Ultrathin aluminum profile straightening device

Through the pushing and pressing of the conduit and solid hose structure, combined with the pulling of the elliptical disk and roller assembly, the problem of collapse of ultra-thin aluminum profiles during the straightening process is solved, stable straightening effect and supporting force are achieved, and the collapse and deformation of the aluminum profiles during the straightening process are avoided.

CN120605972AInactive Publication Date: 2025-09-09ANHUI BLUE FLAG ALUMINUM CO LTD
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Patent Information

Application Number
CN202510907069.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-02
Publication Date
2025-09-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Ultra-thin aluminum profiles are prone to end collapse and deformation during the straightening process. The existing clamping method causes end collapse, making effective straightening difficult and having poor stability.

Method used

It adopts a conduit and solid hose structure. The solid hose is pushed and compressed by the cooperation of the guide plate and the pressure plate to fill the cavity of the aluminum profile. The elliptical disk and roller assembly are combined to pull and flatten it, providing support force to avoid collapse, and the pressure is adjusted by the sensor.

Benefits of technology

It effectively avoids the collapse and deformation of the aluminum profile during the straightening process, improves the straightening effect and stability, and ensures the support and stability of the aluminum profile during the straightening process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an ultrathin aluminum profile straightening device, and belongs to the technical field of aluminum profile processing, the ultrathin aluminum profile straightening device comprises aluminum profiles and guide pipes, the two guide pipes are horizontally arranged on a chassis, the aluminum profiles are horizontally arranged between the aluminum profiles, the two ends of the guide pipes are in butt joint with the aluminum profiles respectively, and the sections of cavities of the aluminum profiles are the same as those of cavities of the guide pipes. A guide pipe cavity is formed in the guide plate, a plurality of solid rubber pipes are symmetrically arranged in the guide pipe cavity, one ends of the solid rubber pipes penetrate out of the guide plate, the solid rubber pipes are fixedly connected with the guide plate, and the other ends of the solid rubber pipes are fixedly connected with the pressing plate, that is, the solid rubber pipes are located between the guide plate and the pressing plate; the guide plate and the pressing plate are close to each other to extrude the solid rubber pipe between the guide plate and the pressing plate, and the pressing plate is attached to and slidably arranged on the inner wall of the guide pipe; the pushing assembly is used for feeding the plurality of solid rubber tubes into the aluminum profile; the straightening assembly is used for pulling the aluminum profile towards the two sides; the aluminum profile straightening device can effectively prevent the aluminum profile from collapsing and deforming when the aluminum profile is straightened.
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Description

Technical Field

[0001] The invention belongs to the technical field of aluminum profile processing, and in particular relates to an ultra-thin aluminum profile straightening device. Background Art

[0002] Aluminum profile straightening refers to the correction and adjustment of aluminum profiles through a series of processes and technical means to eliminate defects such as bending, twisting, and waves generated during the production process, ensuring that they meet the specified straightness and size requirements. Since ultra-thin aluminum profiles are under pressure and their internal cavities are prone to deformation and collapse, straightening is usually adopted. However, this method usually requires the use of fixtures to clamp the two ends of the aluminum profile, which makes the ends prone to collapse and deformation. A structure that can support the aluminum profile to prevent collapse is now proposed. Summary of the Invention

[0003] In view of the deficiencies in the prior art, the present invention provides an ultra-thin aluminum profile straightening device to solve the above problems.

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an ultra-thin aluminum profile straightening device, comprising an aluminum profile and a conduit, two of the conduits are horizontally arranged on a chassis, and the aluminum profile is horizontally arranged between the aluminum profile, and both ends of the conduit are respectively docked with the aluminum profile, and the aluminum profile and the conduit have the same cavity cross-section, a plurality of solid rubber tubes are symmetrically arranged in the conduit cavity, and one end of the solid rubber tube passes through the guide plate, and the solid rubber tube is fixedly connected to the guide plate, and the other end of the solid rubber tube is fixedly connected to the pressing plate, that is, the solid rubber tube is between the guide plate and the pressing plate, the guide plate and the pressing plate are close to each other to squeeze the solid rubber tube therebetween, and the pressing plate is in contact with and slidably arranged on the inner wall of the conduit; it also includes a pushing component for sending a plurality of solid rubber tubes into the aluminum profile; and a straightening component for pulling the aluminum profile to both sides.

[0005] On the basis of the above technical solutions, the present invention also provides the following optional technical solutions:

[0006] Further technical solution: The pushing assembly includes a connecting rod, one end of which is fixedly connected to the axis of the guide plate, and multiple solid rubber hoses are surrounded by the outer periphery of the connecting rod, and the other end of the connecting rod passes through the through hole of the pressure plate and is fixedly connected to the frame, the frame is slidably connected to the two side walls of the conduit, and the conduit is fixedly connected to the base, and the base is horizontally slidably set on the chassis; it also includes a driving assembly for compressing the solid rubber hose between the pressure plate and the guide plate.

[0007] Further technical solution: The driving assembly includes a screw rod, which is rotatably arranged on the side of the base, and a slider is threadedly connected to the screw rod, the slider is fixedly connected to the frame, and one end of the screw rod is fixedly connected to the output shaft of the motor, and the motor is fixedly connected to the base; and a guide assembly for slidingly guiding the pressure plate.

[0008] Further technical solution: The guide assembly includes a screw, which is rotatably arranged on the upper surface of the catheter, and the pressure plate is threadedly connected to the screw, and the end of the screw is fixedly connected to the output shaft of motor A, and the motor A is fixedly connected to the catheter.

[0009] Further technical solution: The straightening assembly includes an elliptical disk, which is located between two bases on the same side, and circular wheels are abutted on both sides of the elliptical disk. The two circular wheels are fixedly connected to the corresponding bases. A spring is provided on the guide rod, and the two ends of the spring are respectively fixedly connected to the two bases; it also includes a pressing assembly for pressing the aluminum profile.

[0010] Further technical solution: The pressing assembly includes roller A and roller B, and roller A and roller B are horizontally arranged above the aluminum profile, and roller A and roller B are respectively rotatably connected to the corresponding brackets, and the brackets are obliquely arranged above the aluminum profile, and the ends of the brackets are rotatably connected to the rotating shaft, and multiple rotating shafts are symmetrically rotatably connected to the sliding frame, and the sliding frame is horizontally arranged above the elliptical disk and slidably connected to the chassis, and a cylinder is vertically fixedly connected to the chassis, and the piston rod of the cylinder is fixedly connected to the lower surface of the elliptical disk; it also includes a transmission assembly for making the elliptical disk drive the sliding frame to perform linear motion; and a tensioning assembly for making roller A and roller B close to the upper surface of the aluminum profile.

[0011] Further technical solution: The transmission assembly includes a gear, which is fixedly connected to the axis of the elliptical disk, and the gear is rotatably connected to the chassis, and the side of the gear is meshed with a rack, which is fixedly connected to the base rod, and the bottom end of the rack is at a certain distance from the bottom of the base rod, so that the rack can contact the gear only after the base rod slides a certain distance, and the base rod is vertically fixedly connected to the lower surface of the slide frame.

[0012] Further technical solution: The tensioning assembly includes two sliders A, which are symmetrically slidably connected to the sleeve rod, and the sleeve rod is horizontally arranged on the chassis, and the sleeve rod is located between two brackets. Both sides of the slider A are rotatably connected to the shaft, and the other side of the shaft is rotatably connected to the corresponding bracket; it also includes a pulling assembly for slidingly guiding the slider A.

[0013] Further technical solution: The pulling assembly includes a spring A, which is sleeved on the sleeve rod, and one end of the spring A is fixedly connected to the slider A, and the other end of the spring A is fixedly connected to the connecting seat, and the connecting seat is vertically slidably connected to the vertical rod, and the vertical rod is vertically fixedly connected to the upper surface of the chassis.

[0014] Beneficial effects

[0015] The present invention provides an ultra-thin aluminum profile straightening device, which has the following beneficial effects compared with the prior art:

[0016] 1. The user places the aluminum profile on the base and presses it between the two tubes. At this time, the chassis is aligned with the aluminum profiles on both sides of it, and then the user can start the motor, so that the screw rod fixed on its output shaft starts to rotate at a uniform speed, and drives the slider threaded on it to start uniform linear motion, that is, at this time the frame starts to push the connecting rod in the horizontal direction, that is, at this time the guide plate fixedly connected to the end of the connecting rod starts to move linearly in the tube, and because the connecting rod is at the tube mouth of the tube at this time, the connecting rod can pass through the pressure plate during the sliding process, so that the pressure plate is always at the tube mouth of the tube, that is, at this time the tube and the pressure plate begin to cooperate with each other to pull the connecting rod during the pulling period, so that the connecting rod gradually changes from a compressed state in the tube to a naturally straightened state, so that the two guide plates cooperate with each other to push the solid rubber hose into it from both ends of the aluminum profile until the ends of the solid rubber hose on both sides contact each other in the aluminum profile. At this time, the user continues to start the motor, so that the two guide plates corresponding to it move toward each other, starting to compress the solid rubber hose in between, from By applying pressure to multiple solid rubber hoses, they are deformed, thereby filling the partial cavity between the two guide plates in the aluminum profile. Then, the user can start the motors A on both sides, and the screw fixed on the output shaft thereof begins to rotate, and drives the pressure plate threaded thereon to begin linear movement along the connection between it and the conduit. At this time, the two pressure plates begin to cooperate with each other to press the solid rubber hose therebetween, so that it is fully deformed to fill the cavity in the aluminum profile as a whole, and at the same time fill the partial cavity in the conduit on both sides of the aluminum profile. Moreover, since the pressure plate is in close contact with the aluminum profile and the inner wall of the conduit, it is possible to avoid the solid rubber hose filling the gap between the pressure plate and the conduit during the pressing process, so that the solid rubber hose can be fully deformed to provide support to the aluminum profile from the inside to avoid collapse. At the same time, the user can confirm the real-time pressure situation in the aluminum profile by observing the pressure sensor in the conduit, so as to flexibly adjust the degree of pressure of the pressure plate on the solid rubber hose, thereby avoiding excessive pressure generated by the deformation of the solid rubber hose, which may cause the aluminum profile to burst.

[0017] 2. When the aluminum profile cavity is filled, the user can start the cylinder, so that the cylinder starts to pull the sliding frame fixedly connected to its piston rod. At this time, the sliding frame starts to push the multiple rollers A and roller B set below it to start contacting the upper surface of the aluminum profile, and gradually press the aluminum profile to the base through rollers A and rollers B. In this process, when the sliding frame slides, the base rod fixedly connected to it starts to move synchronously. After the aluminum profile is pressed by rollers A and rollers B, the rack fixedly connected to the base rod starts to contact the gear on its side, so that the gear starts to rotate at a uniform speed under the cooperation of the rack meshing with it, thereby driving the elliptical disk fixed to it to rotate synchronously. That is, at this time, the elliptical disk begins to gradually contact the circular wheels on both sides of it, and because the contact surfaces between the circular wheels and the elliptical disk are both arc surfaces, the ends of the circular wheels can slide along the arc surfaces in contact with the circular wheels, thereby pushing the base to both sides. During this process, the base rod continues to slide downward, thereby further increasing the pressure of rollers A and B on the aluminum profile, thereby avoiding insufficient vertical downward pressure on the aluminum profile during the process of the elliptical disk pulling the aluminum profile, resulting in the inability to effectively straighten the aluminum profile. In this process, since the aluminum profile is filled with a compacted solid rubber tube, the solid rubber tube can provide support to the cavity of the aluminum profile, thereby avoiding the collapse or deformation of the aluminum profile during the straightening process.

[0018] 3. When the sliding frame slides vertically downward, after rollers A and B come into contact with the upper surface of the aluminum profile, the connecting seat stops performing vertical linear motion, that is, rollers A and B maintain contact with the upper surface of the aluminum profile. At the same time, since the sliding frame pushes rollers A and B through the brackets arranged for relative rotation thereon, when the sliding frame continues to perform vertical linear motion, the angle between the two brackets in the same group gradually increases, that is, the brackets begin to push the corresponding rollers A and B to roll on the surface of the aluminum profile, so that rollers A and B roll on the aluminum profile under the condition that rollers A and B press the aluminum profile. At the same time, during this process, the two sliders A begin to slide synchronously toward both sides of the sleeve rod and compress the spring A fixedly connected thereto, thereby deforming the spring A to generate elastic force to provide a reaction force to the roller B and roller A, thereby increasing the thrust required for the slide frame to push it to slide, thereby enabling the rollers A and roller B to be pressed tightly against the upper surface of the aluminum profile, and the force of the rollers A and roller B on the upper surface of the aluminum profile can increase with the compression degree of the spring A, thereby increasing the stability of the aluminum profile on the base and avoiding the sliding of the aluminum profile during the straightening process. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0020] Figure 2 For the present invention Figure 1 A magnified schematic diagram of structure A in .

[0021] Figure 3 For the present invention Figure 1 A magnified schematic diagram of structure B in FIG.

[0022] Figure 4 For the present invention Figure 1 Schematic diagram of the enlarged C structure.

[0023] Figure 5 It is a schematic diagram of the cross-sectional structure of the present invention.

[0024] Figure 6 For the present invention Figure 5 A magnified schematic diagram of the D structure in .

[0025] Figure 7 For the present invention Figure 1 Schematic diagram of the enlarged structure of E in .

[0026] Figure 8 It is a side structural schematic diagram of the present invention.

[0027] Notes on figure marks: chassis 101, aluminum profile 201, conduit 202, solid hose 203, guide plate 204, pressure plate 205, connecting rod 206, frame 207, base 208, slider 209, screw rod 301, motor 302, screw 304, motor A305, circular wheel 401, elliptical disk 402, spring 403, guide rod 404, gear 405, rack 406, base rod 407, slide frame 408, cylinder 4001, rotating shaft 501, roller A502, roller B503, bracket 504, shaft 505, slider A506, sleeve rod 507, spring A508, connecting seat 509, vertical rod 5001. DETAILED DESCRIPTION

[0028] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0029] The specific implementation of the present invention is described in detail below with reference to specific embodiments.

[0030] See also Figure 1 、 Figure 6 as well as Figure 7An embodiment of the present invention provides an ultra-thin aluminum profile straightening device, comprising an aluminum profile 201 and a conduit 202. Two conduits 202 are horizontally arranged on a chassis 101, and the aluminum profile 201 is horizontally arranged between the two conduits 202. Both ends of the conduits 202 are respectively connected to the aluminum profile 201. The cross-sections of the cavities of the aluminum profile 201 and the conduits 202 are the same. A plurality of solid rubber hoses 203 are symmetrically arranged in the cavity of the conduit 202. , and one end of the solid rubber tube 203 passes through the guide plate 204, and the solid rubber tube 203 is fixedly connected to the guide plate 204, and the other end of the solid rubber tube 203 is fixedly connected to the pressing plate 205, that is, the solid rubber tube 203 is located between the guide plate 204 and the pressing plate 205, the guide plate 204 and the pressing plate 205 are close to each other to squeeze the solid rubber tube 203 therebetween, and the pressing plate 205 is in contact with and slidably arranged on the inner wall of the conduit 202;

[0031] The system further includes a pushing assembly for delivering a plurality of solid rubber tubes 203 into the aluminum profile 201 ; and a straightening assembly for pulling the aluminum profile 201 to both sides.

[0032] See also Figure 1 as well as Figure 5 Specifically, the pushing assembly includes a connecting rod 206, one end of the connecting rod 206 is fixedly connected to the axis of the guide plate 204, and a plurality of the solid rubber tubes 203 surround the outer periphery of the connecting rod 206, and the other end of the connecting rod 206 passes through the through hole of the pressure plate 205 and is fixedly connected to the frame 207, the frame 207 is slidably connected to the two side walls of the conduit 202, and the conduit 202 is fixedly connected to the base 208, and the base 208 is horizontally slidably set on the chassis 101;

[0033] It also includes a driving assembly for pressing the solid rubber tube 203 between the pressing plate 205 and the guide plate 204.

[0034] See also Figure 1 、 Figure 2 as well as Figure 5 Specifically, the driving assembly includes a screw rod 301, which is rotatably arranged on the side of the base 208, and a slider 209 is threadedly connected to the screw rod 301, and the slider 209 is fixedly connected to the frame 207, and one end of the screw rod 301 is fixedly connected to the output shaft of the motor 302, and the motor 302 is fixedly connected to the base 208;

[0035] And a guide assembly, used for slidingly guiding the pressure plate 205.

[0036] See also Figure 4Specifically, the guide assembly includes a screw 304, which is rotatably set on the upper surface of the catheter 202, and the pressure plate 205 is threadedly connected to the screw 304, and the end of the screw 304 is fixedly connected to the output shaft of the motor A305, and the motor A305 is fixedly connected to the catheter 202.

[0037] In the embodiment of the present invention, the user places the aluminum profile 201 on the base 208 and presses it between the two conduits 202. At this time, the chassis 101 is aligned with the aluminum profiles 201 on both sides of it. Then the user can start the motor 302, so that the screw rod 301 fixedly connected to its output shaft starts to rotate at a uniform speed, and drives the slider 209 threadedly connected thereto to start uniform linear motion. That is, at this time, the frame 207 starts to push the connecting rod 206 in the horizontal direction. That is, at this time, the guide plate 204 fixedly connected to the end of the connecting rod 206 starts to move linearly in the conduit 202. Since the connecting rod 206 is at the pipe mouth of the conduit 202 at this time, the connecting rod 206 is connected to the guide plate 204 fixedly connected to the end of the connecting rod 206. During the sliding process, the connecting rod 206 can penetrate the pressure plate 205, so that the pressure plate 205 is always at the tube mouth of the conduit 202. That is, at this time, the conduit 202 and the pressure plate 205 begin to cooperate with each other to pull the connecting rod 206, so that the connecting rod 206 gradually changes from a compressed state in the conduit 202 to a naturally straightened state, so that the two guide plates 204 cooperate with each other to push the solid rubber tube 203 into it from both ends of the aluminum profile 201 until the ends of the solid rubber tube 203 on both sides contact each other in the aluminum profile 201. At this time, the user continues to start the motor 302, so that the two corresponding guide plates 204 move toward each other, starting from the compression between The solid rubber tube 203 is deformed by applying pressure to the multiple solid rubber tubes 203, thereby filling the partial cavity between the two guide plates 204 in the aluminum profile 201. Then the user can start the motor A305 on both sides, so that the screw 304 fixedly connected to the output shaft starts to rotate, and drives the pressure plate 205 threadedly connected thereto to start linear motion along the connection between it and the conduit 202. That is, at this time, the two pressure plates 205 begin to cooperate with each other to press the solid rubber tube 203 therebetween, so that it is fully deformed to fill the cavity in the aluminum profile 201 as a whole, and at the same time fill the partial cavities in the conduits 202 on both sides of the aluminum profile 201. And because the pressure plate 205 is in close contact with the inner walls of the aluminum profile 201 and the conduit 202, the solid rubber tube 203 can be prevented from filling the gap between the pressure plate 205 and the conduit 202 during the pressing process of the solid rubber tube 203, so that the solid rubber tube 203 can be fully deformed to provide support to the aluminum profile 201 from the inside of the aluminum profile 201 to avoid collapse. At the same time, the user can confirm the real-time pressure situation in the aluminum profile 201 by observing the pressure sensor in the conduit 202, and flexibly adjust the degree of pressure exerted by the pressure plate 205 on the solid rubber tube 203, thereby avoiding excessive pressure generated by the deformation of the solid rubber tube 203, which may cause the aluminum profile 201 to burst.

[0038] See also Figure 1 as well as Figure 2Specifically, the straightening assembly includes an elliptical disk 402, which is located between the two bases 208 on the same side, and a circular wheel 401 is abutted on both sides of the elliptical disk 402. The two circular wheels 401 are fixedly connected to the corresponding bases 208. A spring 403 is sleeved on the guide rod 404, and the two ends of the spring 403 are fixedly connected to the two bases 208 respectively.

[0039] It also includes a pressing component for pressing the aluminum profile 201.

[0040] See also Figure 3 as well as Figure 1 Specifically, the pressing assembly includes a roller A502 and a roller B503, and the roller A502 and the roller B503 are horizontally arranged above the aluminum profile 201, and the roller A502 and the roller B503 are respectively rotatably connected to the corresponding bracket 504, and the bracket 504 is tilted above the aluminum profile 201, and the end of the bracket 504 is rotatably connected to the rotating shaft 501, and multiple rotating shafts 501 are symmetrically rotatably connected to the sliding frame 408, and the sliding frame 408 is horizontally arranged above the elliptical disk 402 and slidably connected to the chassis 101, and the chassis 101 is vertically fixedly connected with a cylinder 4001, and the piston rod of the cylinder 4001 is fixedly connected to the lower surface of the elliptical disk 402;

[0041] It also includes a transmission component for causing the elliptical disk 402 to drive the slide frame 408 to perform linear motion; and a tensioning component for causing the roller A502 and the roller B503 to be in close contact with the upper surface of the aluminum profile 201.

[0042] See also Figure 2 Specifically, the transmission assembly includes a gear 405, which is fixedly connected to the axis of the elliptical disk 402, and the gear 405 is rotatably connected to the chassis 101, and the side of the gear 405 is meshed with a rack 406, and the rack 406 is fixedly connected to the base rod 407, and the bottom end of the rack 406 is at a certain distance from the bottom of the base rod 407, so that the rack 406 can contact the gear 405 after the base rod 407 slides a certain distance, and the base rod 407 is vertically fixedly connected to the lower surface of the sliding frame 408.

[0043] In the embodiment of the present invention, when the cavity of the aluminum profile 201 is filled, the user can start the cylinder 4001, so that the cylinder 4001 starts to pull the sliding frame 408 fixedly connected to its piston rod, that is, at this time the sliding frame 408 starts to push the multiple rollers A502 and rollers B503 provided below it to start contacting the upper surface of the aluminum profile 201, and gradually presses the aluminum profile 201 against the base 208 through the rollers A502 and rollers B503. In this process, when the sliding frame 408 slides, the base rod 407 fixedly connected thereto starts to move synchronously, and after the aluminum profile 201 is pressed by the rollers A502 and rollers B503, the rack 406 fixedly connected to the base rod 407 starts to contact the gear 405 on its side, so that the gear 405 starts to rotate at a uniform speed under the cooperation of the rack 406 meshing with it, thereby driving the elliptical wheel fixedly connected thereto. The disk 402 rotates synchronously, that is, at this time the elliptical disk 402 begins to gradually contact the circular wheels 401 on both sides of it, and since the contact surfaces of the circular wheels 401 and the elliptical disk 402 are both arc surfaces, the end of the circular wheel 401 can slide along the arc surface in contact with the circular wheel 401, thereby pushing the base 208 to both sides. During this process, the base rod 407 continues to slide downward, thereby further increasing the pressure of roller A502 and roller B503 on the aluminum profile 201, avoiding insufficient vertical downward pressure on the aluminum profile 201 during the process of the elliptical disk 402 pulling the aluminum profile 201, resulting in the inability to effectively straighten the aluminum profile 201, and in this process, since the aluminum profile 201 is filled with a compressed solid rubber tube 203, the solid rubber tube 203 can provide support to the cavity of the aluminum profile 201, avoiding the aluminum profile 201 from collapsing or deforming during the straightening process.

[0044] See also Figure 3 Specifically, the tensioning assembly includes two sliders A506, which are symmetrically slidably connected to a sleeve rod 507. The sleeve rod 507 is horizontally arranged on the chassis 101 and is located between two brackets 504. Both sides of the slider A506 are rotatably connected to a shaft 505, and the other side of the shaft 505 is rotatably connected to the corresponding bracket 504.

[0045] It also includes a pulling component for slidingly guiding the slider A506.

[0046] See also Figure 3 as well as Figure 8 Specifically, the pulling assembly includes a spring A508, which is sleeved on the sleeve rod 507, and one end of the spring A508 is fixedly connected to the slider A506, and the other end of the spring A508 is fixedly connected to the connecting seat 509, and the connecting seat 509 is vertically slidably connected to the vertical rod 5001, and the vertical rod 5001 is vertically fixedly connected to the upper surface of the chassis 101.

[0047] In the embodiment of the present invention, during the vertical downward sliding of the sliding frame 408, after the rollers A502 and B503 come into contact with the upper surface of the aluminum profile 201, the connecting seat 509 stops performing linear motion in the vertical direction, that is, at this time, the rollers A502 and B503 maintain contact with the upper surface of the aluminum profile 201. At the same time, since the sliding frame 408 pushes the rollers A502 and B503 by the brackets 504 arranged thereon to rotate relative to each other, when the sliding frame 408 continues to perform linear motion in the vertical direction, the angle between the two brackets 504 in the same group gradually increases, that is, at this time, the brackets 504 begin to push the corresponding rollers A502 and B503 to roll on the surface of the aluminum profile 201, so that under the condition that the rollers A502 and B503 press the aluminum profile 201, the rollers A502 and B503 are pressed against each other. 03 rolls on the aluminum profile 201, thereby flattening the aluminum profile 201 to further increase the straightening effect of the aluminum profile 201. At the same time, during this process, the two sliders A506 begin to slide synchronously to both sides of the sleeve rod 507 and compress the spring A508 fixedly connected thereto, so that the spring A508 is deformed to generate elastic force to provide a reaction force to the roller B503 and the roller A502, so as to increase the thrust required for the slide frame 408 to push it to slide, thereby enabling the roller A502 and the roller B503 to be pressed against the upper surface of the aluminum profile 201, and the force of the roller A502 and the roller B503 on the upper surface of the aluminum profile 201 can increase with the compression degree of the spring A508, thereby increasing the stability of the aluminum profile 201 on the base 208 and avoiding the sliding of the aluminum profile 201 during the straightening process.

[0048] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0049] The term "fixed connection" as used in this application refers to a connection in which parts or components are fixed without any relative movement. It can be categorized into two types: detachable connection and non-detachable connection.

[0050] (1) Removable connection: Components are fastened together using screws, splines, wedge pins, etc. This type of connection allows for disassembly during maintenance without damaging the components. However, the connectors used must be of the correct specifications (e.g., length of bolts, keys, wedge pins) and properly tightened.

[0051] (2) Non-detachable connections: These mainly refer to welding, riveting, and tenoning. Since parts must be forged, sawed, or oxygen-cut for disassembly during repair or replacement, they are generally not reusable. Furthermore, attention should be paid to workmanship quality, technical inspection, and remedial measures (such as calibration and polishing) during connection.

[0052] The sliding connection referred to in this application means that the component can slide along a linear trajectory, and the hinged connection referred to in this application means that the component can rotate along an axial constraint.

[0053] In some cases, the sliding connections and hinges referred to in this application may also be damped so that the components have the ability to maintain a desired position.

[0054] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An ultra-thin aluminum profile straightening device, characterized in that: include: The invention comprises an aluminum profile (201) and a conduit (202), wherein two conduits (202) are horizontally arranged on a chassis (101), and the aluminum profile (201) is horizontally arranged between the aluminum profile (201), and both ends of the conduit (202) are respectively connected to the aluminum profile (201), and the cavity cross-sections of the aluminum profile (201) and the conduit (202) are the same, and a plurality of solid rubber tubes (203) are symmetrically arranged in the cavity of the conduit (202), and one of the solid rubber tubes (203) is connected to the other. One end of the solid rubber tube (203) passes through the guide plate (204), and the solid rubber tube (203) is fixedly connected to the guide plate (204). The other end of the solid rubber tube (203) is fixedly connected to the pressing plate (205), that is, the solid rubber tube (203) is located between the guide plate (204) and the pressing plate (205). The guide plate (204) and the pressing plate (205) are close to each other to squeeze the solid rubber tube (203) therebetween, and the pressing plate (205) is in contact with and slidably arranged on the inner wall of the conduit (202); Also included is a pushing assembly for feeding a plurality of solid rubber tubes (203) into the aluminum profile (201); and a straightening assembly for pulling the aluminum profile (201) toward both sides.

2. The ultra-thin aluminum profile straightening device according to claim 1, characterized in that: The pushing assembly includes a connecting rod (206), one end of the connecting rod (206) is fixedly connected to the axis of the guide plate (204), and a plurality of solid rubber tubes (203) are surrounded by the outer periphery of the connecting rod (206), and the other end of the connecting rod (206) passes through the through hole of the pressure plate (205) and is fixedly connected to the frame (207), the frame (207) is slidably connected to the two side walls of the conduit (202), and the conduit (202) is fixedly connected to the base (208), and the base (208) is horizontally slidably arranged on the chassis (101); The invention also includes a driving assembly for pressing the solid rubber tube (203) between the pressing plate (205) and the guide plate (204).

3. The ultra-thin aluminum profile straightening device according to claim 2, characterized in that: The driving assembly includes a screw rod (301), the screw rod (301) is rotatably arranged on the side of the base (208), and a slider (209) is threadedly connected to the screw rod (301), the slider (209) is fixedly connected to the frame (207), and one end of the screw rod (301) is fixedly connected to the output shaft of the motor (302), and the motor (302) is fixedly connected to the base (208); and a guide assembly for slidingly guiding the pressing plate (205).

4. The ultra-thin aluminum profile straightening device according to claim 3, characterized in that: The guide assembly includes a screw (304), the screw (304) is rotatably arranged on the upper surface of the catheter (202), and the pressure plate (205) is threadedly connected to the screw (304), and the end of the screw (304) is fixedly connected to the output shaft of the motor A (305), and the motor A (305) is fixedly connected to the catheter (202).

5. The ultra-thin aluminum profile straightening device according to claim 1, characterized in that: The straightening assembly comprises an elliptical disk (402), the elliptical disk (402) being located between two bases (208) on the same side, and circular wheels (401) being in contact with both sides of the elliptical disk (402), the two circular wheels (401) being fixedly connected to the corresponding bases (208), the guide rod (404) being provided with a spring (403), and the two ends of the spring (403) being fixedly connected to the two bases (208) respectively; It also includes a pressing component for pressing the aluminum profile (201).

6. The ultra-thin aluminum profile straightening device according to claim 5, characterized in that: The pressing assembly comprises a roller A (502) and a roller B (503), wherein the roller A (502) and the roller B (503) are horizontally arranged above the aluminum profile (201), and the roller A (502) and the roller B (503) are respectively rotatably connected to the corresponding bracket (504), and the bracket (504) is tiltedly arranged above the aluminum profile (201), and the end of the bracket (504) is rotatably connected to the rotating shaft (501), and a plurality of the rotating shafts (501) are symmetrically rotatably connected to the sliding frame (408), and the sliding frame (408) is horizontally arranged above the elliptical disk (402) and slidably connected to the chassis (101), and a cylinder (4001) is vertically fixedly connected to the chassis (101), and the piston rod of the cylinder (4001) is fixedly connected to the lower surface of the elliptical disk (402); A transmission assembly, used to enable the elliptical disk (402) to drive the slide frame (408) to perform linear motion; and a tensioning assembly for making roller A (502) and roller B (503) closely adhere to the upper surface of the aluminum profile (201).

7. The ultra-thin aluminum profile straightening device according to claim 6, characterized in that: The transmission assembly includes a gear (405), the gear (405) is fixedly connected to the axis of the elliptical disk (402), and the gear (405) is rotatably connected to the chassis (101), and the side of the gear (405) is meshed with a rack (406), the rack (406) is fixedly connected to the base rod (407), and the bottom end of the rack (406) is a certain distance away from the bottom of the base rod (407), so that the rack (406) can contact the gear (405) after the base rod (407) slides a certain distance, and the base rod (407) is vertically fixedly connected to the lower surface of the sliding frame (408).

8. The ultra-thin aluminum profile straightening device according to claim 6, characterized in that: The tensioning assembly comprises two sliders A (506), the two sliders A (506) are symmetrically slidably connected to a sleeve rod (507), and the sleeve rod (507) is horizontally arranged on the chassis (101), and the sleeve rod (507) is located between two brackets (504), both sides of the sliders A (506) are rotatably connected to a shaft (505), and the other side of the shaft (505) is rotatably connected to the corresponding bracket (504); It also includes a pulling component for slidingly guiding the slider A (506).

9. The ultra-thin aluminum profile straightening device according to claim 8, characterized in that: The pulling assembly includes a spring A (508), which is sleeved on a sleeve rod (507), and one end of the spring A (508) is fixedly connected to a slider A (506), and the other end of the spring A (508) is fixedly connected to a connecting seat (509), and the connecting seat (509) is vertically slidably connected to a vertical rod (5001), and the vertical rod (5001) is vertically fixedly connected to the upper surface of the chassis (101).