A material distributing device for aluminum profile extrusion

By using the automatic correction components and orderly material distribution and conveying structure of the aluminum profile extrusion material distribution device, the problem of aluminum profile deviation during the material feeding and distribution process on the production line is solved, realizing the automated and orderly conveying and correction of aluminum profiles, and improving production efficiency and product quality.

CN122099096APending Publication Date: 2026-05-29宁德市天铭新能源汽车配件有限公司 +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
宁德市天铭新能源汽车配件有限公司
Filing Date
2026-04-29
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing aluminum profile extrusion production lines have problems with aluminum profile misalignment during the feeding and sorting processes, which affects production efficiency and product quality.

Method used

An aluminum profile extrusion material distribution device is adopted, including an automatic correction component and an orderly material distribution and conveying structure. The automatic correction and orderly conveying of aluminum profiles are achieved through a touch switch and a correction drive motor.

Benefits of technology

This system enables the orderly feeding and automatic correction of aluminum profiles, improving production efficiency, reducing manual intervention, and ensuring product quality.

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Abstract

The application discloses a kind of aluminium profile extrusion with material distribution device, including order material distribution conveying structure, automatic deviation rectification component, H-shaped equipment support and main drive motor.The application belongs to the technical field of aluminium profile blanking;The application can be automatically corrected by automatic deviation rectification component and order material distribution conveying structure from top and side to the aluminium profile that occurs deviation, and the aluminium profile without deviation can contact all touch switches, and the aluminium profile that occurs deviation cannot contact all touch switches, and the working state of deviation rectification drive motor can be controlled by several groups of touch switches in series and normally closed setting, so as to control that automatic deviation rectification component only corrects the aluminium profile that occurs deviation, realizes automatic experience.
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Description

Technical Field

[0001] This invention belongs to the field of aluminum profile blanking technology, specifically referring to a material distribution device for aluminum profile extrusion. Background Technology

[0002] In the aluminum profile extrusion production process, aluminum short bars are used as raw materials. The feeding and distributing processes are crucial to the efficiency of the entire production line and the quality of the products. Traditional aluminum profile extrusion production lines face many technical challenges in the feeding and distributing processes. These problems not only restrict the improvement of production efficiency but also affect product quality and production cost control.

[0003] After the aluminum rods are fed into the extrusion equipment, they undergo extrusion, cutting, and conveying. Existing aluminum profiles are usually conveyed by conveyor belts after extrusion. However, existing aluminum profile conveying equipment is prone to causing the aluminum profiles to deviate during conveying. The deviated aluminum profiles need to be manually corrected by workers, which is inconvenient. Therefore, it is necessary to propose a material distribution device for aluminum profile extrusion. Summary of the Invention

[0004] In order to overcome the shortcomings of the prior art, the present invention provides a material distribution device for aluminum profile extrusion, which effectively solves the problems of existing aluminum profile conveying equipment being unable to convey aluminum profiles one by one in an orderly manner and being unable to handle aluminum profiles in a timely manner when they deviate.

[0005] The technical solution adopted by the present invention is as follows: The present invention provides a material distribution device for aluminum profile extrusion, including an orderly material distribution and conveying structure, an automatic correction component, an H-shaped equipment support and a main drive motor. The H-shaped equipment support is set on a plane, and two sets of H-shaped equipment supports are connected by a connecting beam. The body of the main drive motor is set on the H-shaped equipment support. The orderly material distribution and conveying structure is set on the H-shaped equipment support. The orderly material distribution and conveying structure is provided with an arrangement feeding structure. The automatic correction component is set on the orderly material distribution and conveying structure, which can guide and unload aluminum profiles.

[0006] Preferably, the automatic alignment component includes a component connecting frame, an alignment drive motor, an operating frame one, an eccentric wheel one, a sliding contact rod one, a silicone contact head one, a horizontal rotating shaft, a bevel gear one, a bevel gear two, a vertical rotating shaft, a vertical positioning component, a bevel gear three, a bevel gear four, and an operating frame two. The operating frame two is arranged in two groups on both sides of the orderly material distribution and conveying structure. The bevel gear four is located on the operating frame two, and the bevel gear three is meshed with the bevel gear four. The vertical positioning component is located on the side wall of the operating frame two. The vertical rotating shaft is rotatably located on the vertical positioning component and connected to the bevel gear three. The bevel gear two is located on... At the top of the vertical rotating shaft, bevel gear one is meshed with bevel gear two, and the horizontal rotating shaft is connected to bevel gear one. The operating frame one is installed through the horizontal rotating shaft. The body of the correction drive motor is installed on the operating frame one. There are two sets of correction drive motors. The two sets of correction drive motors are installed on the inner side wall of the operating frame one. The horizontal rotating shaft is connected to the output end of the correction drive motor. The component is connected between the bodies of the two sets of correction drive motors. Eccentric wheel one is installed on the horizontal rotating shaft. Sliding contact rod one is slidably installed through the operating frame one. Silicone contact head one is installed at the bottom of sliding contact rod one.

[0007] Furthermore, the second operating frame is provided with a secondary rotating shaft, on which are provided several sets of eccentric wheels, and several sets of sliding contact rods are provided through the second operating frame, with silicone contact heads provided on the sliding contact rods.

[0008] The orderly material distribution and conveying structure includes touch switches, side guide and limiting slides, curved transition slides, belt conveyors, secondary guide and limiting slides, and an orderly reciprocating structure. The side guide and limiting slides are mounted on an H-shaped equipment support, the curved transition slides are connected to the side guide and limiting slides, the belt conveyors are mounted on a plane, the secondary guide and limiting slides are connected to the curved transition slides, the secondary guide and limiting slides are located on both sides of the belt conveyors, the touch switches are arranged in several groups on both sides of the inner wall of the side guide and limiting slides, and the orderly reciprocating structure is mounted on an H-shaped equipment support.

[0009] Preferably, the ordered reciprocating structure includes a main drive swing arm, a secondary swing arm, a tertiary swing arm, a V-shaped swing component one, an intermediate swing arm, a V-shaped swing component two, an auxiliary swing arm, a shaped conveyor frame, contact conveying uprights, and contact conveying blocks. The main drive swing arm is located on the output end of the main drive motor. The secondary swing arm is hinged to the main drive swing arm. The tertiary swing arm is hinged between the secondary swing arm and the H-shaped equipment support. The V-shaped swing component one is hinged at the connection between the secondary and tertiary swing arms. The auxiliary swing arm is hinged to the H-shaped equipment support. The V-shaped swing component two is hinged to the bottom of the auxiliary swing arm. The intermediate swing arm is hinged at one end between the V-shaped swing component one and the V-shaped swing component two. The shaped conveyor frame is hinged at the other end between the V-shaped swing component one and the V-shaped swing component two. A linear array of contact conveying uprights is arranged on the shaped conveyor frame, and contact conveying blocks are arranged on the contact conveying uprights. This helps the solution to achieve the sorting and orderly feeding of aluminum profiles.

[0010] Furthermore, the feeding structure includes a vertical feeding cylinder, a bottom orderly discharge chute, and a vertical guide slide. The vertical feeding cylinder is located at the top of the H-shaped equipment support, the vertical guide slide is located in the vertical feeding cylinder, and the bottom orderly discharge chute is connected at the junction of the vertical guide slide and the side guide limiting slide.

[0011] Preferably, the second operating frame is fixed to the top of the side guide limiting slide.

[0012] Furthermore, small springs are provided between the first operating frame and the first eccentric wheel, and between the second operating frame and the second eccentric wheel. The small springs provide conditions for the reset of the first sliding contact rod and the second sliding contact rod, so that the first sliding contact rod and the second sliding contact rod are always in contact with the first eccentric wheel and the second eccentric wheel.

[0013] The touch switches and the correction drive motor are electrically connected. Several sets of touch switches are connected in series and normally closed. The length spanned by several sets of touch switches is the same as the width of the aluminum profile.

[0014] Preferably, the aluminum profile can enter the belt conveyor along the curved transition chute and be conveyed along the secondary guide and limiting chute.

[0015] The beneficial effects achieved by the present invention using the above structure are as follows: This solution provides a material distribution device for aluminum profile extrusion, which effectively solves the problems of existing aluminum profile conveying equipment being unable to convey aluminum profiles one by one in an orderly manner and being unable to handle aluminum profile deviations in a timely manner. This method brings the following advantages: (1) The aluminum profiles at the bottom are pushed from the bottom orderly discharge chute to the side guide limit slide chute by several sets of contact conveying uprights and contact conveying blocks. The aluminum profiles can slide in a straight line along the side guide limit slide chute, while several sets of aluminum profiles in the vertical feed cylinder slide downwards due to gravity. When the irregular conveyor continues to swing, the above process can be repeated. By repeating this process, the aluminum profiles are divided and fed in an orderly manner. (2) The present invention can automatically correct the aluminum profiles that have deviated from the top and the side through the automatic correction component and the orderly material conveying structure. The aluminum profiles that have not deviated can contact all the touch switches, while the aluminum profiles that have deviated cannot contact all the touch switches. Several sets of touch switches that are connected in series and normally closed can control the working state of the correction drive motor, thereby controlling the automatic correction component to correct only the aluminum profiles that have deviated, thus realizing an automated experience. Attached Figure Description

[0016] Figure 1 This is a front view of a material distribution device for aluminum profile extrusion provided by the present invention; Figure 2 A left view of a partial structure of a material distribution device for aluminum profile extrusion provided by the present invention; Figure 3 A perspective view of a partial structure of a material distribution device for aluminum profile extrusion provided by the present invention; Figure 4 A schematic diagram of the structure of the automatic correction component provided by the present invention; Figure 5 A schematic diagram of the second operational framework provided by the present invention; Figure 6 A perspective view of the ordered reciprocating structure provided by the present invention; Figure 7 for Figure 3 A magnified view of part A; Figure 8 for Figure 4 A magnified view of part B; Figure 9 for Figure 4 A magnified view of part C.

[0017] The components include: 1. Automatic alignment component; 2. Orderly material conveying structure; 3. H-shaped equipment support; 4. Main drive motor; 5. Material feeding structure; 6. Alignment drive motor; 7. Component connecting frame; 8. Operating frame one; 9. Eccentric wheel one; 10. Sliding contact rod one; 11. Silicone contact head one; 12. Horizontal rotating shaft; 13. Bevel gear one; 14. Bevel gear two; 15. Vertical rotating shaft; 16. Vertical positioning component; 17. Bevel gear three; 18. Bevel gear four; 19. Operating frame two; 20. Secondary rotating shaft; 21. Eccentric wheel two; 22. Sliding contact rod two; 23. 24. Silicone contact head 2; 25. Touch switch; 26. Side guide limit slide; 27. Bending transition slide; 28. Belt conveyor; 29. ​​Secondary guide limit slide; 30. Orderly reciprocating structure; 31. Main drive swing arm; 32. Secondary swing arm; 33. Tertiary swing arm; 34. V-shaped swing component 1; 35. Middle swing arm; 36. V-shaped swing component 2; 37. Auxiliary swing arm; 38. Irregularly shaped conveyor frame; 39. Contact conveyor upright; 40. Contact conveyor block; 41. Vertical feed cylinder; 42. Bottom orderly discharge chute; 43. Vertical guide slide; 44. Small spring.

[0018] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof. Detailed Implementation

[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0020] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0021] like Figures 1-3As shown, the present invention provides a material distribution device for aluminum profile extrusion, including an automatic correction component 1, an orderly material distribution and conveying structure 2, an H-shaped equipment support 3, and a main drive motor 4. The H-shaped equipment support 3 is arranged on a plane, and two sets of H-shaped equipment supports 3 are connected by a connecting beam. The body of the main drive motor 4 is arranged on the H-shaped equipment support 3. The orderly material distribution and conveying structure 2 is arranged on the H-shaped equipment support 3, and the orderly material distribution and conveying structure 2 is provided with an arrangement feeding structure 5. The automatic correction component 1 is arranged on the orderly material distribution and conveying structure 2, which can guide and unload aluminum profiles.

[0022] like Figures 3-5 , Figure 8 and Figure 9 As shown, the automatic alignment component 1 includes an alignment drive motor 6, a component connecting frame 7, an operating frame 1 8, an eccentric wheel 9, a sliding contact rod 10, a silicone contact head 11, a horizontal rotating shaft 12, a bevel gear 13, a bevel gear 2 14, a vertical rotating shaft 15, a vertical positioning component 16, a bevel gear 3 17, a bevel gear 4 18, and an operating frame 2 19. The operating frame 2 19 is arranged in two groups on both sides of the orderly material distribution and conveying structure 2. The bevel gear 4 18 is located on the operating frame 2 19, and the bevel gear 3 17 is meshed with the bevel gear 4 18. The vertical positioning component 16 is located on the side wall of the operating frame 2 19. The vertical rotating shaft 15 is rotatably mounted on the vertical positioning component 16 and connected to the bevel gear 3 17. Gear 2 14 is located at the top of the vertical rotating shaft 15. Bevel gear 1 13 is meshed with bevel gear 2 14. Horizontal rotating shaft 12 is connected to bevel gear 1 13. Operating frame 1 8 is installed through the horizontal rotating shaft 12. The body of the correction drive motor 6 is installed on the operating frame 1 8. There are two sets of correction drive motors 6, which are installed on the inner side wall of the operating frame 1 8. Horizontal rotating shaft 12 is connected to the output end of the correction drive motor 6. Component connecting frame 7 is installed between the bodies of the two sets of correction drive motors 6. Eccentric wheel 1 9 is installed on the horizontal rotating shaft 12. Sliding contact rod 1 10 is slidably installed through the operating frame 1 8. Silicone contact head 1 11 is installed at the bottom of sliding contact rod 1 10.

[0023] like Figures 4-5 and Figure 8 As shown, a secondary rotating shaft 20 is rotatably provided in the second operating frame 19, and several sets of eccentric wheels 21 are provided on the secondary rotating shaft 20. Several sets of sliding contact rods 22 are slidably provided through the second operating frame 19, and silicone contact heads 23 are provided on the sliding contact rods 22.

[0024] like Figure 2 , Figure 3 and Figure 7As shown, the orderly material distribution and conveying structure 2 includes a touch switch 24, a side guide limiting slide 25, a curved transition slide 26, a belt conveyor 27, a secondary guide limiting slide 28, and an orderly reciprocating structure 29. The side guide limiting slide 25 is mounted on the H-shaped equipment support 3. The curved transition slide 26 is connected to the side guide limiting slide 25. The belt conveyor 27 is mounted on a plane. The secondary guide limiting slide 28 is connected to the curved transition slide 26. The secondary guide limiting slide 28 is located on both sides of the belt conveyor 27. The touch switch 24 is arranged in several groups on both sides of the inner wall of the side guide limiting slide 25. The orderly reciprocating structure 29 is mounted on the H-shaped equipment support 3.

[0025] like Figure 3 and Figure 6 As shown, the ordered reciprocating structure 29 includes a main drive swing arm 30, a secondary swing arm 31, a tertiary swing arm 32, a V-shaped swing component 1 33, an intermediate swing arm 34, a V-shaped swing component 2 35, an auxiliary swing arm 36, a shaped conveyor frame 37, a contact conveyor upright 38, and a contact conveyor block 39. The main drive swing arm 30 is located on the output end of the main drive motor 4. The secondary swing arm 31 is hinged to the main drive swing arm 30. The tertiary swing arm 32 is hinged between the secondary swing arm 31 and the H-shaped equipment support 3. The V-shaped swing component 1 33 is hinged to... At the connection between the secondary swing arm 31 and the tertiary swing arm 32, the auxiliary swing arm 36 is hinged to the H-shaped equipment support 3, the second V-shaped swing member 35 is hinged to the bottom of the auxiliary swing arm 36, the intermediate swing arm 34 is hinged to one end between the first V-shaped swing member 33 and the second V-shaped swing member 35, the irregularly shaped conveyor frame 37 is hinged to the other end between the first V-shaped swing member 33 and the second V-shaped swing member 35, the contact conveying uprights 38 are arranged in a linear array on the irregularly shaped conveyor frame 37, and the contact conveying blocks 39 are arranged on the contact conveying uprights 38.

[0026] like Figure 2 , Figure 3 and Figure 7 As shown, the feeding structure 5 includes a vertical feeding cylinder 40, a bottom orderly discharge chute 41, and a vertical guide slide 42. The vertical feeding cylinder 40 is located on the top of the H-shaped equipment support 3, the vertical guide slide 42 is located in the vertical feeding cylinder 40, and the bottom orderly discharge chute 41 is connected to the junction of the vertical guide slide 42 and the side guide limiting slide 25.

[0027] like Figure 5 and Figure 7 As shown, the second operating frame 19 is fixed to the top of the side guide limiting slide 25.

[0028] like Figure 4 and Figure 5 and Figure 8As shown, small springs 43 are provided between the first operating frame 8 and the first eccentric wheel 9, and between the second operating frame 19 and the second eccentric wheel 21. The small springs 43 can provide conditions for the reset of the first sliding contact rod 10 and the second sliding contact rod 22, so that the first sliding contact rod 10 and the second sliding contact rod 22 are always in contact with the first eccentric wheel 9 and the second eccentric wheel 21.

[0029] like Figure 1 , Figure 3 and Figure 7 As shown, the touch switch 24 and the correction drive motor 6 are electrically connected. Several sets of touch switches 24 are connected in series and normally closed. The length spanned by the several sets of touch switches 24 is the same as the width of the aluminum profile. This solution can automatically correct the aluminum profile that has deviated from its original position from the top and the side through the automatic correction component 1 and the orderly material conveying structure 2. The aluminum profile that has not deviated can contact all the touch switches 24, while the aluminum profile that has deviated cannot contact all the touch switches 24. The several sets of touch switches 24 connected in series and normally closed can control the working state of the correction drive motor 6, thereby controlling the automatic correction component 1 to only correct the aluminum profile that has deviated, thus realizing an automated experience.

[0030] In practical use, aluminum profiles are first placed sequentially into the vertical feed cylinder 40. The aluminum profiles enter the bottom orderly discharge groove 41 along the vertical guide slide 42. The side guide limiting slide 25 matches the length and width of the aluminum profile, providing support. The main drive motor 4 is started, driving the main drive swing arm 30 to rotate. Then, the secondary swing arm 31 and the tertiary swing arm 32 swing in sequence, driving the V-shaped swing component 1 33 to swing. The swing of the middle swing arm 34 then drives the V-shaped swing component 2 35 to swing. The auxiliary swing arm 36 assists the V-shaped swing component 2 35 in swinging. The V-shaped swing component 1 33 and the V-shaped swing component 2 35 swing together. The irregularly shaped conveyor frame 37 is driven to swing back and forth in an elliptical trajectory. Then, through several sets of contact conveyor uprights 38 and contact conveyor blocks 39, the aluminum profile at the bottom is pushed from the bottom orderly discharge groove 41 to the side guide limit slide 25. The aluminum profile can slide in a straight line along the side guide limit slide 25, while several sets of aluminum profiles in the vertical feed cylinder 40 slide downward due to gravity. When the irregularly shaped conveyor frame 37 continues to swing, it can drive the aluminum profile at the bottom to be pushed from the bottom orderly discharge groove 41 to the side guide limit slide 25 again. This process is repeated to realize the separation and orderly feeding of aluminum profiles. When the aluminum profile passes through several sets of touch switches 24, if the aluminum profile does not deviate and slides along the side guide limit groove 25, it can contact all the touch switches 24. At this time, the controller controls the internal circuit to open, so that the correction drive motor 6 does not work. If the aluminum profile deviates and does not slide along the side guide limit groove 25, it cannot contact all the touch switches 24. Because the touch switches 24 are connected in series and normally closed, the controller controls the internal circuit to remain closed, so the correction drive motor 6 starts to work. At this time, the two correction drive motors 6 start to operate, causing the horizontal rotating shaft 12 to rotate, and the several sets of eccentric wheels 9 arranged in an alternating manner to rotate, driving the sliding contact rod 10 to slide. The small spring 43 provides conditions for the reset of the sliding contact rod 10. Then, several sets of silicone contact heads 11 push in a wave-like soft motion to correct the aluminum profile that has shifted from the top. The bevel gear 13 drives the bevel gear 24 to rotate, and then drives the bevel gear 3 17 and bevel gear 4 18 to rotate through the vertical rotating shaft 15. Then, the secondary rotating shaft 20 drives several sets of eccentric wheels 21 to rotate. Then, the sliding contact rod 22 drives the silicone contact head 23 to push in a wave-like soft motion to correct the aluminum profile that has shifted from the side. This helps the aluminum profile return to the side guide limit slide 25. Then, it moves through the movement of several sets of contact conveying uprights 38 and contact conveying blocks 39. After being corrected by the automatic correction component 1, the aluminum profile enters the belt conveyor 27 along the curved transition slide 26 under the push of the contact conveying uprights 38 and contact conveying blocks 39, and is then conveyed along the secondary guide limit slide 28.

[0031] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0032] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.

[0033] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the invention, such designs should fall within the protection scope of the present invention.

Claims

1. A material distribution device for aluminum profile extrusion, characterized in that: The device includes an automatic correction component (1), an orderly material distribution and conveying structure (2), an H-shaped equipment bracket (3), and a main drive motor (4). The H-shaped equipment bracket (3) is located on a plane, and two sets of the H-shaped equipment brackets (3) are connected by a connecting beam. The body of the main drive motor (4) is located on the H-shaped equipment bracket (3). The orderly material distribution and conveying structure (2) is located on the H-shaped equipment bracket (3). The orderly material distribution and conveying structure (2) is provided with an arrangement feeding structure (5). The automatic correction component (1) is located on the orderly material distribution and conveying structure (2) and can guide and unload aluminum profiles. The automatic correction component (1) includes a correction drive motor (6), a component connecting frame (7), an operating frame one (8), an eccentric wheel one (9), a sliding contact rod one (10), a silicone contact head one (11), a horizontal rotating shaft (12), a bevel gear one (13), a bevel gear two (14), a vertical rotating shaft one (15), a vertical positioning component (16), a bevel gear three (17), a bevel gear four (18), and an operating frame two (19). The operating frame two (19) is arranged in two groups on both sides of the orderly material distribution and conveying structure (2). The bevel gear four (18) is arranged on the operating frame two (19), and the bevel gear three (17) is meshed on the bevel gear four (18). The vertical positioning component (16) is arranged on the side wall of the operating frame two (19). The vertical rotating shaft (15) is rotatably arranged on the vertical positioning component (16) and connected to the bevel gear three (17). The bevel gear two... (14) Located at the top of the vertical rotating shaft (15), the first bevel gear (13) is meshed with the second bevel gear (14), the horizontal rotating shaft (12) is connected to the first bevel gear (13), the first operating frame (8) is installed through the horizontal rotating shaft (12), the body of the correction drive motor (6) is installed on the first operating frame (8), the correction drive motor (6) is provided in two sets, the two sets of correction drive motors (6) are installed on the inner side wall of the first operating frame (8), the horizontal rotating shaft (12) is connected to the output end of the correction drive motor (6), the component connecting frame (7) is installed between the bodies of the two sets of correction drive motors (6), the first eccentric wheel (9) is installed on the horizontal rotating shaft (12), the first sliding contact rod (10) is slidably installed through the first operating frame (8), and the first silicone contact head (11) is installed at the bottom of the first sliding contact rod (10).

2. The material distribution device for aluminum profile extrusion according to claim 1, characterized in that: The second operating frame (19) is provided with a secondary rotating shaft (20), and a number of eccentric wheels (21) are provided on the secondary rotating shaft (20). A number of sliding contact rods (22) are provided through the second operating frame (19), and silicone contact heads (23) are provided on the sliding contact rods (22).

3. The material distribution device for aluminum profile extrusion according to claim 2, characterized in that: The ordered material conveying structure (2) includes a touch switch (24), a side guide limiting slide (25), a curved transition slide (26), a belt conveyor (27), a secondary guide limiting slide (28), and an ordered reciprocating structure (29). The side guide limiting slide (25) is mounted on an H-shaped equipment bracket (3). The curved transition slide (26) is connected to the side guide limiting slide (25). The belt conveyor (27) is mounted on a plane. The secondary guide limiting slide (28) is connected to the curved transition slide (26). The secondary guide limiting slide (28) is located on both sides of the belt conveyor (27). The touch switch (24) is arranged in several groups on both sides of the inner wall of the side guide limiting slide (25). The ordered reciprocating structure (29) is mounted on an H-shaped equipment bracket (3).

4. The material distribution device for aluminum profile extrusion according to claim 3, characterized in that: The ordered reciprocating structure (29) includes a main drive swing arm (30), a secondary swing arm (31), a tertiary swing arm (32), a V-shaped swing component one (33), an intermediate swing arm (34), a V-shaped swing component two (35), an auxiliary swing arm (36), a shaped conveyor frame (37), a contact conveyor upright (38), and a contact conveyor block (39). The main drive swing arm (30) is located on the output end of the main drive motor (4). The secondary swing arm (31) is hinged to the main drive swing arm (30). The tertiary swing arm (32) is hinged between the secondary swing arm (31) and the H-shaped equipment support (3). The V-shaped swing component one (33) is hinged to... At the connection between the secondary swing arm (31) and the tertiary swing arm (32), the auxiliary swing arm (36) is hinged to the H-shaped equipment bracket (3), the second V-shaped swing member (35) is hinged to the bottom of the auxiliary swing arm (36), the intermediate swing arm (34) is hinged to one end between the first V-shaped swing member (33) and the second V-shaped swing member (35), the irregular conveyor frame (37) is hinged to the other end between the first V-shaped swing member (33) and the second V-shaped swing member (35), the contact conveying uprights (38) are arranged in a linear array on the irregular conveyor frame (37), and the contact conveying block (39) is arranged on the contact conveying uprights (38).

5. The material distribution device for aluminum profile extrusion according to claim 4, characterized in that: The feeding structure (5) includes a vertical feeding cylinder (40), a bottom orderly discharge groove (41), and a vertical guide slide (42). The vertical feeding cylinder (40) is located on the top of the H-shaped equipment support (3). The vertical guide slide (42) is located in the vertical feeding cylinder (40). The bottom orderly discharge groove (41) is connected to the junction of the vertical guide slide (42) and the side guide limiting slide (25).

6. The material distribution device for aluminum profile extrusion according to claim 5, characterized in that: The second operating frame (19) is fixed to the top of the side guide limiting slide (25).

7. The material distribution device for aluminum profile extrusion according to claim 6, characterized in that: Small springs (43) are provided between the first operating frame (8) and the first eccentric wheel (9), and between the second operating frame (19) and the second eccentric wheel (21). The small springs (43) can provide conditions for the reset of the first sliding contact rod (10) and the second sliding contact rod (22), so that the first sliding contact rod (10) and the second sliding contact rod (22) are always in contact with the first eccentric wheel (9) and the second eccentric wheel (21).

8. The material distribution device for aluminum profile extrusion according to claim 7, characterized in that: The touch switch (24) and the correction drive motor (6) are electrically connected. Several sets of touch switches (24) are connected in series and normally closed. The length spanned by several sets of touch switches (24) is the same as the width of the aluminum profile.

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