Gantry type high-speed punching machine and using method thereof

The dragon gate high-speed press stabilizes steel plate movement during punching to ensure uniform hole distribution and safety by using a shaping bottom plate and locking mechanism, addressing displacement errors in existing presses.

CN120306485APending Publication Date: 2025-07-15BEICHEN TAIHE MASCH (WUXI) CO LTD
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Patent Information

Application Number
CN202510597260.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-07-15

AI Technical Summary

Technical Problem

The existing diamond-shaped hole high-speed gantry punching machine that is automatic feeding is prone to deviation and displacement due to inertia during the steel plate feeding process, resulting in uneven arrangement of diamond-shaped holes in the stamped wire mesh, and the steel plate may be deformed or stuck due to extrusion after high-frequency stamping.

Method used

The design of socket parts and sliding parts is adopted, including protective side shells, clamping parts, biting clamps and adsorption inner box, etc., and the steel plate is slipped stably by clamping the steel plate, and the steel plate is separated in time after stamping to avoid deviation and deformation. At the same time, the movement of the steel plate and the residual material treatment are controlled using the limiting plate and the micro motor.

Benefits of technology

The stable slip of the steel plate during the stamping process is achieved, ensuring uniform arrangement of diamond holes, avoiding deformation and jamming of the steel plate, improving safety and processing efficiency, and maintaining permeability of the mesh.

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Abstract

The invention belongs to the technical field of punching, and particularly relates to a gantry type high-speed punching machine and a using method thereof.The gantry type high-speed punching machine comprises a punching part used for conducting punching molding work on a steel plate below, and the punching part is fixed to a ceiling; the sleeving part is arranged at the lower part of the outer surface of the stamping part; the sliding component is arranged under the stamping component and used for controlling the steel plate to slide in a reciprocating mode. Due to the fact that a steel plate needs to be subjected to lateral movement continuously during stamping, the falling point of the rhombic pressing block is changed, stamped mesh holes can be distributed in a staggered mode, uncontrollable deviation movement is prone to occurring due to the inertia effect when the steel plate is subjected to lateral movement, and consequently the intervals of the stamped mesh holes are irregular. The sleeving parts capable of clamping the steel plate to move are arranged on the two sides of the device, it is guaranteed that the steel plate moves synchronously with the shaping bottom plate all the time in the sliding motion process of left-right switching, and the problem that the steel plate excessively deviates due to the inertia effect is solved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of stamping, and specifically relates to a gantry-type high-speed punching machine and its usage method. Background Art

[0002] A high-speed punching machine is a stamping press. In national production, the stamping process has the advantages of saving materials and energy compared with traditional machining. At the same time, it has high efficiency, low technical requirements for operators, and can produce products that cannot be achieved by machining through various die applications. Therefore, its uses are becoming more and more extensive.

[0003] There is a diamond-hole high-speed gantry punching machine with automatic feeding. Through a diamond-shaped punching plate, it performs reciprocating punching work on the advancing steel plate, stamping a diamond-shaped grid on the outer surface of the steel plate, and finally stamping the steel plate into a wire mesh. However, during the feeding process of the steel plate, it will perform high-frequency reciprocating sliding movements, so that the steel plate may have a large deviation displacement due to inertia during sliding. The offset distance accumulates through multiple movements, resulting in an excessive offset distance and uneven arrangement of the diamond holes of the punched wire mesh. Therefore, improvements are needed. Summary of the Invention

[0004] In view of the deficiencies of the prior art, the technical solution adopted by the present invention to solve its technical problems is: A gantry-type high-speed punching machine includes:

[0005] A stamping component for performing stamping and shaping work on the steel plate below, and the stamping component is fixed to the ceiling;

[0006] A socketing component, which is arranged at the lower part of the outer surface of the stamping component;

[0007] A sliding component, which is arranged directly below the stamping component and is used to control the reciprocating sliding movement of the steel plate;

[0008] A shaping bottom plate, which is arranged inside the sliding component and assists the stamping component in performing mesh hole shaping work on the steel plate.

[0009] Further, the stamping component includes,

[0010] A control top plate, at the center of the lower surface of which there is an insurance column. The insurance column is divided into a solid column inside and a shell outside. The shell can slide down a certain distance along the outer surface of the solid column, but the insurance column itself has a maximum extension length for restricting the object at the bottom;

[0011] A connecting sleeve, on the upper surface of which there are symmetrically arranged compression connecting cylinders, and the top ends of the compression connecting cylinders are fixedly connected to the inner cavity of the control top plate. The control top plate advances the compression connecting cylinders by pressurization;

[0012] The shaping pressing plate, the upper surface of the shaping pressing plate is fixedly connected to the bottom of the inner cavity of the connecting sleeve housing, and the bottom of the shaping pressing plate is evenly provided with diamond-shaped pressing blocks. When the shaping pressing plate performs stamping work on the wide steel plate below, through the diamond-shaped pressing blocks at the bottom, dense mesh holes are formed on the steel plate.

[0013] The socket component includes,

[0014] The protective side shell, the protective side shells are symmetrically arranged on both sides of the shaping pressing plate;

[0015] The clamping component, evenly arranged inside the protective side shell, is used to clamp the steel plate for moving actions;

[0016] The protective side shell includes,

[0017] The attaching card plate, through slots are evenly opened in the inner cavity of the attaching card plate. The clamping component is arranged inside the attaching card plate through the through slots, and a surplus groove is opened at the top of the attaching card plate. The length of the surplus groove is the same as the side width of the shaping pressing plate. After the attaching card plate is arranged on the side of the shaping pressing plate, due to the certain depth of the surplus groove, the attaching card plate can slide relative to the shaping pressing plate;

[0018] The bottom suction cup, the bottom suction cups are evenly arranged at the center of the bottom of the inner cavity of the attaching card plate, and the lower surface of the bottom suction cup is in contact with the outer surface of the shaping bottom plate. After installation, the protective side shell is connected to the upper surface of the shaping bottom plate through the bottom suction cup, and the shaping bottom plate can drive the attaching card plate to move.

[0019] The clamping component includes,

[0020] The propulsion box cylinder, built-in push cylinders are evenly arranged at the bottom of the inner cavity of the propulsion box cylinder. The propulsion box cylinder is arranged at the upper part of the inner cavity of the attaching card plate, and the bottom end of the built-in push cylinder extends into the internal part of the through slot;

[0021] The arched sliding shell, the middle part of the outer surface of the arched sliding shell is slidably connected to the inner cavity of the attaching card plate through the through slot. The propulsion box cylinder makes the built-in push cylinder extend or contract by means of pressure control, and then drives the arched sliding shell to perform vertical sliding movement inside the through slot;

[0022] The anchoring insertion plate, the outer surface of the anchoring insertion plate is fixedly connected to the side of the outer surface of the arched sliding shell close to the steel plate, and vertical pull rods are symmetrically arranged on the upper and lower sides of the inner cavity of the anchoring insertion plate;

[0023] Occlusal splint, on one side of the inner cavity of the occlusal splint close to the steel plate, rolling shaft rods are evenly arranged, and the inner cavity of the occlusal splint is inserted into the axis of the rolling shaft rod through a control motor. The outer surface of the rolling shaft rod is squeezed against the outer surface of the steel plate. The anchor insertion plate drives the vertical pull rods on the upper and lower sides to slide through the rollers inside, so as to achieve the effect of pulling the occlusal splints on the upper and lower sides. The occlusal splints on the upper and lower sides can clamp the side parts of the steel plate.

[0024] Further, the sliding member includes,

[0025] Limit plate, the limit plate is arranged on the ground;

[0026] Guide slide rail, the outer surface of the guide slide rail is fixedly connected to the inner wall of the limit plate;

[0027] Moving push cylinder, the bottom end of the output shaft of the moving push cylinder is fixedly connected with a vertical push rod, and the bottom end of the vertical push rod is fixedly connected with an arc-shaped pressing plate. The lower surface of the moving push cylinder is slidably connected to the upper part of the inner cavity of the guide slide rail through a moving chute.

[0028] Further, the sliding member further includes,

[0029] Side clamping plate, the side clamping plate is installed on the side of the shaping bottom plate. A wall-attached roller is sleeved on the back of the side clamping plate, and the outer surface of the wall-attached roller is in rolling connection with the bottom of the inner wall of the guide slide rail. The lower surface of the arc-shaped pressing plate is squeezed against the outer surface of the wall-attached roller;

[0030] Micro motor, the outer surface of the output shaft of the micro motor is sleeved with a driving runner. The outer surface of the driving runner is in rolling connection with the outer surface of the wall-attached roller. The micro motor drives the wall-attached roller to roll by driving the driving runner. The wall-attached roller rolls along the inner wall of the guide slide rail, thereby achieving the effect of driving the shaping bottom plate to slide relative to the limit plate.

[0031] Further, the shaping bottom plate includes,

[0032] Load-bearing bottom plate, the lower surface of the load-bearing bottom plate is slidably connected to the inner wall of the limit plate, and waste material mesh holes are evenly formed in the top of the inner cavity of the load-bearing bottom plate;

[0033] Built-in rotating pipe, filter net plates are symmetrically arranged on both sides of the inner cavity of the built-in rotating pipe. The outer surface of the built-in rotating pipe is rotatably connected to the inner cavity of the load-bearing bottom plate. When the built-in rotating pipe is in Figure 10 the shown rotating position, the filter net plates on the upper and lower sides are blocked by the inner cavity of the load-bearing bottom plate;

[0034] A switching motor, wherein the outer surface of the switching motor output shaft is fixedly connected with a torsion roller, and the outer surface of the torsion roller is rollingly connected with the outer surface of the built-in rotating tube. The switching motor can drive the torsion roller to rotate, and utilize the rolling friction force to drive the built-in rotating tube to rotate, thereby achieving the effect of switching the position of the filter screen plate;

[0035] The adsorption inner box is installed at the back of the inner cavity of the load-bearing bottom plate, and the adsorption inner box performs adsorption work on the middle area of the load-bearing bottom plate through the mesh holes at the front, and the adsorption inner box takes in air through the mesh holes to achieve a drainage effect.

[0036] The beneficial effects of the present invention are as follows:

[0037] 1. The device can perform high-frequency stamping work on the steel plate below through the diamond-shaped pressing block at the bottom of the shaping plate to punch mesh holes on the outer surface of the steel plate. Since the steel plate needs to continuously move sideways during stamping, the landing point of the diamond-shaped pressing block is changed, so that the punched mesh holes can be staggered to meet industrial needs. When the steel plate moves sideways, it is easy to have uncontrollable offset movement due to inertia, resulting in irregular spacing between the punched mesh holes. The device is provided with sleeve components on both sides that can clamp the steel plate to move, ensuring that the steel plate always moves synchronously with the shaping bottom plate during the sliding movement of the steel plate to the left and right, thereby preventing the steel plate from excessively offset due to inertia.

[0038] 2. The device performs stamping and shaping work on the steel plate through the diamond-shaped pressing blocks of the shaping pressure plate. Since the shaping base plate has diamond-shaped mesh holes connected to the diamond-shaped pressing blocks, the pressing force applied to the shaping base plate below is relatively small when the shaping pressure plate performs high-frequency stamping work, and it is less likely to cause concave deformation due to the squeezing effect of the shaping pressure plate. However, this stamping method will cause the steel plate to sink into the mesh holes of the shaping base plate after each stamping work, making it impossible for the steel plate to move forward. Therefore, after each stamping, the clamping parts on both sides will pull the steel plate upward as a whole, thereby separating the steel plate from the shaping base plate, and then transporting the steel plate forward through the internal rolling shaft, thereby avoiding the problem of the steel plate being stuck on the mesh holes of the shaping base plate.

[0039] 3. The spacing between the bite splints on both sides can be adjusted by the vertical pull rod, so as to ensure that the rolling shaft rods on the upper and lower sides can stably clamp the sides of the steel plate, and there will be no problem of loose clamping force due to the thin thickness of the steel plate. When the steel plate is stamped, the protective side shells on both sides will block the side position of the steel plate, and the diamond pressure block is set in the middle position of the shaping pressure plate. Therefore, during the stamping work, if the steel plate breaks, it is difficult for the flying broken parts to directly hit the relevant external staff, so the safety will be higher.

[0040] 4. The adsorption inner box can perform the adsorption action through the filter plates on both sides of the built-in rotating pipe, thereby attracting the remaining materials concentrated in the middle area of the load-bearing bottom plate to the side parts of the load-bearing bottom plate, reducing the remaining materials accumulated in the middle of the load-bearing bottom plate, ensuring the permeability of the mesh holes. When there is a large amount of remaining materials accumulated on the sides of the load-bearing bottom plate, during the left and right sliding process of the load-bearing bottom plate, the accumulated remaining materials can be shaken evenly, so that the accumulated remaining materials are spread out, avoiding the remaining materials from blocking the side parts of the load-bearing bottom plate, and at the same time reducing the height of the remaining materials. By switching the built-in rotating pipe, the adsorption inner box is completely separated from the material storage area of the load-bearing bottom plate, avoiding the problem that the remaining materials enter the position where the adsorption inner box is located through the filter plate and causing the adsorption inner box to be mis-adsorbed and jammed. Description of the Drawings

[0041] Figure 1 is the front view of a gantry type high-speed punching machine of the present invention;

[0042] Figure 2 is the cross-sectional view of a gantry type high-speed punching machine of the present invention;

[0043] Figure 3 is the structural schematic diagram of the stamping component of the present invention;

[0044] Figure 4 is the structural schematic diagram of the socket component of the present invention;

[0045] Figure 5 is the structural schematic diagram of the protective side shell of the present invention;

[0046] Figure 6 is the structural schematic diagram of the clamping component of the present invention;

[0047] Figure 7 is the structural schematic diagram of the arched sliding shell of the present invention;

[0048] Figure 8 is the cross-sectional view of the limiting plate of the present invention;

[0049] Figure 9 is the structural schematic diagram of the limiting plate of the present invention;

[0050] Figure 10 is the cross-sectional view of the load-bearing bottom plate of the present invention;

[0051] Figure 11 is the flow chart of the usage method of a gantry type high-speed punching machine of the present invention.

[0052] In the figure: 1. Stamping component; 2. Socketing component; 3. Sliding component; 4. Shaping bottom plate; 11. Control top plate; 12. Safety column; 13. Compression connecting cylinder; 14. Connecting sleeve housing; 15. Shaping pressing plate; 16. Rhombic pressing block; 21. Protective side shell; 22. Clamping component; 211. Attached clamping plate; 212. Through slot; 213. Allowance slot; 214. Bottom suction cup; 221. Propulsion box cylinder; 222. Built-in push cylinder; 223. Arch-shaped sliding shell; 224. Anchoring plug board; 225. Vertical pull rod; 226. Biting clamping plate; 227. Rolling shaft rod; 31. Limiting plate; 32. Guide slide rail; 33. Moving push cylinder; 34. Vertical push rod; 35. Arc-shaped pressing plate; 36. Side clamping plate; 37. Wall-attached roller; 38. Micro motor; 39. Driving runner; 41. Load-bearing bottom plate; 42. Built-in rotating pipe; 43. Filter screen plate; 44. Adsorption inner box; 45. Switching motor; 46. Torsion roller. Detailed implementation manners

[0053] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners. The embodiments of the present invention are given for the purpose of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles of the present invention and its practical applications, and enable those of ordinary skill in the art to understand the present invention and design various embodiments with various modifications suitable for specific purposes.

[0054] Example 1, please refer to Figures 1 - 7 , the present invention provides a technical solution: a gantry-type high-speed punching machine, including:

[0055] A stamping component 1, which is used for stamping and shaping the steel plate below, and the stamping component 1 is fixed on the ceiling;

[0056] A socketing component 2, which is arranged at the lower part of the outer surface of the stamping component 1;

[0057] A sliding component 3, which is arranged directly below the stamping component 1 and is used to control the reciprocating sliding movement of the steel plate;

[0058] A shaping bottom plate 4, which is arranged inside the sliding component 3 and assists the stamping component 1 in performing mesh shaping work on the steel plate.

[0059] The stamping component 1 includes,

[0060] A control top plate 11, at the center of the lower surface of the control top plate 11, there is a safety column 12. The safety column 12 is divided into a solid column inside and a shell outside. The shell can slide down a certain distance along the outer surface of the solid column, but the safety column 12 itself has a maximum extension length, which is used to limit the object at the bottom;

[0061] Connecting sleeve housing 14, compression connecting cylinders 13 are symmetrically arranged on the upper surface of the connecting sleeve housing 14, and the top ends of the compression connecting cylinders 13 are fixedly connected to the inner cavity of the control top plate 11. The control top plate 11 advances the compression connecting cylinders 13 by applying pressure.

[0062] Shaping pressure plate 15, the upper surface of the shaping pressure plate 15 is fixedly connected to the bottom of the inner cavity of the connecting sleeve housing 14, and diamond-shaped pressing blocks 16 are evenly distributed at the bottom of the shaping pressure plate 15. When the shaping pressure plate 15 performs stamping work on the wide steel plate below, dense mesh holes are formed on the steel plate through the diamond-shaped pressing blocks 16 at the bottom.

[0063] The socket component 2 includes,

[0064] Protective side shells 21, the protective side shells 21 are symmetrically arranged on both sides of the shaping pressure plate 15;

[0065] Clamping components 22, which are evenly arranged inside the protective side shells 21 and are used to clamp the steel plate for moving actions;

[0066] The protective side shell 21 includes,

[0067] Attaching card plates 211, through slots 212 are evenly opened in the inner cavity of the attaching card plates 211. The clamping components 22 are arranged inside the attaching card plates 211 through the through slots 212, and a margin groove 213 is opened at the top of the attaching card plates 211. The length of the margin groove 213 is the same as the side width of the shaping pressure plate 15. After the attaching card plates 211 are arranged on the side of the shaping pressure plate 15, due to the certain depth of the margin groove 213, the attaching card plates 211 can slide relative to the shaping pressure plate 15;

[0068] Bottom suction cups 214, the bottom suction cups 214 are evenly arranged at the center of the bottom of the inner cavity of the attaching card plates 211, and the lower surface of the bottom suction cups 214 is in contact with the outer surface of the shaping bottom plate 4. After installation, the protective side shell 21 is connected to the upper surface of the shaping bottom plate 4 through the bottom suction cups 214, and the shaping bottom plate 4 can drive the attaching card plates 211 to move.

[0069] The clamping component 22 includes,

[0070] Advancing box cylinders 221, built-in push cylinders 222 are evenly arranged at the bottom of the inner cavity of the advancing box cylinders 221. The advancing box cylinders 221 are arranged at the upper part of the inner cavity of the attaching card plates 211, and the bottom ends of the built-in push cylinders 222 extend into the through slots 212;

[0071] The arched sliding shell 223, the middle of the outer surface of the arched sliding shell 223 is slidably connected to the inner cavity of the attaching clamping plate 211 through the through slot 212. The propulsion cylinder 221 makes the built-in push cylinder 222 extend or contract by means of pressure control, and then drives the arched sliding shell 223 to perform a vertical sliding movement inside the through slot 212;

[0072] The anchoring inserting plate 224, the outer surface of the anchoring inserting plate 224 is fixedly connected to the side of the outer surface of the arched sliding shell 223 close to the steel plate. Vertical pull rods 225 are symmetrically arranged on the upper and lower sides of the inner cavity of the anchoring inserting plate 224;

[0073] The clamping splint 226, rolling shaft rods 227 are evenly arranged on the side of the inner cavity of the clamping splint 226 close to the steel plate, and the inner cavity of the clamping splint 226 is inserted into the axis of the rolling shaft rod 227 through a control motor. The outer surface of the rolling shaft rod 227 is pressed against the outer surface of the steel plate. The anchoring inserting plate 224 drives the vertical pull rods 225 on the upper and lower sides to perform a sliding movement through the internal rollers, so as to achieve the effect of pulling the clamping splints 226 on the upper and lower sides. The clamping splints 226 on the upper and lower sides can clamp the side part of the steel plate.

[0074] Before stamping work, lay the front end of the wide steel plate on the shaping base plate 4, and then put on the protective side shells 21 on the left and right sides of the shaping pressing plate 15. At this time, the bottom suction cup 214 is adsorbed and connected to the upper surface of the shaping base plate 4. The side of the steel plate is clamped by the clamping components 22 inside the protective side shell 21. That is, after the side part of the steel plate is inserted between the clamping splints 226 on the upper and lower sides, the anchoring inserting plate 224 pulls the clamping splints 226 on the upper and lower sides closer by contracting the vertical pull rods 225, and the outer surface of the steel plate is clamped by the rolling shaft rods 227 on both sides, and then the preparation work is completed.

[0075] The control top plate 11 pushes the shaping pressing plate 15 vertically downward by means of the propulsion compression connecting cylinder 13. Under the action of gravity and thrust, the shaping pressing plate 15 punches the outer surface of the steel plate through the diamond-shaped pressing block 16 at the bottom. At this time, the outer surface of the shaping pressing plate 15 will relatively slide with the top of the inner wall of the attaching clamping plate 211. Due to the rolling action of the vertical guiding shaft, the shaping pressing plate 15 and the attaching clamping plate 211 will not have a large wear problem. The steel plate has missing arrayed diamond-shaped scraps after stamping, and thus diamond-shaped mesh holes appear. Since the two sides of the steel plate are clamped by the clamping splints 226, when the steel plate is pressed downward, the steel plate will drive the arched sliding shell 223 to slide downward relative to the through slot 212, and the built-in push cylinder 222 is stretched. At this time, the lower surface of the steel plate will be closely attached to the lower shaping base plate 4 and then be stuck on the shaping base plate 4. Since the steel plate is wide and there is a certain margin on both sides, during the process of the shaping pressing plate 15 stamping the steel plate, it will not come into contact and extrusion with the clamping components 22 on the side.

[0076] After the single stamping action ends, the control top plate 11 will lift the shaping pressing plate 15 upward. At this time, the propulsion cylinder 221 also pulls the arched sliding shell 223 upward by contracting the built-in push cylinder 222. At this time, the clamping component 22 lifts the whole steel plate upward. After lifting the steel plate stuck on the shaping bottom plate 4, the two-sided clamping splints 226 drive the rolling shaft rod 227 through the internal motor. The rolling shaft rod 227 advances the stamped part of the steel plate out of the device through rolling friction. Subsequently, the steel plate is stamped again, and a row of diamond-shaped holes is formed again. In this way, dense mesh holes are formed on the outer surface of the steel plate, and the continuous stamping process of the long steel plate is completed.

[0077] After the stamping of the steel plate is completed, the two-sided clamping splints 226 are pulled apart, the protective side shell 21 is removed, a new roll of steel plate is replaced, and the steel plate is stamped by installing the socket component 2.

[0078] Example 2, please refer to Figures 1 - 11 , the present invention provides a technical solution: on the basis of Example 1, the sliding component 3 includes,

[0079] The limiting plate 31 is arranged on the ground;

[0080] The guiding slide rail 32, the outer surface of the guiding slide rail 32 is fixedly connected to the inner wall of the limiting plate 31;

[0081] The moving push cylinder 33, the bottom end of the output shaft of the moving push cylinder 33 is fixedly connected with a vertical push rod 34, and the bottom end of the vertical push rod 34 is fixedly connected with an arc-shaped pressing plate 35. The lower surface of the moving push cylinder 33 is slidably connected to the upper part of the inner cavity of the guiding slide rail 32 through a moving chute.

[0082] The sliding component 3 further includes,

[0083] The side clamping plate 36 is installed on the side of the shaping bottom plate 4. The back of the side clamping plate 36 is sleeved with a wall-attached roller 37, and the outer surface of the wall-attached roller 37 is in rolling connection with the bottom of the inner wall of the guiding slide rail 32. The lower surface of the arc-shaped pressing plate 35 is in mutual extrusion with the outer surface of the wall-attached roller 37;

[0084] The micro motor 38, the outer surface of the output shaft of the micro motor 38 is sleeved with a driving runner 39. The outer surface of the driving runner 39 is in rolling connection with the outer surface of the wall-attached roller 37. The micro motor 38 drives the wall-attached roller 37 to roll by driving the driving runner 39. The wall-attached roller 37 rolls along the inner wall of the guiding slide rail 32, thereby realizing the effect of driving the shaping bottom plate 4 to slide relative to the limiting plate 31.

[0085] The shaping bottom plate 4 includes,

[0086] Load-bearing bottom plate 41, the lower surface of the load-bearing bottom plate 41 is slidably connected to the inner wall of the limiting plate 31, and residual material mesh holes are evenly formed at the top of the inner cavity of the load-bearing bottom plate 41;

[0087] Built-in rotating pipe 42, filter net plates 43 are symmetrically arranged on both sides of the inner cavity of the built-in rotating pipe 42, the outer surface of the built-in rotating pipe 42 is rotatably connected to the inner cavity of the load-bearing bottom plate 41. When the built-in rotating pipe 42 is in Figure 10 the shown rotating position, the filter net plates 43 on the upper and lower sides are blocked by the inner cavity of the load-bearing bottom plate 41;

[0088] Switching motor 45, a torsion roller 46 is fixedly connected to the outer surface of the output shaft of the switching motor 45, the outer surface of the torsion roller 46 is in rolling connection with the outer surface of the built-in rotating pipe 42. The switching motor 45 can drive the built-in rotating pipe 42 to rotate self by driving the torsion roller 46 to rotate, so as to achieve the effect of switching the position of the filter net plate 43;

[0089] Adsorption inner box 44, the adsorption inner box 44 is installed on the back of the inner cavity of the load-bearing bottom plate 41, and the adsorption inner box 44 adsorbs the middle area of the load-bearing bottom plate 41 through the front mesh holes. The adsorption inner box 44 intakes air through the mesh hole part to achieve the drainage effect.

[0090] After the steel plate is pressed by the shaping pressing plate 15, since the steel plate is stuck on the grid of the shaping bottom plate 4, in order to make the grid of the steel plate have the characteristic of staggering, at this time, the micro motors 38 on both sides of the shaping bottom plate 4 will drive the wall-attached rollers 37 to drive the shaping bottom plate 4 to perform a deviation sliding movement relative to the limiting plate 31. Due to the adsorption connection of the bottom suction cups 214, the attached clamping plates 211 on both sides will also clamp the steel plate and move along with the shaping bottom plate 4, so as to change the position of the shaping pressing plate 15 facing the steel plate. Subsequently, when performing the stamping work, the mesh holes of the next stamping can be arranged in a staggered manner with the previous mesh holes.

[0091] When performing the stamping work, in order to ensure the stability of the bottom steel plate, the shaping bottom plate 4 cannot move. At this time, the moving push cylinders 33 on both sides will push the vertical push rods 34 to make the arc-shaped pressing plate 35 press against the wall-attached rollers 37, thereby restricting the sliding movement of the shaping bottom plate 4 and keeping it stable. When the shaping bottom plate 4 performs a deviation sliding movement along the guiding slide rail 32, since the moving push cylinders 33 do not apply pressure, the wall-attached rollers 37 can push the upper arc-shaped pressing plate 35 during the rolling process, driving the moving push cylinders 33 to slide synchronously, so as to ensure that the arc-shaped pressing plate 35 is finally in contact with the outer surface of the wall-attached roller 37 and perform the extrusion braking work at any time.

[0092] The remaining steel plate after stamping will enter the interior of the load-bearing bottom plate 41 through the mesh holes of the load-bearing bottom plate 41, and then the switching motors 45 on both sides drive the built-in rotating tube 42 to rotate the axis by rotating the torque rollers 46, so that the position of the filter screen plate 43 is staggered with the inner wall of the load-bearing bottom plate 41, and the adsorption inner box 44 can perform adsorption through the filter screen plates 43 on both sides of the built-in rotating tube 42, thereby attracting the remaining steel plate concentrated in the middle area of the load-bearing bottom plate 41 to the side areas of the load-bearing bottom plate 41, reducing the remaining steel plate accumulated in the middle area of the load-bearing bottom plate 41 and ensuring the permeability of the mesh holes. When the remaining steel plate accumulates more on the side areas of the load-bearing bottom plate 41, the switching motor 45 will twist the built-in rotating tube 42 back to the original position. Figure 10 In the position shown, the adsorption inner box 44 cannot perform the adsorption effect, and the load-bearing bottom plate 41 can shake the accumulated residual material evenly during the left and right sliding process, so as to spread the accumulated residual material and prevent the residual material from being blocked at the side of the load-bearing bottom plate 41. At the same time, the height of the residual material is reduced to prevent the residual material from passing through the filter screen plate 43 into the position where the adsorption inner box 44 is located.

[0093] Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without creative work should fall within the scope of protection of the present invention. The structures, devices and operating methods not specifically described and explained in the present invention are implemented according to the conventional means in the field unless otherwise specified and limited.

Claims

1. A gantry-type high-speed punching machine, comprising: A stamping component (1) for performing stamping and shaping work on the steel plate below, and the stamping component (1) is fixed to the ceiling; It is characterized in that it includes: A socketing component (2), and the socketing component (2) is arranged at the lower part of the outer surface of the stamping component (1); A sliding component (3), arranged directly below the stamping component (1), for controlling the reciprocating sliding movement of the steel plate; A shaping bottom plate (4), arranged inside the sliding component (3), to assist the stamping component (1) in performing mesh shaping work on the steel plate.

2. The gantry-type high-speed punching machine according to claim 1, characterized in that: The stamping component (1) includes, A control top plate (11), and a safety column (12) is arranged at the center of the lower surface of the control top plate (11), and the safety column (12) is used to limit the object at the bottom; A connecting sleeve housing (14), and compression connecting cylinders (13) are symmetrically arranged on the upper surface of the connecting sleeve housing (14), and the top ends of the compression connecting cylinders (13) are fixedly connected to the inner cavity of the control top plate (11), and the control top plate (11) advances the compression connecting cylinders (13) by pressurization; A shaping pressing plate (15), and the upper surface of the shaping pressing plate (15) is fixedly connected to the bottom of the inner cavity of the connecting sleeve housing (14), and diamond-shaped pressing blocks (16) are evenly arranged at the bottom of the shaping pressing plate (15).

3. The gantry type high-speed punching machine according to claim 2, characterized in that: The socketing component (2) includes, A protection side shell (21), and the protection side shells (21) are symmetrically arranged on both sides of the shaping pressing plate (15); A clamping component (22), evenly arranged inside the protection side shell (21), for clamping the steel plate for moving; The protection side shell (21) includes, An attaching card board (211), and through slots (212) are evenly opened in the inner cavity of the attaching card board (211), and the clamping component (22) is arranged inside the attaching card board (211) through the through slots (212), and a margin groove (213) is opened at the top of the attaching card board (211); Bottom suction cups (214), and the bottom suction cups (214) are evenly arranged at the center of the bottom of the inner cavity of the attaching card board (211), and the lower surface of the bottom suction cups (214) is in contact with the outer surface of the shaping bottom plate (4).

4. The gantry type high-speed punching machine according to claim 3, characterized in that: The clamping component (22) includes, A propulsion box cylinder (221), and built-in push cylinders (222) are evenly arranged at the bottom of the inner cavity of the propulsion box cylinder (221), the propulsion box cylinder (221) is arranged at the upper part of the inner cavity of the attaching card board (211), and the bottom ends of the built-in push cylinders (222) extend into the inside of the through slots (212); An arched sliding shell (223), and the middle part of the outer surface of the arched sliding shell (223) is slidably connected to the inner cavity of the attaching card board (211) through the through slots (212); An anchoring plug board (224), and the outer surface of the anchoring plug board (224) is fixedly connected to the side of the outer surface of the arched sliding shell (223) close to the steel plate, and vertical pull rods (225) are symmetrically arranged on the upper and lower sides of the inner cavity of the anchoring plug board (224); The bite splint (226), on one side of the inner cavity of the bite splint (226) close to the steel plate, rolling shaft rods (227) are evenly arranged, and the inner cavity of the bite splint (226) is inserted into the axis of the rolling shaft rod (227) through a control motor, and the outer surface of the rolling shaft rod (227) is in mutual extrusion with the outer surface of the steel plate.

5. The gantry type high-speed punching machine according to claim 1, characterized in that: The sliding member (3) includes a limit plate (31), and the limit plate (31) is arranged on the ground; a guiding slide rail (32), and the outer surface of the guiding slide rail (32) is fixedly connected to the inner wall of the limit plate (31); a moving push cylinder (33), the bottom end of the output shaft of the moving push cylinder (33) is fixedly connected to a vertical push rod (34), and the bottom end of the vertical push rod (34) is fixedly connected to an arc-shaped pressing plate (35), and the lower surface of the moving push cylinder (33) is slidably connected to the upper part of the inner cavity of the guiding slide rail (32) through a moving chute.

6. The gantry-type high-speed punching machine according to claim 5, characterized in that: The sliding member (3) further includes a side clamping plate (36), the side clamping plate (36) is installed on the side of the shaping bottom plate (4), a wall-attached roller (37) is sleeved on the back of the side clamping plate (36), and the outer surface of the wall-attached roller (37) is in rolling connection with the bottom of the inner wall of the guiding slide rail (32), and the lower surface of the arc-shaped pressing plate (35) is in mutual extrusion with the outer surface of the wall-attached roller (37); a micro motor (38), a driving runner (39) is sleeved on the outer surface of the output shaft of the micro motor (38), and the outer surface of the driving runner (39) is in rolling connection with the outer surface of the wall-attached roller (37).

7. The gantry-type high-speed punching machine according to claim 6, wherein: The shaping bottom plate (4) includes a load-bearing bottom plate (41), the lower surface of the load-bearing bottom plate (41) is slidably connected to the inner wall of the limit plate (31), and surplus material mesh holes are evenly formed in the top of the inner cavity of the load-bearing bottom plate (41); an inner built-in rotating pipe (42), filter screen plates (43) are symmetrically arranged on both sides of the inner cavity of the inner built-in rotating pipe (42), and the outer surface of the inner built-in rotating pipe (42) is rotatably connected to the inner cavity of the load-bearing bottom plate (41); a switching motor (45), a torsion roller (46) is fixedly connected to the outer surface of the output shaft of the switching motor (45), and the outer surface of the torsion roller (46) is in rolling connection with the outer surface of the inner built-in rotating pipe (42); an adsorption inner box (44), the adsorption inner box (44) is installed on the back of the inner cavity of the load-bearing bottom plate (41), and the adsorption inner box (44) adsorbs the middle area of the load-bearing bottom plate (41) through the front mesh holes.

8. A method for using a gantry-type high-speed punching machine, characterized in that: including the following steps: S1: Place a frame steel plate on the load-bearing bottom plate (41); S2: Set the socket components (2) on both sides, adjust the clamping components (22) to clamp the side of the steel plate, and make its bottom suction cup (214) adsorb to the upper surface of the load-bearing bottom plate (41); S3: The stamping component (1) stamps the steel plate; S4: The shaping pressing plate (15) is lifted, the clamping component (22) lifts the steel plate upward, and transports the steel plate forward for a short distance through the rolling shaft rod (227); S5: The load-bearing bottom plate (41) moves laterally through the wall-attached rollers (37) on both sides, and drives the steel plate and the socket components (2) to move laterally; S6: The shaping pressing plate (15) performs stamping again, and staggered diamond-shaped mesh holes are formed on the steel plate; S7: Determine whether there is any surplus on the steel plate to continue the punching work; S8: The stamping of the steel plate is completed.