Industrial manufacturing automated steel cutting machine

By introducing a cooling and cleaning mechanism into the steel cutting device, the problem of poor heat dissipation during the cutting process was solved, which improved the stability of the equipment and the cutting quality, extended the equipment life, and improved the integrity of the steel and the effect of subsequent processes.

CN121104273BActive Publication Date: 2026-05-22NANTONG PAVO MASCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NANTONG PAVO MASCH CO LTD
Filing Date
2025-03-27
Publication Date
2026-05-22

AI Technical Summary

Technical Problem

Existing steel cutting equipment has poor heat dissipation during the cutting process, resulting in uneven cuts, which affects cutting quality and equipment performance. Furthermore, steel is easily damaged at high temperatures, reducing equipment stability and service life.

Method used

An automated steel cutting machine is used in industrial manufacturing. It includes a cooling mechanism and a cleaning mechanism. The cutting process is cooled by a water pump and a nozzle, and the water sprayed during the cutting process is wiped clean by a sponge to prevent the steel from rusting and corroding. At the same time, the steel is fixed by a fixing mechanism to avoid vibration.

Benefits of technology

It effectively prevents equipment overheating, ensures the stability and quality of the cutting process, extends equipment life, improves production efficiency, maintains the integrity and aesthetics of the steel, and ensures the effect of subsequent processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of industrial automation cutting equipment, and discloses an automatic steel cutting machine electrical equipment, which comprises a main body, supporting legs are fixedly connected to the bottom corners of the main body, a rectangular groove is arranged in the top outer wall of the main body, a plurality of partition plates are fixedly connected in the rectangular groove, the partition plates are equidistantly distributed, two fixed blocks one are fixedly connected to the top outer wall of the main body, and the two fixed blocks one are symmetrically distributed with the middle part of the main body as the center. When the motor works, the driving shaft is driven to rotate, so that the fan rotates to generate suction force, air outside the protective shell is sucked into the protective shell, the air passes through the refrigeration box to become cold air, and then is discharged from the air outlet pipe into the hollow column, enters the annular block through the opened through groove and the air inlet, and is finally discharged from the air outlet, so that the steel in cutting and the equipment are cooled.
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Description

[0001] This application is a divisional application of the application filed on March 27, 2025, with application number 202510372006.X and invention title "An Industrial Manufacturing Automated Steel Cutting Electromechanical Equipment". Technical Field

[0002] This invention relates to the field of industrial automated cutting equipment technology, specifically to an industrial automated steel cutting electromechanical equipment. Background Technology

[0003] A cutting machine tool consists of multiple cutting machines, which are classified as flame cutting machines, plasma cutting machines, laser cutting machines, water jet cutting machines, etc. With the development of modern mechanical processing industry, the requirements for cutting quality and precision are constantly increasing, as are the requirements for improving production efficiency, reducing production costs, and having highly intelligent automatic cutting functions.

[0004] Before cutting, steel needs to be placed on a machine tool, and then the steel is cut by an intelligently controlled plasma cutting head. Existing cutting devices directly cut the steel after it is placed on the machine tool. However, steel generates high temperatures during cutting, and the current heat dissipation method usually uses heat sinks. The number and position of the heat sinks will affect the heat dissipation effect, indirectly leading to insignificant heat dissipation. This results in uneven cuts, reduced equipment performance, and affects the stability and quality of the cutting process. Summary of the Invention

[0005] The purpose of this invention is to provide an automated steel cutting electromechanical device for industrial manufacturing to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:

[0007] This invention relates to an automated steel cutting electromechanical device for industrial manufacturing, comprising a main body, with support legs fixedly connected to the four corners of the bottom of the main body, a rectangular groove formed on the top outer wall of the main body, and several partitions fixedly connected inside the rectangular groove, the partitions being evenly distributed, and two fixing blocks 1 fixedly connected to the top outer wall of the main body, the two fixing blocks 1 being symmetrically distributed around the center of the main body, with a sliding groove formed on the top outer wall of the fixing blocks 1, and a moving mechanism, comprising two support plates fixedly connected to the top outer wall of the main body, an electric push rod fixedly connected to the side of the support plates away from the main body, a trapezoidal block slidably connected inside the sliding groove, a moving block fixedly connected to the top of the trapezoidal block, the output end of the electric push rod being fixedly connected to the left outer wall of the moving block, a U-shaped block provided on the outer wall of the moving block, and rectangular grooves formed at both ends of the bottom of the U-shaped block. The rectangular groove has a sliding block inside it. An electric actuator is fixedly connected to the top outer wall of the sliding block, and the output end of the electric actuator is fixedly connected to the top of the rectangular groove. A sliding frame is slidably connected to the outer wall of the U-shaped block, and a track is fixedly connected to the back of the sliding frame. The end of the track away from the sliding frame is slidably connected to the top of the U-shaped block. The cooling mechanism includes a water tank fixedly connected to the front outer wall of the main body. A water inlet pipe is fixedly connected to the left outer wall of the water tank. A water pump is fixedly connected to the top outer wall of the sliding frame. The end of the water inlet pipe away from the water tank is fixedly connected to the front outer wall of the water pump. A water outlet pipe is fixedly connected to the left outer wall of the water pump. A hollow column is fixedly connected to the bottom outer wall of the sliding frame. The end of the water outlet pipe away from the water pump is fixedly connected to the outer wall of the hollow column. A plasma cutting head is fixedly connected to the end of the hollow column away from the sliding frame.

[0008] Furthermore, a baffle is fixedly connected to the inner wall of the hollow column, and a through groove is opened on the top outer wall of the baffle. A spring is fixedly connected to the top inner wall of the hollow column, and a block is fixedly connected to the end of the spring away from the top inner wall of the hollow column. Four rectangular grooves are opened on the outer wall of the hollow column, and the four rectangular grooves are arranged in a circumferential array. An annular block is slidably connected to the outer wall of the hollow column. Several nozzles are fixedly connected to the bottom outer wall of the annular block, and the several nozzles are arranged in a circumferential array. A water inlet is opened on the side of the annular block near the hollow column. A cross-shaped top plate is fixedly connected to the side of the annular block near the hollow column. The four corners of the cross-shaped top plate are slidably connected to the inside of the rectangular groove. A top rod is fixedly connected to the top outer wall of the cross-shaped top plate. Three trapezoidal blocks are fixedly connected to the outer wall of the plasma cutting head, and the three trapezoidal blocks are arranged in a circumferential array. A cleaning mechanism is provided on the outer wall of the plasma cutting head.

[0009] Furthermore, the cleaning mechanism includes an annular plate 1 slidably connected to the outer wall of the plasma cutting head. The inner wall of the annular plate 1 has three trapezoidal grooves. A trapezoidal block on the outer wall of the plasma cutting head is slidably connected to the inside of the trapezoidal grooves. A spring is fixedly connected to the bottom outer wall of the trapezoidal block. The end of the spring away from the trapezoidal block is fixedly connected to the bottom of the trapezoidal groove. Three horizontal plates are fixedly connected to the outer wall of the annular plate 1. The three horizontal plates are arranged in a circumferential array. A rectangular groove is opened on the top outer wall of the horizontal plate. An annular plate 2 is fixedly connected to the side of the horizontal plate away from the annular plate 1. An annular groove is opened on the bottom outer wall of the annular plate 2. Several ball bearings are embedded in the inside of the annular groove. Three rotating plates are rotatably connected to the bottom outer wall of the annular block through a rotating seat.

[0010] Furthermore, a sliding block is rotatably connected to the end of the three rotating plates away from the annular block. The sliding block is slidably connected inside the rectangular groove opened at the top of the horizontal plate. A pressure rod is rotatably connected to the side of the sliding block away from the rotating plate via a rotating seat. An annular pressure plate is rotatably connected to the end of the pressure rod away from the sliding block. A trapezoidal block is fixedly connected to the outer wall of the annular pressure plate. Three sliding grooves are opened on the inner wall of the second annular plate. The trapezoidal block is slidably connected inside the sliding groove. A spring is fixedly connected to the bottom outer wall of the trapezoidal block. The end of the spring away from the trapezoidal block is fixedly connected to the bottom of the sliding groove. A sponge block is fixedly connected to the side of the annular pressure plate away from the pressure rod. A squeezing mechanism is provided on the opposite side of the two horizontal plates.

[0011] Furthermore, the extrusion mechanism includes an arc-shaped block fixedly connected to one side of two horizontal plates. Each arc-shaped block has a vertical plate fixedly connected to the side away from the horizontal plates. A V-shaped rotating plate is rotatably connected between the two vertical plates. Three racks are fixedly connected to the top outer wall of the annular pressure plate. The three racks are arranged in a circumferential array. Six fixed plates are fixedly connected to the inner wall of the V-shaped rotating plate. The six fixed plates are arranged in a circumferential array in pairs. A gear plate is rotatably connected between the two fixed plates. The gear plate meshes with the racks. A rectangular groove is opened at the end of the gear plate away from the arc-shaped block. A pull rod is rotatably connected inside the rectangular groove.

[0012] Furthermore, the end of the pull rod away from the gear plate is rotatably connected to one side of the outer wall of the V-shaped rotating plate. The end of the V-shaped rotating plate away from the pull rod has a rectangular groove, and a connecting plate is rotatably connected inside the rectangular groove. The end of the connecting plate away from the V-shaped rotating plate is rotatably connected to a movable plate. A trapezoidal block is fixedly connected to the bottom outer wall of the movable plate. The top outer wall of the annular pressure plate has three sliding grooves, and the trapezoidal block is slidably connected inside the sliding grooves. A U-shaped connecting plate is fixedly connected to the side of the movable plate away from the rack. An arc-shaped extrusion plate is fixedly connected to the end of the U-shaped connecting plate away from the movable plate. A fixing mechanism is provided on the top outer wall of the main body.

[0013] Furthermore, the fixing mechanism includes two rotating columns rotatably connected to the top outer wall of the main body. An annular rotating block is fixedly connected to the outer wall of the two rotating columns. Two round rods are fixedly connected to the top outer wall of the annular rotating block. A spherical block is fixedly connected to the end of the round rod away from the annular rotating block. A sleeve is fitted onto the outer wall of the rotating column. A threaded groove is opened on the outer wall of the sleeve. A spring is fixedly connected to the top inner wall of the sleeve. The end of the spring away from the sleeve is fixedly connected to the top outer wall of the rotating column. A fixing frame is fixedly connected to the top outer wall of the sleeve. A sliding groove is opened on the top outer wall of the fixing frame.

[0014] Furthermore, trapezoidal blocks are fixedly connected to the front and back of the outer wall of the fixed frame, and four fixed blocks are fixedly connected to the top outer wall of the main body. The four fixed blocks are symmetrically distributed in pairs. A sliding groove is opened on the opposite side of the two fixed blocks. The trapezoidal blocks are slidably connected inside the sliding groove. A connecting rod is embedded in the round rod through a spherical block. A T-shaped sliding block is embedded in the end of the connecting rod away from the round rod through a spherical block. The T-shaped sliding block is slidably connected inside the sliding groove opened at the top of the fixed frame. An arc-shaped clamp is fixedly connected to the side of the T-shaped sliding block away from the connecting rod.

[0015] The present invention has the following beneficial effects:

[0016] (1) In this invention, when the water pump is started, the water pump will draw water from the water storage tank through the water inlet pipe and then let the water enter the hollow column through the water outlet pipe. When the electric push rod drives the U-shaped block to move down, the hollow column will move downward through the sliding frame. When the annular plate comes into contact with the steel, the annular block will be pushed upward through the rotating plate as the hollow column descends. When the annular block moves upward, it will drive the cross top plate to move upward together. When the cross top plate moves upward, it will drive the top rod to move upward and lift the block through the top rod, so that the through groove is opened. When the annular block moves to the limit, the water inlet on one side of the annular block will be connected to the rectangular groove, so that the water source enters the annular block through the water inlet and is sprayed out through the nozzle to cool the steel and equipment being cut. Cooling can effectively prevent the equipment from overheating and causing performance degradation or damage, extend the service life of the equipment, ensure the stability of the cutting process and the cutting quality, and improve production efficiency.

[0017] (2) In this invention, when the top cross plate moves up to its limit, the hollow column moves down and pushes the rotating plate to rotate. During the rotation, the rotating plate pushes the sliding block to move outward. When the sliding block moves outward, it drives the pressure rod to move together. The pressure rod squeezes the annular pressure plate, thereby pushing the annular pressure plate to move downward. When the annular pressure plate moves downward, it drives the sponge block to move downward until the sponge block contacts the steel. The water sprayed on the steel during the cooling process is wiped clean. By cleaning the water on the steel, the steel can be prevented from being in a damp state for a long time, reducing the risk of rust and corrosion, maintaining the integrity and aesthetics of the steel, and ensuring that the steel can achieve better results in subsequent welding, painting and other processes, thus improving product quality.

[0018] (3) In this invention, after the equipment has finished cutting, the electric push rod is activated to move the U-shaped block upward, thereby moving the sliding frame upward and driving the plasma cutting head upward. The annular pressure plate will move upward under the reaction force of the spring. When the annular pressure plate moves upward, it will push the rack upward together. When the rack moves upward, it will drive the gear plate meshing with it to rotate. When the gear plate rotates, it will pull the pull rod to rotate. When the pull rod rotates, it will pull the V-shaped rotating plate and make the V-shaped rotating plate rotate. When the V-shaped rotating plate rotates, the V-shaped rotating plate moves away from the pull rod. One end pushes the connecting plate to rotate, which in turn pushes the movable plate to move outward. As the movable plate moves outward, it moves the U-shaped connecting plate outward as well, and through the U-shaped connecting plate, it moves the arc-shaped extrusion plate, thereby squeezing the sponge block and squeezing out the water inside. By squeezing out the water inside the sponge block, the sponge's absorbency can be restored, preventing water from accumulating inside the sponge block and ensuring that it can continuously and effectively absorb condensate, thus avoiding deformation or failure of the sponge block due to excessive moisture.

[0019] (4) In use, the steel is placed on the fixed frame. The weight of the steel itself will cause the fixed frame to move downward. During the downward movement of the fixed frame, the rotating column will rotate through the threaded groove on the outside of the sleeve. When the rotating column rotates, it will drive the annular rotating block to rotate together and drive the round rod to rotate together. While the annular rotating block 602 drives the round rod 603 to rotate, it will pull the connecting rod 607 to move inward. The connecting rod will drive the T-shaped sliding block to move together. While the T-shaped sliding block moves inward, it will drive the arc-shaped clamping plate to move, thereby fixing the steel placed on the fixed frame and preventing the steel from moving or vibrating during the cutting process, which would lead to cutting errors or interruptions and affect the cutting accuracy and the quality of the steel.

[0020] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0021] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a schematic diagram of the half-section structure of the present invention;

[0024] Figure 3 This is a schematic diagram of the overall structure of the moving mechanism of the present invention;

[0025] Figure 4 This is a schematic diagram of the overall structure of the cooling mechanism of the present invention;

[0026] Figure 5 for Figure 4 Enlarged view of point A in the middle;

[0027] Figure 6 This is a schematic diagram of the overall structure of the cleaning mechanism of the present invention;

[0028] Figure 7 This is a schematic diagram of the overall structure of the extrusion mechanism of the present invention;

[0029] Figure 8 This is a schematic diagram of the overall structure of the fixing mechanism of the present invention;

[0030] Figure 9 for Figure 8 Enlarged view of section B in the middle.

[0031] The attached diagram lists the components represented by each number as follows:

[0032] In the diagram: 1. Main body; 101. Support leg; 102. Partition plate; 103. Fixed block one; 2. Moving mechanism; 201. Electric push rod; 202. Moving block; 203. U-shaped block; 204. Sliding frame; 205. Track; 3. Cooling mechanism; 301. Water tank; 302. Inlet pipe; 303. Water pump; 304. Outlet pipe; 305. Hollow column; 306. Block; 307. Annular block; 308. Cross top plate; 309. Top rod; 310. Nozzle; 311. Plasma cutting head; 4. Cleaning mechanism; 401. Annular plate one; 402. Horizontal plate; 403. Annular plate two; 404. Ball bearing; 405. 406. Rotating plate; 407. Sliding block; 408. Pressure rod; 409. Annular pressure plate; 400. Sponge block; 5. Extrusion mechanism; 501. Arc-shaped block; 502. Vertical plate; 503. V-shaped rotating plate; 504. Rack; 505. Fixed plate; 506. Gear plate; 507. Pull rod; 508. Connecting plate; 509. Movable plate; 510. U-shaped connecting plate; 511. Arc-shaped extrusion plate; 6. Fixed mechanism; 601. Rotating column; 602. Annular rotating block; 603. Round rod; 604. Sleeve; 605. Fixed frame; 606. Fixed block two; 607. Connecting rod; 608. T-shaped sliding block; 609. Arc-shaped clamping plate. Detailed Implementation

[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0034] Please see Figures 1-9As shown, this invention is an automated steel cutting electromechanical device for industrial manufacturing, comprising a main body 1, with support legs 101 fixedly connected to the four corners of the bottom of the main body 1, a rectangular groove formed on the top outer wall of the main body 1, and a plurality of partitions 102 fixedly connected inside the rectangular groove, the partitions 102 being evenly distributed, and two fixing blocks 103 fixedly connected to the top outer wall of the main body 1, the two fixing blocks 103 being symmetrically distributed with the middle of the main body 1 as the center, the top outer wall of the fixing blocks 103 having a sliding groove, and further comprising: a moving mechanism 2, the moving mechanism 2 including two support plates fixedly connected to the top outer wall of the main body 1, with an electric push rod 201 fixedly connected to the side of the support plates away from the main body 1, the sliding mechanism 2 having a sliding groove. A trapezoidal block is slidably connected inside the groove. A movable block 202 is fixedly connected to the top of the trapezoidal block. The output end of the electric push rod 201 is fixedly connected to the left outer wall of the movable block 202. A U-shaped block 203 is provided on the outer wall of the movable block 202. Rectangular grooves are opened at both ends of the bottom of the U-shaped block 203. The movable block 202 is slidably connected inside the rectangular groove. An electric push rod is fixedly connected to the top outer wall of the movable block 202. The output end of the electric push rod is fixedly connected to the top of the rectangular groove. A sliding frame 204 is slidably connected to the outer wall of the U-shaped block 203. A track 205 is fixedly connected to the back of the sliding frame 204. The end of the track 205 away from the sliding frame 204 is slidably connected to the top of the U-shaped block 203. When the electric push rod 201 is activated, it will push the moving block 202 to move laterally. When the electric push rod and the track 205 are activated, the electric push rod will drive the U-shaped block 203 to move longitudinally, and the track 205 will drive the sliding frame 204 to move laterally, thereby driving the plasma cutting head 311 to move in all directions.

[0035] The cooling mechanism 3 includes a water tank 301 fixedly connected to the outer wall of the front of the main body 1. A water inlet pipe 302 is fixedly connected to the outer wall of the left side of the water tank 301. A water pump 303 is fixedly connected to the outer wall of the top of the sliding frame 204. The end of the water inlet pipe 302 away from the water tank 301 is fixedly connected to the outer wall of the front of the water pump 303. A water outlet pipe 304 is fixedly connected to the outer wall of the left side of the water pump 303. A hollow column 305 is fixedly connected to the outer wall of the bottom of the sliding frame 204. The end of the water outlet pipe 304 away from the water pump 303 is fixedly connected to the outer wall of the hollow column 305. A plasma cutting head 311 is fixedly connected to the end of the hollow column 305 away from the sliding frame 204. When cutting steel, the plasma cutting head 311 needs to be lowered to maintain an appropriate cutting distance from the steel. The water pump 303 is started. When the water pump 303 is working, it draws water from the water storage tank 301 through the water inlet pipe 302 and then the water enters the hollow column 305 through the water outlet pipe 304. When the electric push rod moves the U-shaped block 203 downward, the hollow column 305 will move downward through the sliding frame 204. When the annular plate 403 comes into contact with the steel, the annular block 307 will be pushed upward by the rotating plate 405 as the hollow column 305 descends. When the annular block 307 moves upward, it will also move the cross top plate 308 upward.

[0036] A baffle is fixedly connected to the inner wall of the hollow column 305. A through groove is opened on the top outer wall of the baffle. A spring is fixedly connected to the top inner wall of the hollow column 305. A block 306 is fixedly connected to the end of the spring away from the top inner wall of the hollow column 305. Four rectangular slots are opened on the outer wall of the hollow column 305. The four rectangular slots are arranged in a circumferential array. An annular block 307 is slidably connected to the outer wall of the hollow column 305. Several nozzles 310 are fixedly connected to the bottom outer wall of the annular block 307. The several nozzles 310 are arranged in a circular array. The annular block 307 is arranged in a circular array. A water inlet is located on the side of the annular block 307 closest to the hollow column 305. A cross-shaped top plate 308 is fixedly connected to the side of the annular block 307 closest to the hollow column 305. The four corners of the cross-shaped top plate 308 are slidably connected to the interior of the rectangular groove. A top rod 309 is fixedly connected to the top outer wall of the cross-shaped top plate 308. Three trapezoidal blocks are fixedly connected to the outer wall of the plasma cutting head 311, arranged in a circular array. A cleaning mechanism 4 is provided on the outer wall of the plasma cutting head 311. When the cross-shaped top plate 308 moves upward, it drives the top rod 309 to move upward, lifting the block 306 and opening the through groove. When the annular block 307 reaches its upper limit, the water inlet on one side of the annular block 307 connects with the rectangular groove, allowing water to enter the annular block 307 through the inlet and be sprayed out through the nozzle 310 to cool the steel and equipment being cut.

[0037] The cleaning mechanism 4 includes an annular plate 401 slidably connected to the outer wall of the plasma cutting head 311. The inner wall of the annular plate 401 has three trapezoidal grooves. A trapezoidal block on the outer wall of the plasma cutting head 311 is slidably connected to the inside of the trapezoidal grooves. A spring is fixedly connected to the bottom outer wall of the trapezoidal block, and the end of the spring away from the trapezoidal block is fixedly connected to the bottom of the trapezoidal groove. Three horizontal plates 402 are fixedly connected to the outer wall of the annular plate 401. The three horizontal plates 402 are arranged in a circumferential array. A rectangular groove is formed on the top outer wall of each horizontal plate 402. An annular plate 403 is fixedly connected to the side away from the first annular plate 401. The bottom outer wall of the second annular plate 403 has an annular groove, and several balls 404 are embedded inside the annular groove. The bottom outer wall of the annular block 307 is rotatably connected to three rotating plates 405 through a rotating seat. When the annular block 307 moves to its limit, the hollow column 305 moves down, which pushes the rotating plates 405 to rotate. During the rotation, the rotating plates 405 push the sliding block 406 to move outward.

[0038] Three rotating plates 405 are rotatably connected to a sliding block 406 at the end away from the annular block 307. The sliding block 406 is slidably connected inside a rectangular groove opened at the top of the horizontal plate 402. The side of the sliding block 406 away from the rotating plate 405 is rotatably connected to a pressure rod 407 via a rotating seat. The end of the pressure rod 407 away from the sliding block 406 is rotatably connected to an annular pressure plate 408. A trapezoidal block is fixedly connected to the outer wall of the annular pressure plate 408. Three sliding grooves are opened on the inner wall of the annular plate 403. The trapezoidal block is slidably connected inside the sliding grooves. A spring is fixedly connected to the bottom outer wall of the trapezoidal block. The spring is located away from the trapezoidal block. The end is fixedly connected to the bottom of the chute. A sponge block 409 is fixedly connected to the side of the annular pressure plate 408 away from the pressure rod 407. A squeezing mechanism 5 is provided on the opposite side of the two horizontal plates 402. When the sliding block 406 moves outward, it will drive the pressure rod 407 to move together. The pressure rod 407 squeezes the annular pressure plate 408, thereby pushing the annular pressure plate 408 to move downward. When the annular pressure plate 408 moves downward, it will drive the sponge block 409 to move downward together until the sponge block 409 comes into contact with the steel and wipes away the water sprayed on the steel during the cooling process.

[0039] The extrusion mechanism 5 includes an arc-shaped block 501 fixedly connected to one side of two horizontal plates 402. A vertical plate 502 is fixedly connected to the side of each arc-shaped block 501 away from the horizontal plates 402. A V-shaped rotating plate 503 is rotatably connected between the two vertical plates 502. Three racks 504 are fixedly connected to the top outer wall of the annular pressure plate 408, arranged in a circumferential array. Six fixed plates 505 are fixedly connected to the inner wall of the V-shaped rotating plate 503, arranged in a circumferential array in pairs. A gear plate 506 is rotatably connected between two fixed plates 505, meshing with the racks 504. The gear plate 506 is located away from the arc-shaped block. A rectangular groove is provided at one end of 501. A pull rod 507 is rotatably connected inside the rectangular groove. After the equipment finishes cutting, the electric push rod is activated to move the U-shaped block 203 upward, thereby moving the sliding frame 204 upward and driving the plasma cutting head 311 upward. The annular pressure plate 408 will move upward under the reaction force of the spring. When the annular pressure plate 408 moves upward, it will push the rack 504 to move upward together. When the rack 504 moves upward, it will drive the gear plate 506 meshing with it to rotate. When the gear plate 506 rotates, it will pull the pull rod 507 to rotate. When the pull rod 507 rotates, it will pull the V-shaped rotating plate 503 and make the V-shaped rotating plate 503 rotate.

[0040] The end of the pull rod 507 away from the gear plate 506 is rotatably connected to one side of the outer wall of the V-shaped rotating plate 503. A rectangular groove is formed at the end of the V-shaped rotating plate 503 away from the pull rod 507. A connecting plate 508 is rotatably connected inside the rectangular groove. A movable plate 509 is rotatably connected at the end of the connecting plate 508 away from the V-shaped rotating plate 503. A trapezoidal block is fixedly connected to the bottom outer wall of the movable plate 509. Three sliding grooves are formed on the top outer wall of the annular pressure plate 408. The trapezoidal block is slidably connected inside the sliding grooves. A U-shaped connecting plate 510 is fixedly connected to the side of the movable plate 509 away from the rack 504. An arc-shaped extrusion plate 511 is fixedly connected to one end of the plate 509. A fixing mechanism 6 is provided on the top outer wall of the main body 1. When the V-shaped rotating plate 503 rotates, the end of the V-shaped rotating plate 503 away from the pull rod 507 will push the connecting plate 508 to rotate. The connecting plate 508 will push the movable plate 509 to move outward. When the movable plate 509 moves outward, it will drive the U-shaped connecting plate 510 to move outward together. The U-shaped connecting plate 510 will drive the arc-shaped extrusion plate 511 to move together, thereby squeezing the sponge block 409 and squeezing out the water inside the sponge block 409.

[0041] The fixing mechanism 6 includes two rotating columns 601 rotatably connected to the top outer wall of the main body 1. An annular rotating block 602 is fixedly connected to the outer wall of the two rotating columns 601. Two round rods 603 are fixedly connected to the top outer wall of the annular rotating block 602. A spherical block is fixedly connected to the end of each round rod 603 away from the annular rotating block 602. A sleeve 604 is fitted onto the outer wall of the rotating columns 601. The outer wall of the sleeve 604 has a threaded groove. A spring is fixedly connected to the top inner wall of the sleeve 604. The end of the spring away from the sleeve 604 is connected to the rotating column 601. The top outer wall of 1 is fixedly connected. The top outer wall of the sleeve 604 is fixedly connected to a fixed frame 605. The top outer wall of the fixed frame 605 is provided with a sliding groove. When the steel is placed on the fixed frame 605, the weight of the steel itself will drive the fixed frame 605 to move downward. During the downward movement, the fixed frame 605 will drive the rotating column 601 to rotate through the threaded groove on the outside of the sleeve 604. When the rotating column 601 rotates, it will drive the annular rotating block 602 to rotate together, and drive the round rod 603 to rotate together.

[0042] Trapezoidal blocks are fixedly connected to the front and back of the outer wall of the fixed frame 605. Four fixed blocks 606 are fixedly connected to the top outer wall of the main body 1. The four fixed blocks 606 are symmetrically distributed in pairs. A sliding groove is opened on the opposite side of two fixed blocks 606. The trapezoidal blocks are slidably connected inside the sliding groove. A connecting rod 607 is embedded in the round rod 603 through a spherical block. A T-shaped sliding block 608 is embedded in the end of the connecting rod 607 away from the round rod 603 through a spherical block. The T-shaped sliding block 608 is slidably connected to the fixed frame 605. Inside the groove at the top of the fixed frame 605, an arc-shaped clamping plate 609 is fixedly connected to the side of the T-shaped sliding block 608 away from the connecting rod 607. When the annular rotating block 602 drives the round rod 603 to rotate, it will pull the connecting rod 607 to move inward. The connecting rod 607 will also drive the T-shaped sliding block 608 to move together. When the T-shaped sliding block 608 moves inward, it will drive the arc-shaped clamping plate 609 to move, thereby fixing the steel placed on the fixed frame 605.

[0043] In use, the steel is placed on the fixed frame 605. The weight of the steel itself will cause the fixed frame 605 to move downward. During the downward movement, the fixed frame 605 will cause the rotating column 601 to rotate through the threaded groove on the outside of the sleeve 604. When the rotating column 601 rotates, it will cause the annular rotating block 602 to rotate together, and the round rod 603 to rotate together. While the annular rotating block 602 is causing the round rod 603 to rotate, it will pull the connecting rod 607 to move inward. The connecting rod 607 will also cause the T-shaped sliding block 608 to move together. While the T-shaped sliding block 608 is moving inward, it will cause the arc-shaped clamping plate 609 to move, thereby fixing the steel placed on the fixed frame 605.

[0044] Start the electric push rod 201. When working, the electric push rod 201 will push the moving block 202 to move laterally. Start the electric push rod and the track 205. When working, the electric push rod will drive the U-shaped block 203 to move longitudinally, and the track 205 will drive the sliding frame 204 to move laterally, thereby driving the plasma cutting head 311 to move in all directions. When cutting steel, the plasma cutting head 311 needs to be lowered to maintain an appropriate cutting distance from the steel.

[0045] When the water pump 303 is started, it draws water from the water storage tank 301 through the inlet pipe 302, and then the water flows through the outlet pipe 304 into the hollow column 305. When the electric actuator moves the U-shaped block 203 downward, the sliding frame 204 moves the hollow column 305 downward. When the annular plate 403 contacts the steel, the downward movement of the hollow column 305 pushes the annular block 307 upward through the rotating plate 405. As the annular block 307 moves upward, it moves the cross top plate 308 upward as well. When the cross top plate 308 moves upward, it moves the push rod 309 upward, which lifts the block 306, opening the through slot. When the annular block 307 reaches its upper limit, the water inlet on one side of the annular block 307 opens. It will then connect with the rectangular groove, allowing water to enter the annular block 307 through the inlet and be sprayed out through the nozzle 310 to cool the steel and equipment being cut. When the cross top plate 308 moves to its limit, the hollow column 305 moves down, which will push the rotating plate 405 to rotate through the annular block 307. During the rotation, the rotating plate 405 will push the sliding block 406 to move outward. When the sliding block 406 moves outward, it will drive the pressure rod 407 to move together, and the pressure rod 407 will squeeze the annular pressure plate 408, thereby pushing the annular pressure plate 408 to move downward. When the annular pressure plate 408 moves downward, it will drive the sponge block 409 to move downward together until the sponge block 409 contacts the steel to wipe and clean the water sprayed on the steel during the cooling process.

[0046] After the cutting is completed, the electric actuator moves the U-shaped block 203 upward, thereby moving the sliding frame 204 upward and driving the plasma cutting head 311 upward. The annular pressure plate 408 then moves upward under the reaction force of the spring. As the annular pressure plate 408 moves upward, it pushes the rack 504 upward as well. The rack 504, in turn, drives the meshing gear plate 506 to rotate. The rotation of the gear plate 506 pulls the pull rod 507, causing it to rotate as well. The rotation of the pull rod 507 then pulls the V-shaped rotating plate 503, causing it to rotate. The V-shaped rotating plate 503 rotates. When the V-shaped rotating plate 503 rotates, the end of the V-shaped rotating plate 503 away from the pull rod 507 pushes the connecting plate 508 to rotate. The connecting plate 508 pushes the movable plate 509 to move outward. When the movable plate 509 moves outward, it drives the U-shaped connecting plate 510 to move outward as well. The U-shaped connecting plate 510 drives the arc-shaped extrusion plate 511 to move together, thereby squeezing the sponge block 409 and squeezing out the water inside the sponge block 409.

[0047] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. An automated steel cutting machine for industrial manufacturing, comprising a main body, with support legs fixedly connected to the four corners of the bottom of the main body, a rectangular groove formed on the top outer wall of the main body, a plurality of partitions fixedly connected inside the rectangular groove, the partitions being evenly distributed, and two fixing blocks 1 fixedly connected to the top outer wall of the main body, the two fixing blocks 1 being symmetrically distributed about the center of the main body, the top outer wall of the fixing blocks 1 having a sliding groove, characterized in that... It also includes: The moving mechanism includes two support plates fixedly connected to the top outer wall of the main body. An electric push rod is fixedly connected to the side of the support plate away from the main body. A trapezoidal block is slidably connected inside the slide groove. A moving block is fixedly connected to the top of the trapezoidal block. The output end of the electric push rod is fixedly connected to the left outer wall of the moving block. A U-shaped block is provided on the outer wall of the moving block. Rectangular grooves are opened at both ends of the bottom of the U-shaped block. The moving block is slidably connected inside the rectangular grooves. An electric push rod is fixedly connected to the top outer wall of the moving block. The output end of the electric push rod is fixedly connected to the top of the rectangular groove. A sliding frame is slidably connected to the outer wall of the U-shaped block. A track is fixedly connected to the back of the sliding frame. The end of the track away from the sliding frame is slidably connected to the top of the U-shaped block. The cooling mechanism is used to spray water to cool the steel during the cutting process, preventing damage to the equipment and steel due to high temperatures; A cooling mechanism includes a water tank fixedly connected to the outer wall of the main body, an inlet pipe fixedly connected to the left outer wall of the water tank, a water pump fixedly connected to the top outer wall of the sliding frame, the end of the inlet pipe away from the water tank being fixedly connected to the outer wall of the front of the water pump, an outlet pipe fixedly connected to the left outer wall of the water pump, a hollow column fixedly connected to the bottom outer wall of the sliding frame, the end of the outlet pipe away from the water pump being fixedly connected to the outer wall of the hollow column, and a plasma cutting head fixedly connected to the end of the hollow column away from the sliding frame. A baffle is fixedly connected to the inner wall of the hollow column. A through groove is opened on the top outer wall of the baffle. A spring is fixedly connected to the top inner wall of the hollow column. A block is fixedly connected to the end of the spring away from the top inner wall of the hollow column. Four rectangular grooves are opened on the outer wall of the hollow column. The four rectangular grooves are arranged in a circumferential array. An annular block is slidably connected to the outer wall of the hollow column. Several nozzles are fixedly connected to the bottom outer wall of the annular block. The several nozzles are arranged in a circumferential array. A water inlet is opened on the side of the annular block near the hollow column. A cross-shaped top plate is fixedly connected to the side of the annular block near the hollow column. The four corners of the cross-shaped top plate are slidably connected to the inside of the rectangular groove. A top rod is fixedly connected to the top outer wall of the cross-shaped top plate. Three trapezoidal blocks are fixedly connected to the outer wall of the plasma cutting head. The three trapezoidal blocks are arranged in a circumferential array. A cleaning mechanism is provided on the outer wall of the plasma cutting head. A cleaning mechanism is used to clean water sprayed onto the steel during the cutting process, keeping the steel surface dry and clean. The cleaning mechanism includes an annular plate slidably connected to the outer wall of the plasma cutting head. The inner wall of the annular plate has three trapezoidal grooves. A trapezoidal block on the outer wall of the plasma cutting head is slidably connected to the inside of the trapezoidal grooves. A spring is fixedly connected to the bottom outer wall of the trapezoidal block. The end of the spring away from the trapezoidal block is fixedly connected to the bottom of the trapezoidal groove. Three horizontal plates are fixedly connected to the outer wall of the annular plate, and the three horizontal plates are arranged in a circular array. The squeezing mechanism is used to squeeze the sponge block in the cleaning mechanism to squeeze out the water it has absorbed, ensuring that the sponge block can be reused; The extrusion mechanism includes an arc-shaped block fixedly connected to one side of two horizontal plates, and a vertical plate fixedly connected to the side of each arc-shaped block away from the horizontal plates. A V-shaped rotating plate is rotatably connected between the two vertical plates.

2. The industrial automated steel cutting electromechanical equipment according to claim 1, characterized in that: The top outer wall of the horizontal plate has a rectangular groove. The side of the horizontal plate away from the first annular plate is fixedly connected to the second annular plate. The bottom outer wall of the second annular plate has an annular groove. Several balls are embedded in the inside of the annular groove. The bottom outer wall of the annular block is rotatably connected to three rotating plates through a rotating seat.

3. The industrial automated steel cutting electromechanical equipment according to claim 2, characterized in that: The three rotating plates are rotatably connected to sliding blocks at their ends away from the annular block. The sliding blocks are slidably connected inside a rectangular groove at the top of the horizontal plate. The side of the sliding block away from the rotating plate is rotatably connected to a pressure rod via a rotating seat. The end of the pressure rod away from the sliding block is rotatably connected to an annular pressure plate. A trapezoidal block is fixedly connected to the outer wall of the annular pressure plate. The inner wall of the second annular plate has three sliding grooves. The trapezoidal block is slidably connected inside the sliding grooves. A spring is fixedly connected to the bottom outer wall of the trapezoidal block. The end of the spring away from the trapezoidal block is fixedly connected to the bottom of the sliding groove. A sponge block is fixedly connected to the side of the annular pressure plate away from the pressure rod. A squeezing mechanism is provided on the opposite side of the two horizontal plates.