Laser cutting equipment for sled production
Through the design of adaptive support and clamping mechanism, combined with slag blowing and limiting mechanism, the stability and debris cleaning problems of laser cutting equipment when supporting and fixing sled workpieces are solved, and efficient and damage-free cutting effect is achieved.
Patent Information
- Application Number
- CN202510991446.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-18
- Publication Date
- 2025-09-30
AI Technical Summary
When existing laser cutting equipment supports and fixes workpieces in sled production, especially thin workpieces, it is difficult to avoid damage to the workpiece surface caused by the serrated support plates. At the same time, the fixation is unstable, resulting in displacement and vibration of the workpiece during cutting, affecting the cutting quality and efficiency.
A laser cutting device including an adaptive support mechanism and a clamping mechanism is designed. It uses a cross triangle plate and a return spring for support, and combines a slag blowing mechanism and a limit mechanism to achieve stable fixation of the workpiece and debris cleaning, avoiding large-area contact damage. The molten debris and smoke are cleaned by the blowing component.
It achieves stable fixation and efficient cutting of the workpiece in sled production, avoids damage to the workpiece, ensures smooth and neat incisions, and improves cutting efficiency and quality.
Smart Images

Figure CN120715422A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of laser cutting, and in particular relates to laser cutting equipment for sled production. Background Art
[0002] In the production of sleds, core components such as metal frames and connectors need to be processed with high precision to ensure structural strength and sliding stability. Traditional processes mostly use stamping, sawing and other methods. The processing precision of complex and special-shaped parts is insufficient, and the cuts are prone to burrs and deformation, requiring secondary grinding, which is inefficient. Laser cutting equipment, with its high-energy-density beam, can accurately cut aluminum alloys, stainless steel and other materials for sleds. The cuts are smooth and the heat-affected zone is small. It is especially suitable for the processing of complex contours such as streamlined frames and hollow weight-reducing structures. Its non-contact processing avoids the workpiece from being deformed by force, and cooperates with the CNC system to achieve dimensional consistency of batch parts, while reducing subsequent finishing processes. In response to the demand for lightweight sleds, laser cutting can efficiently process thin-walled pipes and thin plates, taking into account both processing efficiency and material utilization, and has become a key equipment to replace traditional processes in the production of mid-to-high-end sleds.
[0003] During the sled production process, laser cutting requires as much space as possible at the bottom of the workpiece to avoid laser damage to the bottom support. Therefore, existing laser cutting equipment often supports the workpiece through serrated metal sheets. At the same time, in order to avoid displacement and vibration due to laser impact force, gas pressure or its own gravity during the cutting process, the workpiece needs to be simply fixed by a clamp. However, due to the special shape of the serrated support sheet, it is difficult to fix the workpiece with existing equipment. Fixing the workpiece on all four sides is difficult to achieve due to the support of the serrated structure, especially for thin workpieces. At the same time, fixation in the vertical direction will cause the serrated metal sheet at the bottom to damage the surface of the workpiece. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the above-mentioned prior art and provide a laser cutting device for sled production.
[0005] The technical solution adopted to solve the above technical problems is: to provide a laser cutting device for sled production, comprising a first support frame, the top of which is fixedly connected to a second support frame, the top of which is mounted a laser cutting mechanism, and the inner wall of the top of the first support frame is fixedly connected to an adaptive support mechanism and a limiting mechanism; Two clamping mechanisms are installed on the first support frame, and a group of slag blowing mechanisms are slidably connected to the two clamping mechanisms. A slag collecting guide box is fixedly connected to the bottom of the first support frame.
[0006] Furthermore, the laser cutting mechanism includes two longitudinal drive motor assemblies installed on the top of the second support frame, a support member is installed between the two longitudinal drive motor assemblies, a transverse drive motor assembly is installed on the top of the support member, a lifting drive assembly is installed on the transverse drive motor assembly, a laser generating system device is installed at the bottom of the lifting drive assembly, a cutting head assembly is installed at the bottom of the laser generating system device, and the rear end face of the lifting drive assembly is fixedly connected to a blowing assembly.
[0007] Through the above technical solution, after the board to be cut is fixed, the cutting head assembly is positioned and the program is set. The longitudinal drive motor assembly, the transverse drive motor assembly and the lifting drive assembly can respectively complete the longitudinal, transverse and vertical movement of the laser generating system device, the cutting head assembly and the blowing assembly, so as to complete the movement in multiple directions, and then the corresponding pattern can be cut on the board to be cut. Then, the blowing assembly can continuously blow the laser cutting point to blow away the molten debris and smoke generated by the cutting in time to avoid adhesion to the edge of the incision or the surface of the workpiece, ensuring that the incision is smooth and neat. At the same time, the area can also be cooled to avoid oxidation of the incision and protect the cutting head assembly.
[0008] Furthermore, the adaptive support mechanism includes a grid strip fixedly connected to the inner wall of the first support frame, the top of each intersection of the grid strip is fixedly connected to a cross storage shell, the interiors of multiple cross storage shells are slidably connected to cross sliding plates, multiple reset springs are installed between the bottoms of multiple cross sliding plates and the cross storage shells, and the tops of multiple cross sliding plates are fixedly connected to cross triangle plates.
[0009] Through the above technical solution, the board to be cut is placed in the center position of the adaptive support mechanism. At this time, the board to be cut is supported by multiple cross triangles. During cutting, the contact area between the vertex of the cross triangle and the board to be cut is very small and will not be damaged during laser cutting. At the same time, a retractable cross triangle is designed and can be reset by multiple reset springs, so that the clamping mechanism can clamp the board to be cut from the side, achieving the goal of avoiding large-area contact to complete support while also fixing the board to be cut.
[0010] Furthermore, the cross triangle plate is an integrated structure formed by merging two triangle plates, and the thickness of the two triangle plates gradually decreases from the bottom to the top.
[0011] Through the above technical solution, the two triangular plates are designed vertically, ensuring that the clamped hollow plate can be pressed down on the cross triangular plate by the oblique surface no matter from which direction it moves. At the same time, the thickness of the triangular plate gradually decreases from bottom to top, ensuring that debris will not remain on the cross triangular plate when it falls.
[0012] Furthermore, the clamping mechanism includes a driving motor device installed on the first support frame, a transmission screw assembly is arranged between the output end of the driving motor device and the other side of the first support frame, a ball transmission assembly is spirally connected to the transmission screw assembly, the tops of the two ball transmission assemblies are fixedly connected to the clamping hollow plates, the bottom ends of the two clamping hollow plates are fixedly connected to sliding limit blocks, and the two transmission screw assemblies are fixedly connected with a plastic folding sleeve corresponding to the transmission screw assembly between the sides close to each other.
[0013] Through the above technical solution, after the plate to be cut is placed, the corresponding clamping mechanism is driven. If it is a rectangular plate, it is necessary to clamp the two long sides of the rectangular plate, and drive the corresponding clamping mechanism to complete the clamping. The driving motor device drives the transmission screw assembly to rotate, and then drives the corresponding clamping hollow plates to approach each other through the two ball transmission assemblies until the clamping of the plate to be cut is completed. In the process of moving the clamped hollow plate, the clamped hollow plate will contact the inclined surface of the cross triangle plate, and the corresponding inclined surface of the clamped hollow plate will press down, and the reset spring will be compressed by the cross sliding plate. After the clamped hollow plate moves, the cross triangle plate is reset under the action of the reset spring. The plastic folding sleeve can protect the transmission screw assembly to avoid cutting debris remaining on the outer wall of the transmission screw assembly.
[0014] Furthermore, the two clamping mechanisms are distributed vertically, and the ball transmission assemblies in the two clamping mechanisms have different lengths, the thread directions on both sides of the outer wall of the transmission screw assembly are opposite, and both sides of the bottom of the clamping hollow plate are inclined structures.
[0015] Through the above technical solution, the different lengths of the ball transmission assemblies in the two clamping mechanisms ensure that the two transmission screw assemblies can rotate at an offset, and the inclined structure ensures that the clamped hollow plate can move between multiple cross triangles regardless of clamping or resetting.
[0016] Furthermore, the slag blowing mechanism includes two sliding shells slidably connected to the clamping hollow plate, the centers of the two sliding shells are fixedly connected to adjustable metal tubes, and the tail ends of the adjustable metal tubes are fixedly connected to the output air pipe.
[0017] Through the above technical solution, in the process of moving the clamping hollow plate, the two groups of slag blowing mechanisms on the clamping hollow plate in the other clamping mechanism will be continuously pushed to slide. When the two clamping hollow plates complete the clamping of the plate to be cut, the two groups of sliding slag blowing mechanisms are at both ends of the plate to be cut, and the two sliding shells of each group are on both sides of the plate to be cut. In the subsequent cutting process, the debris is blown to both sides of the plate to be cut and blocked by the clamping hollow plate. At this time, the slag blowing mechanism that slides to one side of the plate to be cut is started, and the two adjustable metal tubes begin to clean the debris near the clamping hollow plates on both sides, so that it falls into the debris collection guide box. Due to the different specifications of different plates to be cut, the blowing angle can be adjusted by the adjustable metal tube so that the debris on the plate to be cut can be completely cleaned.
[0018] Furthermore, the tops of the clamping hollow plates are each provided with strip-shaped through holes corresponding to the sliding housings.
[0019] The above technical solution ensures that the movement of the clamping hollow plate can drive the sliding shell that clamps the top of the hollow plate in another clamping mechanism, thereby moving the sliding shell to a suitable position to clean debris.
[0020] Furthermore, the limiting mechanism includes multiple limiting plates fixedly connected to the inner wall of the first support frame, and the top centers of the multiple limiting plates are each provided with a U-shaped groove corresponding to the ball transmission assembly, and the multiple limiting plates are each provided with multiple sliding grooves corresponding to the sliding limiting blocks at the intersection.
[0021] Through the above technical solution, the clamped hollow plate is limited by sliding the sliding limit block on the limit plate during the movement of the clamped hollow plate. At the same time, since the width of the sliding groove is smaller than the width of the sliding limit block, multiple limit plates can be vertically crossed and the limiting work of two vertically distributed clamping mechanisms can be completed.
[0022] The beneficial effects of the present invention are as follows: (1) The present invention places the plate to be cut at the center of the adaptive support mechanism by designing an adaptive support mechanism and a clamping mechanism. At this time, the plate to be cut is supported by multiple cross triangles. During cutting, the contact area between the apex of the cross triangle and the plate to be cut is very small and will not be damaged during laser cutting. At the same time, a retractable cross triangle is designed and can be reset by multiple reset springs, so that the clamping mechanism can clamp the plate to be cut from the side, achieving support without large-area contact while also fixing the plate to be cut, thereby ensuring the stability of subsequent cutting; (2) The present invention is designed The slag blowing mechanism will continuously push the two sets of slag blowing mechanisms on the clamping hollow plates in the other clamping mechanism to slide during the movement of the clamping hollow plates. When the two clamping hollow plates complete the clamping of the plate to be cut, the two sets of sliding slag blowing mechanisms are at both ends of the plate to be cut, and the two sliding shells of each group are on both sides of the plate to be cut. In the subsequent cutting process, the debris is blown to both sides of the plate to be cut and blocked by the clamping hollow plates. At this time, the slag blowing mechanism that slides to one side of the plate to be cut is started, and the two adjustable metal tubes begin to clean the debris near the clamping hollow plates on both sides, so that it falls into the debris collection guide box, which can completely clean the debris on the plate to be cut. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 It is a schematic cross-sectional structure diagram of the present invention; Figure 3 It is a schematic structural diagram of the laser cutting mechanism of the present invention; Figure 4 It is a partial structural schematic diagram of the present invention; Figure 5 It is a schematic structural diagram of the adaptive support mechanism of the present invention; Figure 6 This is a schematic diagram of the cross-triangular plate structure of the present invention; Figure 7 It is a schematic structural diagram of the clamping mechanism of the present invention; Figure 8 It is a partial structural diagram of the clamping mechanism of the present invention; Figure 9 yes Figure 8 A partial enlarged view of point A in the middle; Figure 10 It is a schematic structural diagram of the limiting mechanism of the present invention; Figure 11 yes Figure 10 A partial enlarged view of point B in the middle; Figure 12 This is a schematic structural diagram of the clamping state of the clamping mechanism of the present invention; Figure 13 This is a structural schematic diagram of the clamping hollow plate moving process of the present invention; Reference numerals: 1, first support frame; 2, second support frame; 3, laser cutting mechanism; 301, longitudinal drive motor assembly; 302, support member; 303, transverse drive motor assembly; 304, lifting drive assembly; 305, laser generating system device; 306, cutting head assembly; 307, air blowing assembly; 4, adaptive support mechanism; 401, grid strip plate; 402, cross storage shell; 403, cross sliding plate; 404, return spring; 4 05. Cross triangle; 5. Clamping mechanism; 501. Driving motor device; 502. Transmission screw assembly; 503. Ball transmission assembly; 504. Clamping hollow plate; 505. Sliding limit block; 506. Plastic folding sleeve; 6. Slag blowing mechanism; 601. Sliding shell; 602. Adjustable metal tube; 603. Output air pipe; 7. Limiting mechanism; 701. Limiting plate; 702. U-shaped notch; 703. Sliding notch; 8. Slag collection guide box. DETAILED DESCRIPTION
[0024] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0025] like Figure 1-Figure 3As shown, a laser cutting device for sled production in this embodiment includes a first support frame 1, the top of the first support frame 1 is fixedly connected to the second support frame 2, the top of the second support frame 2 is equipped with a laser cutting mechanism 3, the laser cutting mechanism 3 includes two longitudinal drive motor assemblies 301 installed on the top of the second support frame 2, a support member 302 is installed between the two longitudinal drive motor assemblies 301, a transverse drive motor assembly 303 is installed on the top of the support member 302, a lifting drive assembly 304 is installed on the transverse drive motor assembly 303, a laser generating system device 305 is installed at the bottom of the lifting drive assembly 304, a cutting head assembly 306 is installed at the bottom of the laser generating system device 305, and the rear end face of the lifting drive assembly 304 is fixedly connected to the blowing assembly 307. After the board to be cut is fixed, the cutting head assembly 306 is positioned and the program is set. The longitudinal drive motor assembly 301, the transverse drive motor assembly 303 and the lifting drive assembly 304 can respectively complete the longitudinal, transverse and vertical movement of the laser generating system device 305, the cutting head assembly 306 and the blowing assembly 307, so as to complete the movement in multiple directions, and then the corresponding pattern can be cut on the board to be cut. Then, the blowing assembly 307 can continuously blow air to the laser cutting point to blow away the molten debris and smoke generated by the cutting in time to avoid adhesion to the edge of the incision or the surface of the workpiece, thereby ensuring that the incision is smooth and neat. At the same time, the area can also be cooled to avoid oxidation of the incision and protect the cutting head assembly 306.
[0026] like Figures 1-6 and Figure 12 and Figure 13As shown, the inner wall of the top of the first support frame 1 is fixedly connected with an adaptive support mechanism 4 and a limiting mechanism 7, respectively. The adaptive support mechanism 4 includes a grid strip 401 fixedly connected to the inner wall of the first support frame 1, and the top of each intersection of the grid strip 401 is fixedly connected with a cross storage shell 402. The interiors of the multiple cross storage shells 402 are slidably connected with cross sliding plates 403. Multiple return springs 404 are installed between the bottoms of the multiple cross sliding plates 403 and the cross storage shells 402. The tops of the multiple cross sliding plates 403 are fixedly connected with cross triangles 405. The board to be cut is placed at the center of the adaptive support mechanism 4. At this time, the support of the board to be cut is completed by the multiple cross triangles 405. When cutting, the apex of the cross triangle 405 is The contact area with the plate to be cut is very small and will not be damaged during laser cutting. At the same time, a retractable cross triangle plate 405 is designed and can be reset by multiple reset springs 404, so that the clamping mechanism 5 can clamp the plate to be cut from the side, achieving the goal of fixing the plate to be cut while avoiding large-area contact to complete the support. The cross triangle plate 405 is an integrated structure composed of two triangle plates, and the thickness of the two triangle plates gradually decreases from bottom to top. The two triangle plates are designed vertically to ensure that no matter from which direction the clamping hollow plate 504 moves, it can press down the cross triangle plate 405 by the oblique surface. At the same time, the thickness of the triangle plate gradually decreases from bottom to top to ensure that when debris falls, it will not remain on the cross triangle plate 405.
[0027] like Figures 1-8 As shown, two clamping mechanisms 5 are installed on the first support frame 1, and the clamping mechanism 5 includes a driving motor device 501 installed on the first support frame 1, and a transmission screw assembly 502 is provided between the output end of the driving motor device 501 and the other side of the first support frame 1. A ball transmission assembly 503 is spirally connected to the transmission screw assembly 502, and the tops of the two ball transmission assemblies 503 are fixedly connected to a clamping hollow plate 504, and the bottom ends of the two clamping hollow plates 504 are fixedly connected to sliding limit blocks 505. The two transmission screw assemblies 502 are in the The plastic folding sleeve 506 corresponding to the transmission screw assembly 502 is fixedly connected between the sides close to each other. After the board to be cut is placed, the corresponding clamping mechanism 5 is driven (if it is a rectangular board, it is necessary to clamp the two long sides of the rectangular board and drive the corresponding clamping mechanism 5 to complete the clamping). The driving motor device 501 drives the transmission screw assembly 502 to rotate, and then drives the corresponding clamping hollow board 504 to approach each other through the two ball transmission assemblies 503 until the clamping work of the board to be cut is completed. In the process of moving the clamping hollow board 504, Figure 13The clamping hollow plate 504 will contact the inclined surface of the cross triangle plate 405, and the corresponding inclined surface of the clamping hollow plate 504 will press the cross triangle plate 405 down, and compress the reset spring 404 through the cross sliding plate 403. After the clamping hollow plate 504 moves, the cross triangle plate 405 is reset under the action of the reset spring 404. The plastic folding sleeve 506 can protect the transmission screw assembly 502 to prevent the cutting debris from remaining on the outer wall of the transmission screw assembly 502. The two clamping mechanisms 5 are distributed vertically, and the ball transmission assemblies 503 in the two clamping mechanisms 5 have different lengths. The thread directions on both sides of the outer wall of the transmission screw assembly 502 are opposite. Both sides of the bottom of the clamping hollow plate 504 are inclined structures. The different lengths of the ball transmission assemblies 503 in the two clamping mechanisms 5 ensure that the two transmission screw assemblies 502 can be staggered for rotation. The inclined structure ensures that the clamping hollow plate 504 can move between multiple cross triangle plates 405 regardless of clamping or resetting.
[0028] like Figures 1-12As shown, the two clamping mechanisms 5 are slidably connected to a set of slag blowing mechanisms 6, and the slag blowing mechanisms 6 include two sliding shells 601 slidably connected to the clamping hollow plates 504. The centers of the two sliding shells 601 are fixedly connected to adjustable metal tubes 602, and the tail ends of the adjustable metal tubes 602 are fixedly connected to output air pipes 603. At the same time, during the movement of the clamping hollow plates 504, the two sets of slag blowing mechanisms 6 on the clamping hollow plates 504 in the other clamping mechanism 5 will be continuously pushed to slide. When the two clamping hollow plates 504 complete the clamping of the plate to be cut, At this time, the two sets of sliding slag blowing mechanisms 6 are at both ends of the plate to be cut, and the two sliding shells 601 of each set are at both sides of the plate to be cut. In the subsequent cutting process, the debris is blown to both sides of the plate to be cut and blocked by the clamping hollow plate 504. At this time, the slag blowing mechanism 6 is started to slide to one side of the plate to be cut, and the two adjustable metal pipes 602 begin to clean the debris near the clamping hollow plates 504 on both sides, so that it falls into the debris collection guide box 8. Due to the different specifications of different plates to be cut, the blowing angle can be adjusted by the adjustable metal pipe 602 In order to completely clean the debris on the plate to be cut, the top of the clamping hollow plate 504 is provided with a strip through hole corresponding to the sliding shell 601, ensuring that the movement of the clamping hollow plate 504 can drive the sliding shell 601 on the top of the clamping hollow plate 504 in another clamping mechanism 5, and then move the sliding shell 601 to a suitable position to clean the debris. The limiting mechanism 7 includes a plurality of limiting plates 701 fixedly connected to the inner wall of the first support frame 1, and the top centers of the plurality of limiting plates 701 are each provided with a U-shaped plate corresponding to the ball transmission assembly 503. Slots 702, multiple limiting plates 701 are provided with multiple sliding slots 703 corresponding to the sliding limiting blocks 505 at the intersections. During the movement of the clamped hollow plate 504, the sliding limiting blocks 505 slide on the limiting plates 701 to limit the clamped hollow plate 504. At the same time, since the width of the sliding slots 703 is smaller than the width of the sliding limiting blocks 505, multiple limiting plates 701 can be vertically crossed and the limiting work of the two vertically distributed clamping mechanisms 5 can be completed. The bottom of the first support frame 1 is fixedly connected to a debris collection guide box 8.
[0029] The working principle of this embodiment is as follows: Figure 12 In the process of producing sled parts, the board to be cut is placed at the center of the adaptive support mechanism 4. At this time, the board to be cut is supported by multiple cross triangles 405, and then the corresponding clamping mechanism 5 is driven. The driving motor device 501 drives the transmission screw assembly 502 to rotate, and then drives the corresponding clamping hollow plates 504 to move closer to each other through the two ball transmission assemblies 503 until the clamping work of the board to be cut is completed. In the process of moving the clamping hollow plate 504, Figure 13, the clamping hollow plate 504 will contact the inclined surface of the cross triangle plate 405, and the corresponding inclined surface of the clamping hollow plate 504 will press the cross triangle plate 405 down, and compress the reset spring 404 through the cross sliding plate 403. After the clamping hollow plate 504 moves, the cross triangle plate 405 is reset under the action of the reset spring 404. At the same time, in the process of moving the clamping hollow plate 504, it will continue to push the two groups of slag blowing mechanisms 6 on the clamping hollow plate 504 in the other clamping mechanism 5 to slide. When the two clamping hollow plates 504 complete the clamping of the plate to be cut, the two groups of sliding slag blowing mechanisms 6 are at both ends of the plate to be cut, and the two sliding shells 601 of each group are at both sides of the plate to be cut; After the plate to be cut is fixed, the positioning and program setting of the cutting head assembly 306 are carried out. The longitudinal drive motor assembly 301, the transverse drive motor assembly 303 and the lifting drive assembly 304 can respectively complete the longitudinal, transverse and vertical movement of the laser generating system device 305, the cutting head assembly 306 and the blowing assembly 307, so as to complete the movement in multiple directions, thereby being able to cut the corresponding pattern on the plate to be cut, and then the blowing assembly 307 can continuously blow air to the laser cutting point to blow away the molten debris generated by the cutting in time. The slag and smoke can be removed, and the area can be cooled to avoid oxidation of the cut and protect the cutting head assembly 306. The slag is blown to both sides of the plate to be cut and blocked by the clamping hollow plate 504. At this time, the slag blowing mechanism 6 that slides to one side of the plate to be cut is started, and the two adjustable metal pipes 602 begin to clean the slag near the clamping hollow plates 504 on both sides, so that it falls into the slag collection guide box 8. Due to the different specifications of different plates to be cut, the blowing angle can be adjusted by the adjustable metal pipe 602 so as to completely clean the slag on the plate to be cut. In the subsequent process of resetting the two clamping hollow plates 504, the inclined structures on both sides of the bottom of the clamping hollow plates 504 are used to enable them to move freely between multiple cross-triangular plates 405, and the sliding slag blowing mechanism 6 needs to be manually reset.
[0030] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.
Claims
1. A laser cutting device for ski production, comprising a first support frame (1), characterized in that: The top of the first support frame (1) is fixedly connected to the second support frame (2), the top of the second support frame (2) is equipped with a laser cutting mechanism (3), and the inner wall of the top of the first support frame (1) is fixedly connected to an adaptive support mechanism (4) and a limiting mechanism (7); Two clamping mechanisms (5) are installed on the first support frame (1), and a group of slag blowing mechanisms (6) are slidably connected to the two clamping mechanisms (5). A slag collecting guide box (8) is fixedly connected to the bottom of the first support frame (1).
2. The laser cutting equipment for ski production according to claim 1, characterized in that: The laser cutting mechanism (3) comprises two longitudinal drive motor assemblies (301) mounted on the top of the second support frame (2), a support member (302) being mounted between the two longitudinal drive motor assemblies (301), a transverse drive motor assembly (303) being mounted on the top of the support member (302), a lifting drive assembly (304) being mounted on the transverse drive motor assembly (303), a laser generating system device (305) being mounted on the bottom of the lifting drive assembly (304), a cutting head assembly (306) being mounted on the bottom of the laser generating system device (305), and a blowing assembly (307) being fixedly connected to the rear end face of the lifting drive assembly (304).
3. The laser cutting equipment for ski production according to claim 1, characterized in that: The adaptive support mechanism (4) comprises a grid strip plate (401) fixedly connected to the inner wall of the first support frame (1), the top of each intersection of the grid strip plate (401) is fixedly connected to a cross storage shell (402), the interiors of the multiple cross storage shells (402) are slidably connected to a cross sliding plate (403), multiple return springs (404) are installed between the bottoms of the multiple cross sliding plates (403) and the cross storage shells (402), and the tops of the multiple cross sliding plates (403) are fixedly connected to a cross triangle plate (405).
4. The laser cutting equipment for ski production according to claim 3, characterized in that: The cross triangle plate (405) is an integrated structure formed by merging two triangle plates, and the thickness of the two triangle plates gradually decreases from the bottom to the top.
5. The laser cutting equipment for ski production according to claim 1, characterized in that: The clamping mechanism (5) comprises a driving motor device (501) mounted on a first support frame (1); a transmission screw assembly (502) is provided between an output end of the driving motor device (501) and the other side of the first support frame (1); a ball transmission assembly (503) is spirally connected to the transmission screw assembly (502); the tops of the two ball transmission assemblies (503) are fixedly connected to a clamping hollow plate (504); the bottom ends of the two clamping hollow plates (504) are fixedly connected to sliding limit blocks (505); and a plastic folding sleeve (506) corresponding to the transmission screw assembly (502) is fixedly connected between the two transmission screw assemblies (502) on their mutually adjacent sides.
6. The laser cutting equipment for ski production according to claim 5, characterized in that: The two clamping mechanisms (5) are vertically distributed, and the ball transmission assemblies (503) in the two clamping mechanisms (5) have different lengths. The threads on both sides of the outer wall of the transmission screw assembly (502) are in opposite directions, and both sides of the bottom of the clamping hollow plate (504) are inclined structures.
7. The laser cutting equipment for ski production according to claim 5, characterized in that: The slag blowing mechanism (6) comprises two sliding shells (601) slidably connected to the clamping hollow plate (504), the centers of the two sliding shells (601) are fixedly connected to an adjustable metal tube (602), and the tail ends of the adjustable metal tubes (602) are fixedly connected to an output air pipe (603).
8. The laser cutting equipment for ski production according to claim 7, characterized in that: The tops of the clamping hollow plates (504) are each provided with strip-shaped through holes corresponding to the sliding housings (601).
9. The laser cutting equipment for ski production according to claim 5, characterized in that: The limiting mechanism (7) comprises a plurality of limiting plates (701) fixedly connected to the inner wall of the first support frame (1), the top centers of the plurality of limiting plates (701) are each provided with a U-shaped notch (702) corresponding to the ball transmission assembly (503), and the intersections of the plurality of limiting plates (701) are each provided with a plurality of sliding notches (703) corresponding to the sliding limiting blocks (505).
Citation Information
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