Aluminum material processing drilling and cutting integrated device

By combining the rotating mechanism and the swing structure, the problems of gap entry and arc-shaped hole formation in aluminum processing equipment during drilling are solved, realizing convenient processing of arc-shaped holes on the side of aluminum materials and improving processing efficiency and accuracy.

CN121535543BActive Publication Date: 2026-04-10SOX (XIAMEN) TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SOX (XIAMEN) TECH CO LTD
Filing Date
2026-01-20
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing aluminum processing equipment has difficulty drilling into the gaps between rods, especially when arc-shaped or elongated holes are required. Furthermore, circular holes require multiple repairs of burrs on the inside of the hole, leading to processing inconvenience.

Method used

By employing a rotating mechanism and a swinging structure in conjunction with a hydraulic press, arc-shaped holes can be drilled on the side of aluminum materials. The arc-shaped holes are formed by the rotation of the rotating mechanism and the swinging of the swinging structure. Combined with the lifting and lowering of the hydraulic press, it can adapt to the drilling needs of different shapes.

Benefits of technology

It enables convenient machining of curved holes on the side of aluminum materials, avoids the need for multiple repairs of burrs inside the holes, and improves machining efficiency and precision.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of drilling processing, and discloses an aluminum material processing, drilling and cutting integrated equipment which comprises a first guide rail, a processing mechanism, a machine table, a conveying belt, a control console and a second guide rail. When drilling is carried out, the driving rotating mechanism rotates and makes the rotating mechanism expand left and right on the drilling position. When the swinging structure and the rotating mechanism are simultaneously driven during the drilling process, the drilling position is expanded in an arc shape. After the lifting of the hydraulic device, the aluminum material can be drilled according to the required drilling shape. The arc-shaped groove in the semicircular plate rotates and slides along the slide rod, and the slide rod is fixed on the second supporting plate and the first supporting plate to form a support, so that the semicircular plate rotates between the second rotating rod and the slide rod, the semicircular plate swings left and right stably, the semicircular plate provides an arc swinging effect for the drilling processing of the rotating mechanism at the lower end of the semicircular plate, the drilling is provided with an arc shape while the hole is expanded, and the arc-shaped drilling is convenient.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of drilling processing, in particular to an aluminum material processing drilling and cutting integrated equipment. BACKGROUND

[0002] The aluminum material processing drilling and cutting integrated equipment is a numerical control processing machine integrating drilling and cutting (or cutting) functions, which is specially used for efficiently processing metal materials such as aluminum profiles and aluminum alloy profiles, and is commonly used in the industries of doors and windows, curtain walls, radiators and photovoltaic supports. The equipment realizes multi-process continuous operation through automatic control, and the core advantage lies in the integration of drilling and cutting functions, which significantly improves the processing precision and production efficiency.

[0003] However, when drilling, the aluminum material such as doors and windows is horizontally placed on a plane for vertical drilling. When the side of the rod and the rod assembly part of the door and window needs to be drilled, the drill is not easy to enter the gap between the rods for drilling operation in the process of processing drilling, so that drilling can only be performed on the outside of the door and window, thereby affecting the drilling of the side of the rod and the rod of the door and window. In addition, some drilling shapes need to be arc-shaped or strip-shaped to facilitate the installation of parts, but the drilling is circular, and multiple drilling and burr repair inside the hole are required to form the required hole shape, thereby making it difficult to drill according to the required arc-shaped hole, causing the drilling to be too inconvenient. SUMMARY

[0004] The application provides an aluminum material processing drilling and cutting integrated equipment, which overcomes the deficiencies described in the background art.

[0005] The application solves the technical problems by adopting the following technical solutions:

[0006] The aluminum material processing drilling and cutting integrated equipment comprises a first guide rail, a processing mechanism, a machine table, a conveying belt, a control console and a second guide rail, the second guide rail is provided with two, which are symmetrically distributed on the upper end of the machine table, the first guide rail is provided with two, which are parallelly distributed on the upper end of the second guide rail, and the first guide rail is connected and controlled by the external control console circuit to slide longitudinally on the upper end of the second guide rail, the conveying belt rotates to convey the aluminum material on the inner side of the second guide rail, the control console circuit is connected and controls the processing mechanism to slide transversely on the upper end of the first guide rail, the processing mechanisms on the surfaces of the two first guide rails are oppositely arranged, and the processing mechanisms drill and cut the aluminum material on the surface of the conveying belt below.

[0007] The processing mechanism is provided with a sliding block, an oscillating structure, a servo motor, a rotating mechanism, a sliding rail, a processor, a shell and a hydraulic device, the shell is internally provided with a processor, and the processor respectively drives the hydraulic device, the servo motor, the oscillating structure and the rotating mechanism through electrical signals, the cutting machine is symmetrically arranged at the other side of the processor, and the outer end of the cutting machine is provided with a blade for cutting, the cutting machine and the hydraulic device in the shell are electrically connected in the control console, the sliding rail is vertically arranged in the shell, the hydraulic device is arranged at the bottom of the shell, the output end of the hydraulic device is connected with the sliding block, and the sliding block is vertically pushed to slide up and down along the sliding rail, the servo motor is arranged at the outer end of the sliding block, the output end of the servo motor is provided with a rotating oscillating structure, the oscillating structure and the rotating mechanism are driven to rotate by 90° by the servo motor, the lower end of the oscillating structure is provided with a rotating mechanism that rotates by itself, the oscillating structure drives the rotating mechanism to oscillate left and right, and when the shell slides transversely on the upper end of the first guide rail, the rotating mechanism is driven to process and drill holes on the side surface of the aluminum material.

[0008] Furthermore, the rotating mechanism is provided with a first motor, a drill bit, a shell, a connecting rod, a suspension mechanism, a second motor and a connecting block, the second motor is horizontally arranged in the shell, and the second motor is driven by the processor through electrical signals, and the drill bit at the output end of the second motor rotates to drill holes, the connecting block connected to the suspension mechanism is arranged at the upper end of the shell, the first motor is vertically arranged in the connecting rod, the processor is electrically connected and drives the first motor, the first motor is rotated and engaged to drive the suspension mechanism to rotate, and the connecting block at the lower end of the suspension mechanism is driven to rotate and expand the hole with the connecting block as the center.

[0009] Furthermore, the suspension mechanism is provided with a first rotating rod, a stabilizing rod, a rotating ring and a tooth block, the first rotating rod is located at the output end of the first motor, the rotating ring is arranged at the upper end of the connecting block, the stabilizing rod is connected to the connecting rod and the connecting block at the upper and lower ends respectively, and the stabilizing rod and the rotating ring are located on the central axis of the connecting block and the connecting rod, the tooth block is arranged in an arc shape outside the rotating ring, the tooth block is driven by the first rotating rod, and the connecting block at the lower end of the tooth block rotates by itself with the stabilizing rod as the center.

[0010] Furthermore, the stabilizing rod is provided with a conical block, a blocking strip, a connecting plate, a convex block and a hollow block, the convex block is fixed at the upper end of the conical block and connected to the connecting rod at the upper end through the convex block, the blocking strip is arranged in a ring shape at the lower side of the convex block, and the blocking strip abuts against the upper surface of the hollow block, the conical block is arranged at the upper end of the connecting plate, the inner side of the hollow block corresponds to the outer side of the conical block and abuts against each other, and the lower end of the hollow block is connected to the upper end of the connecting block, the connecting block is elastically supported by the connecting block connected to the lower end of the hollow block under the elasticity of the blocking strip when the connecting block rotates and expands the hole, and the hollow block rotates and moves on the outer side of the conical block through the abutting pressure of the blocking strip.

[0011] Further, the swing structure is provided with a support block, a rotating plate, a first support plate, a second rotating rod, a second support plate and a third motor, the support block is provided with the symmetrically distributed second support plate and first support plate on both sides, the third motor is installed outside the first support plate, and the second rotating rod at the output end of the third motor is engaged with the rotating plate, the rotating plate is located inside the second support plate and the first support plate, and the rotating plate drives the rotating mechanism to rotate and swing under the engagement of the second rotating rod.

[0012] Further, the rotating plate is provided with a sliding rod, a semicircular plate and an arc groove, the arc groove is located inside the semicircular plate, the sliding rod is provided with six, which are distributed on the left and right sides of the semicircular plate, the outer end of the sliding rod is symmetrically fixed inside the second support plate and the first support plate respectively, and the sliding rod slides inside the arc groove, and the sliding of the sliding rod in the arc groove drives the second rotating rod to engage and rotate the semicircular plate, and drives the rotating mechanism at the lower end of the semicircular plate to swing.

[0013] Compared with the prior art, the technical scheme has the following advantages:

[0014] In the present application, when drilling, the rotating mechanism is driven to rotate, and the rotating mechanism is used to expand the drilling position left and right; when the swing structure is driven to swing and rotate, the left and right swinging will form an arc-shaped drilling effect; when the rotating mechanism and the swing structure are separately driven to rotate and then driven to drill, the drilling angle can be adjusted, and it is suitable for inclined drilling; when the swing structure and the rotating mechanism are simultaneously driven during drilling, the drilling position is expanded in an arc shape, and after the lifting of the hydraulic device, the aluminum material can be drilled according to the required drilling shape.

[0015] In the present application, the semicircular plate is driven to swing left and right through the engagement of the second rotating rod, at this time, the arc groove inside the semicircular plate rotates and slides along the sliding rod, and the sliding rod is fixed on the second support plate and the first support plate to form support, so that the semicircular plate rotates between the second rotating rod and the sliding rod, and provides limitation for the rotation of the semicircular plate, so that the semicircular plate swings stably left and right, and provides an arc-shaped swinging effect for the drilling of the rotating mechanism at the lower end of the semicircular plate, expands the hole while providing an arc-shaped drilling, and avoids the inconvenience of arc-shaped drilling. BRIEF DESCRIPTION OF DRAWINGS

[0016] The present application will be further described below in conjunction with the drawings and examples.

[0017] Figure 1 It is a whole view of the present application.

[0018] Figure 2 It is a side view of the processing mechanism.

[0019] Figure 3 It is a side view of the rotating mechanism.

[0020] Figure 4It is a plane schematic diagram of the suspension mechanism.

[0021] Figure 5 It is a sectional view of the stabilizing rod.

[0022] Figure 6 It is a side view of the swing structure.

[0023] Figure 7 It is a plane schematic diagram of the rotating plate.

[0024] In the figure: first guide rail-1, processing mechanism-2, machine table-3, transmission belt-4, control console-5, second guide rail-6, sliding block-21, swing structure-22, servo motor-23, rotating mechanism-24, sliding rail-25, processor-26, shell-27, hydraulic device-28, cutting machine-29, first motor-241, drill bit-242, housing-243, connecting rod-244, suspension mechanism-245, second motor-246, connecting block-247, first rotating rod-2451, stabilizing rod-2452, rotating ring-2453, tooth block-2454, conical block-521, blocking strip-522, connecting plate-523, convex block-524, hollow block-525, supporting block-221, rotating plate-222, first supporting plate-223, second rotating rod-224, second supporting plate-225, third motor-226, sliding rod-2221, semicircular plate-2222, arc groove-2223. DETAILED DESCRIPTION

[0025] As Figures 1 to 7 shown in the present application, an aluminum material processing drilling and cutting integrated equipment is provided, which comprises a first guide rail 1, a processing mechanism 2, a machine table 3, a transmission belt 4, a control console 5 and a second guide rail 6. The second guide rail 6 is provided with two, which are symmetrically distributed on the upper end of the machine table 3. The first guide rail 1 is provided with two, which are parallelly distributed on the upper end of the second guide rail 6, and are connected and controlled by the external control console 5 circuit to longitudinally slide on the upper end of the second guide rail 6. The transmission belt 4 rotates to transmit aluminum materials on the inner side of the second guide rail 6. The control console 5 circuit is connected and controls the processing mechanism 2 to transversely slide on the upper end of the first guide rail 1. The two processing mechanisms 2 on the surface of the first guide rail 1 are oppositely arranged, and the processing mechanisms 2 correspond to the aluminum materials on the surface of the transmission belt 4 below to drill and cut the aluminum materials.

[0026] The processing mechanism 2 is provided with a sliding block 21, an oscillating structure 22, a servo motor 23, a rotating mechanism 24, a sliding rail 25, a processor 26, a shell 27 and a hydraulic device 28, the shell 27 is internally provided with the processor 26, and the processor 26 is electrically connected to the hydraulic device 28, the servo motor 23, the oscillating structure 22 and the rotating mechanism 24 respectively, the cutting machine 29 is symmetrically arranged on the other side of the processor 26, and the outer end of the cutting machine 29 is provided with a blade for cutting, the cutting machine 29 and the hydraulic device 28 in the shell 27 are electrically connected in the console 5, the sliding rail 25 is vertically arranged in the shell 27, the hydraulic device 28 is arranged at the bottom of the shell 27, the output end of the hydraulic device 28 is connected to the sliding block 21, and the sliding block 21 is vertically pushed to slide up and down along the sliding rail 25, the servo motor 23 is arranged at the outer end of the sliding block 21, the output end of the servo motor 23 is provided with the rotating oscillating structure 22, the oscillating structure 22 and the rotating mechanism 24 are driven to rotate 90° by the servo motor 23, the lower end of the oscillating structure 22 is provided with the rotating rotating mechanism 24, the oscillating structure 22 drives the rotating mechanism 24 to oscillate left and right, and when the shell 27 slides transversely on the upper end of the first guide rail 1, the rotating mechanism 24 is driven to drill holes on the side surface of the aluminum material.

[0027] Moreover, the two processing mechanisms 2 are reversely arranged on the two first guide rails 1, the two processing mechanisms 2 are controlled by the console 5, so that the left and right sides of the aluminum material can be drilled and cut, and the console 5 sends instructions to the processor 26 through the bus and feeds back real-time processing data.

[0028] Moreover, the surface of the transmission belt 4 is provided with uniformly distributed holes, before the aluminum material is drilled and cut on the surface of the transmission belt 4, a plurality of screws need to be screwed into the holes and distributed on the periphery according to the shape of the aluminum material, so that the periphery of the screw is fixed to the aluminum material to prevent the aluminum material from sliding off the surface of the transmission belt 4 when drilling holes on the side surface of the aluminum material.

[0029] Moreover, the cutting machine 29 and the shell 27 are provided with a downward rack in the middle, and the first guide rail 1 is further provided with a servo motor, the console 5 controls the servo motor to drive the rack to drive the cutting machine 29 and the shell 27 to slide translationally, so that the processing mechanism 2 moves transversely on the first guide rail 1 and longitudinally on the second guide rail 6, and realizes drilling and cutting of the aluminum material by the processing mechanism 2.

[0030] Moreover, when the servo motor 23 is in a stationary state, the oscillating structure 22 and the rotating mechanism 24 are in a horizontal state, at this time, the rotating mechanism 24 can drill holes vertically downward on the aluminum material, and after the servo motor 23 rotates 90°, the oscillating structure 22 and the rotating mechanism 24 are in a vertical state, at this time, the rotating mechanism 24 drills holes to the right, so that the left and right sides of the aluminum material are drilled by the two reversely arranged processing mechanisms 2.

[0031] And, the console 5 controls the mutual rail sliding of the machining mechanism 2, the first guide rail 1 and the second guide rail 6, so that the machining mechanism 2 drills and cuts the aluminum material on the surface of the conveying belt 4 at any position, in the application, when drilling, the processor 26 controls the hydraulic device 28 to push the sliding block 21, and the sliding block 21 slides upward in the sliding rail 25, at this time, the lowermost end of the rotating mechanism 24 is above the aluminum material, when moving to the machining position, the control servo motor 23 rotates the swing structure 22 and the rotating mechanism 24 to the vertical state, so as to drive the hydraulic device 28 to extend and retract, so that the rotating mechanism 24 slowly descends into the gap of the aluminum material, while driving the rotating mechanism 24, the first guide rail 1 moves on the surface of the second guide rail 6, so that the rotating mechanism 24 translates and drills, and during the drilling process, when the rotating mechanism 24 rotates, the rotating mechanism 24 expands the drilling position left and right; when the swing structure 22 rotates, the left and right swing forms an arc drilling effect; and when the rotating mechanism 24 and the swing structure 22 are driven to rotate alone and then drilled, the drilling angle can be adjusted, which is suitable for inclined drilling state; and when the swing structure 22 and the rotating mechanism 24 are driven at the same time during the drilling process, the drilling position is expanded in an arc shape, and after the lifting of the hydraulic device 28, the aluminum material can be drilled according to the required drilling shape.

[0032] Among them, the rotating mechanism 24 is provided with a first motor 241, a drill bit 242, a shell 243, a connecting rod 244, a suspension mechanism 245, a second motor 246 and a connecting block 247, the second motor 246 is horizontally arranged in the shell 243, and the second motor 246 is driven by the processor 26 electric signal, and the drill bit 242 at the output end of the second motor 246 rotates and drills, the connecting block 247 connected to the suspension mechanism 245 is arranged at the upper end of the shell 243, the first motor 241 is vertically arranged in the connecting rod 244, the processor 26 is electrically connected and drives the first motor 241, the first motor 241 rotates and engages to drive the suspension mechanism 245 to rotate, and the connecting block 247 at the lower end of the suspension mechanism 245 drives the drill bit 242 to rotate around the connecting block 247.

[0033] And, the connecting rod 244 and the connecting block 247 are located on the same center axis, the upper end of the connecting rod 244 is connected to the lower end of the swing structure 22, when the first motor 241 drives the suspension mechanism 245 to rotate, the connecting block 247 rotates, at this time, the drill bit 242 at the output end of the second motor 246 rotates left and right and expands the drilling position during the drilling process, at the same time, the drill bit 242 expands the drilling position on the side surface, and moves back and forth in the drilling position, and grinds the edge of the drilling position, reducing burrs in the drilling position.

[0034] And, the drill bit 242 is translated to drill the aluminum material side or vertically to drill the aluminum material upper surface, the resistance generated during the drilling process is supported by the suspension mechanism 245, avoiding the first motor 241 output end shaking caused by the connecting block 247 self-rotation during the drilling process, preventing the drilling process from being unstable.

[0035] Wherein, the suspension mechanism 245 is provided with a first rotating rod 2451, a stabilizing rod 2452, a rotating ring 2453 and a tooth block 2454, the first rotating rod 2451 is located at the output end of the first motor 241, the rotating ring 2453 is arranged on the upper end of the connecting block 247, the stabilizing rod 2452 is connected with the connecting rod 244 and the connecting block 247 at the upper and lower ends respectively, and the stabilizing rod 2452 and the rotating ring 2453 are located on the central axis of the connecting block 247 and the connecting rod 244, the tooth block 2454 is arranged in an arc shape outside the rotating ring 2453, and the first rotating rod 2451 is engaged to drive the tooth block 2454, and the connecting block 247 at the lower end of the tooth block 2454 is self-rotated with the stabilizing rod 2452 as the center.

[0036] And, the first rotating rod 2451 is rotated under the drive of the first motor 241 and engaged with the tooth block 2454 outside the rotating ring 2453, so that the rotating ring 2453 drives the connecting block 247 to rotate, so that the stabilizing rod 2452 is driven to rotate, and since the stabilizing rod 2452 is also connected with the connecting rod 244 at the upper end, the stabilizing rod 2452 has a supporting force on the connecting block 247, preventing the connecting block 247 from shaking due to the engagement gap between the first rotating rod 2451 and the tooth block 2454.

[0037] Wherein, the stabilizing rod 2452 is provided with a tapered block 521, a blocking strip 522, a connecting plate 523, a convex block 524 and a hollow block 525, the convex block 524 is fixed on the upper end of the tapered block 521 and connected with the connecting rod 244 at the upper end through the convex block 524, the blocking strip 522 is annularly arranged on the lower side of the convex block 524, and the blocking strip 522 abuts against the upper surface of the hollow block 525, the tapered block 521 is arranged on the upper end of the connecting plate 523, and the inner side of the hollow block 525 abuts against the outer side of the tapered block 521, and the lower end of the hollow block 525 is connected to the upper end of the connecting block 247, when the connecting block 247 is rotated and reamed, the connecting block 247 connected to the lower end of the hollow block 525 is elastically supported under the elasticity of the blocking strip 522, and the hollow block 525 is rotated and moved outside the tapered block 521 through the abutting pressure of the blocking strip 522.

[0038] And, the lower layer of the blocking strip 522 is made of aluminum alloy material, which has the characteristics of smoothness and small friction, and the upper layer is made of rubber material. The elasticity of the rubber material makes the aluminum alloy material of the lower layer press against the surface of the hollow block 525. When the hollow block 525 rotates, the friction between the hollow block 525 and the surface of the blocking strip 522 is reduced, only the elastic pressure of the rubber material is reserved, and the hollow block 525 always maintains the elasticity downward, so that the hollow block 525 is stably pressed against the outer side of the conical block 521 for rotation. The hollow block 525 is made of metal material, and the conical block 521 is made of plastic material. When the hollow block 525 rotates outside the conical block 521, the metal material rotates outside the plastic material, which can avoid the influence of friction on the rotation stability of the hollow block 525.

[0039] And, when the hollow block 525 rotates with the connecting block 247, the shaking of the connecting block 247 is elastically blocked by the blocking strip 522. Since the hollow block 525 rotates outside the conical block 521, the gravity at the lower end of the hollow block 525 makes the hollow block 525 move downward outside the conical block 521. The lateral resistance during drilling is constrained by the inclination of the hollow block 525 outside the conical block 521, and the elastic force of the convex block 524 downward, so that the hollow block 525 is stably rotated outside the conical block 521. This avoids the lateral resistance during drilling from causing the connecting block 247 to shake and prevents unstable drilling.

[0040] The swing structure 22 is provided with a support block 221, a rotating plate 222, a first support plate 223, a second rotating rod 224, a second support plate 225 and a third motor 226. The support block 221 is provided with symmetrically distributed second support plates 225 and first support plates 223 on both sides. The third motor 226 is installed outside the first support plate 223, and the second rotating rod 224 at the output end of the third motor 226 is engaged with the rotating plate 222. The rotating plate 222 is located inside the second support plate 225 and the first support plate 223, and is driven to rotate and swing by the rotating mechanism 24 under the engagement of the second rotating rod 224.

[0041] The second support plate 225 and the first support plate 223 are in a fixed state, and the second rotating rod 224 at the output end of the third motor 226 is engaged with the upper end of the rotating plate 222 to rotate. When rotating, the rotating plate 222 rotates with the first support plate 223 and the second support plate 225 as the rotation support points. The rotation angle of the second rotating rod 224 is between 60° left and right downward, so the rotation angle of the rotating plate 222 is also between 60° left and right, thereby driving the rotating mechanism 24 at the lower end to swing in an arc shape.

[0042] The rotating plate 222 is provided with slide rods 2221, semicircular plates 2222 and arc grooves 2223, the arc grooves 2223 are located inside the semicircular plates 2222, the slide rods 2221 are six in number and are distributed on the left and right sides of the semicircular plates 2222, the outer ends of the slide rods 2221 are symmetrically fixed to the inner sides of the second supporting plate 225 and the first supporting plate 223 respectively, and the slide rods 2221 slide in the arc grooves 2223, the sliding of the slide rods 2221 in the arc grooves 2223 drives the semicircular plates 2222 to rotate and drives the rotating mechanism 24 at the lower end of the semicircular plates 2222 to swing.

[0043] Furthermore, the arc grooves 2223 and the semicircular plates 2222 are consistent in curvature and are located on the same central axis, the semicircular plates 2222 are driven to swing left and right by the second rotating rod 224 in the present application, at this time, the arc grooves 2223 inside the semicircular plates 2222 rotate and slide along the slide rods 2221, and the slide rods 2221 are fixed to the second supporting plate 225 and the first supporting plate 223 to form support, so that the semicircular plates 2222 rotate between the second rotating rod 224 and the slide rods 2221, which provides limitation for the rotation of the semicircular plates 2222, so that the semicircular plates 2222 swing stably left and right, which provides an arc swinging effect for the drilling of the rotating mechanism 24 at the lower end of the semicircular plates 2222, and provides arc-shaped drilling while reaming, which avoids the inconvenience of arc-shaped drilling.

[0044] The above is only a preferred embodiment of the present application, and therefore cannot limit the scope of the present application, that is, equivalent changes and modifications made according to the scope of the present patent and the content of the specification should still be within the scope of the present application.

Claims

1. An integrated drilling and cutting device for aluminum processing, characterized in that, The system includes a first guide rail, a processing mechanism, a machine base, a conveyor belt, a control console, and a second guide rail. There are two second guide rails symmetrically distributed on the upper part of the machine base. There are two first guide rails parallel to each other on the upper part of the second guide rail. The first guide rails are connected to and controlled by an external control console circuit to slide longitudinally on the upper part of the second guide rail. The conveyor belt rotates inside the second guide rail to transport aluminum material. The control console circuit is connected to and controls the processing mechanism to slide laterally on the upper part of the first guide rail. The processing mechanisms on the two surfaces of the first guide rails are arranged in opposite directions, and the processing mechanisms are used to drill and cut aluminum material on the surface of the conveyor belt below. The processing mechanism includes a slider, a swing structure, a servo motor, a rotating mechanism, a slide rail, a processor, a housing, a hydraulic unit, and a cutting machine. The processor is located inside the housing and electrically drives the hydraulic unit, servo motor, swing structure, and rotating mechanism. The cutting machine is symmetrically positioned on the other side of the processor, and its outer end has a cutting blade. The cutting machine and the hydraulic unit inside the housing are electrically connected to the control console. The slide rail is vertically positioned inside the housing. The hydraulic unit is located at the bottom of the housing, and its output end is connected to the slider, vertically pushing the slider to slide up and down along the slide rail. The servo motor is located at the outer end of the slider, and its output end has a rotating swing structure. The servo motor drives the swing structure and rotating mechanism to rotate 90°. The lower end of the swing structure has a self-rotating rotating mechanism. The swing structure drives the rotating mechanism to swing left and right, and when the housing slides laterally on the upper end of the first guide rail, it drives the rotating mechanism to drill holes on the side of the aluminum material.

2. The integrated drilling and cutting equipment for aluminum processing according to claim 1, characterized in that, The rotating mechanism includes a first motor, a drill bit, a housing, a connecting rod, a suspension mechanism, a second motor, and a connecting block. The second motor is horizontally mounted inside the housing and is driven by a processor electrical signal, causing the drill bit at the output end of the second motor to rotate and drill a hole. A connecting block connected to the suspension mechanism is provided at the upper end of the housing. The first motor is vertically mounted inside the connecting rod. The processor electrical signal connects to and drives the first motor. The output end of the first motor rotates and engages, driving the suspension mechanism to rotate. The connecting block at the lower end of the suspension mechanism drives the drill bit to rotate around the connecting block to enlarge the hole.

3. The integrated drilling and cutting equipment for aluminum processing according to claim 2, characterized in that, The suspension mechanism includes a first rotating rod, a stabilizer rod, a rotating ring, and a toothed block. The first rotating rod is located at the output end of the first motor. The rotating ring is located on the upper end of the connecting block. The upper and lower ends of the stabilizer rod are respectively connected to the connecting rod and the connecting block, and the stabilizer rod and the rotating ring are located on the central axis of the connecting block and the connecting rod. The toothed block is arranged in an arc shape on the outside of the rotating ring. The toothed block is driven by the first rotating rod, and the connecting block at the lower end of the toothed block rotates around the stabilizer rod.

4. The integrated drilling and cutting equipment for aluminum processing according to claim 3, characterized in that, The stabilizing rod comprises a conical block, a blocking strip, a connecting plate, a convex block, and a hollow block. The convex block is fixed to the upper end of the conical block and is connected to the connecting rod at the upper end through the convex block. The blocking strip is arranged around the lower side of the convex block and abuts against the upper surface of the hollow block. The conical block is set at the upper end of the connecting plate. The inner side of the hollow block abuts against the outer side of the conical block, and the lower end of the hollow block is connected to the upper end of the connecting block. When the connecting block rotates to expand the hole, the elasticity of the blocking strip provides elastic support to the connecting block connected to the lower end of the hollow block, and the hollow block rotates and moves outside the conical block due to the pressure of the blocking strip.

5. The integrated drilling and cutting equipment for aluminum processing according to claim 4, characterized in that, The swing structure includes a support block, a rotating plate, a first support plate, a second rotating rod, a second support plate, and a third motor. The second support plate and the first support plate are symmetrically distributed on both sides of the support block. The third motor is installed on the outside of the first support plate, and the second rotating rod at the output end of the third motor meshes with the rotating plate. The rotating plate is located inside the second support plate and the first support plate, and the rotating plate drives the rotating mechanism to rotate and swing under the meshing of the second rotating rod.

6. The integrated drilling and cutting equipment for aluminum processing according to claim 5, characterized in that, The rotating plate is provided with a sliding rod, a semicircular plate and an arc groove. The arc groove is located inside the semicircular plate. There are six sliding rods, distributed on the left and right sides of the semicircular plate. The outer ends of the sliding rods are symmetrically fixed to the inner sides of the second support plate and the first support plate, respectively. The sliding rods slide inside the arc groove. The sliding of the sliding rods in the arc groove causes the second rotating rod to drive the semicircular plate to mesh and rotate, and drives the rotating mechanism at the lower end of the semicircular plate to swing.

Citation Information

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