Laser cutting device for metal forge piece production

The metal plate is fixed by clamping plates and L-shaped rotary blocks, combined with heat dissipation and vibration components, and the problem of metal liquid splashing and unloading during laser cutting is solved, and the processing efficiency and equipment life are improved.

CN120421773AActive Publication Date: 2025-08-05XUZHOU JIAJING CONSTR MASCH MFG CO LTD

Patent Information

Application Number
CN202510930248.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-07
Publication Date
2025-08-05
Estimated Expiration
2045-07-07

AI Technical Summary

Technical Problem

The splash of metal liquid during laser cutting leads to poor connection density, affecting the life of the laser cutting head, and it is difficult to automatically discharge the hollow workpiece after cutting, affecting the processing efficiency.

Method used

A device including a clamp, an L-shaped rotary block, a hydraulic block and an electric cylinder is designed to fix the metal plate and avoid horizontal movement; a heat dissipation component is provided to protect the laser cutter; and a vibration component is used for unloading equipment to vibrate iron filings to extend their service life.

Benefits of technology

It realizes stable fixation of metal plates during the cutting process, protects the laser cutter from high temperatures, and improves processing efficiency and service life of unloading equipment.

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Abstract

The invention discloses a laser cutting device for metal forging production, and relates to the technical field of automobile part manufacturing. The laser cutting device for metal forge piece production comprises a supporting seat, an outer frame is fixedly connected to the top of the supporting seat, and side supports are fixedly connected to the tops of the two sides of the outer frame; a first hydraulic block is fixedly connected to the outer side of the side support, the side face of the first hydraulic block is fixedly connected with the side face of a second hydraulic block through a first hose, a first rack is movably connected to the front side of the second hydraulic block, second fixing blocks are fixedly connected to the tops of the two sides of the outer frame, first rotating shafts are rotationally connected into the second fixing blocks, and first gears are fixedly connected to the outer sides of the first rotating shafts. The outer side of the first rotating shaft is fixedly connected with an L-shaped rotating block, and the second hydraulic block is movably connected with the clamping plate through a transmission piece. When the laser cutting device for metal forge piece production is used, an electric air cylinder is started, an L-shaped rotating block is made to rotate, a clamping plate is made to move downwards, a metal plate is fixed, and horizontal movement of the metal plate is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of laser cutting, in particular to a laser cutting device for producing metal forgings. Background Art

[0002] A high-power density laser beam is used to irradiate the material to be cut, so that the material is quickly heated to the vaporization temperature and evaporated to form holes. As the beam moves across the material, the holes continuously form a very narrow slit (such as about 0.1mm) to complete the cutting of the material. However, perforation is required before laser cutting, and then lateral movement cutting is performed. However, during the perforation process, metal liquid will splash. After the metal liquid splashes onto the surface of the metal sheet, it will connect with the surface of the metal sheet, but the connection is poor. Even so, if the laser emission head moving at a low distance collides with this, the life of the laser cutting head will be affected, and in severe cases, the laser cutting head will be damaged. Moreover, after the processing is completed, the hollow workpiece will be hung on the sharp part of the support and the metal slag at the sharp part, making it difficult to automatically unload the material, affecting the processing efficiency.

[0003] Chinese patent CN118768765A, authorized and announced on October 15, 2024, discloses a laser cutting device for metal forging production, which includes a mounting frame, and also includes: a mobile cutting mechanism, which is installed on the mounting frame and is used for mobile cutting of metal plates; a protrusion processing mechanism, which is installed on the mobile cutting mechanism and is used for processing cutting waste, and the protrusion processing mechanism includes a mounting ring, the outer wall of the mounting ring is fixed with a cutting knife 1, and the inner wall of the mounting ring is fixed with a cutting knife 2. In the above application documents, the metal plate is prone to horizontal movement due to the action of the protrusion processing mechanism during cutting, which causes the laser cutter to lose its starting point, resulting in an abnormal cutting route, thereby affecting the yield rate. Summary of the Invention

[0004] In view of the shortcomings of the existing technology, the present invention provides a laser cutting device for metal forging production, which solves the problems raised in the above background technology. To achieve the above objectives, the present invention is implemented through the following technical solutions: A laser cutting device for metal forging production, comprising: A support seat, the top of the support seat is fixedly connected to an outer frame, the inner part of the outer frame is movably connected to a unloading device, the tops of the left and right sides of the outer frame are fixedly connected to side brackets, and the sides of the side brackets are fixedly connected to fixed blocks 1; The outer side of the side bracket is fixedly connected to a hydraulic block 1, the top of which is movably connected to a push block 1, the side of which is fixedly connected to the side of a hydraulic block 2 via a hose 1, the bottom of which is fixedly connected to an outer frame, the front of which is movably connected to a rack 1, the tops of both sides of the outer frame are fixedly connected to fixed blocks 2, the interior of which is rotatably connected to a rotating shaft 1, the outer side of which is fixedly connected to a gear 1, which meshes with a rack 1, the outer side of which is fixedly connected to an L-shaped rotating block, and the hydraulic block 2 is movably connected to a clamping plate via a transmission member. The clamping plate is arranged so that the metal plate is fixed downward by the clamping plate before cutting, and the side of the metal plate is fixed by the L-shaped rotating block, so that the metal plate does not move horizontally during processing, thereby making the processing smoother.

[0005] Preferably, the transmission part includes hose 2, hydraulic block 3, and push block 2. The side of the hydraulic block 2 is fixedly connected to one end of the hose 2, the other end of the hose 2 is fixedly connected to the top of the hydraulic block 3, the bottom of the hydraulic block 3 is movably connected to the push block 2, the bottom of the push block 2 is fixedly connected to a splint, and the outer side of the hydraulic block 3 is fixedly connected to the inside of the L-shaped rotating block.

[0006] Preferably, the inside of the side bracket is fixedly connected to an electric cylinder, the top of the electric cylinder is fixedly connected to a laser cutter mobile device, the bottom of the laser cutter mobile device is fixedly connected to a laser cutter, the outside of the laser cutter is movably connected to a heat dissipation component, and the inside of the outer frame is movably connected to a vibration component.

[0007] Preferably, the number of the push blocks 1 is two, the number of the hydraulic blocks 1 is two, the number of the hoses 1 is four, every two hoses 1 form a group, and each group of hoses 1 is symmetrically distributed about the center line of the outer frame, the number of the hydraulic blocks 2 is four, the number of the racks 1 is four, the number of the gears 1 is four, the number of the rotating shafts 1 is four, the number of the fixed blocks 2 is eight, every two fixed blocks 2 form a group, the number of the L-shaped rotating blocks is four, the number of the hoses 2 is four, the number of the hydraulic blocks 3 is four, the number of the push blocks 2 is four, and the number of the splints is four.

[0008] Preferably, the heat dissipation assembly includes a hydraulic block four, a push block three, a push block four, a hydraulic block five, a hose three, a hydraulic block six, a rack two, a gear two, a rotating shaft two, a fixed block three, a heat dissipation nozzle, and a heat dissipation controller. The outer side of the side bracket on the right side is fixedly connected with a hydraulic block four, the top of the hydraulic block four is movably connected with a push block three, the inside of the fixed block one is fixedly connected with a hydraulic block five, the outer side of the hydraulic block five is movably connected with a push block four, the top of the hydraulic block five is fixedly connected to one end of the hose three, the other end of the hose three is fixedly connected to the side of the hydraulic block six, the rear side of the hydraulic block six is fixedly connected to the outer side of the laser cutter, the front side of the hydraulic block six is movably connected to the rack two, the front surface of the laser cutter is fixedly connected to the fixed block three, the heat dissipation nozzle is movably connected to the fixed block three through the rotating shaft two, the outer side of the rotating shaft two is fixedly connected to the gear two, the rack two is meshed with the gear two, a plurality of air outlets are provided at the bottom of the heat dissipation nozzle, and the side of the heat dissipation nozzle is fixedly connected to the heat dissipation controller. A heat dissipation component is provided to dissipate the large amount of heat generated by the laser cutter during cyclic operation, thereby protecting the laser cutter and reducing deformation of the processed parts caused by high temperature.

[0009] Preferably, the number of the fixed blocks three is two, the number of the hydraulic blocks four is two, the number of the push blocks three is two, the number of the push blocks four is two, and the number of the hydraulic blocks five is two.

[0010] Preferably, the interior of the hydraulic block five is connected to the interior of the hydraulic block six through the hose three.

[0011] Preferably, the vibration assembly includes a hose 4, a hydraulic block 7, a fixed block 4, a spherical protrusion, a fixed plate, and a circular chute. The top of the hydraulic block 5 on the left is fixedly connected to one end of the hose 4, the other end of the hose 4 is fixedly connected to the top of the hydraulic block 7, the side of the hydraulic block 7 is fixedly connected to the inner side of the outer frame, the side of the hydraulic block 7 is fixedly connected to a plurality of fixed blocks 4, the top of the fixed block 4 is movably connected to a spherical protrusion, the outer side of the spherical protrusion is slidably connected to the fixed plate through the circular chute, the inner side of the fixed plate is movably connected to the unloading device, and the outer side of the fixed block 4 is fixedly connected to the fixed plate. The vibration assembly is provided so that the serrated bar surface in the unloading device is shaken off by the vibration assembly due to the residual iron filings left by cutting, thereby extending the service life of the unloading device and making the unloading process smoother.

[0012] Preferably, the number of the fixing blocks four is ten, the number of the spherical protrusions is ten, and the number of the circular sliding grooves is ten.

[0013] Preferably, the length of the fixing plate is consistent with the length of the unloading equipment.

[0014] The present invention provides a laser cutting device for metal forging production. It has the following beneficial effects: (1) The laser cutting device for producing metal forgings starts the electric cylinder, and cooperates with push block 1, hydraulic block 1, hose 1, hydraulic block 2, rack 1, gear 1, shaft 1, L-shaped turn block, hose 2, hydraulic block 3, and push block 2 to rotate the L-shaped turn block 90 degrees, so that the clamping plate moves downward, thereby fixing the four sides and the top of the metal plate, thereby preventing the metal plate from moving and making the processing process smoother.

[0015] (2) The laser cutting device used in the production of metal forgings increases the internal pressure of hydraulic block 1, and cooperates with hydraulic block 4, push block 3, push block 4, hydraulic block 5, hose 3, hydraulic block 6, rack 2, gear 2, and shaft 2 to rotate the heat dissipation nozzle, so that the equipment automatically dissipates heat when it starts cutting, thereby protecting the laser cutter and reducing the deformation of the processed parts caused by high temperature.

[0016] (3) In the laser cutting device for producing metal forgings, the internal pressure of the hydraulic block 5 increases, and the spherical protrusion moves outward in conjunction with the hose 4, the hydraulic block 7, the spherical protrusion, and the circular slide, so that the spherical protrusion moves outward, so that the surface of the sawtooth bar in the unloading equipment is shaken off by the vibration component due to the iron chips remaining from cutting, thereby extending the service life of the unloading equipment and making the unloading process smoother. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the overall front three-dimensional structure of the present invention; Figure 2 It is a schematic diagram of the overall side three-dimensional structure of the present invention; Figure 3 It is a schematic diagram of the structure of some components of the present invention; Figure 4 For the present invention Figure 3 A in the middle is an enlarged structural diagram; Figure 5 It is a schematic structural diagram of the heat dissipation assembly of the present invention; Figure 6 For the present invention Figure 5 The enlarged structural diagram at B in the middle; Figure 7 It is a schematic structural diagram of the vibration component of the present invention; Figure 8 Schematic diagram of the internal structure of the vibration component of the present invention.

[0018] In the picture: 100, support base; 200, outer frame; 300, unloading device; 400, electric cylinder; 500, side bracket; 600, laser cutter; 700, fixing block 1; 801, push block 1; 802, hydraulic block 1; 803, hose 1; 804, hydraulic block 2; 805, rack 1; 806, gear 1; 807, rotating shaft 1; 808, fixed block 2; 809, L-shaped rotating block; 810, hose 2; 811, hydraulic block 3; 812, push block 2; 813, clamping plate; 900, heat dissipation assembly; 901, hydraulic block 4; 902, push block 3; 903, push block 4; 904, hydraulic block 5; 905, hose 3; 906, hydraulic block 6; 907, rack 2; 908, gear 2; 909, shaft 2; 910, fixed block 3; 911, heat dissipation nozzle; 912, heat dissipation controller; 1000, vibration assembly; 1001, hose four; 1002, hydraulic block seven; 1003, fixed block four; 1004, spherical bump; 1005, fixed plate; 1006, circular slide. DETAILED DESCRIPTION

[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0020] For example 1, please refer to Figure 1-Figure 4 , a laser cutting device for metal forging production, comprising: Support base 100, the top of the support base 100 is fixedly connected to the outer frame 200, the inner part of the outer frame 200 is movably connected to the unloading device 300, the unloading device 300 is provided so that the cut parts are driven to fall by the unloading device 300, the left and right tops of the outer frame 200 are fixedly connected to the side brackets 500, the sides of the side brackets 500 are fixedly connected to the fixed blocks 700, the inner part of the side brackets 500 is fixedly connected to the electric cylinder 400, the top of the electric cylinder 400 is fixedly connected to the laser cutter mobile device, the laser cutter mobile device is provided so that the laser cutter can move horizontally, the bottom of the laser cutter mobile device is fixedly connected to the laser cutter 600, the outer side of the laser cutter 600 is movably connected to the heat dissipation component 900, the inner part of the outer frame 200 is movably connected to the vibration component 1000;The outer side of the side bracket 500 is fixedly connected to a hydraulic block 1 802, and the top of the hydraulic block 1 802 is movably connected to a push block 1 801. The side of the hydraulic block 1 802 is fixedly connected to the side of the hydraulic block 2 804 through a hose 1 803. The hose 1 803 is provided to communicate the interior of the hydraulic block 1 802 with the interior of the hydraulic block 2 804. The bottom of the hydraulic block 2 804 is fixedly connected to the outer frame 200, and the front side of the hydraulic block 2 804 is movably connected to a rack 1 805. The tops of both sides of the outer frame 200 are fixedly connected to fixed blocks 2 808, and the fixed blocks 2 808 are rotatably connected to the rotating shaft. 1, the outer side of the rotating shaft 807 is fixedly connected with a gear 806, which is engaged with the rack 805, and the outer side of the rotating shaft 807 is fixedly connected with an L-shaped rotating block 809. The L-shaped rotating block 809 is set so that the metal plate can be loosened by the L-shaped rotating block 809 when the equipment completes processing, thereby not affecting the feeding and unloading. The hydraulic block 2 804 is movably connected to the clamping plate 813 through a transmission member. The transmission member includes a hose 2 810, a hydraulic block 3 811, and a push block 2 812. The side of the hydraulic block 2 804 is fixedly connected to one end of the hose 2 810, and the other end of the hose 2 810 is fixedly connected. The end is fixedly connected to the top of the hydraulic block 3 811, the bottom of the hydraulic block 3 811 is movably connected to the push block 2 812, the bottom of the push block 2 812 is fixedly connected to the clamping plate 813, the outer side of the hydraulic block 3 811 is fixedly connected to the inner side of the L-shaped rotating block 809, the number of the push block 1 801 is two, the number of the hydraulic block 1 802 is two, the number of the hose 1 803 is four, every two hoses 1 803 form a group, and each group of hoses 1 803 is symmetrically distributed about the center line of the outer frame 200, the number of the hydraulic block 2 804 is four, the number of the rack 1 805 is four, and the gear 1 80 There are four 6, four rotating shafts 1 807, eight fixed blocks 2 808, two fixed blocks 2 808 forming a group, four L-shaped rotating blocks 809, four hoses 2 810, four hydraulic blocks 3 811, four push blocks 2 812, and four clamping plates 813. The clamping plates 813 are positioned so that the metal sheet is held downward by them before cutting. At the same time, the sides of the metal sheet are secured by the L-shaped rotating blocks 809, preventing the metal sheet from moving horizontally during processing, thereby facilitating a smoother process.

[0021] During use, the electric cylinder 400 is started to move the laser cutter 600 downward, the push block 1 801 is moved downward, the internal pressure of the hydraulic block 1 802 is increased, and the internal pressure of the hydraulic block 1 802 is transmitted to the inside of the hydraulic block 2 804 through the hose 1 803, so that the internal pressure of the hydraulic block 2 804 is increased, the rack 1 805 moves outward, the gear 1 806 rotates, and the L-shaped rotating block 809 is rotated ninety degrees, so that the two sides of the metal plate are clamped. At the same time, the excess pressure inside the hydraulic block 2 804 is transmitted to the inside of the hydraulic block 3 811 through the hose 2 810, so that the internal pressure of the hydraulic block 3 811 is increased, the push block 2 812 is moved downward, the clamping plate 813 is moved downward, and the top of the metal plate is fixed, so that the metal plate does not move horizontally during the processing, thereby making the processing process smoother.

[0022] For example 2, please refer to Figures 1-6On the basis of the first embodiment, the heat dissipation assembly 900 includes a hydraulic block 4 901, a push block 3 902, a push block 4 903, a hydraulic block 5 904, a hose 3 905, a hydraulic block 6 906, a rack 2 907, a gear 2 908, a rotating shaft 2 909, a fixed block 3 910, a heat dissipation nozzle 911, and a heat dissipation controller 912. The outer side of the right side bracket 500 is fixedly connected with the hydraulic block 4 901, and the top of the hydraulic block 4 901 is movably connected with the push block 3 902. The push block 3 902 is provided so that when the push block 3 902 moves, it can drive the push block 902 to move. The fourth block 903 moves, the interior of the fixed block 700 is fixedly connected to the fifth hydraulic block 904, the outer side of the fifth hydraulic block 904 is movably connected to the fourth pusher block 903, the top of the fifth hydraulic block 904 is fixedly connected to one end of the third hose 905, the other end of the third hose 905 is fixedly connected to the side of the sixth hydraulic block 906, the interior of the fifth hydraulic block 904 is connected to the interior of the sixth hydraulic block 906 through the third hose 905, the rear side of the sixth hydraulic block 906 is fixedly connected to the outer side of the laser cutter 600, and the front side of the sixth hydraulic block 906 is movably connected to the second rack 906. 07. The front surface of the laser cutter 600 is fixedly connected with a fixed block 3 910. The heat dissipation nozzle 911 is movably connected to the fixed block 3 910 through the rotating shaft 2 909. The heat dissipation nozzle 911 is set to dissipate heat when the laser cutter 600 is working. When the laser cutter 600 stops working, the heat dissipation nozzle 911 automatically retracts. The outer side of the rotating shaft 2 909 is fixedly connected with the gear 2 908. The rack 2 907 is engaged with the gear 2 908. The bottom of the heat dissipation nozzle 911 is provided with multiple air outlets. The air outlets are set to dissipate heat of the laser cutter 600. The laser head is cooled by the cold air blown out of the air outlet. A heat dissipation controller 912 is fixedly connected to the side of the heat dissipation nozzle 911. There are two fixed blocks 910, two hydraulic blocks 901, two push blocks 902, two push blocks 903, and two hydraulic blocks 904. A heat dissipation component 900 is provided to dissipate the large amount of heat generated by the laser cutter 600 during cyclic operation, thereby protecting the laser cutter 600 and reducing deformation of the processed parts caused by high temperature.

[0023] During use, based on Example 1, when the internal pressure of hydraulic block 1 802 increases, the internal pressure of hydraulic block 4 901 increases, pushing block 3 902 outward, pushing block 4 903 inward, increasing the internal pressure of hydraulic block 5 904, and transmitting the internal pressure of right hydraulic block 5 904 to hydraulic block 6 906 through hose 3 905, increasing the internal pressure of hydraulic block 6 906, pushing rack 2 907 outward, rotating gear 2 908, rotating shaft 2 909, and rotating heat dissipation nozzle 911 along the direction of rotating shaft 2 909. At this time, the heat dissipation controller 912 is started to blow cold air to the laser cutter 600, so that the large amount of heat generated by the laser cutter 600 during the cyclic operation is blown away by the heat dissipation component 900, thereby protecting the laser cutter 600 and reducing the deformation of the processed part caused by high temperature.

[0024] For example three, please refer to Figures 1-8 On the basis of the first and second embodiments, the vibration assembly 1000 includes a hose 4 1001, a hydraulic block 7 1002, a fixed block 4 1003, a spherical bump 1004, a fixed plate 1005, and a circular chute 1006. The top of the left hydraulic block 5 904 is fixedly connected to one end of the hose 4 1001, and the other end of the hose 4 1001 is fixedly connected to the top of the hydraulic block 7 1002. The hose 4 1001 is provided so that the interior of the hydraulic block 7 1002 is communicated with the interior of the left hydraulic block 5 904. The side of the hydraulic block 7 1002 is fixedly connected to the inner side of the outer frame 200. The side of the hydraulic block 7 1002 is fixedly connected to a plurality of fixed blocks 4 1003. The top of the fixed block 4 1003 is movably connected to the spherical bump 1004. The spherical bump 1004 is provided so that the sawtooth bar can be connected with the spherical bump. The spherical protrusion 1004 collides, and the outer side of the spherical protrusion 1004 is slidably connected to the fixed plate 1005 through the circular slide groove 1006. The circular slide groove 1006 is provided so that the spherical protrusion 1004 can slide along the direction of the circular slide groove 1006. The inner side of the fixed plate 1005 is movably connected with the unloading device 300, and the outer side of the fixed block four 1003 is fixedly connected with the fixed plate 1005. The length of the fixed plate 1005 is consistent with the length of the unloading device 300. The number of the fixed block four 1003 is ten, the number of the spherical protrusions 1004 is ten, and the number of the circular slide grooves 1006 is ten. A vibration component 1000 is provided so that the surface of the serrated bar in the unloading device 300 is shaken off by the vibration component 1000 due to the residual iron filings due to cutting, thereby extending the service life of the unloading device 300 and making the unloading process smoother.

[0025] During use, based on Example 1 and Example 2, the internal pressure of the left hydraulic block five 904 increases, so that the internal pressure of the left hydraulic block five 904 is transmitted to the inside of the hydraulic block seven 1002 through the hose four 1001, so that the internal pressure of the hydraulic block seven 1002 increases, and the spherical protrusion 1004 moves outward. At this time, the unloading equipment 300 is started. At this time, the serrated bar in the unloading equipment 300 rotates and collides with the spherical protrusion 1004, causing the serrated bar to vibrate, so that the iron slag generated during the processing is shaken off from the surface of the serrated bar, thereby extending the service life of the unloading equipment 300 and making the unloading process smoother.

[0026] The above are only preferred specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with this technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solutions and inventive concepts of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A laser cutting device for metal forging production, characterized in that: include: A support seat, the top of the support seat is fixedly connected to an outer frame, the inner part of the outer frame is movably connected to a unloading device, the tops of the left and right sides of the outer frame are fixedly connected to side brackets, and the sides of the side brackets are fixedly connected to fixed blocks 1; The outer side of the side bracket is fixedly connected to a hydraulic block 1, the top of the hydraulic block 1 is movably connected to a push block 1, the side of the hydraulic block 1 is fixedly connected to the side of the hydraulic block 2 through a hose 1, the bottom of the hydraulic block 2 is fixedly connected to an outer frame, the front side of the hydraulic block 2 is movably connected to a rack 1, the top of both sides of the outer frame is fixedly connected to a fixed block 2, the fixed block 2 is rotatably connected to a rotating shaft 1 inside, the outer side of the rotating shaft 1 is fixedly connected to a gear 1, the gear 1 is meshed with a rack 1, the outer side of the rotating shaft 1 is fixedly connected to an L-shaped rotating block, and the hydraulic block 2 is movably connected to the splint through a transmission member.

2. A laser cutting device for metal forging production according to claim 1, characterized in that: The transmission part includes hose 2, hydraulic block 3, and push block 2. The side of the hydraulic block 2 is fixedly connected to one end of the hose 2, and the other end of the hose 2 is fixedly connected to the top of the hydraulic block 3. The bottom of the hydraulic block 3 is movably connected to the push block 2, and the bottom of the push block 2 is fixedly connected to a splint. The outer side of the hydraulic block 3 is fixedly connected to the inside of the L-shaped rotating block.

3. The laser cutting device for metal forging production according to claim 1, characterized in that: The inside of the side bracket is fixedly connected to an electric cylinder, the top of the electric cylinder is fixedly connected to a laser cutter mobile device, the bottom of the laser cutter mobile device is fixedly connected to a laser cutter, the outside of the laser cutter is movably connected to a heat dissipation component, and the inside of the outer frame is movably connected to a vibration component.

4. The laser cutting device for metal forging production according to claim 1, characterized in that: There are two push blocks 1, two hydraulic blocks 1, four hoses 1, and every two hoses 1 form a group. Each group of hoses 1 is symmetrically distributed about the center line of the outer frame. There are four hydraulic blocks 2, four racks 1, four gears 1, four rotating shafts 1, eight fixed blocks 2, and every two fixed blocks 2 form a group. There are four L-shaped rotating blocks, four hoses 2, four hydraulic blocks 3, four push blocks 2, and four splints.

5. The laser cutting device for metal forging production according to claim 3, characterized in that: The heat dissipation assembly includes a hydraulic block four, a push block three, a push block four, a hydraulic block five, a hose three, a hydraulic block six, a rack two, a gear two, a rotating shaft two, a fixed block three, a heat dissipation nozzle, and a heat dissipation controller. The outer side of the side bracket on the right side is fixedly connected with a hydraulic block four, the top of the hydraulic block four is movably connected with a push block three, the inside of the fixed block one is fixedly connected with a hydraulic block five, the outer side of the hydraulic block five is movably connected with a push block four, the top of the hydraulic block five is fixedly connected to one end of the hose three, the other end of the hose three is fixedly connected to the side of the hydraulic block six, the rear side of the hydraulic block six is fixedly connected to the outer side of the laser cutter, the front side of the hydraulic block six is movably connected to the rack two, and the front surface of the laser cutter is fixedly connected to the fixed block three. The heat dissipation nozzle is movably connected to the fixed block three through the rotating shaft two, the outer side of the rotating shaft two is fixedly connected to the gear two, the rack two is meshed with the gear two, a plurality of air outlets are provided at the bottom of the heat dissipation nozzle, and a heat dissipation controller is fixedly connected to the side of the heat dissipation nozzle.

6. The laser cutting device for metal forging production according to claim 5, characterized in that: The number of the fixed blocks three is two, the number of the hydraulic blocks four is two, the number of the push blocks three is two, the number of the push blocks four is two, and the number of the hydraulic blocks five is two.

7. The laser cutting device for metal forging production according to claim 5, characterized in that: The interior of the hydraulic block 5 is connected to the interior of the hydraulic block 6 through the hose 3.

8. The laser cutting device for metal forging production according to claim 5, characterized in that: The vibration assembly includes a hose four, a hydraulic block seven, a fixed block four, a spherical bump, a fixed plate, and a circular chute. The top of the hydraulic block five on the left is fixedly connected to one end of the hose four, and the other end of the hose four is fixedly connected to the top of the hydraulic block seven. The side of the hydraulic block seven is fixedly connected to the inner side of the outer frame. The side of the hydraulic block seven is fixedly connected to multiple fixed blocks four. The top of the fixed block four is movably connected to a spherical bump. The outer side of the spherical bump is slidably connected to the fixed plate through the circular chute. The inner side of the fixed plate is movably connected to a unloading device, and the outer side of the fixed block four is fixedly connected to a fixed plate.

9. The laser cutting device for metal forging production according to claim 8, characterized in that: The number of the fixing blocks four is ten, the number of the spherical protrusions is ten, and the number of the circular sliding grooves is ten.

10. The laser cutting device for metal forging production according to claim 8, characterized in that: The length of the fixing plate is consistent with the length of the discharge device.

Citation Information

Patent Citations

  • Laser cutting device for mechanical components

    CN112743240A

  • Hardware precision cutting equipment and method thereof

    CN115502575A

  • Circuit board laser cutting equipment

    CN118699598A

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    CN119703424A

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