An intelligent profiling cutting system for internal partition stiffeners

Through the intelligent profiling cutting system of inner partition reinforcement ribs, laser positioning and scanners are used to determine the position and size of the reinforcement ribs to achieve accurate cutting, solving the problem of insufficient fit between the inner partition reinforcement ribs and the inner partition surface, and improving production efficiency and product quality.

CN119658086BActive Publication Date: 2025-07-25HEBEI HONGTAI SPECIAL PURPOSE VEHICLE CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202411795447.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2025-07-25
Estimated Expiration
2044-12-09

AI Technical Summary

Technical Problem

In the prior art, the inner partition reinforcement ribs and the inner partition curve surface are not fit enough, resulting in abnormal welding, requiring subsequent grinding or repair welding, reducing production efficiency and increasing workers' labor intensity.

Method used

The intelligent profiling cutting system of inner partition reinforcement ribs is adopted, and the position and size of the reinforcement ribs are determined by laser positioning and scanners, and precise cutting is performed through multi-stage movement and cutting guns to avoid subsequent grinding and repair welding.

Benefits of technology

Improve production efficiency, reduce workers' labor intensity, ensure product quality and production speed, and avoid welding abnormalities caused by uneven sizes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119658086B_ABST
    Figure CN119658086B_ABST
Patent Text Reader

Abstract

The present invention discloses an intelligent profiling cutting system for inner partition stiffeners, which relates to the technical field of inner partition stiffener cutting. One end of a fixed processing frame is fixedly installed with an integrated processing frame. The top of the integrated processing frame is fixedly installed with a fixed conveyor belt. One end of the top of the integrated processing frame is installed with a laser locator. Laser scanners are symmetrically and fixedly installed at the top end inside the integrated processing frame. A transposition electric slide rail is fixed at the bottom end inside the integrated processing frame. The top end of the transposition electric slide rail is installed with a transposition support frame through a slide rail seat. The top end of the transposition support frame is installed with a switching motor through a motor seat. The present invention effectively solves the problems in the prior art that the sizes of the stiffeners are uneven and the fit with the arc surface of the inner partition is insufficient, resulting in abnormal welding. Moreover, there is no need for subsequent grinding and repair welding, which improves the overall production efficiency, reduces the labor intensity of the staff, effectively ensures the required production speed, and at the same time guarantees the quality of the products.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of inner partition stiffener cutting, and specifically to an intelligent profiling cutting system for inner partition stiffeners. Background Technique

[0002] Inner partition stiffeners are design elements used to enhance structural strength and stability, and are usually applied to building structures, ships, aircraft, and other engineering fields. Currently, in the production field of special vehicles, the production of inner partition stiffeners mostly adopts a stamping one-time forming process or a production process of cutting the material first and then bending. When connecting multiple inner partition stiffeners to inner partitions, welding combination is generally used.

[0003] However, in the actual production process, there will be situations where the stiffeners do not fit well with the arc surface of the inner partition, and the gap is too large, which has a great impact on the subsequent welding, resulting in the need for grinding or repair welding operations on the stiffeners later, reducing the overall production efficiency, increasing the labor intensity of workers, and being unable to meet the needs of actual production. Summary of the Invention

[0004] The present invention provides an intelligent profiling cutting system for inner partition stiffeners, which can effectively solve the problems mentioned in the above background technique, that is, in the actual production process, there will be situations where the stiffeners do not fit well with the arc surface of the inner partition, and the gap is too large, which has a great impact on the subsequent welding, resulting in the need for grinding or repair welding operations on the stiffeners later, reducing the overall production efficiency, increasing the labor intensity of workers, and being unable to meet the needs of actual production.

[0005] To achieve the above object, the present invention provides the following technical solution: An intelligent profiling cutting system for inner partition stiffeners, including a fixed processing frame, and an integration component is provided at the top of the fixed processing frame;

[0006] The integration component includes an integration processing frame;

[0007] One end of the fixed processing frame is fixedly installed with an integration processing frame. A fixed conveyor belt is fixedly installed at the top of the integration processing frame. A laser locator is installed at the top of one end of the integration processing frame. Laser scanners are symmetrically and fixedly installed at the top end inside the integration processing frame. A transposition electric slide rail is fixed at the bottom end inside the integration processing frame. A transposition support frame is installed at the top of the transposition electric slide rail through a slide rail seat. A switching motor is installed at the top of the transposition support frame through a motor seat. The top end of the output shaft of the switching motor is clamped with a positioning support disk;

[0008] On one side of the top of the fixed processing frame, transparent isolation covers are symmetrically installed. At the position corresponding to the transparent isolation covers on the top of the fixed processing frame, a load-bearing support frame is installed. On one side of the top of the load-bearing support frame, access and power rails are symmetrically installed. At the top of the access and power rails, a lifting electric push rod is clamped through a rail seat. At the top of the lifting electric push rod, a commutation motor is installed through a motor seat. At the top of the output shaft of the commutation motor, a U-shaped commutation plate is clamped.

[0009] On the top of the load-bearing support frame, alignment and power rails are symmetrically installed. At the top of the alignment and power rails, an alignment processing frame is installed through a rail seat. On both sides of one end of the alignment processing frame, access electric push rods are installed. At one end of the two access electric push rods, an access combination frame is fixed. At the bottom of the access combination frame, cutting and power rails are symmetrically installed. At the bottom of the cutting and power rails, a plasma cutting gun is connected through a rail seat.

[0010] According to the above technical solution, an air suction and fixing hopper is fixedly installed at the top of the transparent isolation cover. Through the top of the two air suction and fixing hoppers, an outer exhaust pipe frame is connected. One end of the outer exhaust pipe frame is connected to an air purifier. Through the top of the air purifier, an exhaust pipe is connected. Exhaust fans are fixed inside both the outer exhaust pipe frame and the exhaust pipe. At both ends of the U-shaped commutation plate, clamping electric push rods are fixed. At one end of the clamping electric push rod, a clamping fixed plate is fixed.

[0011] According to the above technical solution, the commutation support frame is slidably sleeved inside the integrated processing frame, and the alignment support disk is rotatably sleeved with the commutation support frame.

[0012] According to the above technical solution, the air purifier is placed on the top of the fixed processing frame, and both the load-bearing support frame and the alignment processing frame are sleeved and placed inside the transparent isolation cover.

[0013] According to the above technical solution, the clamping fixed plate is slidably connected to the U-shaped commutation plate, and there are two transparent isolation covers, load-bearing support frames, and alignment processing frames respectively.

[0014] According to the above technical solution, the alignment processing frame is slidably installed on the top of the load-bearing support frame;

[0015] The input ends of the fixed conveyor belt, laser locator, laser scanner, commutation and power rails, switching motor, air purifier, exhaust fan, access and power rails, lifting electric push rod, commutation motor, clamping electric push rod, alignment and power rails, access electric push rod, cutting and power rails, and plasma cutting gun are all electrically connected to the output end of an external controller;

[0016] The signal output ends of the laser locator and the laser scanner are both electrically connected to the signal input end of the external controller;

[0017] The input end of the external controller is electrically connected to the output end of an external power supply.

[0018] According to the above technical solution, an inlet and outlet component is provided at the top of the fixed processing rack;

[0019] The inlet and outlet component includes a feeding electric slide rail;

[0020] A feeding electric slide rail is fixed on one side of the top of the fixed processing rack. The top of the feeding electric slide rail is fixed with a feeding support plate through a slide rail seat. The top of the feeding support plate is symmetrically clamped with a correcting electric slide rail. The top of the correcting electric slide rail is provided with a correcting processing plate. The top of the correcting processing plate is clamped with a feeding electric push rod. The top of the feeding electric push rod is provided with a correcting motor through a motor seat. The top of the output shaft of the correcting motor is clamped with a material receiving and transposing frame;

[0021] On both sides of the top of the integration processing rack, pick-and-place electric slide rails are symmetrically installed. The top of the pick-and-place electric slide rails is provided with a pick-and-place support frame through a slide rail seat. The top of the pick-and-place support frame is symmetrically clamped with pick-and-place electric push rods, and the bottom ends of the pick-and-place electric push rods are fixed with adsorption electromagnets.

[0022] According to the above technical solution, the cross section of the feeding support plate is in a C shape, and the correcting processing plate is slidably sleeved with the feeding support plate.

[0023] According to the above technical solution, the material receiving and transposing frame is sleeved and connected with the feeding electric push rod, and the pick-and-place support frame is slidably sleeved on the top of the integration processing rack.

[0024] According to the above technical solution, there are two pick-and-place support frames and four adsorption electromagnets. The input ends of the feeding electric slide rail, the correcting electric slide rail, the feeding electric push rod, the correcting motor, the pick-and-place electric slide rail, the pick-and-place electric push rod and the adsorption electromagnet are all electrically connected to the output end of an external controller.

[0025] Compared with the prior art, the beneficial effects of the present invention are:

[0026] 1. An integration component is provided. The switching motor drives the alignment support disk to move, and cooperates with the transposition electric slide rail to drive the transposition support frame and the alignment support disk to move. The position of the reinforcing rib is positioned by laser positioning. The size and shape of the reinforcing rib are scanned and determined by a laser scanner. The position of the reinforcing rib is determined by laser positioning, and the reinforcing rib is driven to move by the laser scanning pair and the component, so as to determine the shape and size of the reinforcing rib, which is convenient for subsequent processing. And through the top-down scanning and equipment alignment correction, the alignment accuracy is ensured, and the data accuracy is improved;

[0027] The lifting electric push rod is driven by the incoming and outgoing electric slide rail. The C-shaped transposition plate is driven by the lifting electric push rod and the transposition motor to move. The position of the C-shaped transposition plate is adjusted according to the shape of the reinforcing rib, and the reinforcing rib is clamped for feeding. The alignment electric slide rail drives the alignment processing frame, and the incoming and outgoing electric push rod drives the incoming and outgoing combined frame. The plasma cutting gun is driven by the cutting electric slide rail to continuously cut the reinforcing rib. By using multi-segment movement and transposition and the movement and alignment of the reinforcing rib, according to the shape of the reinforcing rib, the redundant dimensions are accurately cut, ensuring the accuracy of the dimensions of the reinforcing rib, thereby improving the quality of the product;

[0028] Through moving and rotating alignment, and using laser positioning and laser scanning for detection, combined with multi-segment moving alignment cutting, the accurate correction of the dimensions of the reinforcing rib is realized, effectively solving the situation in the prior art where the dimensions of the reinforcing rib are uneven, the fit with the arc surface of the inner partition is insufficient, resulting in abnormal welding. And there is no need for subsequent grinding and repair welding, improving the overall production efficiency, reducing the labor intensity of the staff, effectively ensuring the required production speed, and at the same time ensuring the quality of the product.

[0029] 2. An incoming and outgoing component is provided. The pick-up and discharge support frame is driven by the pick-up and discharge electric slide rail, and the adsorption electromagnet is driven by the pick-up and discharge electric push rod to magnetically adsorb the reinforcing rib, realizing the picking and placing of the reinforcing rib. And through multi-segment transposition processing, the accuracy of alignment and support is improved, avoiding the occurrence of tilting, detachment and offset position. The feeding electric slide rail drives the feeding support plate, and the correction electric slide rail drives the correction processing plate to move. The receiving and transposition frame is driven by the feeding electric push rod and the correction motor to lift and rotate and transpose, so that accurate alignment can be achieved during material picking, and through the lifting and cooperation operation, the situation of detachment and dropping when the reinforcing rib is placed and picked is avoided, improving the accuracy of incoming and outgoing material alignment, and using multiple groups to cooperate simultaneously to improve the running speed.

[0030] In summary, through the mutual cooperation of the integration component and the incoming and outgoing component, through moving measurement and moving correction, and using synchronous incoming and outgoing and magnetic absorption and release, the accuracy of the position of the reinforcing rib can be ensured during the picking and placing process, reducing the situation where the reinforcing rib deviates from the measurement and cutting positions due to detachment and sliding. Through the mutual cooperation of multiple components, the accuracy of detection and cutting is effectively improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention.

[0032] In the drawings:

[0033] Figure 1 is a three-dimensional structural schematic diagram of the present invention;

[0034] Figure 2It is a schematic structural diagram of the integration component of the present invention;

[0035] Figure 3 It is a schematic installation structure diagram of the laser scanner of the present invention;

[0036] Figure 4 It is a schematic installation structure diagram of the clamping electric push rod of the present invention;

[0037] Figure 5 It is a schematic installation structure diagram of the clamping fixing plate of the present invention;

[0038] Figure 6 It is a schematic structural diagram of the inlet and outlet component of the present invention;

[0039] Figure 7 It is a schematic installation structure diagram of the material receiving and transposition frame of the present invention;

[0040] Figure 8 It is a schematic installation structure diagram of the correction processing plate of the present invention;

[0041] Reference numerals in the figure: 1, fixed processing frame;

[0042] 2, integration component; 201, integration processing frame; 202, fixed conveyor belt; 203, laser locator; 204, laser scanner; 205, transposition electric slide rail; 206, transposition support frame; 207, switching motor; 208, alignment support disk; 209, transparent isolation cover; 210, suction fixing hopper; 211, outer discharge pipe rack; 212, air purifier; 213, exhaust pipe; 214, exhaust fan; 215, load-bearing support frame; 216, inlet and outlet electric slide rail; 217, lifting electric push rod; 218, transposition motor; 219, C-shaped transposition plate; 220, clamping electric push rod; 221, clamping fixing plate; 222, alignment electric slide rail; 223, alignment processing frame; 224, inlet and outlet electric push rod; 225, inlet and outlet combined frame; 227, plasma cutting gun;

[0043] 3, inlet and outlet component; 301, feeding electric slide rail; 302, feeding support plate; 303, correction electric slide rail; 304, correction processing plate; 305, feeding electric push rod; 306, correction motor; 307, material receiving and transposition frame; 308, picking and placing electric slide rail; 309, picking and placing support frame; 310, picking and placing electric push rod; 311, adsorption electromagnet. Detailed implementation mode

[0044] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.

[0045] Example: As Figure 1-8As shown in the figure, the present invention provides a technical solution, an intelligent profiling cutting system for internal partition stiffeners, including a fixed processing frame 1, and an integration component 2 is arranged at the top of the fixed processing frame 1;

[0046] The integration component 2 includes an integration processing frame 201, a fixed conveyor belt 202, a laser locator 203, a laser scanner 204, a transposition electric slide rail 205, a transposition support frame 206, a switching motor 207, a positioning support disk 208, a transparent isolation cover 209, a suction fixing hopper 210, an external exhaust pipe rack 211, an air purifier 212, an exhaust pipe 213, an exhaust fan 214, a load-bearing support frame 215, an inlet and outlet electric slide rail 216, a lifting electric push rod 217, a transposition motor 218, a C-shaped transposition plate 219, a clamping electric push rod 220, a clamping fixing plate 221, a positioning electric slide rail 222, a positioning processing frame 223, an inlet and outlet electric push rod 224, an inlet and outlet combined frame 225, a cutting electric slide rail 226 and a plasma cutting gun 227;

[0047] One end of the fixed processing frame 1 is fixedly installed with an integration processing frame 201, the top of the integration processing frame 201 is fixedly installed with a fixed conveyor belt 202, one end of the top of the integration processing frame 201 is installed with a laser locator 203, laser scanners 204 are symmetrically and fixedly installed at the top end inside the integration processing frame 201, a transposition electric slide rail 205 is fixed at the bottom end inside the integration processing frame 201, the top end of the transposition electric slide rail 205 is installed with a transposition support frame 206 through a slide rail seat, the top end of the transposition support frame 206 is installed with a switching motor 207 through a motor seat, the top end of the output shaft of the switching motor 207 is clamped with a positioning support disk 208, the transposition support frame 206 is slidably sleeved inside the integration processing frame 201, and the positioning support disk 208 is rotationally sleeved with the transposition support frame 206 to achieve transposition support and ensure the steady processing of the overall switching;

[0048] On one side of the top of the fixed processing frame 1, transparent isolation covers 209 are symmetrically installed, a suction fixing hopper 210 is fixedly installed at the top of the transparent isolation cover 209, an external exhaust pipe rack 211 is connected through the top ends of the two suction fixing hoppers 210, one end of the external exhaust pipe rack 211 is connected with an air purifier 212, and the air purifier 212 is placed on the top of the fixed processing frame 1 to achieve steady air replacement processing and ensure operation stability. An exhaust pipe 213 is connected through the top end of the air purifier 212, and exhaust fans 214 are fixed inside both the external exhaust pipe rack 211 and the exhaust pipe 213;

[0049] At the position corresponding to the transparent isolation cover 209 at the top of the fixed processing frame 1, a load-bearing support frame 215 is installed. There are two transparent isolation covers 209, load-bearing support frames 215, and alignment processing frames 223 to ensure the processing efficiency. On one side of the top of the load-bearing support frame 215, access and power supply sliding rails 216 are symmetrically installed. At the top of the access and power supply sliding rails 216, a lifting electric push rod 217 is clamped through a sliding rail seat. At the top of the lifting electric push rod 217, a rotation motor 218 is installed through a motor seat. At the top of the output shaft of the rotation motor 218, a U-shaped rotation plate 219 is clamped. At both ends of the U-shaped rotation plate 219, clamping electric push rods 220 are fixed. At one end of the clamping electric push rod 220, a clamping fixed plate 221 is fixed. The clamping fixed plate 221 is slidably connected to the U-shaped rotation plate 219 to ensure the accuracy and stability of the moving alignment;

[0050] On the top of the load-bearing support frame 215, alignment electric sliding rails 222 are symmetrically installed. At the top of the alignment electric sliding rails 222, an alignment processing frame 223 is installed through a sliding rail seat. The alignment processing frame 223 is slidably installed on the top of the load-bearing support frame 215. Both the load-bearing support frame 215 and the alignment processing frame 223 are sleeved inside the transparent isolation cover 209, so that stable operation can be carried out during isolation protection and cutting blockage, and to avoid spark splashing from affecting environmental safety. On both sides of one end of the alignment processing frame 223, access electric push rods 224 are installed. At one end of the two access electric push rods 224, an access combination frame 225 is fixed. At the bottom of the access combination frame 225, cutting electric sliding rails 226 are symmetrically installed. At the bottom of the cutting electric sliding rails 226, a plasma cutting gun 227 is connected through a sliding rail seat;

[0051] For the stable operation of the equipment, the input ends of the fixed conveyor belt 202, laser locator 203, laser scanner 204, rotation electric sliding rail 205, switching motor 207, air purifier 212, exhaust fan 214, access and power supply sliding rail 216, lifting electric push rod 217, rotation motor 218, clamping electric push rod 220, alignment electric sliding rail 222, access electric push rod 224, cutting electric sliding rail 226, and plasma cutting gun 227 are all electrically connected to the output end of an external controller;

[0052] The signal output ends of the laser locator 203 and the laser scanner 204 are both electrically connected to the signal input end of the external controller;

[0053] The input end of the external controller is electrically connected to the output end of an external power supply.

[0054] An access component 3 is arranged at the top of the fixed processing frame 1;

[0055] The feeding and discharging assembly 3 includes a feeding electric slide rail 301, a feeding support plate 302, a correction electric slide rail 303, a correction processing plate 304, a feeding electric push rod 305, a correction motor 306, a material receiving and transposition frame 307, a pick-and-place electric slide rail 308, a pick-and-place support frame 309, a pick-and-place electric push rod 310, and an adsorption electromagnet 311;

[0056] One side of the top end of the fixed processing frame 1 is fixedly provided with a feeding electric slide rail 301. The top end of the feeding electric slide rail 301 is fixedly provided with a feeding support plate 302 through a slide rail seat. The top end of the feeding support plate 302 is symmetrically clamped with a correction electric slide rail 303. The top end of the correction electric slide rail 303 is provided with a correction processing plate 304. The cross-section of the feeding support plate 302 is in a U shape. The correction processing plate 304 is slidably sleeved with the feeding support plate 302 to achieve alignment support and stable load-bearing during equipment movement. The top end of the correction processing plate 304 is clamped with a feeding electric push rod 305. The top end of the feeding electric push rod 305 is provided with a correction motor 306 through a motor seat. The top end of the output shaft of the correction motor 306 is clamped with a material receiving and transposition frame 307. The material receiving and transposition frame 307 is sleeved and connected with the feeding electric push rod 305, so as to ensure the accuracy and stability of the overall support during rotation;

[0057] Both sides of the top end of the integrated processing frame 201 are symmetrically provided with pick-and-place electric slide rails 308. The top ends of the pick-and-place electric slide rails 308 are provided with pick-and-place support frames 309 through slide rail seats. The pick-and-place support frames 309 are slidably sleeved on the top end of the integrated processing frame 201. There are two pick-and-place support frames 309 and four adsorption electromagnets 311 to achieve stable pick-and-place of materials. The top ends of the pick-and-place support frames 309 are symmetrically clamped with pick-and-place electric push rods 310. The bottom ends of the pick-and-place electric push rods 310 are fixedly provided with adsorption electromagnets 311;

[0058] For the stable operation of the equipment, the input ends of the feeding electric slide rail 301, the correction electric slide rail 303, the feeding electric push rod 305, the correction motor 306, the pick-and-place electric slide rail 308, the pick-and-place electric push rod 310, and the adsorption electromagnet 311 are all electrically connected to the output end of an external controller.

[0059] Working principle and usage process of the present invention: When it is necessary to cut the inner partition stiffener, the device is powered as a whole through an external power supply and an external controller to start the device. The stiffener is transported and placed on the top of the fixed conveyor belt 202 by an external handling device. The fixed conveyor belt 202 drives the stiffener to move to the material taking position. The pick-and-place slide rail 308 drives the pick-and-place support frame 309 to move along the integration processing frame 201. The pick-and-place push rod 310 drives the adsorption electromagnet 311 to move down to the top of the stiffener, and the adsorption electromagnet 311 magnetically adsorbs the stiffener. The pick-and-place push rod 310 drives the adsorption electromagnet 311 and the stiffener to rise. At this time, the transposition slide rail 205 drives the transposition support frame 206 and the alignment support disk 208 to move, and the stiffener is placed on the top of the alignment support disk 208 again through the pick-and-place push rod 310 and the adsorption electromagnet 311. After the placement is completed, the switching motor 207 drives the alignment support disk 208 to move along the transposition support frame 206, and cooperates with the transposition slide rail 205 to drive the transposition support frame 206 to move to the bottom of the laser locator 203 and the laser scanner 204. The transposition slide rail 205 drives the transposition support frame 206 and the alignment support disk 208 to move, thereby driving the stiffener to move. The position of the stiffener is corrected and positioned by the laser locator 203 and the switching motor 207, and the size and shape of the stiffener are scanned and determined by the laser scanner 204;

[0060] After the data measurement of the stiffener is completed, it moves to the next pick-and-place position under the drive of the transposition slide rail 205 and the switching motor 207. The pick-and-place slide rail 308 and the pick-and-place push rod 310 drive the adsorption electromagnet 311 to pick up the stiffener again. At the same time, the feeding slide rail 301 drives the feeding support plate 302 to move along the fixed processing frame 1, and the correction slide rail 303 drives the correction processing plate 304 to move along the feeding support plate 302. Cooperating with the feeding push rod 305 and the correction motor 306, the receiving and transposition frame 307 is lifted and rotated to transpose, so that it is accurately aligned with the stiffener, and the pick-and-place slide rail 308 and the pick-and-place push rod 310 drive the stiffener to move to the side of the receiving and transposition frame 307 to realize the feeding process;

[0061] After the stiffener is placed on the side of the receiving and transposition frame 307, the feeding slide rail 301 drives the feeding support plate 302 to move to the position of the transparent isolation cover 209, and the stiffener is placed at the top position of the load-bearing support frame 215. The incoming and outgoing slide rail 216 drives the lifting push rod 217 to move along the load-bearing support frame 215. The lifting push rod 217 and the transposition motor 218 drive the C-shaped transposition plate 219 to move, adjust the position of the C-shaped transposition plate 219 according to the shape of the stiffener, place the stiffener inside the C-shaped transposition plate 219, and the clamping push rod 220 drives the clamping fixing plate 221 to fixedly engage with the stiffener, thereby realizing the feeding process;

[0062] After the feeding is completed, the alignment electric slide rail 222 drives the alignment processing frame 223 to move along the load-bearing support frame 215, and the in-out electric push rod 224 drives the in-out combination frame 225 to move, moving the plasma cutting gun 227 to the top position of the stiffener. Cooperating with the cutting electric slide rail 226 to drive the plasma cutting gun 227 to move, the stiffener is continuously cut. And through multi-position movement and switching, accurate alignment cutting of the outer shape is achieved, ensuring the accuracy of cutting. During the cutting process, the exhaust fan 214, the outer exhaust pipe frame 211 and the exhaust pipe 213 are used to extract the waste gas generated by cutting in the transparent isolation cover 209 and the air suction fixing hopper 210. The waste gas follows the outer exhaust pipe frame 211 into the inner side of the air purifier 212 and is discharged along the exhaust pipe 213 after purification, realizing air purification and reducing pollution.

[0063] Finally, it should be noted that the above are only preferred examples of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. An intelligent profiling cutting system for internal partition stiffeners, comprising a fixed processing rack (1), characterized in that: The top of the fixed processing frame (1) is provided with an integration component (2); The integration component (2) includes an integration processing frame (201); One end of the fixed processing frame (1) is fixedly installed with an integration processing frame (201). The top of the integration processing frame (201) is fixedly installed with a fixed conveyor belt (202). One top of one end of the integration processing frame (201) is installed with a laser locator (203). The inner top of the integration processing frame (201) is symmetrically and fixedly installed with laser scanners (204). The inner bottom of the integration processing frame (201) is fixed with a transposition electric slide rail (205). The top of the transposition electric slide rail (205) is installed with a transposition support frame (206) through a slide rail seat. The top of the transposition support frame (206) is installed with a switching motor (207) through a motor seat. The top of the output shaft of the switching motor (207) is clamped with a counterpoint support disc (208); On one side of the top of the fixed processing frame (1), transparent isolation covers (209) are symmetrically installed. At the position corresponding to the transparent isolation covers (209) on the top of the fixed processing frame (1), a load-bearing support frame (215) is installed. On one side of the top of the load-bearing support frame (215), access electric slide rails (216) are symmetrically installed. The top of the access electric slide rails (216) is clamped with a lifting electric push rod (217) through a slide rail seat. The top of the lifting electric push rod (217) is installed with a transposition motor (218) through a motor seat. The top of the output shaft of the transposition motor (218) is clamped with a U-shaped transposition plate (219). Clamping electric push rods (220) are fixed at both ends of the U-shaped transposition plate (219). One end of the clamping electric push rod (220) is fixed with a clamping fixing plate (221); On the top of the load-bearing support frame (215), counterpoint electric slide rails (222) are symmetrically installed. The top of the counterpoint electric slide rails (222) is installed with a counterpoint processing frame (223) through a slide rail seat. On both sides of one end of the counterpoint processing frame (223), access electric push rods (224) are installed. One end of the two access electric push rods (224) is fixed with an access combination frame (225). On the bottom of the access combination frame (225), cutting electric slide rails (226) are symmetrically installed. The bottom of the cutting electric slide rails (226) is connected with a plasma cutting gun (227) through a slide rail seat; The top of the fixed processing frame (1) is provided with an access component (3); The access component (3) includes a feeding electric slide rail (301); One side of the top of the fixed processing frame (1) is fixed with a feeding electric slide rail (301). The top of the feeding electric slide rail (301) is fixed with a feeding support plate (302) through a slide rail seat. The top of the feeding support plate (302) is symmetrically clamped with correction electric slide rails (303). The top of the correction electric slide rails (303) is installed with a correction processing plate (304). The top of the correction processing plate (304) is clamped with a feeding electric push rod (305). The top of the feeding electric push rod (305) is installed with a correction motor (306) through a motor seat. The top of the output shaft of the correction motor (306) is clamped with a material receiving transposition frame (307); On both sides of the top of the integration processing frame (201), pick-and-place sliding rails (308) are symmetrically installed. The top of the pick-and-place sliding rails (308) is provided with a pick-and-place support frame (309) through a sliding rail seat. The top of the pick-and-place support frame (309) is symmetrically clamped with pick-and-place push rods (310), and an adsorption electromagnet (311) is fixed to the bottom end of the pick-and-place push rods (310).

2. The intelligent profiling cutting system for inner partition stiffeners according to claim 1, wherein At the top of the transparent isolation cover (209), an air suction fixing hopper (210) is fixedly installed. The top ends of the two air suction fixing hoppers (210) are connected through an outer exhaust pipe frame (211). One end of the outer exhaust pipe frame (211) is connected to an air purifier (212). The top of the air purifier (212) is connected through an exhaust pipe (213). Exhaust fans (214) are fixed inside both the outer exhaust pipe frame (211) and the exhaust pipe (213).

3. An intelligent profiling cutting system for inner partition stiffeners according to claim 1, characterized in that, The position-changing support frame (206) is slidably sleeved inside the integration processing frame (201), and the alignment support disk (208) is rotatably sleeved with the position-changing support frame (206).

4. An intelligent profiling cutting system for inner partition stiffeners according to claim 2, characterized in that, The air purifier (212) is placed on the top of the fixed processing frame (1), and the load-bearing support frame (215) and the alignment processing frame (223) are both sleeved and placed inside the transparent isolation cover (209).

5. An intelligent profiling cutting system for inner partition stiffeners according to claim 2, characterized in that, The clamping fixing plate (221) is slidably connected to the U-shaped position-changing plate (219), and there are two of the transparent isolation cover (209), the load-bearing support frame (215), and the alignment processing frame (223).

6. An intelligent profiling cutting system for inner partition stiffeners according to claim 2, characterized in that, The alignment processing frame (223) is slidably installed on the top of the load-bearing support frame (215); The input ends of the fixed conveyor belt (202), laser locator (203), laser scanner (204), position-changing electric sliding rail (205), switching motor (207), air purifier (212), exhaust fan (214), incoming and outgoing electric sliding rail (216), lifting electric push rod (217), position-changing motor (218), clamping electric push rod (220), alignment electric sliding rail (222), incoming and outgoing electric push rod (224), cutting electric sliding rail (226), and plasma cutting gun (227) are all electrically connected to the output end of an external controller; The signal output ends of the laser locator (203) and the laser scanner (204) are both electrically connected to the signal input end of the external controller; The input end of the external controller is electrically connected to the output end of an external power supply.

7. An intelligent profiling cutting system for inner partition stiffeners according to claim 1, characterized in that, The cross-section of the feeding support plate (302) is U-shaped, and the correction processing plate (304) is slidably sleeved with the feeding support plate (302).

8. An intelligent profiling cutting system for inner partition stiffeners according to claim 1, characterized in that, The material receiving position-changing frame (307) is sleeved and connected with the feeding electric push rod (305), and the pick-and-place support frame (309) is slidably sleeved on the top of the integration processing frame (201).

9. An intelligent profiling cutting system for the inner partition stiffener according to claim 1, characterized in that There are two pick-and-place support frames (309) and four adsorption electromagnets (311). The input ends of the feeding electric sliding rail (301), correction electric sliding rail (303), feeding electric push rod (305), correction motor (306), pick-and-place sliding rail (308), pick-and-place push rod (310), and adsorption electromagnet (311) are all electrically connected to the output end of the external controller.

Citation Information

Patent Citations

  • Feeding structure for feeding assembly line

    CN104944103A

  • Workpiece grabbing deviation adjusting system based on CCD correction and method

    CN112850133A