Cutting-off equipment for machining high-thermal-conductivity rolled metal part
By designing cleaning, fixing and centering devices, the problems of waste chips and burrs during the cutting of high-thermal ductile metal plates are solved, and a safe and efficient cutting effect is achieved.
Patent Information
- Application Number
- CN202510566091.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-07-11
AI Technical Summary
The existing high thermally conductive and calendered metal plate cutting device will stop on the surface of the metal plate during the cutting process to increase the difficulty of cleaning, and vertical burrs are at risk of scratching the operator.
A high-thermal-conductive and ductile metal parts processing cut-off equipment including cleaning devices, fixing devices and centering devices is designed. The cleaning plate is driven to scrape waste chips and burrs through the cylinder-driven connecting frame, the fixing device tightens the metal plate, and the centering device corrects the metal plate to ensure cutting accuracy and safety.
Effectively clean the scraps and burrs on the surface of the metal plate to avoid scratching people, ensure cutting accuracy and safety, and improve the practicality of the device.
Smart Images

Figure CN120287084A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of truncation, and particularly relates to a truncation device for processing high - thermal - conductivity rolled metal parts. Background Technique
[0002] The high - thermal - conductivity rolled metal plate is a metal plate manufactured by a rolling process and has excellent thermal conductivity. This kind of plate is usually made of high - thermal - conductivity metal materials such as copper and aluminum. Through rolling processes (such as rolling, stretching, etc.), it has higher thermal conductivity efficiency and better mechanical properties. When producing high - thermal - conductivity rolled metal plates, a cutting machine is needed to truncate the high - thermal - conductivity rolled metal coil into high - thermal - conductivity rolled metal plates for subsequent use.
[0003] The document with Chinese Application No.: 202410415447.9 discloses a metal plate cutting device, which includes a machine body. A carriage is slidably arranged on the machine body. The carriage has a sliding housing part. A sliding member is slidably arranged on the carriage in the horizontal direction. A connecting rod is swingably arranged on the sliding member. A transverse cutting knife is rotatably arranged on the connecting rod. A rotating member rotates relative to the carriage and is slidably arranged in the lifting direction. A top block is slidably arranged horizontally in the sliding housing part. One end of the rotating member is hinged to the top block. A first wedge - shaped block is slidably arranged on the carriage in the horizontal direction. The other end of the rotating member is hinged to the first wedge - shaped block. The first wedge - shaped block is located on one side of the connecting rod. After the first wedge - shaped block moves, it pushes the connecting rod to swing. However, in the actual use process, since a large amount of waste chips are generated during the cutting process and there are burrs perpendicular to the metal plate at the cut, some waste chips will fall on the surface of the metal plate and thus move along with the metal plate. And when cleaning the waste chips, the burrs perpendicular to the metal plate pose a danger of scratching the operator, resulting in low practicability of the device. Summary of the Invention
[0004] The purpose of the present invention is to provide a truncation device for processing high - thermal - conductivity rolled metal parts, aiming to solve the problems that waste chips stay on the surface of the metal plate during cutting, increasing subsequent cleaning operations, and the burrs perpendicular to the metal plate pose a danger of scratching during waste chip cleaning.
[0005] To achieve the above object, the present invention adopts the following technical solutions: A cutting device for processing high thermal conductivity extended metal parts, comprising two brackets, and a same protective box is connected to the tops of the two brackets. A cylinder is fixedly installed on the top of the protective box. The top rod of the cylinder penetrates through the top of the protective box and is connected to a connecting frame. Two cleaning devices are connected to the bottom of the connecting frame. The cleaning device includes a connecting plate and two stoppers. An activity groove is formed in the connecting plate. First moving grooves are formed on both sides of the inner wall of the activity groove. A moving block is slidably connected in the first moving groove, and a same support plate is connected between the two moving blocks. Slide sleeves are embedded on both sides of the connecting plate, and slide rods are slidably connected in the slide sleeves. The bottoms of the two slide rods are connected to a same cleaning plate, and the tops of the slide rods are connected to a first limiting plate. A first spring is sleeved on the outer wall of the slide rod. A limiting block is attached to the top of the stopper, and a counterweight is connected to one side of the stopper.
[0006] As a further description of the above technical solution:
[0007] The top of the support plate is connected to the bottom of the connecting frame, and the outer wall of the support plate is in contact with and slidably connected to the inner wall of the activity groove. One side of the stopper is rotatably connected to one side of the inner wall of the protective box, and one side of the limiting block is connected to one side of the inner wall of the protective box. The two ends of the first spring are respectively connected to the bottom of the connecting plate and the top of the cleaning plate.
[0008] As a further description of the above technical solution:
[0009] A through hole is formed in the moving block, and a support rod is slidably connected in the through hole. The two ends of the support rod are respectively connected to both sides of the inner wall of the first moving groove, and a second spring is sleeved on the outer wall of the support rod. The two ends of the second spring are respectively connected to one side of the moving block and one side of the inner wall of the first moving groove.
[0010] As a further description of the above technical solution:
[0011] A first conveying module and a second conveying module are respectively arranged between the two brackets. A same cutting plate is connected between the two brackets. A cutting groove is formed in the cutting plate. A linear module is connected to the bottom of the cutting plate, and a cutting module is connected to the moving part of the linear module. The cutting knife of the cutting module extends into the cutting groove.
[0012] As a further description of the above technical solution:
[0013] One side of the support plate is connected with a fixing device, the fixing device includes a support plate, an adjustment groove is formed in the support plate, sliding grooves are formed on both sides of the inner wall of the adjustment groove, two fixing blocks are slidably connected in the adjustment groove, one side of the fixing block is connected with a first threaded seat, and the same first double-threaded rod is threadedly connected between the other two first threaded seats. Another sliding sleeve is embedded in the fixing block, a support rod is slidably connected in the other sliding sleeve, the top of the support rod is connected with a second limiting plate, the bottom of the support rod is connected with a fixing plate, a third spring is sleeved on the outer wall of the support rod, and a motor is fixedly installed on one side of the support plate.
[0014] As a further description of the above technical solution:
[0015] The output shaft of the motor extends into one of the sliding grooves, the output shaft of the motor is connected with one end of the first double-threaded rod, the other end of the first double-threaded rod is rotatably connected with one side of the inner wall of the sliding groove, one side of the support plate is connected with one side of the support plate, and both ends of the third spring are respectively connected to the bottom of the second limiting plate and the top of the fixing block.
[0016] As a further description of the above technical solution:
[0017] The other side of the fixing block is connected with a sliding sleeve seat, the same limiting rod is slidably connected between the two sliding sleeve seats, both ends of the limiting rod are respectively connected to both sides of the inner wall of the other sliding groove, and the outer walls of the sliding sleeve seat and the first threaded seat are respectively slidably connected with the inner walls of the two sliding grooves.
[0018] As a further description of the above technical solution:
[0019] And the same centering device is connected between the two brackets, the centering device includes a bottom plate and an embedded block, a second moving groove is formed in the embedded block, two second threaded seats are slidably connected in the second moving groove, and the same second double-threaded rod is threadedly connected between the two second threaded seats. One end of the second double-threaded rod is connected with a rotating rod, one end of the rotating rod is connected with a turntable, the top of the second threaded seat is connected with a connecting block, the top of the connecting block is connected with a connecting plate, and one side of the connecting plate is hinged with a deviation correcting plate.
[0020] As a further description of the above technical solution:
[0021] Both sides of the embedded block and both sides of the bottom plate are respectively connected with one side of the two brackets, one end of the second double-threaded rod is rotatably connected with one side of the inner wall of the second moving groove, and the end of the rotating rod away from the second double-threaded rod extends out of the second moving groove and penetrates one side of one of the support plates.
[0022] As a further description of the above technical solution:
[0023] Two stroke grooves are formed at the top of the bottom plate, and stroke blocks are slidably connected in the stroke grooves. The top of the stroke blocks is connected to the bottom of the deviation rectifying plate.
[0024] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are as follows:
[0025] 1. In the present invention, by arranging a cleaning device, the ejector rod of the cylinder drives the connecting frame to move downward, so that the connecting frame drives the support plate to move downward, so that the support plate drives the connecting plate to move downward. Furthermore, the connecting plate drives the cleaning plate at the bottom to move downward through the sliding rod. When the connecting plate continues to move downward, the connecting plate compresses the first spring, causing the first spring to generate a resilience force. After one cutting is completed, the cylinder drives the support plate to move upward through the connecting frame, and then the connecting plate moves upward. By the top of the connecting plate contacting the stop block, the stop block applies a force to the connecting plate through the limit block, and then the connecting plate moves to one side. Furthermore, the connecting plate drives the cleaning plate at the bottom to move to one side through the sliding rod, so that the cleaning plate scrapes the waste chips on the surface of the metal plate and drops from the cutting groove for collection, and smooths the burrs perpendicular to the metal plate to avoid the danger of burrs scratching people.
[0026] 2. In the present invention, by arranging a fixing device, when the support plate moves downward, it drives the support plate to move, so that the support plate drives the fixing block in the adjustment groove to move downward, and then the fixing block drives the support rod to move downward, so that the support rod drives the fixing plate to move downward, and then the fixing plate contacts both sides of the surface of the metal plate. By continuously moving, the fixing block stretches the third spring, and the third spring generates a resilience force to tightly fix the metal plate, thus avoiding the movement of the metal plate during cutting and affecting the cutting accuracy.
[0027] 3. In the present invention, by arranging a centering device, by rotating the turntable, the turntable drives the second double-threaded rod to rotate through the rotating rod, and then the second double-threaded rod drives the second threaded seat to move, so that the second threaded seat drives the connecting plate to move through the connecting block, and then the connecting plate drives the deviation rectifying plate to move, so that the deviation rectifying plates on both sides form a guiding channel, thereby centering and rectifying the incoming metal plate to avoid the deviation of the metal plate and affecting the cutting and fixing effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 is a schematic three-dimensional structure diagram of a cutting device for processing high thermal conductivity rolled metal parts proposed by the present invention;
[0029] Figure 2 is a schematic structural diagram of a conveying module of a cutting device for processing high thermal conductivity rolled metal parts proposed by the present invention;
[0030] Figure 3 is a schematic structural diagram of the bottom of a cylinder of a cutting device for processing high thermal conductivity rolled metal parts proposed by the present invention;
[0031] Figure 4 Schematic structural diagram of a cleaning device for a cutting device used in the processing of high - thermal - conductivity rolled metal parts proposed by the present invention;
[0032] Figure 5 For a cutting device used in the processing of high - thermal - conductivity rolled metal parts proposed by the present invention Figure 4 Enlarged structural diagram of part A in;
[0033] Figure 6 Schematic structural diagram of a fixing device for a cutting device used in the processing of high - thermal - conductivity rolled metal parts proposed by the present invention;
[0034] Figure 7 Schematic structural diagram of a centering device for a cutting device used in the processing of high - thermal - conductivity rolled metal parts proposed by the present invention;
[0035] Figure 8 Schematic structural diagram of a bottom plate of a cutting device used in the processing of high - thermal - conductivity rolled metal parts proposed by the present invention.
[0036] Legend:
[0037] 1. Protection box; 2. Cylinder; 3. Bracket; 4. Linear module; 5. Cutting module; 6. First conveying module; 7. Cleaning device; 701. Support plate; 702. Connecting plate; 703. Activity groove; 704. Cleaning plate; 705. Stopper; 706. Limit block; 707. Counterweight; 708. First limit plate; 709. Slide bar; 710. First spring; 711. Moving block; 712. First moving groove; 713. Support rod; 714. Second spring; 8. Fixing device; 801. Support plate; 802. Sliding groove; 803. Adjusting groove; 804. Motor; 805. Second limit plate; 806. Support rod; 807. First thread seat; 808. Fixing plate; 809. First double - threaded rod; 810. Limit rod; 811. Slide sleeve seat; 812. Fixed block; 813. Third spring; 9. Centering device; 901. Second moving groove; 902. Embedded block; 903. Connecting block; 904. Connecting plate; 905. Second thread seat; 906. Second double - threaded rod; 907. Deviation - correcting plate; 908. Travel block; 909. Rotating rod; 910. Turntable; 911. Bottom plate; 912. Travel groove; 10. Second conveying module; 11. Cutting plate; 12. Cutting groove; 13. Connecting frame. Detailed implementation manners
[0038] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0039] Please refer to Figures 1-8 , the present invention provides a technical solution: a cutting device for processing high - thermal - conductivity rolled metal parts, including two brackets 3, and a same protective box 1 is connected to the tops of the two brackets 3. A cylinder 2 is fixedly installed on the top of the protective box 1. The ejector rod of the cylinder 2 penetrates through the top of the protective box 1 and is connected to a connecting frame 13. Two cleaning devices 7 are connected to the bottom of the connecting frame 13. The cleaning device 7 includes a connecting plate 702 and two stoppers 705. An activity groove 703 is formed in the connecting plate 702. First moving grooves 712 are formed on both sides of the inner wall of the activity groove 703. A moving block 711 is slidably connected in the first moving groove 712. A same support plate 701 is connected between the two moving blocks 711. Sleeves are embedded on both sides of the connecting plate 702, and a sliding rod 709 is slidably connected in the sleeve. A same cleaning plate 704 is connected to the bottoms of the two sliding rods 709. A first limiting plate 708 is connected to the top of the sliding rod 709. A first spring 710 is sleeved on the outer wall of the sliding rod 709. The top of the stopper 705 is in contact with a limiting block 706, and a counterweight 707 is connected to one side of the stopper 705. The top of the support plate 701 is connected to the bottom of the connecting frame 13, and the outer wall of the support plate 701 is in contact with and slidably connected to the inner wall of the activity groove 703. One side of the stopper 705 is rotatably connected to one side of the inner wall of the protective box 1, and one side of the limiting block 706 is connected to one side of the inner wall of the protective box 1. Two ends of the first spring 710 are respectively connected to the bottom of the connecting plate 702 and the top of the cleaning plate 704. A through - hole is formed in the moving block 711, and a support rod 713 is slidably connected in the through - hole. Two ends of the support rod 713 are respectively connected to both sides of the inner wall of the first moving groove 712. A second spring 714 is sleeved on the outer wall of the support rod 713. Two ends of the second spring 714 are respectively connected to one side of the moving block 711 and one side of the inner wall of the first moving groove 712. A first conveying module 6 and a second conveying module 10 are respectively arranged between the two brackets 3. A same cutting plate 11 is connected between the two brackets 3. A cutting groove 12 is formed in the cutting plate 11. A linear module 4 is connected to the bottom of the cutting plate 11. A cutting module 5 is connected to the moving part of the linear module 4. The cutting knife of the cutting module 5 extends into the cutting groove 12.
[0040] The specific implementation method is as follows: By setting up the cleaning device 7, the ejector rod of the air cylinder 2 drives the connecting frame 13 to move downward, so that the connecting frame 13 drives the support plate 701 at the bottom to move downward, the support plate 701 drives the connecting plate 702 to move downward, and further the connecting plate 702 drives the sliding rod 709 and the first spring 710 to move downward, so that the sliding rod 709 drives the cleaning plate 704 at the bottom to move downward. When the connecting plate 702 continues to move downward, the connecting plate 702 squeezes the first spring 710, causing the first spring 710 to generate a resilient force. After one cutting is completed, the ejector rod of the air cylinder 2 drives the connecting frame 13 to move upward, so that the connecting frame 13 drives the support plate 701 to move upward, and further the connecting plate 702 to move upward. By the top of the connecting plate 702 contacting the stopper 705, the stopper 705 applies a force to the connecting plate 702 through the limiting block 706, so that the connecting plate 702 moves to one side, and further the connecting plate 702 drives the cleaning plate 704 at the bottom to move to one side through the sliding rod 709, so that the cleaning plate 704 scrapes the waste chips on the surface of the metal plate and drops them from the cutting groove 12 for collection, and smooths the burrs perpendicular to the metal plate to avoid the danger of scratching personnel due to the existence of burrs. By setting the first spring 710, due to the resilient force of the first spring 710, when the connecting plate 702 moves upward, the cleaning plate 704 continues to fit with the surface of the metal plate through the resilient force of the first spring 710. By the stopper 705 rotating inside the protective box 1, when the connecting plate 702 moves downward and contacts the stopper 705, the stopper 705 rotates, thus preventing the connecting plate 702 from moving during the downward movement process and affecting stability. By setting the counterweight 707, after the connecting plate 702 moves downward and disengages from the stopper 705, the counterweight 707 drives the stopper 705 to reset, so as to ensure that the stopper 705 applies a force to the connecting plate 702 when the connecting plate 702 moves upward. By setting the second spring 714, when the connecting plate 702 moves, the second spring 714 is compressed, so that the second spring 714 generates a resilient force. Further, after the connecting plate 702 and the stopper 705 are misaligned, the second spring 714 rebounds to drive the connecting plate 702 to reset.
[0041] One side of the support plate 701 is connected with a fixing device 8. The fixing device 8 includes a support plate 801. An adjustment groove 803 is formed in the support plate 801. Sliding grooves 802 are formed on both sides of the inner wall of the adjustment groove 803. Two fixing blocks 812 are slidably connected in the adjustment groove 803. One side of the fixing block 812 is connected with a first threaded seat 807. The same first double-threaded rod 809 is threadedly connected between the other two first threaded seats 807. Another sliding sleeve is embedded in the fixing block 812. A support rod 806 is slidably connected in the other sliding sleeve. The top of the support rod 806 is connected with a second limiting plate 805. The bottom of the support rod 806 is connected with a fixing plate 808. A third spring 813 is sleeved on the outer wall of the support rod 806. A motor 804 is fixedly installed on one side of the support plate 801. The output shaft of the motor 804 extends into one of the sliding grooves 802. The output shaft of the motor 804 is connected with one end of the first double-threaded rod 809. The other end of the first double-threaded rod 809 is rotatably connected with one side of the inner wall of the sliding groove 802. One side of the support plate 801 is connected with one side of the support plate 701. The two ends of the third spring 813 are respectively connected to the bottom of the second limiting plate 805 and the top of the fixing block 812. The other side of the fixing block 812 is connected with a sliding sleeve seat 811. The same limiting rod 810 is slidably connected between the two sliding sleeve seats 811. The two ends of the limiting rod 810 are respectively connected to both sides of the inner wall of the other sliding groove 802. The outer walls of the sliding sleeve seat 811 and the first threaded seat 807 are respectively slidably connected with the inner walls of the two sliding grooves 802.
[0042] The specific implementation method is as follows: By setting the fixing device 8, the first double-threaded rod 809 is driven to rotate by the motor 804. Since there are two threaded sections with opposite directions on the outer wall of the first double-threaded rod 809, the first double-threaded rod 809 drives the two first threaded seats 807 to move towards each other. Further, the first threaded seats 807 drive the fixing blocks 812 to move, so that the distance between the two fixing blocks 812 can be adjusted to meet metal plates of different width dimensions. Subsequently, during the downward movement of the support plate 701, the support plate 801 is driven to move, so that the support plate 801 drives the fixing blocks 812 in the adjustment groove 803 to move downward. Further, the fixing blocks 812 drive the support rods 806 to move downward, so that the support rods 806 drive the fixing plates 808 to move downward. Further, the fixing plates 808 contact both sides of the surface of the metal plate. By continuously moving, the fixing blocks 812 stretch the third spring 813, so that the third spring 813 generates a restoring force to tightly fix the metal plate by the fixing plates 808, thereby preventing the metal plate from moving during cutting and affecting the accuracy of cutting. By setting the limiting rod 810, the sliding sleeve seat 811 is driven by the fixing block 812 to slide on the outer wall of the limiting rod 810, so that the fixing block 812 is prevented from shifting during movement and causing jamming to affect the operation.
[0043] Moreover, the same centering device 9 is connected between the two brackets 3. The centering device 9 includes a bottom plate 911 and an embedding block 902. A second moving groove 901 is formed in the embedding block 902. Two second threaded seats 905 are slidably connected in the second moving groove 901. The same second double-threaded rod 906 is threadedly connected between the two second threaded seats 905. One end of the second double-threaded rod 906 is connected to a rotating rod 909. One end of the rotating rod 909 is connected to a turntable 910. The top of the second threaded seat 905 is connected to a connecting block 903. The top of the connecting block 903 is connected to a connecting plate 904. One side of the connecting plate 904 is hinged to a deviation-correcting plate 907. Both sides of the embedding block 902 and both sides of the bottom plate 911 are respectively connected to one side of the two brackets 3. One end of the second double-threaded rod 906 is rotatably connected to one side of the inner wall of the second moving groove 901. One end of the rotating rod 909 away from the second double-threaded rod 906 extends out of the second moving groove 901 and penetrates through one side of one of the support plates 701. Two stroke grooves 912 are formed in the top of the bottom plate 911. A stroke block 908 is slidably connected in the stroke groove 912. The top of the stroke block 908 is connected to the bottom of the deviation-correcting plate 907.
[0044] The specific implementation method is as follows: By setting the centering device 9, turning the crank handle causes the crank handle to drive the turntable 910 to rotate. Subsequently, the turntable 910 drives the rotating rod 909 to rotate, and the rotating rod 909 drives the second double-threaded rod 906 to rotate. Then, since the outer wall of the second double-threaded rod 906 is also provided with two threaded segments with opposite directions, the second double-threaded rod 906 drives the two second threaded seats 905 to move towards each other. Thus, the second threaded seats 905 drive the connecting plate 904 to move through the connecting blocks 903. Furthermore, the connecting plate 702 drives the deviation-correcting plate 907 to move, so that the two deviation-correcting plates 907 on both sides form guiding channels with different sizes, thereby centering and correcting the incoming metal plate to avoid the offset of the metal plate affecting the cutting and fixing effect. A driving machine, a lead screw, and a lead screw seat are provided in the linear module 4. The driving machine drives the lead screw to rotate, and then the lead screw drives the lead screw seat to move, so that the lead screw seat drives the cutting module 5 to move. Then, the driving part in the cutting module 5 drives the cutting tool to rotate to cut the metal plate. This technology is an existing technology and does not need to be described in detail.
[0045] Working principle: When in use, place the metal plate on top of the bottom plate 911, and then rotate the turntable 910. The turntable 910 drives the second double-threaded rod 906 to rotate, and further drives the two second threaded seats 905 to move towards each other. Thus, the second threaded seats 905 drive the connecting block 903 to move, causing the two connecting blocks 903 to drive the connecting plate 904 to move, and further driving the connecting plate 904 to drive the deviation rectifying plate 907 to move. By the travel block 908 on one side of the deviation rectifying plate 907 sliding in the travel groove 912, the deviation rectifying plate 907 forms a guiding inclined plane that conforms to the width of the metal plate, and then guides the metal plate to be centered, avoiding the deviation of the metal plate from affecting the subsequent fixing effect. Then, the second conveying module 10 drives the metal plate to move and moves it to the cutting module 5. Then, the ejector rod of the cylinder 2 drives the connecting frame 13 to move downward, causing the connecting frame 13 to drive the support plate 701 to move downward, and the support plate 701 drives the connecting plate 702 to move downward. Further, the connecting plate 702 drives the cleaning plate 704 at the bottom to move downward through the sliding rod 709. During the downward movement of the connecting plate 702, it drives the support plate 801 to move downward, causing the support plate 801 to drive the fixing block 812 in the adjustment groove 803 to move downward. Further, the fixing block 812 drives the support rod 806 to move downward, and the support rod 806 drives the fixing plate 808 to move downward, so that the fixing plate 808 contacts both sides of the metal plate surface, and then fixes both sides of the metal plate, avoiding the displacement of the metal plate due to cutting vibration during cutting, thereby affecting the cutting accuracy. Subsequently, when a cutting is completed, the cylinder 2 drives the connecting frame 13 to move upward, and the connecting frame 13 drives the support plate 701 to move upward. Then, the support plate 701 drives the connecting plate 702 to move upward through the moving block 711. Subsequently, the top of the connecting plate 702 contacts the inclined surface of the stopper 705, and the stopper 705 is limited by the limit block 706. Thus, the stopper 705 squeezes the connecting plate 702 and makes it move to one side, causing the connecting plate 702 to drive the sliding rod 709 to move, and the sliding rod 709 drives the cleaning plate 704 at the bottom to move to one side, so that the cleaning plate 704 scrapes the waste chips and flattens the burrs perpendicular to the metal plate, avoiding the danger of the burrs scratching people. Finally, the cut metal plate is conveyed and collected by the first conveying module 6.
[0046] In the present invention, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance; the term "plurality" means two or more unless otherwise clearly defined. The terms "installation", "connection", "connection", "fixation" and other terms should be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "connection" can be a direct connection or an indirect connection through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0047] The above are only the preferred specific embodiments of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, making equivalent substitutions or changes should be covered within the protection scope of the present invention.
Claims
1. A cutting device for processing high - thermal - conductivity rolled metal parts, comprising two brackets (3), characterized in that, Moreover, the tops of two brackets (3) are connected to the same protective box (1). A cylinder (2) is fixedly installed on the top of the protective box (1). The ejector rod of the cylinder (2) penetrates through the top of the protective box (1) and is connected to a connecting frame (13). Two cleaning devices (7) are connected to the bottom of the connecting frame (13). The cleaning device (7) includes a connecting plate (702) and two stoppers (705). An activity groove (703) is formed in the connecting plate (702). First moving grooves (712) are formed on both sides of the inner wall of the activity groove (703). A moving block (711) is slidably connected in the first moving groove (712). A same support plate (701) is connected between the two moving blocks (711). Slide sleeves are embedded on both sides of the connecting plate (702). A slide rod (709) is slidably connected in the slide sleeve. A same cleaning plate (704) is connected to the bottoms of the two slide rods (709). A first limiting plate (708) is connected to the top of the slide rod (709). A first spring (710) is sleeved on the outer wall of the slide rod (709). The top of the stopper (705) is in contact with a limiting block (706). A counterweight (707) is connected to one side of the stopper (705).
2. The cutting device for processing high thermal conductivity rolled metal parts according to claim 1, characterized in that, The top of the support plate (701) is connected to the bottom of the connecting frame (13). The outer wall of the support plate (701) is in contact with and slidably connected to the inner wall of the activity groove (703). One side of the stopper (705) is rotatably connected to one side of the inner wall of the protective box (1). One side of the limiting block (706) is connected to one side of the inner wall of the protective box (1). The two ends of the first spring (710) are respectively connected to the bottom of the connecting plate (702) and the top of the cleaning plate (704).
3. The cutting device for processing high - thermal - conductivity drawn metal parts according to claim 1, characterized in that, A through hole is formed in the moving block (711). A support rod (713) is slidably connected in the through hole. The two ends of the support rod (713) are respectively connected to both sides of the inner wall of the first moving groove (712). A second spring (714) is sleeved on the outer wall of the support rod (713). The two ends of the second spring (714) are respectively connected to one side of the moving block (711) and one side of the inner wall of the first moving groove (712).
4. The cutting device for processing high - thermal - conductivity drawn metal parts according to claim 1, characterized in that, Moreover, a first conveying module (6) and a second conveying module (10) are respectively arranged between the two brackets (3). A same cutting plate (11) is connected between the two brackets (3). A cutting groove (12) is formed in the cutting plate (11). A linear module (4) is connected to the bottom of the cutting plate (11). A cutting module (5) is connected to the moving part of the linear module (4). The cutting knife of the cutting module (5) extends into the cutting groove (12).
5. The cutting device for processing high - thermal - conductivity drawn metal parts according to claim 1, characterized in that, One side of the support plate (701) is connected with a fixing device (8). The fixing device (8) includes a support plate (801). An adjustment groove (803) is formed in the support plate (801). Sliding grooves (802) are formed on both sides of the inner wall of the adjustment groove (803). Two fixing blocks (812) are slidably connected in the adjustment groove (803). One side of the fixing block (812) is connected with a first threaded seat (807). The same first double-threaded rod (809) is threadedly connected between the other two first threaded seats (807). Another sliding sleeve is embedded in the fixing block (812). A support rod (806) is slidably connected in the other sliding sleeve. The top of the support rod (806) is connected with a second limiting plate (805). The bottom of the support rod (806) is connected with a fixing plate (808). A third spring (813) is sleeved on the outer wall of the support rod (806). A motor (804) is fixedly installed on one side of the support plate (801).
6. The cutting device for processing high thermal conductivity extended metal parts according to claim 5, characterized in that The output shaft of the motor (804) extends into one of the sliding grooves (802). The output shaft of the motor (804) is connected with one end of the first double-threaded rod (809). The other end of the first double-threaded rod (809) is rotatably connected with one side of the inner wall of the sliding groove (802). One side of the support plate (801) is connected with one side of the support plate (701). The two ends of the third spring (813) are respectively connected to the bottom of the second limiting plate (805) and the top of the fixing block (812).
7. A cutting device for processing a highly thermally conductive rolled metal part according to claim 5, characterized in that, The other side of the fixing block (812) is connected with a sliding sleeve seat (811). The same limiting rod (810) is slidably connected between the two sliding sleeve seats (811). The two ends of the limiting rod (810) are respectively connected to both sides of the inner wall of the other sliding groove (802). The outer walls of the sliding sleeve seat (811) and the first threaded seat (807) are respectively slidably connected with the inner walls of the two sliding grooves (802).
8. The cutting device for processing high thermal conductivity rolled metal parts according to claim 1, characterized in that, The same centering device (9) is connected between the two brackets (3). The centering device (9) includes a bottom plate (911) and an embedding block (902). A second moving groove (901) is formed in the embedding block (902). Two second threaded seats (905) are slidably connected in the second moving groove (901). The same second double-threaded rod (906) is threadedly connected between the two second threaded seats (905). One end of the second double-threaded rod (906) is connected with a rotating rod (909). One end of the rotating rod (909) is connected with a turntable (910). The top of the second threaded seat (905) is connected with a connecting block (903). The top of the connecting block (903) is connected with a connecting plate (904). One side of the connecting plate (904) is hinged with a deviation-correcting plate (907).
9. The cutting device for processing a highly thermally conductive drawn metal part according to claim 8, characterized in that, Both sides of the embedding block (902) and both sides of the bottom plate (911) are respectively connected with one side of the two brackets (3). One end of the second double-threaded rod (906) is rotatably connected with one side of the inner wall of the second moving groove (901). The end of the rotating rod (909) far from the second double-threaded rod (906) extends out of the second moving groove (901) and penetrates through one side of one of the support plates (701).
10. The cutoff device for processing high - thermal - conductivity drawn metal parts according to claim 8, characterized in that, Two stroke grooves (912) are formed at the top of the bottom plate (911), and a stroke block (908) is slidably connected in the stroke groove (912). The top of the stroke block (908) is connected to the bottom of the deviation rectifying plate (907).
Citation Information
Patent Citations
Metal plate cutting device
CN118046039A