Automatic high-pressure punching device for aluminum alloy window frame and punching method of automatic high-pressure punching device
Through the use of the automatic high-pressure punching device of aluminum alloy window frames, the problem of rough cross-section and many burrs after the cut-off of aluminum alloy window frames is solved, and rapid, stable cutting and high-quality processing are achieved.
Patent Information
- Application Number
- CN202510298752.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2045-03-13
AI Technical Summary
When the existing aluminum alloy window frame is cut off, the cross-section is rough and there are many burrs, which is inconvenient for subsequent use.
An automatic high-pressure punching device for aluminum alloy window frames is provided, including a processing table, mounting frame and punching mechanism. The lifting plate and cutting knife are driven by impact cylinder to quickly fall, and the aluminum alloy window frames are quickly cut off, and the cross-section is fixed and polished through clamps and grinding rollers to eliminate burrs.
It realizes rapid and stable cutting of aluminum alloy window frames, reduces the generation of cross-section burrs, and improves processing quality and convenience of use.
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Figure CN119952144A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of aluminum alloy window frames, and in particular to an automatic high-pressure punching device for an aluminum alloy window frame and a punching method thereof. Background Art
[0002] Aluminum alloy window frames are made of aluminum alloy materials and are widely used in residential, commercial buildings, office buildings and various construction projects. Aluminum alloy is a low-density metal with a density of only one-third of steel, so the window frames made of it are relatively light, but it has high strength and can withstand certain external forces. It has strong structural stability, and a layer of oxide film naturally forms on the surface of aluminum alloy, which can effectively resist the erosion of water, air and other corrosive substances, making aluminum alloy window frames very suitable for use in corrosive environments such as humid or seaside. Aluminum alloy window frames have become a very popular choice in modern buildings due to their excellent physical and chemical properties, lightness, high strength, corrosion resistance, and oxidation resistance.
[0003] When assembling aluminum alloy window frames, the aluminum alloy frame raw materials need to be cut into suitable lengths. When cutting existing aluminum alloy frames, saw blades are usually used to cut them, resulting in a rough cross-section with many burrs, which is inconvenient for subsequent use. Summary of the invention
[0004] In order to make up for the above deficiencies, the present invention provides an automatic high-pressure punching device and a punching method for aluminum alloy window frames that overcome the above technical problems or at least partially solve the above problems.
[0005] The present invention is achieved in that:
[0006] The present invention provides an automatic high-pressure punching device for aluminum alloy window frames, comprising a processing table, a mounting frame and a punching mechanism, wherein the mounting frame is mounted on the surface of the processing table, and the punching mechanism is mounted on the surface of the processing table for cutting the aluminum alloy window frames. The punching mechanism comprises:
[0007] A lifting plate, the lifting plate is slidably mounted in the inner cavity of the mounting frame, a cutter is fixedly mounted on the bottom of the lifting plate, an impact cylinder is fixedly mounted on the surface of the mounting frame, and a telescopic end of the impact cylinder is fixedly connected to the lifting plate;
[0008] A clamping block, which is symmetrically slidably mounted on the surface of the processing table and is used to fix the aluminum alloy window frame;
[0009] The sleeve is rotatably mounted on the side wall of the left clamping block, and a positioning block is fixedly mounted on the surface of the sleeve for positioning the aluminum alloy window frame.
[0010] In a preferred solution, a slider is fixedly mounted on the side wall of the lifting plate, a guide rod is fixedly mounted in the inner cavity of the mounting frame, the slider is slidably connected to the guide rod, a drive plate is fixedly mounted on the side wall of the clamping block, and one end of the drive plate is wedge-shaped.
[0011] In a preferred embodiment, a push block is fixedly installed on the bottom of the driving plate, a first spring is symmetrically installed in the inner cavity of the processing table, one end of the first spring is fixedly connected to the processing table, and the other end of the first spring is fixedly connected to the push block, and a support arm is symmetrically fixedly installed on the side wall of the slider, one end of the support arm is wedge-shaped and is used to drive the driving plate to move.
[0012] In a preferred embodiment, a first rotating shaft is movably installed in the inner cavity of the sleeve, a spline tooth is fixedly installed on the surface of the first rotating shaft, a spline groove is opened in the inner cavity of the sleeve, the spline tooth is meshed with the spline groove, a bracket is fixedly installed on the surface of the processing table, a support is fixedly installed on the surface of the bracket, and one end of the first rotating shaft is rotatably installed on the side wall of the support.
[0013] In a preferred embodiment, a first gear is rotatably installed in the inner cavity of the bracket, a first tooth plate is fixedly installed on the surface of the drive plate, the first tooth plate is meshed with the first gear, a second gear is fixedly installed on the surface of the first rotating shaft, a second tooth plate is slidably installed in the inner cavity of the bracket, the second tooth plate is meshed with the first gear, a third tooth plate is fixedly installed on the surface of the second tooth plate, and the third tooth plate is meshed with the second gear.
[0014] In a preferred solution, a feeding mechanism is installed on the surface of the processing table for conveying aluminum alloy window frames, and the feeding mechanism includes a feeding frame, a clamping block and a motor. The feeding frame is slidably installed on the surface of the processing table, and a clamping block is slidably installed in the inner cavity of the feeding frame for fixing the aluminum alloy window frame in the feeding frame. An electric telescopic rod is fixedly installed on the surface of the feeding frame, and the telescopic end of the electric telescopic rod is fixedly connected to the clamping block, a threaded block is fixedly installed on the bottom of the feeding frame, a screw rod is rotatably installed in the inner cavity of the processing table, a motor is fixedly installed on the side wall of the processing table, and the output end of the motor is fixedly connected to one end of the screw rod.
[0015] In a preferred embodiment, a lower material bin is provided in the inner cavity of the processing table, a screen plate is installed in the lower material bin, a collection frame is installed in the inner cavity of the processing table for collecting debris, a mounting block is symmetrically and slidably installed in the inner cavity of the processing table, a second rotating shaft is rotatably installed on the surface of the mounting block, a grinding roller is fixedly installed on the surface of the second rotating shaft for grinding the end face of the aluminum alloy window frame, a third gear is fixedly installed at one end of the second rotating shaft, a fourth tooth plate is fixedly installed on the side wall of the lower material bin, the fourth tooth plate is meshed with the third gear, and synchronization rods are respectively installed between the two clamping blocks and the mounting blocks.
[0016] In a preferred embodiment, a heat dissipation mechanism is installed on the surface of the processing table to dissipate heat from the cutter. The heat dissipation mechanism includes a liquid collection groove and a nozzle. The liquid collection groove is opened in the inner cavity of the processing table. The nozzle is symmetrically fixedly installed in the liquid collection groove, and the side wall of the nozzle is provided with a spray hole.
[0017] In a preferred solution, the inner cavity of the mounting frame is symmetrically provided with a pumping cavity, a piston is slidably installed in the pumping cavity, a second spring is installed in the pumping cavity, one end of the second spring is fixedly connected to the mounting frame, and the other end of the second spring is fixedly connected to the piston for driving the piston to move upward, a connecting rod is fixedly installed on the surface of the piston, a contact block is fixedly installed on one end of the connecting rod, a pressure block is fixedly installed on the side wall of the slider for driving the contact block to move downward, a first one-way valve and a second one-way valve are installed at the bottom of the pumping cavity, a water pipe is connected between the first one-way valve and the pumping cavity, and a water pipe is connected between the second one-way valve and the nozzle.
[0018] An automatic high-pressure punching method for aluminum alloy window frames, applicable to the above-mentioned automatic high-pressure punching device for aluminum alloy window frames, comprises the following steps:
[0019] S1: Loading: insert one end of the aluminum alloy window frame to be cut into the feeding frame, drive the clamping block downward through the electric telescopic rod to fix the aluminum alloy window frame, and then drive the screw rod to rotate through the motor to drive the feeding frame to move towards the cutting knife to load the material;
[0020] S2: Positioning; the impact cylinder drives the lifting plate and the cutter to fall quickly, and the aluminum alloy window frame is quickly cut off, and the support arm is driven to move downward synchronously, so as to squeeze the driving plate, drive the clamping block to fix the aluminum alloy window frame, and drive the first gear to rotate through the first tooth plate, and drive the positioning block to rotate half a circle synchronously through the spline teeth, so that the positioning block abuts against the surface of the aluminum alloy window frame, and the aluminum alloy window frame is positioned;
[0021] S3: grinding; the clamping block moves toward the center of the processing table to fix the aluminum alloy window frame, and the mounting block is driven to move synchronously through the synchronization rod, and the third gear and the grinding roller are driven to rotate through the fourth gear plate to grind the cross section of the aluminum alloy window frame;
[0022] S4: Heat dissipation; after the impact cylinder drives the cutter to fall and cut off the aluminum alloy window frame, the cutter extends into the liquid accumulation tank to dissipate heat from the cutter, and when the cutter descends, it drives the piston to move downward, the second one-way valve is turned on, and the coolant is sent into the nozzle and sprayed from the nozzle to the surface of the cutter, while dissipating the heat from the cutter, the iron filings on its surface are cleaned.
[0023] The invention provides an automatic high-pressure punching device and a punching method for aluminum alloy window frames, and the beneficial effects thereof include:
[0024] 1. By setting up the punching mechanism, the impact cylinder can drive the lifting plate and the cutter to fall quickly, and the aluminum alloy window frame can be quickly cut off to reduce the generation of cross-section burrs; when the cutter descends, it drives the support arm to move downward synchronously, thereby squeezing the driving plate, driving the clamping block to move toward the center of the processing table, fixing the aluminum alloy window frame on the surface of the processing table, and driving the first gear to rotate through the first tooth plate, driving the positioning block to rotate half a circle, so that the positioning block abuts against the surface of the aluminum alloy window frame, positioning the aluminum alloy window frame, and ensuring the stability of cutting.
[0025] 2. By setting up the feeding mechanism, the clamping block moves toward the center of the processing table. When the aluminum alloy window frame is fixed, the mounting block is driven to move synchronously through the synchronization rod, and the third gear and the grinding roller are driven to rotate through the fourth tooth plate to grind the cross section of the aluminum alloy window frame, further eliminate the cross-section burrs and improve the processing quality.
[0026] 3. By setting up a heat dissipation mechanism, after the impact cylinder drives the cutter to fall and cut off the aluminum alloy window frame, the cutter extends into the liquid accumulation groove to dissipate the heat of the cutter. When the cutter descends, it drives the pressure block to move downward synchronously, presses down the contact block, drives the piston to move downward, and the second one-way valve is turned on, and the coolant is sent into the nozzle and sprayed from the nozzle to the surface of the cutter. While dissipating the heat of the cutter, the iron filings on its surface are cleaned for easy use. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for use in the embodiments are briefly introduced below. It should be understood that the following drawings only illustrate certain embodiments of the present invention and should not be regarded as limiting the scope. For those skilled in the art, other relevant drawings can be obtained based on these drawings without creative work.
[0028] Figure 1 is a front perspective view provided by an embodiment of the present invention;
[0029] Figure 2 A rear perspective view provided for an embodiment of the present invention;
[0030] Figure 3 A front view of an embodiment of the present invention is provided;
[0031] Figure 4 A cross-sectional view of a processing table provided for an embodiment of the present invention;
[0032] Figure 5 The embodiments of the present invention provide Figure 4 Enlarged view of point A in the middle;
[0033] Figure 6 A side cross-sectional view of an embodiment of the present invention is provided;
[0034] Figure 7 A three-dimensional diagram of a punching mechanism provided in an embodiment of the present invention;
[0035] Figure 8 An exploded view of a clamp block provided in an embodiment of the present invention;
[0036] Fig. 9 A rear cross-sectional view provided for an embodiment of the present invention;
[0037] Fig.10 The embodiments of the present invention provide Fig. 9 Enlarged view of point B in the middle;
[0038] Fig.11 A top perspective view of an embodiment of the present invention;
[0039] Fig.12 A bottom cross-sectional view is provided for an embodiment of the present invention.
[0040] In the figure: 1, processing table; 2, mounting frame; 3, punching mechanism; 301, lifting plate; 302, cutter; 303, slider; 304, guide rod; 305, impact cylinder; 306, clamping block; 307, driving plate; 308, push block; 309, first spring; 310, support arm; 311, sleeve; 312, positioning block; 313, first rotating shaft; 314, spline teeth; 315, spline groove; 316, bracket; 317, first gear; 318, first tooth plate; 319, support; 320, second gear; 321, second tooth plate; 322, third tooth plate; 4, feeding mechanism; 401, feeding Frame; 402, tightening block; 403, electric telescopic rod; 404, threaded block; 405, screw rod; 406, motor; 407, unloading bin; 408, sieve plate; 409, collecting frame; 410, mounting block; 411, second rotating shaft; 412, grinding roller; 413, third gear; 414, fourth gear plate; 415, synchronization rod; 5, heat dissipation mechanism; 501, liquid accumulation tank; 502, nozzle; 503, spray hole; 504, liquid extraction chamber; 505, piston; 506, second spring; 507, connecting rod; 508, contact block; 509, pressure block; 510, first one-way valve; 511, second one-way valve. DETAILED DESCRIPTION
[0041] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0042] Reference Figure 1-Figure 12 As shown, the present invention provides a technical solution: an automatic high-pressure punching device for aluminum alloy window frames, comprising a processing table 1, a mounting frame 2 and a punching mechanism 3, the mounting frame 2 is mounted on the surface of the processing table 1, the punching mechanism 3 is mounted on the surface of the processing table 1, and is used to cut the aluminum alloy window frame, the punching mechanism 3 comprises a lifting plate 301, a clamping block 306 and a sleeve 311, the lifting plate 301 is slidably mounted on the inner cavity of the mounting frame 2, a cutter 302 is fixedly mounted on the bottom of the lifting plate 301, and is used to cut the aluminum alloy window frame, a slider 303 is fixedly mounted on the side wall of the lifting plate 301, a guide rod 304 is fixedly mounted on the inner cavity of the mounting frame 2, the slider 303 is slidably connected to the guide rod 304, an impact cylinder 305 is fixedly mounted on the surface of the mounting frame 2, the telescopic end of the impact cylinder 305 is fixedly connected to the lifting plate 301, the lifting plate 301 and the cutter 302 can be driven to fall quickly by the impact cylinder 305, the aluminum alloy window frame is quickly cut, and the generation of cross-sectional burrs is reduced.
[0043] Reference Figure 1-Figure 8 As shown, in a preferred embodiment, a clamping block 306 is symmetrically slidably installed on the surface of the processing table 1 for fixing the aluminum alloy window frame, a driving plate 307 is fixedly installed on the side wall of the clamping block 306, one end of the driving plate 307 is wedge-shaped, a push block 308 is fixedly installed on the bottom of the driving plate 307, a first spring 309 is symmetrically installed on the inner cavity of the processing table 1, one end of the first spring 309 is fixedly connected to the processing table 1, and the other end of the first spring 309 is fixedly connected to the push block 308, under the action of the first spring 309, the driving plate 307 is driven to drive the clamping block 306 to move away from the center direction of the processing table 1, and a support arm 310 is symmetrically fixedly installed on the side wall of the slider 303, one end of the support arm 310 is wedge-shaped, and is used to drive the driving plate 307 to move, when the impact cylinder 305 drives the cutter 302 to descend, the support arm 310 is driven to move downward synchronously, thereby squeezing the driving plate 307, driving the clamping block 306 to move toward the center direction of the processing table 1, and fixing the aluminum alloy window frame on the surface of the processing table 1.
[0044] Reference Figure 1-Figure 8 As shown, in a preferred embodiment, the sleeve 311 is rotatably mounted on the side wall of the left clamping block 306, and a positioning block 312 is fixedly mounted on the surface of the sleeve 311 for positioning the aluminum alloy window frame. A first rotating shaft 313 is movably mounted in the inner cavity of the sleeve 311, and a spline tooth 314 is fixedly mounted on the surface of the first rotating shaft 313. A spline groove 315 is provided in the inner cavity of the sleeve 311, and the spline tooth 314 is meshed with the spline groove 315 to drive the positioning block 312 to rotate. A bracket 316 is fixedly mounted on the surface of the processing table 1, and a support 319 is fixedly mounted on the surface of the bracket 316. One end of the first rotating shaft 313 is rotatably mounted on the side wall of the support 319.
[0045] Reference Figure 1-Figure 8As shown, in a preferred embodiment, a first gear 317 is rotatably installed in the inner cavity of the bracket 316, a first tooth plate 318 is fixedly installed on the surface of the driving plate 307, the first tooth plate 318 is meshed with the first gear 317, a second gear 320 is fixedly installed on the surface of the first rotating shaft 313, a second tooth plate 321 is slidably installed in the inner cavity of the bracket 316, the second tooth plate 321 is meshed with the first gear 317, a third tooth plate 322 is fixedly installed on the surface of the second tooth plate 321, the third tooth plate 322 is meshed with the second gear 320, when the support arm 310 drives the clamping block 306 to move toward the center direction of the processing table 1, the first gear 317 is driven to rotate through the first tooth plate 318, thereby driving the second tooth plate 321 to move up, and the second gear 320 is driven to rotate half a circle through the third tooth plate 322, and the positioning block 312 is driven to rotate half a circle synchronously through the spline teeth 314, so that the positioning block 312 abuts against the surface of the aluminum alloy window frame, the aluminum alloy window frame is positioned, and the cutting stability is ensured.
[0046] In a preferred embodiment, when in use, the aluminum alloy window frame to be cut is placed on the surface of the processing table 1, and the lifting plate 301 and the cutter 302 can be driven to fall quickly through the impact cylinder 305, so as to quickly cut the aluminum alloy window frame and reduce the generation of cross-sectional burrs; when the cutter 302 descends, it drives the support arm 310 to move downward synchronously, thereby squeezing the driving plate 307, driving the clamping block 306 to move toward the center of the processing table 1, fixing the aluminum alloy window frame on the surface of the processing table 1, and driving the first gear 317 to rotate through the first tooth plate 318, thereby driving the second tooth plate 321 to move upward, and driving the second gear 320 to rotate half a circle through the third tooth plate 322, and driving the positioning block 312 to rotate half a circle synchronously through the spline teeth 314, so that the positioning block 312 abuts against the surface of the aluminum alloy window frame, and the aluminum alloy window frame is positioned to ensure the stability of the cutting.
[0047] Reference Figure 1-Figure 10As shown, in a preferred embodiment, a feeding mechanism 4 is installed on the surface of the processing table 1 for conveying the aluminum alloy window frame. The feeding mechanism 4 includes a feeding frame 401, a pressing block 402 and a motor 406. The feeding frame 401 is slidably installed on the surface of the processing table 1. The pressing block 402 is slidably installed in the inner cavity of the feeding frame 401 for fixing the aluminum alloy window frame in the feeding frame 401. An electric telescopic rod 403 is fixedly installed on the surface of the feeding frame 401. The telescopic end of the electric telescopic rod 403 is fixedly connected to the pressing block 402. The bottom of the feeding frame 401 A threaded block 404 is fixedly installed, a screw rod 405 is rotatably installed in the inner cavity of the processing table 1, and a motor 406 is fixedly installed on the side wall of the processing table 1. The output end of the motor 406 is fixedly connected to one end of the screw rod 405. By inserting one end of the aluminum alloy window frame to be cut into the feed frame 401, and driving the clamping block 402 downward by the electric telescopic rod 403, the aluminum alloy window frame is fixed, and then the screw rod 405 is driven to rotate by the motor 406, thereby driving the threaded block 404 to drive the feed frame 401 to move toward the cutter 302 for loading.
[0048] Reference Figure 1-Figure 10 As shown, in a preferred embodiment, a lower material bin 407 is provided in the inner cavity of the processing table 1, and the lower material bin 407 is inclined, a sieve plate 408 is installed in the lower material bin 407 for removing debris, a collecting frame 409 is installed in the inner cavity of the processing table 1 for collecting debris, a mounting block 410 is symmetrically and slidably installed in the inner cavity of the processing table 1, a second rotating shaft 411 is rotatably installed on the surface of the mounting block 410, a grinding roller 412 is fixedly installed on the surface of the second rotating shaft 411 for grinding the end face of the aluminum alloy window frame to further eliminate the cross-section burrs, and one end of the second rotating shaft 411 is fixedly installed A third gear 413 is installed, and a fourth tooth plate 414 is fixedly installed on the side wall of the lower material bin 407. The fourth tooth plate 414 is meshed with the third gear 413. Synchronous rods 415 are installed between the two clamping blocks 306 and the mounting blocks 410 respectively. The clamping blocks 306 move toward the center direction of the processing table 1. When the aluminum alloy window frame is fixed, the mounting block 410 is driven to move synchronously through the synchronous rod 415, and the third gear 413 and the grinding roller 412 are driven to rotate through the fourth tooth plate 414 to grind the cross section of the aluminum alloy window frame, further eliminate the cross section burrs, and improve the processing quality.
[0049] In a preferred embodiment, when in use, the clamping block 306 moves toward the center of the processing table 1 to fix the aluminum alloy window frame, and the mounting block 410 is driven to move synchronously through the synchronization rod 415, and the third gear 413 and the grinding roller 412 are driven to rotate through the fourth tooth plate 414 to grind the cross section of the aluminum alloy window frame, further eliminate the cross-section burrs, and improve the processing quality.
[0050] Reference Figure 1-Figure 12As shown, in a preferred embodiment, a heat dissipation mechanism 5 is installed on the surface of the processing table 1 for dissipating the heat of the cutter 302. The heat dissipation mechanism 5 includes a liquid collection tank 501 and a nozzle 502. The liquid collection tank 501 is provided in the inner cavity of the processing table 1 for storing coolant. The nozzle 502 is symmetrically fixedly installed in the liquid collection tank 501. The side wall of the nozzle 502 is provided with a spray hole 503 for dissipating the heat of the cutter 302 by spraying liquid.
[0051] Reference Figure 1-Figure 12 As shown, in a preferred embodiment, the inner cavity of the mounting frame 2 is symmetrically provided with a pumping cavity 504, a piston 505 is slidably installed in the pumping cavity 504 for extracting coolant, a second spring 506 is installed in the pumping cavity 504, one end of the second spring 506 is fixedly connected to the mounting frame 2, and the other end of the second spring 506 is fixedly connected to the piston 505 for driving the piston 505 to move upward, a connecting rod 507 is fixedly installed on the surface of the piston 505, and a contact block 507 is fixedly installed at one end of the connecting rod 507 08. A pressure block 509 is fixedly installed on the side wall of the slider 303, which is used to drive the contact block 508 to move downward. A first one-way valve 510 and a second one-way valve 511 are installed at the bottom of the liquid pumping chamber 504. The first one-way valve 510 is unidirectionally connected to the inner cavity of the liquid pumping chamber 504 for liquid intake, and the second one-way valve 511 is unidirectionally connected to the outer side of the liquid pumping chamber 504 for liquid discharge. A water pipe is connected between the first one-way valve 510 and the liquid pumping chamber 504, and a water pipe is connected between the second one-way valve 511 and the nozzle 502.
[0052] In a preferred embodiment, after the impact cylinder 305 drives the cutter 302 to fall and cut off the aluminum alloy window frame, the cutter 302 extends into the liquid accumulation groove 501 to dissipate the heat of the cutter 302, and when the cutter 302 descends, it drives the pressure block 509 to move downward synchronously, presses down the contact block 508, drives the piston 505 to move downward, and the second one-way valve 511 is turned on, and the coolant is sent into the nozzle 502 and sprayed onto the surface of the cutter 302 from the nozzle 503. While dissipating the heat of the cutter 302, the iron filings on its surface are cleaned for easy use.
[0053] An automatic high-pressure punching method for aluminum alloy window frames, applicable to the above-mentioned automatic high-pressure punching device for aluminum alloy window frames, comprises the following steps:
[0054] S1: Loading; insert one end of the aluminum alloy window frame to be cut into the feed frame 401, drive the clamping block 402 downward through the electric telescopic rod 403 to fix the aluminum alloy window frame, and then drive the screw rod 405 to rotate through the motor 406 to drive the feed frame 401 to move toward the cutter 302 to load the material;
[0055] S2: Positioning; the lifting plate 301 and the cutter 302 are driven to fall rapidly by the impact cylinder 305, and the aluminum alloy window frame is quickly cut off, and the support arm 310 is driven to move downward synchronously, so as to squeeze the driving plate 307, drive the clamping block 306 to fix the aluminum alloy window frame, and drive the first gear 317 to rotate through the first tooth plate 318, and drive the positioning block 312 to rotate half a circle synchronously through the spline teeth 314, so that the positioning block 312 abuts against the surface of the aluminum alloy window frame, and the aluminum alloy window frame is positioned;
[0056] S3: grinding; the clamping block 306 moves toward the center direction of the processing table 1, and when the aluminum alloy window frame is fixed, the mounting block 410 is driven to move synchronously by the synchronization rod 415, and the third gear 413 and the grinding roller 412 are driven to rotate by the fourth tooth plate 414 to grind the cross section of the aluminum alloy window frame;
[0057] S4: Heat dissipation; after the impact cylinder 305 drives the cutter 302 to fall and cut off the aluminum alloy window frame, the cutter 302 extends into the liquid accumulation tank 501 to dissipate heat from the cutter 302, and when the cutter 302 descends, it drives the piston 505 to move downward, the second one-way valve 511 is turned on, and the coolant is sent into the nozzle 502 and sprayed from the nozzle 503 to the surface of the cutter 302, while dissipating the heat from the cutter 302, the iron filings on its surface are cleaned.
[0058] Specifically, the working process or working principle of the automatic high-pressure punching device for aluminum alloy window frames is as follows: when in use, the aluminum alloy window frame to be cut is placed on the surface of the processing table 1, and the lifting plate 301 and the cutter 302 can be driven to fall quickly through the impact cylinder 305, so as to quickly cut the aluminum alloy window frame and reduce the generation of cross-sectional burrs; when the cutter 302 descends, it drives the support arm 310 to move downward synchronously, thereby squeezing the driving plate 307, driving the clamping block 306 to move toward the center direction of the processing table 1, fixing the aluminum alloy window frame on the surface of the processing table 1, and driving the first gear 317 to rotate through the first tooth plate 318, thereby driving the second tooth plate 321 to move up, and driving the second gear 320 to rotate half a circle through the third tooth plate 322, and driving the positioning block 312 to rotate half a circle synchronously through the spline tooth 314, so that the positioning block 312 abuts against the surface of the aluminum alloy window frame, positions the aluminum alloy window frame, and ensures the stability of cutting.
[0059] The clamping block 306 moves toward the center of the processing table 1 to fix the aluminum alloy window frame, and drives the mounting block 410 to move synchronously through the synchronization rod 415, and drives the third gear 413 and the grinding roller 412 to rotate through the fourth tooth plate 414 to grind the cross section of the aluminum alloy window frame, further eliminate the cross-section burrs, and improve the processing quality.
[0060] After the impact cylinder 305 drives the cutter 302 to fall and cut off the aluminum alloy window frame, the cutter 302 extends into the liquid accumulation groove 501 to dissipate the heat of the cutter 302. When the cutter 302 descends, it drives the pressure block 509 to move downward synchronously, presses down the contact block 508, drives the piston 505 to move downward, and the second one-way valve 511 is connected, and the coolant is sent into the nozzle 502 and sprayed to the surface of the cutter 302 from the nozzle 503. While dissipating the heat of the cutter 302, the iron filings on its surface are cleaned for easy use.
[0061] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. An automatic high-pressure punching device for aluminum alloy window frames, characterized in that: The invention comprises a processing platform (1), a mounting frame (2) and a punching mechanism (3), wherein the mounting frame (2) is mounted on the surface of the processing platform (1), and the punching mechanism (3) is mounted on the surface of the processing platform (1) and is used for cutting off an aluminum alloy window frame. The punching mechanism (3) comprises: A lifting plate (301), the lifting plate (301) is slidably mounted in the inner cavity of the mounting frame (2), a cutter (302) is fixedly mounted on the bottom of the lifting plate (301), an impact cylinder (305) is fixedly mounted on the surface of the mounting frame (2), and the telescopic end of the impact cylinder (305) is fixedly connected to the lifting plate (301); A clamping block (306), the clamping block (306) is symmetrically slidably mounted on the surface of the processing table (1) and is used to fix the aluminum alloy window frame; A sleeve (311) is rotatably mounted on the side wall of the left clamping block (306), and a positioning block (312) is fixedly mounted on the surface of the sleeve (311) for positioning the aluminum alloy window frame.
2. The automatic high-pressure punching device for aluminum alloy window frames according to claim 1 is characterized in that: A slider (303) is fixedly mounted on the side wall of the lifting plate (301), a guide rod (304) is fixedly mounted in the inner cavity of the mounting frame (2), the slider (303) is slidably connected to the guide rod (304), a driving plate (307) is fixedly mounted on the side wall of the clamping block (306), and one end of the driving plate (307) is wedge-shaped.
3. The automatic high-pressure punching device for aluminum alloy window frames according to claim 2 is characterized in that: A push block (308) is fixedly mounted on the bottom of the driving plate (307); a first spring (309) is symmetrically mounted in the inner cavity of the processing table (1); one end of the first spring (309) is fixedly connected to the processing table (1); the other end of the first spring (309) is fixedly connected to the push block (308); a support arm (310) is symmetrically fixedly mounted on the side wall of the sliding block (303); one end of the support arm (310) is wedge-shaped and is used to drive the driving plate (307) to move.
4. The automatic high-pressure punching device for aluminum alloy window frames according to claim 3 is characterized in that: A first rotating shaft (313) is movably mounted in the inner cavity of the sleeve (311), a spline tooth (314) is fixedly mounted on the surface of the first rotating shaft (313), a spline groove (315) is provided in the inner cavity of the sleeve (311), the spline tooth (314) meshes with the spline groove (315), a bracket (316) is fixedly mounted on the surface of the processing table (1), a support (319) is fixedly mounted on the surface of the bracket (316), and one end of the first rotating shaft (313) is rotatably mounted on the side wall of the support (319).
5. The automatic high-pressure punching device for aluminum alloy window frames according to claim 4 is characterized in that: A first gear (317) is rotatably mounted in the inner cavity of the bracket (316); a first tooth plate (318) is fixedly mounted on the surface of the driving plate (307), and the first tooth plate (318) is meshed with the first gear (317); a second gear (320) is fixedly mounted on the surface of the first rotating shaft (313); a second tooth plate (321) is slidably mounted in the inner cavity of the bracket (316), and the second tooth plate (321) is meshed with the first gear (317); a third tooth plate (322) is fixedly mounted on the surface of the second tooth plate (321), and the third tooth plate (322) is meshed with the second gear (320).
6. The automatic high-pressure punching device for aluminum alloy window frames according to claim 5, characterized in that: A feeding mechanism (4) is installed on the surface of the processing table (1) for feeding the aluminum alloy window frame. The feeding mechanism (4) comprises a feeding frame (401), a clamping block (402) and a motor (406). The feeding frame (401) is slidably installed on the surface of the processing table (1). The inner cavity of the feeding frame (401) is slidably installed with a clamping block (402) for fixing the aluminum alloy window frame in the feeding frame (401). An electric telescopic rod (403) is fixedly installed on the surface of the feeding frame (401). The telescopic end of the electric telescopic rod (403) is fixedly connected to the clamping block (402). A threaded block (404) is fixedly installed on the bottom of the feeding frame (401). A screw rod (405) is rotatably installed in the inner cavity of the processing table (1). A motor (406) is fixedly installed on the side wall of the processing table (1). The output end of the motor (406) is fixedly connected to one end of the screw rod (405).
7. The automatic high-pressure punching device for aluminum alloy window frames according to claim 6, characterized in that: The inner cavity of the processing table (1) is provided with a lower material bin (407), a sieve plate (408) is installed in the lower material bin (407), a collecting frame (409) is installed in the inner cavity of the processing table (1) for collecting debris, a mounting block (410) is symmetrically and slidably installed in the inner cavity of the processing table (1), a second rotating shaft (411) is rotatably installed on the surface of the mounting block (410), a grinding roller (412) is fixedly installed on the surface of the second rotating shaft (411) for grinding the end surface of the aluminum alloy window frame, a third gear (413) is fixedly installed on one end of the second rotating shaft (411), a fourth tooth plate (414) is fixedly installed on the side wall of the lower material bin (407), and the fourth tooth plate (414) is meshed with the third gear (413), wherein two of the clamping blocks (306) are respectively provided with synchronization rods (415) between the mounting blocks (410).
8. The automatic high-pressure punching device for aluminum alloy window frames according to claim 7, characterized in that: A heat dissipation mechanism (5) is installed on the surface of the processing table (1) for dissipating heat from the cutting knife (302). The heat dissipation mechanism (5) comprises a liquid collection groove (501) and a nozzle (502). The liquid collection groove (501) is provided in the inner cavity of the processing table (1). The nozzle (502) is symmetrically fixedly installed in the liquid collection groove (501). The side wall of the nozzle (502) is provided with a spray hole (503).
9. The automatic high-pressure punching device for aluminum alloy window frames according to claim 8, characterized in that: The inner cavity of the mounting frame (2) is symmetrically provided with a pumping cavity (504), a piston (505) is slidably mounted in the pumping cavity (504), a second spring (506) is mounted in the pumping cavity (504), one end of the second spring (506) is fixedly connected to the mounting frame (2), and the other end of the second spring (506) is fixedly connected to the piston (505) for driving the piston (505) to move upward, and a connecting rod (507) is fixedly mounted on the surface of the piston (505). ), a contact block (508) is fixedly installed at one end of the connecting rod (507), a pressure block (509) is fixedly installed on the side wall of the slider (303) for driving the contact block (508) to move downward, a first one-way valve (510) and a second one-way valve (511) are installed at the bottom of the liquid pumping chamber (504), a water pipe is connected between the first one-way valve (510) and the liquid pumping chamber (504), and a water pipe is connected between the second one-way valve (511) and the nozzle (502).
10. An automatic high-pressure punching method for aluminum alloy window frames, applicable to the automatic high-pressure punching device for aluminum alloy window frames as claimed in claim 9, characterized in that: The steps include: S1: loading; inserting one end of the aluminum alloy window frame to be cut into the feeding frame (401), driving the abutting block (402) downward by the electric telescopic rod (403) to fix the aluminum alloy window frame, and then driving the screw rod (405) to rotate by the motor (406) to drive the feeding frame (401) to move toward the cutter (302) to load the material; S2: Positioning; the impact cylinder (305) drives the lifting plate (301) and the cutter (302) to fall rapidly, and the aluminum alloy window frame is quickly cut off, and the support arm (310) is driven to move downward synchronously, so as to squeeze the driving plate (307), drive the clamping block (306) to fix the aluminum alloy window frame, and drive the first gear (317) to rotate through the first tooth plate (318), and drive the positioning block (312) to rotate half a circle synchronously through the spline teeth (314), so that the positioning block (312) abuts against the surface of the aluminum alloy window frame, and the aluminum alloy window frame is positioned; S3: grinding; the clamping block (306) moves toward the center of the processing table (1) to fix the aluminum alloy window frame, and the mounting block (410) is driven to move synchronously through the synchronization rod (415), and the third gear (413) and the grinding roller (412) are driven to rotate through the fourth gear plate (414) to grind the cross section of the aluminum alloy window frame; S4: heat dissipation; after the impact cylinder (305) drives the cutter (302) to fall and cut the aluminum alloy window frame, the cutter (302) extends into the liquid accumulation tank (501) to dissipate heat from the cutter (302), and when the cutter (302) descends, it drives the piston (505) to move downward, the second one-way valve (511) is turned on, and the coolant is sent into the nozzle (502) and sprayed from the spray hole (503) to the surface of the cutter (302), while dissipating heat from the cutter (302) and cleaning the iron filings on its surface.
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