Aluminum profile machining and cutting device

By designing clamping, tilting, and material handling components, the low efficiency and manual intervention issues in batch cutting of aluminum profile processing and cutting devices are solved, achieving highly efficient automated cutting and debris removal, thus improving processing efficiency.

CN121245070APending Publication Date: 2026-01-02GUANGZHOU OUBA BUILDING MATERIALS TECH CO LTD
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Patent Information

Application Number
CN202511647226.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-11
Publication Date
2026-01-02

AI Technical Summary

Technical Problem

Existing aluminum profile processing and cutting equipment has a long single-cut cycle when performing batch cutting tasks, making it difficult to achieve continuous operation. Furthermore, manual intervention is required to replace the tubes after cutting, which affects efficiency.

Method used

An aluminum profile processing and cutting device was designed, which includes a clamping component, a tilting and vibration component, and a material handling component. The clamping component tightly wraps the outer wall of the tube with clamping parts. The tilting and vibration component tilts and vibrates to remove debris after cutting. The material handling component enables automatic replacement of the tube, reducing manual intervention.

Benefits of technology

By using the clamping components for stable clamping, the tilting components for debris removal, and the material handling components for automatic feeding, the cutting accuracy and continuous operation efficiency are improved, the single cutting cycle is shortened, and batch continuous processing is supported.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of cutting, and discloses an aluminum profile machining and cutting device which comprises a base table, a bearing table is fixedly connected to the top of the base table, cutting tables are symmetrically and fixedly connected to the outer wall of a shaft rod of the bearing table, and a material preparation table is arranged on one side of each cutting table and fixedly installed above the base table. A cutting structure is arranged over the cutting tables, clamping assemblies are arranged on the surfaces of the cutting tables, inclined vibration assemblies are arranged below the two cutting tables, through the inclined vibration assemblies, after cutting is completed, the inclined vibration assemblies drive the cutting tables to rotate in a hinged mode with a bearing table shaft rod as the axis, the ends, away from the bearing table, of the cutting tables are made to incline downwards, and a downward inclined face is formed; in the inclination process, the inclination vibration assembly enables the surface of the cutting table to vibrate through mechanical vibration, chippings are assisted to fall off, the situation that the residual chippings influence the follow-up cutting precision or scratch the surfaces of the pipes is avoided, the pipes and the cutting chippings are efficiently removed through the dual action of gravity and vibration, and the continuous operation efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of cutting, and particularly relates to an aluminum profile machining and cutting device. BACKGROUND

[0002] The aluminum profile machining and cutting device is a mechanical device specially used for size machining and shape segmentation of aluminum alloy profiles (including pipe, bar, plate, profiled material, etc.), and its core function is to accurately cut the original aluminum profile into target workpieces according to preset parameters (length, angle, shape, etc.) through mechanical cutting, so as to meet the manufacturing requirements of parts in the fields of building, transportation, electronics, aerospace, etc.

[0003] In the prior art, when the aluminum profile pipe is machined and cut, the pipe is first placed on the cutting table, then the pipe is clamped by controlling the movement of the clamp, after the cutting is completed, the clamp is loosened to take down the cut pipe, and then the next pipe is placed, which leads to a long single cutting cycle and is difficult to realize continuous operation when batch pipe cutting tasks are performed.

[0004] Therefore, the application provides an aluminum profile machining and cutting device. SUMMARY

[0005] In order to make up for the deficiencies of the prior art: solve at least one technical problem raised in the background art.

[0006] The technical scheme adopted by the application to solve the technical problem is: the aluminum profile machining and cutting device comprises a base table, a bearing table fixedly connected to the top of the base table, shaft rod outer walls of the bearing table fixedly connected in pairs, a cutting table provided on one side of the bearing table, a standby table fixedly installed above the base table, a cutting structure provided above the cutting table, an electric sliding block fixedly connected to one side of the cutting structure, an electric guide rail fixedly installed above the base table, the electric sliding block and the inner wall of the electric guide rail being in sliding connection and being mutually adapted, a clamping assembly provided on the surface of the cutting table, the clamping assembly comprising two clamping pieces, the two clamping pieces being capable of wrapping the outer wall of the aluminum profile pipe through rotation, a shock absorbing assembly provided below the two cutting tables, the shock absorbing assembly being used for driving the cutting table to incline downward and vibrate during the inclining process, and a material taking assembly provided outside the standby table, the material taking assembly being used for automatically feeding the pipe.

[0007] Preferably, the clamping assembly comprises two limiting hinge seats, the two limiting hinge seats are fixedly connected to the surface of the cutting table, the shaft rods of the two limiting hinge seats are fixedly connected to one end of the two clamping pieces respectively, the inner wall surfaces of the two clamping pieces are provided with anti-slip patterns, the shaft rods of the limiting hinge seats are fixedly connected with a pressing plate at one end, and the cutting structure is provided with a pressing assembly outside the cutting structure, the pressing assembly being used for driving the pressing plate to rotate.

[0008] Preferably, the pressing assembly comprises two connecting tables symmetrically fixed to the two sides of the cutting structure, the inner walls of the connecting tables are inserted with inserting rods, the bottoms of the inserting rods are fixed with pressing balls, and the top of the pressing ball is fixed with spring one between the bottom of the connecting table.

[0009] Preferably, one side of the clamping piece is fixed with torsion spring one, one end of the torsion spring one away from the clamping piece is fixed with the one side of the limiting hinge seat, and the elastic coefficient of the torsion spring one is far less than the elastic coefficient of the spring one.

[0010] Preferably, the shock-absorbing assembly comprises two hinge pieces, the outer walls of the shaft rods of the hinge pieces are fixed with supporting wheels, the outer walls of the supporting wheels are attached to the bottom of the cutting table, one end of the hinge piece is fixed with an arc-shaped connecting rod, one end of the arc-shaped connecting rod is fixed with an arc-shaped sliding block, one side of the bearing table is symmetrically fixed with an arc-shaped sliding seat, the inner walls of the arc-shaped sliding block and the arc-shaped sliding seat are slidingly connected, and one side of the arc-shaped sliding block is provided with a tension assembly for driving the arc-shaped sliding block to slide along the inner wall of the arc-shaped sliding seat.

[0011] Preferably, the shock-absorbing assembly further comprises two gears fixed to the two ends of the shaft rods of the hinge pieces, the top of the base table is symmetrically fixed with a rack plate, the teeth of the gears can be engaged with the teeth of the rack plate, and the outer wall of the supporting wheel is fixed with a plurality of protrusions.

[0012] Preferably, the tension assembly comprises two pull ropes fixed to one side of the arc-shaped sliding block, the pull ropes continuously penetrate the inner walls of the arc-shaped sliding seat and the bearing table, one end of the pull rope away from the arc-shaped sliding block is fixed with a lifting sliding block, the top of the base table is symmetrically fixed with a fixed pulley, the pull rope is wound between the fixed pulley, the two sides of the electric guide rail are fixed with limiting sliding seats, the lifting sliding block and the limiting sliding seat are slidingly connected and mutually adapted, one side of the lifting sliding block is fixed with an iron block, and the two sides of the cutting structure are symmetrically fixed with magnets.

[0013] Preferably, torsion spring two is fixed between one side of the arc-shaped sliding block and the inner wall of the arc-shaped sliding seat, the top of the lifting sliding block is fixed with a sliding rod, the sliding rod is slidingly connected with the inner wall of the limiting sliding seat, and spring two is fixed between the top of the limiting sliding seat and the top of the sliding rod.

[0014] Preferably, the material taking assembly comprises a clamping block fixed to the top of the material preparation table, the outer wall of the shaft rod of the bearing table is fixed with a fixed rod, one end of the fixed rod is fixed with an arc-shaped blocking plate and an arc-shaped pushing plate, respectively.

[0015] Preferably, the top of the base table is fixed with a sieve plate, the bottom of the sieve plate is provided with a collection box, the collection box is located on the surface of the base table, the top of the base table is fixed with a material collecting box, and the material collecting box is located on one side of the bottom end of the sieve plate.

[0016] The beneficial effects of this invention are as follows: 1. The aluminum profile processing and cutting device of the present invention, through the clamping assembly, during the descent of the cutting structure, drives the two clamping parts to rotate, so that their inner walls tightly wrap around the outer walls of both ends of the tube, forming a stable clamping force, avoiding positional displacement, shaking or vibration caused by the impact force of the cutting wheel or the stress of the tube itself during the cutting process, and ensuring cutting accuracy.

[0017] 2. The aluminum profile processing and cutting device of the present invention, through the tilting vibration component, after the cutting is completed, the tilting vibration component drives the cutting table to rotate hinged around the bearing platform shaft, so that the end of the cutting table away from the bearing platform tilts downward to form a downward slope. During the tilting process, the tilting vibration component causes the surface of the cutting table to vibrate through mechanical vibration, which helps the debris to fall off and avoids residual debris from affecting the subsequent cutting accuracy or scratching the surface of the pipe. By utilizing the dual action of gravity and vibration, the pipe and cutting debris are efficiently removed, improving the efficiency of continuous operation.

[0018] 3. The aluminum profile processing and cutting device of the present invention, through the material picking component, when the cutting table returns to a horizontal state, the material picking component pushes the frontmost tube on the surface of the preparation table to the surface of the cutting table through linkage, so that the tube can be automatically replaced and positioned without manual intervention, shortening the single cutting cycle and supporting batch continuous processing. Attached Figure Description

[0019] The invention will now be further described with reference to the accompanying drawings.

[0020] Figure 1 This is a perspective view of the entire invention; Figure 2 This is a schematic diagram of the structure of the electric slide rail in this invention; Figure 3 This is a schematic diagram of the structure at the cutting table in this invention; Figure 4 This is a schematic diagram of the structure at the lower pressure ball in this invention; Figure 5 This is a schematic diagram of the structure of the clamping component in this invention; Figure 6 This is a schematic diagram of the structure at the arc-shaped baffle plate in this invention; Figure 7 This is a schematic diagram of the structure of the perforated plate in this invention; Figure 8 This is a schematic diagram of the rack plate structure in this invention; Figure 9 This is a schematic diagram of the rope-pulling structure in this invention; Figure 10 This is a schematic diagram of the lifting slider in this invention.

[0021] In the diagram: 1. Base platform; 2. Bearing platform; 3. Cutting table; 4. Material preparation table; 5. Limiting hinge seat; 6. Cutting structure; 7. Electric slider; 8. Electric guide rail; 9. Clamping component; 10. Lower pressure plate; 11. Connecting platform; 12. Insertion rod; 13. Lower pressure ball; 14. Spring 1; 15. Torsion spring 1; 16. Support wheel; 17. Hinge component; 18. Arc-shaped connecting rod; 19. Arc-shaped slider; 20. Arc... 21. Slide block; 22. Pull rope; 23. Fixed pulley; 24. Lifting slider; 25. Iron block; 26. Magnet; 27. Limiting slide block; 28. Slide rod; 29. ​​Spring II; 30. Torsion spring II; 31. Protrusion; 32. Gear; 33. Rack plate; 34. Fixed rod; 35. Arc-shaped blocking plate; 36. Arc-shaped pusher plate; 37. Positioning block; 38. Screen plate; 39. Collection box; 30. Material collection bin. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0023] like Figures 1 to 10 As shown, the present invention provides a technical solution: an aluminum profile processing and cutting device, including a base platform 1, a bearing platform 2 fixedly connected to the top of the base platform 1, a cutting table 3 symmetrically fixedly connected to the outer wall of the shaft of the bearing platform 2, a material preparation platform 4 provided on one side of the cutting table 3, the material preparation platform 4 fixedly installed above the base platform 1, a cutting structure 6 provided directly above the cutting table 3, an electric slider 7 fixedly connected to one side of the cutting structure 6, an electric guide rail 8 fixedly installed above the base platform 1, the electric slider 7 and the inner wall of the electric guide rail 8 being slidably connected and mutually adapted, a clamping assembly provided on the surface of the cutting table 3, the clamping assembly including two clamping parts 9, the two clamping parts 9 can wrap around and clamp the outer wall of the aluminum profile tube by rotation, a tilting vibration assembly provided below the two cutting tables 3, the tilting vibration assembly is used to drive the cutting table 3 to tilt downward and vibrate during the tilting process, and a material picking assembly for automatically feeding tubes is provided outside the material preparation platform 4.

[0024] During operation: The aluminum profile to be cut is placed on the surface of the cutting table 3, and the remaining profiles are arranged in sequence on the surface of the preparation table 4. In the initial state, both the cutting table 3 and the preparation table 4 are tilted, and their adjacent ends are connected to form a slide. When cutting, the electric guide rail 8 is started. The electric guide rail 8 usually has a corresponding drive device inside (such as a motor, lead screw, etc., although not shown in detail in the figure, but this is a common structure of electric guide rails). Under the action of the driving force, the electric slider 7 slides down along the inner wall of the electric guide rail 8. At this time, the electric slider 7 can drive the cutting structure 6 to gradually move down. When the cutting structure 6 descends, it gradually approaches the profile placed on the surface of the cutting table 3. When the cutting wheel inside the cutting structure 6 contacts the profile, it can perform the task of cutting the profile. When the cutting structure 6 is lowered, the clamping assembly is triggered to move, and the clamping assembly drives the two clamping pieces 9 to rotate, so that the inner walls of the two clamping pieces 9 wrap the outer walls of the two ends of the pipe, thereby achieving clamping and fixing of the pipe, avoiding the occurrence of position deviation or shaking of the pipe during cutting; and then after the cutting is completed, the electric sliding block 7 slides upward along the inner wall of the electric guide rail 8 and makes the cutting structure 6 rise and reset, and when the cutting structure 6 rises and resets, the shock assembly is triggered to move, and when the shock assembly moves, the end of the cutting table 3 is hinged and rotated around the shaft rod of the bearing table 2, so that the end of the cutting table 3 away from the bearing table 2 gradually rotates and tilts downward, and in the tilting process, the clamping assembly releases the clamping force on the cutting table 3, so that when the cutting table 3 tilts to a certain angle, the cutting residues on the surface of the cutting table 3 and the pipe will fall off along the inclined surface of the cutting table 3 under the action of gravity, thereby achieving the taking of the pipe and the cleaning of the residues; in addition, during the downward rotation and tilting of the cutting table 3, the surface of the cutting table 3 will vibrate under the action of the shock assembly, and the vibration will further improve the cleaning effect of the residues and reduce the residues on the surface of the cutting table 3; Then, when the cutting structure 6 resets to the initial position, the cutting table 3 will move reversely to the original state under the action of the shock assembly, and in this process, the taking assembly will be moved, and when the taking assembly moves, the frontmost pipe on the surface of the material preparation table 4 will be automatically fed; after the cutting table 3 and the material preparation table 4 are reconnected, the pipe can slide along the bottom of the material preparation table 4 to the cutting position on the surface of the cutting table 3, thereby facilitating the next round of cutting work; Through the above embodiment, through the clamping assembly, during the lowering of the cutting structure 6, the clamping assembly drives the two clamping pieces 9 to rotate, so that the inner walls of the two clamping pieces 9 tightly wrap the outer walls of the two ends of the pipe, forming a stable clamping force, avoiding position deviation, shaking or vibration caused by the impact force of the cutting wheel or the stress of the pipe during cutting, and ensuring cutting accuracy; through the shock assembly, after the cutting is completed, the shock assembly drives the cutting table 3 to hinge and rotate around the shaft rod of the bearing table 2, so that the end of the cutting table 3 away from the bearing table 2 tilts downward, forming a downward inclined surface, and in the tilting process, the shock assembly makes the surface of the cutting table 3 vibrate through mechanical vibration, assisting the residues to fall off, avoiding the residues affecting the subsequent cutting accuracy or scratching the surface of the pipe, and using the dual action of gravity and vibration to efficiently remove the pipe and cutting residues and improve the continuous operation efficiency; through the taking assembly, when the cutting table 3 returns to the horizontal state, the taking assembly pushes the frontmost pipe on the surface of the material preparation table 4 to the surface of the cutting table 3 through linkage, without manual intervention, the automatic replacement and positioning of the pipe can be completed, the single cutting cycle is shortened, and batch continuous processing is supported.

[0025] For example, Figures 3 to 5As shown, the clamping assembly comprises two limiting hinge seats 5, both of which are fixedly connected to the surface of the cutting table 3, and the shaft rods of the two limiting hinge seats 5 are fixedly connected to one end of two clamping pieces 9 respectively, the inner wall surface of the two clamping pieces 9 is provided with anti-skid lines, and the shaft rod of the limiting hinge seat 5 is fixedly connected with a lower pressing plate 10 at one end, and the outside of the cutting structure 6 is provided with a lower pressing assembly for driving the lower pressing plate 10 to rotate.

[0026] When working: After the pipe is placed manually or automatically discharged by the taking component, it slides along the initial inclined surface of the cutting table 3 and finally stops at the side of the two limiting hinge seats 5; when the electric guide rail 8 drives the cutting structure 6 to descend, the lower pressing assembly moves downward synchronously and contacts the lower pressing plate 10, the lower pressing assembly applies downward pressure, forcing the lower pressing plate 10 to rotate around the shaft rod of the limiting hinge seat 5, the rotation of the lower pressing plate 10 directly drives the shaft rod to rotate, and then drives the clamping piece 9 to swing towards the pipe, as the cutting structure 6 continues to descend, the two clamping pieces 9 finally tightly wrap the outer wall of both ends of the pipe, so as to position the pipe at the cutting position on one side of the limiting hinge seat 5, avoiding deviation and shaking during cutting.

[0027] As shown in the figure, Figures 4 to 5 The lower pressing assembly comprises two connecting tables 11, both of which are fixedly connected to the two sides of the cutting structure 6 symmetrically, the inner wall of the connecting table 11 is inserted with a plug-in rod 12, the bottom of the plug-in rod 12 is fixedly connected with a lower pressing ball 13, and the top of the lower pressing ball 13 and the bottom of the connecting table 11 are fixedly connected with a spring 14.

[0028] When working: when the cutting structure 6 is at the initial high position, the two connecting tables 11 of the lower pressing assembly hover synchronously with the cutting structure 6, at this time the plug-in rod 12 is at the maximum extension position under the elastic force of the spring 14; when the electric guide rail 8 drives the cutting structure 6 to move downward, the connecting table 11 and the plug-in rod 12 move downward as a whole, when the bottom of the lower pressing ball 13 contacts the top of the lower pressing plate 10, the lower pressing ball 13 is subjected to a vertical downward pressure and drives the shaft rod of the limiting hinge seat 5 to rotate, so that the clamping piece 9 swings towards the pipe, realizing the clamping action; when the cutting structure 6 continues to descend, the lower pressing ball 13 continuously presses the lower pressing plate 10 which has locked the pipe, at this time the lower pressing ball 13 cannot continue to move downward due to the limitation of the pipe, and instead moves upward along the inner wall of the connecting table 11 by extruding the spring 14, completing the buffer self-adapting process before cutting; during the cutting process, the continuous elastic force of the spring 14 is transmitted to the lower pressing plate 10 through the lower pressing ball 13, ensuring that the clamping piece 9 always tightly wraps the outer wall of the pipe and ensuring the cutting stability.

[0029] As shown in the figure, Figure 5As shown, one side of the clamping piece 9 is fixedly connected with a torsion spring 15, one end of the torsion spring 15 away from the clamping piece 9 is fixedly connected with one side of the limiting hinge seat 5, and the elastic coefficient of the torsion spring 15 is far less than the elastic coefficient of the spring 14.

[0030] When working: when the clamping piece 9 rotates to clamp the pipe, the torsion spring 15 will be stretched and elastically deformed; when the cutting table 3 inclines through the inclination assembly, the lower pressing plate 10 moves synchronously with the cutting table 3 and separates from the lower pressing ball 13, at this time, the elastic force of the torsion spring 15 drives the clamping piece 9 and the lower pressing plate 10 to automatically reverse and reset, so that the clamping piece 9 releases the clamping force on the pipe, and the pipe can slide down the inclined cutting table 3 under the action of gravity; and the elastic coefficient of the torsion spring 15 is designed to be far less than the elastic coefficient of the spring 14, so as to ensure that the clamping piece 9 can overcome the weak elastic force of the torsion spring 15 and rotate during the pressing process of the lower pressing ball 13, avoid the spring 14 from being accidentally pressed and deformed due to excessive resistance of the torsion spring, and thus ensure the action coordination of the pressing assembly and the clamping mechanism.

[0031] As shown in Figures 7 to 9 The inclination assembly includes two hinge pieces 17, the outer walls of the shaft rods of the hinge pieces 17 are fixedly connected with support wheels 16, the outer walls of the support wheels 16 are in contact with the bottom of the cutting table 3, one end of each of the hinge pieces 17 is fixedly connected with an arc-shaped connecting rod 18, one end of each of the arc-shaped connecting rods 18 is fixedly connected with an arc-shaped sliding block 19, one side of the bearing table 2 is fixedly connected with arc-shaped sliding seats 20 in a symmetrical manner, the arc-shaped sliding blocks 19 are in sliding connection with the inner walls of the arc-shaped sliding seats 20, and one side of each of the arc-shaped sliding blocks 19 is provided with a tension assembly for driving the arc-shaped sliding block 19 to slide along the inner wall of the arc-shaped sliding seat 20.

[0032] When working: the support wheels 16 stably support the bottom of the cutting table 3 in the initial state, so that the cutting table 3 maintains a stable initial cutting state; during the cutting action of the cutting structure 6 and the rising and resetting process, the tension assembly moves to drive the arc-shaped sliding block 19 to slide along the inner wall of the arc-shaped sliding seat 20 according to a specific arc-shaped track; the arc-shaped sliding block 19 transmits the tension to the hinge piece 17 through the arc-shaped connecting rod 18 during the sliding process, thereby driving the support wheel 16 to be displaced in an arc shape at the bottom of the cutting table 3, causing the cutting table 3 to be out of balance, and the cutting table 3 automatically inclines and deflects downward under the action of gravity, so that the surface of the cutting table 3 finally forms a sufficient slope to promote the pipe that has been cut to automatically slide to a designated collection area under the action of gravity.

[0033] As shown in Figures 8 to 9 The inclination assembly further includes two gears 31, the two gears 31 are fixedly connected to the two ends of the shaft rods of the hinge pieces 17, respectively, the top of the base table 1 is fixedly connected with a rack plate 32 in a symmetrical manner, the teeth of the gears 31 can be engaged with the teeth of the rack plate 32, and the outer wall of the support wheel 16 is fixedly connected with a plurality of protrusions 30.

[0034] When working: due to the displacement of the supporting wheel 16 along the preset arc-shaped track, the cutting table 3 is automatically tilted downward under the action of gravity, and the bottom thereof is always in dynamic contact with the top of the supporting wheel 16. During the displacement of the supporting wheel 16, the gear 31 gradually meshes with the rack plate 32, so that the supporting wheel 16 can also rotate during the arc-shaped displacement. With the continuous rotation of the supporting wheel 16, the protrusions 30 uniformly distributed on the outer wall of the supporting wheel 16 alternately enter and exit the contact state, forming a periodic "extrusion-release" cycle. In the extrusion stage, the bottom of the cutting table 3 is locally lifted, and in the release stage, the protrusions 30 rotate away from the contact surface, and the cutting table 3 falls under the action of gravity and re-docks on the outer wall of the supporting wheel 16. In this way, the cutting table 3 is continuously vibrated during the tilting process.

[0035] As shown in Figures 7 to 10 , the tension assembly includes two pull ropes 21, which are fixedly connected to one side of the arc-shaped sliding block 19. The pull ropes 21 continuously penetrate the arc-shaped sliding seat 20 and the inner wall of the bearing table 2. The ends of the pull ropes 21 away from the arc-shaped sliding block 19 are fixedly connected with lifting sliding blocks 23. The top of the base table 1 is fixedly connected with a plurality of fixed pulleys 22 symmetrically. The pull ropes 21 are wound around the fixed pulleys 22. The two sides of the electric guide rail 8 are fixedly connected with limiting sliding seats 26. The lifting sliding blocks 23 are slidingly connected with the inner walls of the limiting sliding seats 26 and are adapted to each other. The sides of the lifting sliding blocks 23 are fixedly connected with iron blocks 24. The two sides of the cutting structure 6 are fixedly connected with magnets 25 symmetrically.

[0036] When working: when the electric guide rail 8 drives the cutting structure 6 to vertically descend to perform cutting work, the magnets 25 fixed to the two sides of the cutting structure 6 move downward synchronously. At the critical position of cutting completion, the magnets 25 just enter the magnetic attraction range of the iron blocks 24, and the iron blocks 24 and the lifting sliding blocks 23 are attracted as a whole by the strong magnetic field force. Then the cutting structure 6 starts to rise and reset, and the magnets 25 drive the lifting sliding blocks 23 to move upward along the sliding grooves of the limiting sliding seats 26 through magnetic coupling. In this process, the pull ropes 21 exert tangential tension on the arc-shaped sliding block 19 along the inner wall of the arc-shaped sliding seat 20 under the turning action of the fixed pulleys 22. The arc-shaped sliding block 19 slides along the preset arc-shaped track under the driving of the tension, drives the articulated piece 17 to rotate through the arc-shaped connecting rod 18, and then makes the supporting wheel 16 produce synchronous arc-shaped displacement. With the displacement of the supporting wheel 16, the cutting table 3 tilts controllably around the supporting point under the action of gravity, and the bottom thereof is always in dynamic contact with the outer wall of the supporting wheel 16, finally forming an inclination angle suitable for the sliding of the pipe.

[0037] As shown in Figures 9 to 10As shown, the side of the arc-shaped sliding block 19 and the inner wall surface of the arc-shaped sliding seat 20 are fixedly connected with a torsion spring 29, the top of the lifting sliding block 23 is fixedly connected with a sliding rod 27, the sliding rod 27 is slidingly connected with the inner wall of the limiting sliding seat 26, and the top of the limiting sliding seat 26 and the top of the sliding rod 27 are fixedly connected with a spring 28.

[0038] When the magnet 25 attracts the iron block 24 and the lifting sliding block 23 moves upward, the lifting sliding block 23 cannot move upward any more when it moves to the top position of the inner wall of the limiting sliding seat 26, and at the same time, the cutting table 3 has dropped off the pipe material after tilting, the magnet 25 gradually separates from the iron block 24, the iron block 24 moves downward under the action of the spring 28, the arc-shaped sliding block 19 slides along the inner wall of the arc-shaped sliding seat 20 under the action of the torsion spring 29, the supporting wheel 16 returns to the original position, the cutting table 3 is lifted by the supporting wheel 16, and the cutting table 3 returns to the initial state.

[0039] As shown in Figure 3 and Figure 6 The taking material assembly includes a clamping block 36 fixedly connected to the top of the standby table 4, a fixed rod 33 fixedly connected to the outer wall of the shaft rod of the bearing table 2, and an arc-shaped blocking plate 34 and an arc-shaped pushing plate 35 fixedly connected to one end of the fixed rod 33.

[0040] In the initial state, the remaining pipe materials to be cut are stopped on one side of the arc-shaped blocking plate 34, the shaft rod of the bearing table 2 rotates when the cutting table 3 tilts downward, the arc-shaped blocking plate 34 and the arc-shaped pushing plate 35 are driven to rotate through the fixed rod 33, the arc-shaped blocking plate 34 and the arc-shaped pushing plate 35 move away from the upper surface of the standby table 4 when rotating, at this time, the remaining pipe materials automatically slide along the inclined surface of the standby table 4 and are sequentially stopped on one side of the clamping block 36, and when the cutting table 3 completes the unloading and returns to the initial state, the arc-shaped blocking plate 34 separates all the pipe materials except the first one on the surface of the standby table 4, at the same time, the arc-shaped pushing plate 35 lifts the bottom of the first pipe material, so that the pipe material can slide along the surface of the clamping block 36, and when the first pipe material is completely lifted and is no longer limited by the side of the clamping block 36, the cutting table 3 returns to the original position, at this time, the pipe material slides along the surface of the standby table 4 and the cutting table 3 to one side of the limiting hinged seat 5, thereby realizing the precise feeding of a single pipe material.

[0041] As shown in Figure 7 The top of the base table 1 is fixedly connected with a sieve plate 37, the bottom of the sieve plate 37 is provided with a collection box 38, the collection box 38 is located on the surface of the base table 1, the top of the base table 1 is fixedly connected with a material collecting box 39, and the material collecting box 39 is located on one side of the bottom end of the sieve plate 37.

[0042] When working: when the cutting table 3 is in the fully final degree of inclination, the bottom of the cutting table 3 will be in a butt joint relationship with the top of the sieve plate 37, at this time the pipe material and the debris will fall together on the surface of the sieve plate 37, the pipe material will slide along the surface of the sieve plate 37 to the inside of the collecting box 39 for collection, and the debris will fall along the sieve holes of the sieve plate 37 to the inside of the collecting box 38 for collection.

[0043] The above shows and describes the basic principles, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited to the above-mentioned embodiments, and the above-mentioned embodiments and descriptions in the specification are only to illustrate the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. An aluminum profile processing and cutting device, comprising a base platform, characterized in that: A bearing platform is fixedly connected to the top of the base platform. A cutting table is symmetrically fixedly connected to the outer wall of the bearing platform's shaft. A material preparation platform is set on one side of the cutting table and is fixedly installed above the base platform. A cutting structure is set directly above the cutting table. An electric slider is fixedly connected to one side of the cutting structure. An electric guide rail is fixedly installed above the base platform. The electric slider and the inner wall of the electric guide rail are slidably connected and mutually adapted. A clamping assembly is set on the surface of the cutting table. The clamping assembly includes two clamping parts. The two clamping parts can wrap around and clamp the outer wall of the aluminum profile tube by rotation. A tilting vibration assembly is set below the two cutting tables. The tilting vibration assembly is used to drive the cutting table to tilt downward and vibrate during the tilting process. A material feeding assembly for automatically feeding tubes is set outside the material preparation platform.

2. The aluminum profile processing and cutting device according to claim 1, characterized in that: The clamping assembly includes two limiting hinge seats, both of which are fixedly connected to the surface of the cutting table. The shafts of the two limiting hinge seats are respectively fixedly connected to one end of the two clamping parts. The inner wall surfaces of the two clamping parts are both provided with anti-slip textures. A pressure plate is fixedly connected to one end of the shaft of each limiting hinge seat. A pressure assembly that drives the pressure plate to rotate is provided on the outside of the cutting structure.

3. The aluminum profile processing and cutting device according to claim 2, characterized in that: The pressing assembly includes two connecting platforms, which are symmetrically fixed to both sides of the cutting structure. Each connecting platform has a connecting rod inserted into its inner wall, and a pressing ball is fixedly connected to the bottom of each connecting rod. A spring is fixedly connected between the top of the pressing ball and the bottom of the connecting platform.

4. The aluminum profile processing and cutting device according to claim 3, characterized in that: A torsion spring is fixedly connected to one side of the clamping member. The end of the torsion spring away from the clamping member is fixedly connected to one side of the limiting hinge seat. The elastic coefficient of the torsion spring is much smaller than that of the spring.

5. The aluminum profile processing and cutting device according to claim 4, characterized in that: The tilting assembly includes two hinges. Support wheels are fixedly connected to the outer walls of the shafts of the hinges. The outer walls of the support wheels are in contact with the bottom of the cutting table. An arc-shaped connecting rod is fixedly connected to one end of each hinge. An arc-shaped slider is fixedly connected to one end of each arc-shaped connecting rod. An arc-shaped slide block is symmetrically fixedly connected to one side of the bearing platform. The arc-shaped slider is slidably connected to the inner wall of the arc-shaped slide block. A tension component is provided on one side of the arc-shaped slider to drive the arc-shaped slider to slide along the inner wall of the arc-shaped slide block.

6. The aluminum profile processing and cutting device according to claim 5, characterized in that: The tilting assembly also includes two gears, which are fixedly connected to both ends of the hinge shaft. A rack plate is symmetrically fixedly connected to the top of the base platform. The teeth of the gears can mesh with the teeth of the rack plate. Multiple protrusions are fixedly connected to the outer wall of the support wheel.

7. The aluminum profile processing and cutting device according to claim 6, characterized in that: The tension assembly includes two pull ropes, which are fixedly connected to one side of the arc-shaped slider. The pull ropes continuously pass through the inner walls of the arc-shaped slide and the bearing platform. The end of the pull rope away from the arc-shaped slider is fixedly connected to a lifting slider. Fixed pulleys are symmetrically fixedly connected to the top of the base platform. The pull ropes are wound around the fixed pulleys. Limiting slides are fixedly connected to both sides of the electric guide rail. The lifting slider is slidably connected to the inner wall of the limiting slide and is mutually adapted. Iron blocks are fixedly connected to one side of the lifting slider. Magnets are symmetrically fixedly connected to both sides of the cutting structure.

8. The aluminum profile processing and cutting device according to claim 7, characterized in that: A torsion spring is fixedly connected between one side of the arc-shaped slider and the inner wall of the arc-shaped slide block. A slide rod is fixedly connected to the top of each lifting slider. The slide rod is slidably connected to the inner wall of the limiting slide block. A spring is fixedly connected between the top of the limiting slide block and the top of the slide rod.

9. The aluminum profile processing and cutting device according to claim 8, characterized in that: The material handling assembly includes a positioning block, which is fixedly connected to the top of the material preparation platform. A fixing rod is fixedly connected to the outer wall of the bearing platform's shaft, and an arc-shaped blocking plate and an arc-shaped pushing plate are fixedly connected to one end of the fixing rod.

10. The aluminum profile processing and cutting device according to claim 9, characterized in that: A screen plate is fixedly connected to the top of the base platform, and a collection box is set at the bottom of the screen plate. The collection box is located on the surface of the base platform, and a material collection box is fixedly connected to the top of the base platform. The material collection box is located on one side of the bottom end of the screen plate.

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