Anti-splashing numerical control flame cutting machine
Patent Information
- Application Number
- CN202521881823.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-02
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-09-02
AI Technical Summary
[0003]在火焰切割机领域中,主要是通过气体燃烧生成的高温火焰对金属进行预热,使其达到燃点后,再通过高速切割氧流使金属剧烈氧化并放出热量,同时将熔化状态的金属氧化物吹掉,从而实现金属的切割;然而现有技术中,火焰切割时,会产生大量的金属火焰火花,对于环境有较大的污染,并且熔化的金属物质很难进行清理
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This anti-splash CNC flame cutting machine utilizes the output of the lower screw to move the lower slide to a suitable position. Under the joint operation of the lower hydraulic rod and the pneumatic pusher, the groove plate, magnetic bonding plate, and convex strip are aligned directly opposite the nozzle. In this way, it can effectively receive molten metal during cutting and block metal sparks and flames, thereby improving the comfort of the working environment and reducing the difficulty of cleaning residue.
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Figure CN224688118U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of flame cutting machine technology, specifically to a splash-proof CNC flame cutting machine. Background Technology
[0002] Flame cutting machines are cutting devices that use gas mixed with oxygen or gasoline mixed with oxygen to cut metal materials. They are mainly used in heavy industry. Flame cutting machines have low production investment and can process large thicknesses, making them suitable for rough machining industries with low precision requirements. For CNC cutting machines, including flame, plasma, laser and waterjet CNC cutting machines, they are used for drawing, programming, nesting, verification and CNC cutting of parts of any shape.
[0003] In the field of flame cutting machines, the metal is preheated by a high-temperature flame generated by gas combustion until it reaches its ignition point. Then, a high-speed cutting oxygen stream causes the metal to oxidize violently and release heat, while blowing away the molten metal oxides, thus achieving metal cutting. However, in the existing technology, flame cutting generates a large number of metal flame sparks, which causes significant environmental pollution, and the molten metal is difficult to clean up. Utility Model Content
[0004] The purpose of this invention is to provide a splash-proof CNC flame cutting machine to solve the problems mentioned in the background art.
[0005] By adopting the above technical solution, the lower slider moves to a suitable position after the output of the lower screw. With the joint operation of the lower hydraulic rod and the pneumatic pusher, the groove plate, magnetic bonding plate, and convex strip are aligned with the nozzle. This effectively receives the molten metal during cutting and blocks the metal sparks and flames, thereby improving the comfort of the working environment and reducing the difficulty of cleaning residue.
[0006] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: a CNC flame cutting machine with anti-splash, including a feeding and discharging assembly and an anti-splash component. The feeding and discharging assembly is provided with a rotating mechanism on the inner side of both ends, and a bolt-connected cutting mechanism is provided on the inner side above the rotating mechanism. The anti-splash component is provided on the inner side below the rotating mechanism. The splash-proof component includes a lower bolt base plate, a lower lead screw, a lower slider, a lower hydraulic rod, a grooved plate, a magnetic bonding plate, a ridge bar, and a pneumatic pusher. The lower bolt base plate is bolted to the lower inner side of the rotating mechanism. The lower slider is threaded onto the lower bolt base plate via the lower lead screw, and a grooved plate is provided on the lower slider via the output end of the lower hydraulic rod. The two ends of the grooved plate are hinged to magnetic bonding plates for mounting the ridge bar. A pneumatic pusher is provided above both ends of the lower slider.
[0007] In a preferred embodiment of this utility model, the magnetic bonding plate and the protrusion are symmetrically distributed about the central axis of the groove plate, and the groove plate has a groove-shaped structure.
[0008] In a preferred embodiment of this utility model, the feeding and discharging mounting assembly includes a base plate, bolt bases, shock absorbers, a square frame shell, a pneumatic telescopic rod, wheel blocks, guide wheels, and receiving slots. Bolt bases for mounting shock absorbers are provided above both ends of the base plate. A square frame shell for mounting receiving slots is provided above the shock absorbers. A pneumatic telescopic rod is provided on the inner side of the square frame shell. A wheel block is provided at the output end of the pneumatic telescopic rod. A guide wheel is provided on the inner side of the wheel block.
[0009] In a preferred embodiment of the present invention, the rotating mechanism includes a motor base, a drive motor, a drive gear, a gear ring, and a ring groove. The motor base is disposed at both ends of the square frame shell. The drive motor is disposed on the outer side of the motor base, and the output end of the drive motor is provided with a drive gear. The output end of the drive gear is provided with a gear ring for mounting the ring groove.
[0010] In a preferred embodiment of the present invention, the cutting mechanism includes an upper bolt base plate, an upper lead screw, an upper slider, and an upper hydraulic rod. The upper bolt base plate is bolted to the inner side above the toothed ring. The upper lead screw is provided at the output end of the upper bolt base plate, and the upper slider is threaded to the output end of the upper lead screw. The upper hydraulic rod is provided below the upper slider.
[0011] In a preferred embodiment of the present invention, the cutting mechanism further includes a lifting block, a nozzle, a conveying pipe, a fuel tank, and a mounting block. The output end of the upper hydraulic rod is provided with a lifting block, and the inner side of the lifting block is provided with a nozzle. The upper part of the nozzle is provided with a conveying pipe, and one end of the conveying pipe is provided with a fuel tank on which the mounting block is mounted.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This anti-splash CNC flame cutting machine utilizes the output of the lower screw to move the lower slide to a suitable position. Under the joint operation of the lower hydraulic rod and the pneumatic pusher, the groove plate, magnetic bonding plate, and convex strip are aligned directly opposite the nozzle. In this way, it can effectively receive molten metal during cutting and block metal sparks and flames, thereby improving the comfort of the working environment and reducing the difficulty of cleaning residue. Attached Figure Description
[0013] Figure 1 This is a front-view three-dimensional structural schematic diagram of the present invention; Figure 2 This is a three-dimensional structural diagram of the present invention viewed from below; Figure 3 This is a three-dimensional structural diagram of the material feeding and discharging assembly of this utility model; Figure 4 This is a three-dimensional structural diagram of the rotating mechanism of this utility model; Figure 5 This is a three-dimensional structural diagram of the cutting mechanism of this utility model; Figure 6 This is a three-dimensional structural diagram of the anti-splash component of this utility model.
[0014] In the diagram: 1. Feeding / Discharging Assembly; 101. Base Plate; 102. Bolt Base; 103. Shock Absorber; 104. Square Frame; 105. Pneumatic Telescopic Rod; 106. Wheel Block; 107. Guide Wheel; 108. Receiving Slot; 2. Rotation Mechanism; 201. Motor Base; 202. Drive Motor; 203. Drive Gear; 204. Gear Ring; 205. Ring Groove; 3. Cutting Mechanism; 301. Upper Bolt Base Plate 302. Upper lead screw; 303. Upper slider; 304. Upper hydraulic rod; 305. Lifting block; 306. Nozzle; 307. Conveying pipe; 308. Fuel tank; 309. Mounting block; 4. Anti-splash components; 401. Lower bolt base plate; 402. Lower lead screw; 403. Lower slider; 404. Lower hydraulic rod; 405. Groove plate; 406. Magnetic bonding plate; 407. Raised strip; 408. Pneumatic pusher. Detailed Implementation
[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0016] Please see Figure 1-6 This utility model provides a technical solution: a CNC flame cutting machine with anti-splash, including a feeding and discharging assembly 1 and an anti-splash component 4. A rotating mechanism 2 is provided on the inner side of both ends of the feeding and discharging assembly 1, and a bolt-connected cutting mechanism 3 is provided on the inner side above the rotating mechanism 2, and a bolt-connected anti-splash component 4 is provided on the inner side below the rotating mechanism 2. The splash-proof component 4 includes a lower bolt base plate 401, a lower lead screw 402, a lower slider 403, a lower hydraulic rod 404, a grooved plate 405, a magnetic bonding plate 406, a protrusion 407, and a pneumatic pusher 408. The lower bolt base plate 401 is bolted to the lower inner side of the rotating mechanism 2. The lower slider 403 is threadedly connected to the lower bolt base plate 401 through the lower lead screw 402. The grooved plate 405 is provided on the lower slider 403 through the output end of the lower hydraulic rod 404. The two ends of the grooved plate 405 are hinged to the magnetic bonding plate 406 on which the protrusion 407 is installed. The pneumatic pusher 408 is provided above both ends of the lower slider 403.
[0017] The magnetic bonding plate 406 and the raised strip 407 are symmetrically distributed around the central axis of the grooved plate 405, which has a groove-shaped structure.
[0018] In this embodiment, after the lower lead screw 402 is output and runs, the lower slider 403 and the lower hydraulic rod 404 move to a suitable position. Then, after the lower hydraulic rod 404 and the pneumatic pusher 408 are output and run, the groove plate 405, the magnetic bonding plate 406, and the convex strip 407 move to the processing area below the product.
[0019] The feeding and discharging mounting assembly 1 includes a base plate 101, a bolt base 102, a shock absorber 103, a square frame shell 104, a pneumatic telescopic rod 105, a wheel block 106, a guide wheel 107, and a receiving slot 108. The bolt base 102 for mounting the shock absorber 103 is provided above both ends of the base plate 101. The square frame shell 104 for mounting the receiving slot 108 is provided above the shock absorber 103. The pneumatic telescopic rod 105 is provided on the inner side of the square frame shell 104. The wheel block 106 is provided at the output end of the pneumatic telescopic rod 105. The guide wheel 107 is provided on the inner side of the wheel block 106.
[0020] In this embodiment, during use, the various components are installed by combining and splicing the base plate 101, bolt base 102, and shock absorber 103. When it is necessary to process a product, the pneumatic telescopic rod 105 on the square frame shell 104 is used to output power to drive the output end to run, so that after the pneumatic telescopic rod 105 outputs and runs, the wheel block 106 drives the guide wheel 107 to run to a suitable position, and the product to be processed is introduced.
[0021] The rotating mechanism 2 includes a motor base 201, a drive motor 202, a drive gear 203, a gear ring 204, and an annular groove 205. The motor base 201 is located at both ends of the square frame shell 104. The drive motor 202 is located on the outer side of the motor base 201, and the drive gear 203 is located at the output end of the drive motor 202. The gear ring 204 with the annular groove 205 is located at the output end of the drive gear 203.
[0022] In this embodiment, during the cutting process, the drive motor 202 outputs power to drive the output end to run, so that the drive gear 203 outputs power and causes the gear ring 204 to rotate, thereby achieving the effect of circumferential cutting.
[0023] The cutting mechanism 3 includes an upper bolt base plate 301, an upper lead screw 302, an upper slider 303, and an upper hydraulic rod 304. The upper bolt base plate 301 is bolted to the upper inner side of the toothed ring 204. The upper lead screw 302 is provided at the output end of the upper bolt base plate 301, and the upper slider 303 is threadedly connected to the output end of the upper lead screw 302. The upper hydraulic rod 304 is provided below the upper slider 303.
[0024] In this embodiment, when processing is required, the upper screw 302 on the upper bolt base plate 301 outputs power to drive the output end to run, so that the upper slider 303 and the upper hydraulic rod 304 run to a suitable position, and the output of the lower screw 402 runs to move the lower slider 403 to a suitable position.
[0025] The cutting mechanism 3 also includes a lifting block 305, a nozzle 306, a conveying pipe 307, a fuel tank 308, and a mounting block 309. The output end of the upper hydraulic rod 304 is provided with the lifting block 305, and the inner side of the lifting block 305 is provided with the nozzle 306. The conveying pipe 307 is provided above the nozzle 306, and one end of the conveying pipe 307 is provided with the fuel tank 308 on which the mounting block 309 is mounted.
[0026] In this embodiment, when cutting is required, the output end of the fuel tank 308 is used to input the operation, so that the fuel and combustion aid are input into the nozzle 306 below the lifting block 305 through the feed pipe 307 for spraying, so as to achieve the ignition effect and realize the cutting effect.
[0027] The working principle of this anti-splash CNC flame cutting machine is as follows: During use, the various components are installed by combining and splicing the base plate 101, bolt base 102, and shock absorber 103. When processing a product, the pneumatic telescopic rod 105 on the square frame 104 outputs power to drive the output end, causing the wheel block 106 to drive the guide wheel 107 to a suitable position, guiding the product to be processed. When processing is required, the upper screw 302 on the upper bolt base plate 301 outputs power to drive the output end, causing the upper slider 303 and upper hydraulic rod 304 to move to a suitable position, and the output of the lower screw 402 moves the lower slider 403 to a suitable position. After the lower lead screw 402 is operated, the lower slider 403 and the lower hydraulic rod 404 move to the appropriate position. Then, the lower hydraulic rod 404 and the pneumatic pusher 408 are operated to move the groove plate 405, the magnetic bonding plate 406, and the convex strip 407 to the bottom of the product for processing. When cutting is required, the fuel tank 308 is operated to input fuel and combustion aid through the feed pipe 307 into the nozzle 306 below the lifting block 305 for spraying to achieve the ignition effect and the cutting effect. During the cutting process, the drive motor 202 outputs power to drive the output end to operate, so that the drive gear 203 outputs power to rotate the gear ring 204 to achieve the circumferential cutting effect.
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.