Aluminum profile production and processing equipment and processing method thereof
By designing an aluminum profile production and processing equipment with integrated clamping, plugging, correction and cutting functions, the problems of large area and low processing efficiency of existing equipment are solved, and more efficient aluminum profile processing is achieved.
Patent Information
- Application Number
- CN202510456485.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2025-05-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing aluminum profile production and processing equipment has a large area of use and low processing efficiency when the process connection is unreasonable.
Aluminum profile production and processing equipment is designed to achieve synchronous operations of clamping, plugging, correction and cutting through the combination of support components and cutting components, and shorten the transportation time between processes.
It effectively reduces the area occupied by the equipment, improves the processing efficiency of aluminum profiles, and reduces time consumption between processes.
Smart Images

Figure CN120055354A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of aluminum profile production and processing, and particularly relates to an aluminum profile production and processing device and its processing method. Background Art
[0002] For aluminum profile extrusion processing, an auxiliary device is used to heat an aluminum rod to about 450 °C, and then the aluminum rod is placed into an extrusion cylinder. Under the pressure output of a hydraulic system, a pushing rod pushes the aluminum rod towards a die. The aluminum rod undergoes high-temperature physical deformation and comes out of the die opening to become a corresponding aluminum profile.
[0003] Then, the aluminum profile coming out of the die opening is pulled. Among them, for the pulling device, such as a full-automatic double puller, the pulling force is constant, the pulling speed is synchronized with the profile, and non-stop interrupted sawing is carried out at the joint. After the aluminum profile is cut off, the aluminum profile still needs to be stretched. Among them, stretching is a key process in aluminum profile processing. By eliminating internal stress, correcting dimensions, improving performance and appearance of the aluminum profile, the aluminum profile can meet the application requirements of high precision and high strength;
[0004] Currently, in the actual operation of aluminum profile production and processing equipment, there is a problem of unreasonable connection of processes. After extrusion processing of the aluminum profile, it is necessary to first carry out separate stretching processing, and then carry out cutting processing on both ends of the stretched aluminum profile. These two processes are separated from each other, which not only causes the factory to need to set aside relatively large working areas for these two processes respectively, occupying a large amount of factory area, but also consumes additional time due to the transportation and turnover of the aluminum profile between processes, greatly hindering the improvement of the processing efficiency of aluminum profiles. Summary of the Invention
[0005] The purpose of the present invention is to provide an aluminum profile production and processing device and its processing method, and solve the following technical problems: how to reduce the area occupied by the aluminum profile production and processing equipment, and how to improve the processing efficiency of aluminum profiles.
[0006] The purpose of the present invention can be achieved through the following technical solutions: an aluminum profile production and processing device, including: a support component and a cutting component, and the cutting component is symmetrically installed on both sides of the support component;
[0007] On both sides of the support component and below the cutting component, clamping components are slidably installed. In the center of the interior of the clamping component, an insertion component is fixedly installed. Below one end of the clamping component, a correction component is provided. In the middle of the side of the cutting component, a control box is fixedly installed;
[0008] The clamping component is used to clamp the aluminum profile;
[0009] The insertion component is used to be inserted into the interior of the end of the aluminum profile to prevent the clamping component from over-clamping;
[0010] The calibration component is used to calibrate the position of the upper aluminum profile of the support component;
[0011] The support component is used to support the aluminum profile and provide power for the operation of the plug-in component;
[0012] The cutting component cuts the stretched aluminum profile.
[0013] As a preferred solution of the present invention: The clamping component includes a connecting frame. At one end of the connecting frame, transmission gears are symmetrically and rotatably installed. At one end of the connecting frame, sector-shaped toothed plates meshingly connected with the transmission gears are symmetrically and rotatably installed. A clamping frame is welded to the outer surface of the sector-shaped toothed plate. A clamping block is rotatably installed at one end of the clamping frame. Threaded holes are opened at both ends of the bottom of the connecting frame. A socket hole is provided at the top of the connecting frame. At one end of the connecting frame and above the transmission gear, limiting insertion rods are symmetrically arranged.
[0014] As a preferred solution of the present invention: The plug-in component includes a V-shaped frame. A first hydraulic push rod is fixedly connected to the top of the V-shaped frame. Sleeves are symmetrically welded to the outer surface of the upper part of the V-shaped frame. A plug-in block is welded to one end of the bottom of the V-shaped frame. Transmission tooth grooves are opened on the outer surfaces of both sides of the bottom of the V-shaped frame.
[0015] As a preferred solution of the present invention: The calibration component includes a limiting column. An articulated arm is hinged to the outer surface of the end of the limiting column. A calibration block is fixedly connected to the top end of the articulated arm. Rollers are evenly and rotatably installed on the outer surface of the calibration block. A traction spring is hung on the outer surface of the upper part of the articulated arm. A connecting rope is fixedly connected to the bottom end of the articulated arm. A buffer spring is arranged in the middle of the connecting rope.
[0016] As a preferred solution of the present invention: The support component includes a first support frame. A threaded rod is rotatably clamped at the center of the top end inside the first support frame. A transmission sprocket is fixedly installed below one end of the threaded rod on the side of the first support frame. Transmission sprockets are fixedly installed on the outer surfaces of one ends of the threaded rod and the transmission sprocket. A transmission chain is meshingly sleeved on the outer surface of the transmission sprocket. Limiting wheels are rotatably clamped below both ends of the threaded rod on both sides of the first support frame. Limiting rings are symmetrically arranged on the lower edges below the threaded rod on both sides in the middle of the first support frame.
[0017] As a preferred solution of the present invention: The cutting component includes a second support frame. Second hydraulic push rods are symmetrically arranged at one end of the top of the second support frame. Limiting columns are symmetrically arranged inside the top end of the second support frame. A second driving motor is slidably sleeved on the outer surface of the limiting column. A transmission member is arranged at one end of the second driving motor. A cutting blade is rotatably installed on the bottom side of the transmission member. A connecting frame connected to the transmission member is fixedly connected to the bottom of the second hydraulic push rod.
[0018] As a preferred embodiment of the present invention: The first hydraulic push rod is fixedly connected to the top of the connecting frame through a socket hole. The V-shaped frame is slidably sleeved on the outer surface of the limit insertion rod through a sleeve. The transmission gear is meshed and connected to the V-shaped frame through a transmission tooth groove. The connecting frame is threadedly connected to the outer surfaces of both ends of the threaded rod through threaded holes. The threads on the outer surfaces of both ends of the threaded rod are symmetrically arranged. A support bottom plate is provided at the side bottom of the first support frame. One end of the limit column is rotationally clamped to the support bottom plates on both sides of the first support frame;
[0019] The bottom end of the traction spring is fixedly connected to the bottom ends of the support bottom plates on both sides of the first support frame. One end of the connecting rope is lapped on the outer surface of the limit wheel and fixedly connected to one end of the bottom of the connecting frame. The other end of the connecting rope is slidably connected through the limit ring. The center of one end of the insertion block is aligned with the calibration block. The connecting frame is slidably inserted into the outer surface of the top of the support bottom plate through the limit insertion rod.
[0020] An aluminum profile production and processing device and its processing method, comprising:
[0021] Step 1: First, evenly transport and place the aluminum profiles on the upper surface at one end of the first support frame, and individually convey the aluminum profiles between the two clamping components, and make the aluminum profiles within the clamping range of the calibration component;
[0022] Step 2: Start the driving sprocket to drive the threaded rod to rotate. At the same time, the threaded rod will drive the two clamping components to approach both ends of the aluminum profile. At the same time, the clamping components will drive the two articulated arms to deflect upward and approach each other through the connecting rope until the four calibration blocks clamp the outer surfaces of both ends of the aluminum profile, so as to limit the aluminum profile at the designated processing station;
[0023] Step 3: Then control the first hydraulic push rod to extend and operate, driving the V-shaped frame and the insertion block to be inserted into the end of the aluminum profile. During the sliding of the V-shaped frame, the two transmission gears are driven to rotate synchronously through the transmission tooth groove. At the same time, the transmission gears will drive the sector-shaped tooth plates meshed on the outer surface to rotate, so that the two sector-shaped tooth plates drive the two clamping blocks to clamp the aluminum profile through the clamping frame;
[0024] Step 4: Then control the driving sprocket to rotate in the reverse direction, thereby driving the two clamping components to slide away from each other. Since the clamping blocks clamp the aluminum profile, the aluminum profile will be stretched and processed. Then start the second hydraulic push rod to drive the rotating cutting blade to descend to cut both ends of the aluminum profile. Finally, control the processing device to reset and operate, and then process the next group of aluminum profiles.
[0025] The beneficial effects of the present invention:
[0026] By arranging clamping components and plugging components on both sides of the supporting component, when the V-shaped frame slides, the clamping blocks can be synchronously driven to clamp both ends of the aluminum profile, and the plugging blocks will be plugged into the ends of the aluminum profile to prevent the aluminum profile from being clamped flat. Moreover, when the clamping component slides, the articulated arms will be synchronously driven to deflect, so that the four groups of articulated arms can correct and clamp both ends of the aluminum profile, thereby limiting the aluminum profile in the processing position to ensure that the plugging blocks are aligned and plugged with the ends of the aluminum profile. When the threaded rod rotates, it can synchronously control the synchronous reverse sliding of the two clamping components, so as to traction and stretch both ends of the clamped aluminum profile, and then start the cutting component to cut the stretched aluminum profile;
[0027] Through the coordinated operation among the clamping component, the plugging component, the correction component and the supporting component, the area occupied by the aluminum profile production and processing equipment can be reduced, and the processing efficiency of the aluminum profile can be improved. Brief Description of the Drawings
[0028] The present invention will be further described below with reference to the accompanying drawings.
[0029] Figure 1 It is a schematic structural diagram of an aluminum profile production and processing equipment;
[0030] Figure 2 It is a schematic structural diagram of the clamping component;
[0031] Figure 3 It is a schematic structural diagram of the plugging component;
[0032] Figure 4 It is a schematic structural diagram of the correction component;
[0033] Figure 5 It is a schematic structural diagram of the supporting component;
[0034] Figure 6 It is a schematic structural diagram of the cutting component.
[0035] Description of the Drawings: 1. Clamping component; 2. Plug-in component; 3. Calibration component; 4. Support component; 5. Cutting component; 6. Control box; 11. Socket hole; 12. Limit plug; 13. Threaded hole; 14. Connecting frame; 15. Clamping frame; 16. Sector gear plate; 17. Clamping block; 18. Driving gear; 21. Sleeve; 22. Plug-in block; 23. Driving tooth groove; 24. V-shaped frame; 25. First hydraulic push rod; 31. Connecting rope; 32. Buffer spring; 33. Limit post; 34. Calibration block; 35. Roller; 36. Hinge arm; 37. Traction spring; 41. Limit ring; 42. Limit wheel; 43. First support frame; 44. Threaded rod; 45. Transmission chain; 46. Transmission sprocket; 47. First driving motor; 51. Second support frame; 52. Limit post; 53. Second driving motor; 54. Second hydraulic push rod; 55. Transmission part; 56. Cutting blade. Specific Embodiments 48.; 49.;
[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.
[0038] Please refer to Figures 1-6 As shown, the present invention is an aluminum profile production and processing device, including: a support component 4 and a cutting component 5, and the cutting component 5 is symmetrically installed on both sides of the support component 4;
[0039] On both sides of the support component 4 and below the cutting component 5, clamping components 1 are slidably installed. The inner center of the clamping component 1 is fixedly installed with a plug-in component 2. Below one end of the clamping component 1, a calibration component 3 is provided. In the middle of the side of the cutting component 5, a control box 6 is fixedly installed;
[0040] The clamping component 1 is used to clamp the aluminum profile;
[0041] The plug-in component 2 is used to be inserted into the inner end of the aluminum profile to prevent the clamping component 1 from over-clamping;
[0042] The calibration component 3 is used to correct the position of the aluminum profile on the upper part of the support component 4;
[0043] The support component 4 is used to support the aluminum profile and provide power for the operation of the plug-in component 2;
[0044] The cutting component 5 cuts the stretched aluminum profile.
[0045] The clamping component 1 includes a connecting frame 14. At one end of the connecting frame 14, drive gears 18 are symmetrically and rotatably installed. At one end of the connecting frame 14, sector-shaped toothed plates 16 meshingly connected with the drive gears 18 are symmetrically and rotatably installed. A clamping frame 15 is welded to the outer surface of the sector-shaped toothed plate 16. A clamping block 17 is rotatably installed at one end of the clamping frame 15. Threaded holes 13 are provided at both ends of the bottom of the connecting frame 14. A socket hole 11 is provided at the top of the connecting frame 14. Limiting insertion rods 12 are symmetrically arranged at one end of the connecting frame 14 and above the drive gears 18.
[0046] The plugging component 2 includes a V-shaped frame 24. A first hydraulic push rod 25 is fixedly connected to the top of the V-shaped frame 24. Sleeves 21 are symmetrically welded to the outer surface of the upper part of the V-shaped frame 24. A plugging block 22 is welded to one end of the bottom of the V-shaped frame 24. Transmission tooth grooves 23 are provided on the outer surfaces of both sides of the bottom of the V-shaped frame 24.
[0047] The calibration component 3 includes a limiting column 33. An articulated arm 36 is hinged to the outer surface of the end of the limiting column 33. A calibration block 34 is fixedly connected to the top end of the articulated arm 36. Rollers 35 are evenly and rotatably installed on the outer surface of the calibration block 34. A traction spring 37 is hung on the outer surface of the upper part of the articulated arm 36. A connecting rope 31 is fixedly connected to the bottom end of the articulated arm 36. A buffer spring 32 is provided in the middle of the connecting rope 31.
[0048] The support component 4 includes a first support frame 43. A threaded rod 44 is rotatably clamped at the center of the top end inside the first support frame 43. A drive sprocket 47 is fixedly installed on the side of the first support frame 43 and below one end of the threaded rod 44. Drive sprockets 46 are fixedly installed on the outer surfaces of one ends of the threaded rod 44 and the drive sprocket 47. A drive chain 45 is meshingly sleeved on the outer surface of the drive sprocket 46. Limiting wheels 42 are rotatably clamped on both sides of the first support frame 43 and below both ends of the threaded rod 44. Limiting rings 41 are symmetrically arranged on both sides of the middle of the first support frame 43 and below the edge of the threaded rod 44.
[0049] The cutting component 5 includes a second support frame 51. Second hydraulic push rods 54 are symmetrically arranged at one end of the top of the second support frame 51. Limiting columns 52 are symmetrically arranged inside the top end of the second support frame 51. A second drive motor 53 is slidably sleeved on the outer surface of the limiting column 52. A transmission member 55 is provided at one end of the second drive motor 53. A cutting blade 56 is rotatably installed on the bottom side of the transmission member 55. The bottom of the second hydraulic push rod 54 is fixedly connected to a connecting frame connected to the transmission member 55.
[0050] The first hydraulic push rod 25 is fixedly connected to the top of the connecting frame 14 through the socket hole 11, thus ensuring the stability of the operation of the first hydraulic push rod 25. The V-shaped frame 24 is slidably sleeved on the outer surface of the limit insertion rod 12 through the sleeve 21, which can limit the reciprocating sliding of the V-shaped frame 24. The transmission gear 18 is meshed with the V-shaped frame 24 through the transmission tooth groove 23. When the V-shaped frame 24 slides, the sector gear plate 16 and the clamping block 17 can be driven to deflect through the transmission gear 18. Thus, when the insertion block 22 is inserted into the end of the aluminum profile, the outer surface of the end of the aluminum profile can be clamped. The insertion block 22 can play a supporting role on the inner surface of the end of the aluminum profile to prevent the clamping block 17 from clamping the end of the aluminum profile flat. The connecting frame 14 is threadedly connected to the outer surfaces of both ends of the threaded rod 44 through the threaded holes 13, and the threads on the outer surfaces of both ends of the threaded rod 44 are symmetrically arranged, which can control the synchronous reverse sliding of the clamping components 1 at both ends when the threaded rod 44 rotates. A support bottom plate is arranged at the side bottom of the first support frame 43, and one end of the limit column 33 is rotationally clamped with the support bottom plates on both sides of the first support frame 43;
[0051] The bottom end of the traction spring 37 is fixedly connected to the bottom ends of the support bottom plates on both sides of the first support frame 43. One end of the connecting rope 31 is lapped on the outer surface of the limit wheel 42 and fixedly connected to one end of the bottom of the connecting frame 14. The limit wheel 42 can limit the sliding of the connecting rope 31. The other end of the connecting rope 31 is slidably connected through the limit ring 41, which can limit the sliding of the connecting rope 31. One end of the insertion block 22 is aligned with the center between the calibration blocks 34, which can ensure the alignment and insertion of the insertion block 22 and the end of the aluminum profile. The connecting frame 14 is slidably inserted into the outer surface of the top of the support bottom plate through the limit insertion rod 12, which can limit and support the reciprocating sliding of the connecting frame 14.
[0052] An aluminum profile production and processing device and its processing method, including:
[0053] Step 1: First, evenly transport and place the aluminum profiles on the upper surface end of the first support frame 43, and individually transport the aluminum profiles between the two sets of clamping components 1, and make the aluminum profiles within the clamping range of the calibration component 3;
[0054] Step 2: Start the drive sprocket 47 to drive the threaded rod 44 to rotate. At the same time, the threaded rod 44 will drive the two sets of clamping components 1 close to both ends of the aluminum profile. At the same time, the clamping components 1 will drive the two sets of articulated arms 36 to deflect upward and approach each other through the connecting rope 31 until the four calibration blocks 34 clamp the outer surfaces of both ends of the aluminum profile, so as to limit the aluminum profile at the specified processing station;
[0055] Step 3: Then control the first hydraulic push rod 25 to extend and drive the V-shaped frame 24 and the insertion block 22 to be inserted into the end of the aluminum profile. When the V-shaped frame 24 slides, it drives the two groups of transmission gears 18 to rotate synchronously through the transmission tooth grooves 23. At the same time, the transmission gears 18 drive the sector-shaped tooth plates 16 meshed on the outer surface to rotate, so that the two groups of sector-shaped tooth plates 16 drive the two groups of clamping blocks 17 through the clamping brackets 15 to clamp the aluminum profile.
[0056] Step 4: Then control the transmission sprocket 47 to rotate in the reverse direction, so as to drive the two groups of clamping components 1 to slide away from each other. Since the clamping blocks 17 clamp the aluminum profile, the aluminum profile will be stretched. Then start the second hydraulic push rod 54 to drive the rotating cutting blade 56 to descend to cut both ends of the aluminum profile. Finally, control the processing equipment to reset and run, and then process the next group of aluminum profiles.
[0057] Working principle of the present invention: First, the aluminum profiles are evenly transported and placed at one end of the upper surface of the first support frame 43, and the aluminum profiles are conveyed to between the two sets of clamping components 1 one by one, and the aluminum profiles are located within the clamping range of the alignment component 3; then the driving sprocket 47 is started to drive the threaded rod 44 to rotate through the driving chain 45 and the driving sprocket 46. At the same time, the threaded rod 44 drives the two connecting frames 14 to move close to both ends of the aluminum profile through the threads on the outer surfaces of both ends. At the same time, the two connecting frames 14 will pull the bottoms of the four articulated arms 36 to deflect downward through the connecting ropes 31. At the same time, the upper parts of the four articulated arms 36 are limited by the limit posts 33 and deflect upward and close to each other until the rollers 35 on the outer surfaces of the four alignment blocks 34 clamp the outer surfaces of both ends of the aluminum profile, thereby restricting the aluminum profile to the designated processing station; then the first hydraulic push rods 25 at both ends of the aluminum profile are controlled by the control box 6 to extend synchronously, driving the V-shaped frame 24 and the insertion block 22 to be inserted into the end of the aluminum profile. During the sliding of the V-shaped frame 24, it will drive the two driving gears 18 meshed with the outer surfaces on both sides to rotate synchronously through the transmission tooth grooves 23. At the same time, the rotation of the driving gears 18 will drive the sector tooth plates 16 meshed with the outer surfaces to rotate. Therefore, the two rotating sector tooth plates 16 will drive the two clamping blocks 17 close to and clamp the outer surfaces of both ends of the aluminum profile through the connected clamping frames 15; then the driving sprocket 47 is controlled to drive the threaded rod 44 to rotate in the reverse direction, so that the two connecting frames 14 slide away from each other synchronously. Since the clamping blocks 17 clamp the aluminum profile, the connecting frames 14 will pull and stretch the aluminum profile through the clamping blocks 17. After the stretching is completed, the second hydraulic push rod 54 is started to drive the rotating cutting blade 56 to descend to cut both ends of the stretched aluminum profile. Then, the processed aluminum profile is removed, and finally the processing equipment is controlled to reset and run. During the reset process, the stretched traction spring 37 will pull the upper part of the articulated arm 36 to deflect downward, and at the same time, the bottom of the articulated arm 36 will pull the connecting rope 31 to return and slide, and then the next set of aluminum profiles can be processed according to the same processing procedure. Therefore, through the coordinated operation of the clamping component 1, the insertion component 2, the alignment component 3 and the support component 4, the area occupied by the aluminum profile production and processing equipment can be reduced, and the processing efficiency of the aluminum profile can be improved.
[0058] The above has described an embodiment of the present invention in detail, but the content is only the preferred embodiment of the present invention and cannot be considered as limiting the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.
Claims
1. An aluminum profile production and processing equipment, comprising: A supporting component (4) and a cutting component (5), wherein the cutting component (5) is symmetrically mounted on both sides of the supporting component (4); The invention is characterized in that a clamping component (1) is slidably mounted on both sides of the supporting component (4) and below the cutting component (5), a plug-in component (2) is fixedly mounted at the inner center of the clamping component (1), a correction component (3) is arranged below one end of the clamping component (1), and a control box (6) is fixedly mounted at the middle of the side of the cutting component (5); The clamping component (1) is used to clamp the aluminum profile; The plug-in component (2) is used to be plugged into the end of the aluminum profile to prevent the clamping component (1) from over-clamping; The correction component (3) is used to correct the position of the upper aluminum profile of the support component (4); The supporting component (4) is used to support the aluminum profile and provide power for the operation of the plug-in component (2); The cutting component (5) cuts the stretched aluminum profile.
2. The aluminum profile production and processing equipment according to claim 1, characterized in that: The clamping component (1) comprises a connecting frame (14), one end of which is symmetrically rotatably mounted with a transmission gear (18), one end of which is symmetrically rotatably mounted with a sector toothed plate (16) meshingly connected with the transmission gear (18), a clamping frame (15) is welded to the outer surface of the sector toothed plate (16), one end of which is rotatably mounted with a clamping block (17), threaded holes (13) are provided at both ends of the bottom of the connecting frame (14), a socket hole (11) is provided at the top of the connecting frame (14), and a limiting insertion rod (12) is symmetrically provided at one end of the connecting frame (14) and located above the transmission gear (18).
3. The aluminum profile production and processing equipment according to claim 2, characterized in that: The plug-in component (2) comprises a V-shaped frame (24), a first hydraulic push rod (25) is fixedly connected to the top of the V-shaped frame (24), sleeves (21) are symmetrically welded to the upper outer surface of the V-shaped frame (24), a plug-in block (22) is welded to one end of the bottom of the V-shaped frame (24), and transmission tooth grooves (23) are provided on the outer surfaces of both sides of the bottom of the V-shaped frame (24).
4. The aluminum profile production and processing equipment according to claim 3, characterized in that: The correction component (3) comprises a limit column (33), an articulated arm (36) is hinged on the outer surface of the end of the limit column (33), a correction block (34) is fixedly connected to the top of the articulated arm (36), a roller (35) is evenly rotatably mounted on the outer surface of the correction block (34), a traction spring (37) is hung on the upper outer surface of the articulated arm (36), a connecting rope (31) is fixedly connected to the bottom end of the articulated arm (36), and a buffer spring (32) is arranged in the middle of the connecting rope (31).
5. The aluminum profile production and processing equipment according to claim 4, characterized in that: The support component (4) comprises a first support frame (43), a threaded rod (44) is rotatably clamped on the inner center top of the first support frame (43), a transmission sprocket (47) is fixedly installed on the side of the first support frame (43) and below one end of the threaded rod (44), a transmission sprocket (46) is fixedly installed on the outer surface of one end of the threaded rod (44) and the transmission sprocket (47), a transmission chain (45) is meshedly sleeved on the outer surface of the transmission sprocket (46), limiting wheels (42) are rotatably clamped on both sides of the first support frame (43) and below both ends of the threaded rod (44), and limiting rings (41) are symmetrically arranged on both sides of the middle of the first support frame (43) and below the edge of the threaded rod (44).
6. The aluminum profile production and processing equipment according to claim 5, characterized in that: The cutting component (5) comprises a second support frame (51), a second hydraulic push rod (54) is symmetrically arranged at one end of the top of the second support frame (51), a limiting column (52) is symmetrically arranged inside the top of the second support frame (51), a second driving motor (53) is slidably sleeved on the outer surface of the limiting column (52), a transmission member (55) is arranged at one end of the second driving motor (53), a cutting blade (56) is rotatably installed on the bottom side of the transmission member (55), and the bottom of the second hydraulic push rod (54) is fixedly connected to a connecting frame connected to the transmission member (55).
7. The aluminum profile production and processing equipment according to claim 6, characterized in that: The first hydraulic push rod (25) is fixedly connected to the top of the connecting frame (14) through the sleeve hole (11), the V-shaped frame (24) is slidably sleeved on the outer surface of the limiting plug rod (12) through the sleeve (21), the transmission gear (18) is meshed and connected with the V-shaped frame (24) through the transmission tooth groove (23), the connecting frame (14) is threadedly connected to the outer surfaces of both ends of the threaded rod (44) through the threaded hole (13), and the threads on the outer surfaces of both ends of the threaded rod (44) are symmetrically arranged, and a supporting bottom plate is arranged at the side bottom of the first supporting frame (43), and one end of the limiting column (33) is rotatably clamped with the supporting bottom plates on both sides of the first supporting frame (43); The bottom end of the traction spring (37) is fixedly connected to the bottom ends of the supporting bottom plates on both sides of the first supporting frame (43); one end of the connecting rope (31) is overlapped on the outer surface of the limiting wheel (42) and is fixedly connected to one end of the bottom of the connecting frame (14); the other end of the connecting rope (31) is slidably connected to the limiting ring (41); one end of the plug-in block (22) is aligned with the center of the correction block (34); and the connecting frame (14) is slidably plugged with the outer surface of the top of the supporting bottom plate through the limiting plug rod (12).
8. An aluminum profile production and processing equipment and a processing method thereof, using the aluminum profile production and processing equipment as claimed in claim 7, characterized in that: include: Step 1: First, evenly transport the aluminum profiles and place them on one end of the upper surface of the first support frame (43), and then transport the aluminum profiles one by one between the two groups of clamping components (1), so that the aluminum profiles are located in the clamping range of the correction component (3); Step 2: Start the transmission sprocket (47) to drive the threaded rod (44) to rotate, and at the same time, the threaded rod (44) drives the two groups of clamping components (1) to approach the two ends of the aluminum profile. At the same time, the clamping components (1) drive the two groups of articulated arms (36) to deflect upward and approach each other through the connecting rope (31), until the four groups of correction blocks (34) clamp the outer surfaces of the two ends of the aluminum profile, thereby limiting the aluminum profile to the specified processing position; Step 3, then control the first hydraulic push rod (25) to extend and run, driving the V-frame (24) and the plug-in block (22) to plug into the end of the aluminum profile, wherein the V-frame (24) drives the two sets of transmission gears (18) to rotate synchronously through the transmission tooth groove (23) while sliding, and the transmission gear (18) drives the fan-shaped tooth plate (16) meshed with the outer surface to rotate, so that the two sets of fan-shaped tooth plates (16) drive the two sets of clamping blocks (17) to clamp the aluminum profile through the clamping frame (15); Step 4: Then control the transmission sprocket (47) to rotate in the opposite direction, thereby driving the two groups of clamping components (1) to slide away from each other. Since the clamping block (17) clamps the aluminum profile, the aluminum profile will be stretched. Then start the second hydraulic push rod (54) to drive the rotating cutting blade (56) to descend to cut the two ends of the aluminum profile. Finally, control the processing equipment to reset and then process the next group of aluminum profiles.