A second guide rod (37) is installed at the other end of the sliding frame (31). Both ends of the second guide rod (37) are fixedly connected to the movable frame (35), and a ventilation hole (371) is provided inside the second guide rod (37). Impurity collection box (38), the bottom two ends of the impurity collection box (38) are fixedly connected to the sliding frame (31) through the fixing sleeve (310), and the top of the impurity collection box (38) is set in the exhaust assembly (311), and the side wall of the impurity collection box (38) is connected to the ventilation hole (371) through the ventilation assembly (314); A cutting cover (312) is placed at the bottom of the movable frame (35) and is connected to the ventilation hole (371). A second telescopic rod (315) is embedded on the side wall of the cutting cover (312). The telescopic end of the second telescopic rod (315) is provided with an adjustable angle cutting component (316).

2. The cutting device for manufacturing metal materials according to claim 1, characterized in that, The bottom of the support platform (1) is provided with a support base (11), and the four corners of the bottom of the support base (11) are provided with mounting ears (111), and a leveling component (12) is installed on the mounting ears (111).

3. The cutting device for manufacturing metal materials according to claim 2, characterized in that, The leveling assembly (12) includes a leveling screw (121), which is threadedly connected to the mounting ear (111), and a support seat (122) is provided at the bottom of the leveling screw (121). Brake nuts (123) are also threadedly connected to the leveling screw (121) located on both sides of the mounting ear (111).

4. A cutting device for manufacturing metal materials according to claim 2, characterized in that, The top of the support base (11) is also equipped with a control component (13). The control component (13) includes a processor (131) which is located on top of the support base (11) and is connected to the operation panel (133) via a power supply line (132). The operation panel (133) is fixedly installed on top of the support base (11).

5. A cutting device for manufacturing metal materials according to claim 1, characterized in that, A synchronous drive assembly (17) for driving each conveying roller (15) to rotate synchronously is installed inside the first groove (16) at one end. The synchronous drive assembly (17) includes a first motor (173), which is located inside the first groove (16). Synchronous pulleys (171) are installed on the motor shaft of the first motor (173) and at the ends of each conveying roller (15). The synchronous pulleys (171) are connected to each other in sequence by a synchronous belt (172).

6. A cutting device for manufacturing metal materials according to claim 1, characterized in that, The support base (11) is also equipped with a rotation drive assembly (23) for driving the first rotating shaft (22) to rotate. The rotation drive assembly (23) includes a fixed block (231), on which a second motor (232) is mounted. The motor shaft of the second motor (232) and the end of the first rotating shaft (22) are both equipped with pulleys (233), and the pulleys (233) are interconnected by a transmission belt (234).

7. A cutting device for manufacturing metal materials according to claim 1, characterized in that, A mounting groove (241) is provided on the baffle (24) located on one side of the impurity collection box (38), and a laser receiver (25) is provided inside the mounting groove (241). A laser probe (39) is also installed on the impurity collection box (38) located on one side of the baffle (24).

8. A cutting device for manufacturing metal materials according to claim 1, characterized in that, The moving drive assembly (33) includes a one-way screw (331) which is rotatably disposed inside the second groove (18) and threadedly connected to the slider (32). A third motor (332) is also installed at the end of the one-way screw (331) and is located inside the first groove (16).

9. A cutting device for manufacturing metal materials according to claim 1, characterized in that, The exhaust assembly (311) includes an exhaust pump (3111), which is located on the top outer wall of the impurity collection box (38), and the bottom of the exhaust pump (3111) is inserted into the impurity collection box (38). A filter cover (3112) is also installed on the outside of the exhaust pump (3111) located inside the impurity collection box (38).

10. A cutting device for manufacturing metal materials according to claim 1, characterized in that, The cutting assembly (316) includes a mounting frame (3161), which is connected to the telescopic end of the second telescopic rod (315). The inside of the mounting frame (3161) is connected to the mounting sleeve (3164) through the second rotating shaft (3162). The mounting sleeve (3164) is fixedly provided with a mounting block (3165), and cutting blades (3166) are symmetrically provided at both ends of the bottom of the mounting block (3165). It also includes a cutting motor (3163), which is mounted on a mounting frame (3161) and connected to a second rotating shaft (3162).