Processing Equipment and Processing Technology for Imitation Copper Oxidation Electrophoretic Aluminum Profiles

By designing the combined structure of push head, clamp and connecting rod, the problem of offset and rotation of the profile during the cutting process is solved, vertical push of the profile is realized and friction damage is reduced, and the convenience and efficiency of the processing equipment are improved.

CN120206287BActive Publication Date: 2025-08-01NANJING UNIV OF AERONAUTICS & ASTRONAUTICS +1
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Patent Information

Application Number
CN202510686080.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-08-01
Estimated Expiration
2045-05-27

AI Technical Summary

Technical Problem

During the cutting process of profiles, the profile is prone to offset and rotate, resulting in frictional damage with the push plate, affecting the convenience and efficiency of the processing equipment.

Method used

A processing equipment for imitating copper oxide electrophoretic aluminum profiles is designed, using a feeding device and a feeding device. Through the combined structure of push head, clamp and connecting rod, the profile is ensured to be pushed vertically in the cutting machine, and the vibration is reduced by spring support, and the beveled surface is guided to the profile to prevent scratches.

Benefits of technology

Effectively prevent the profile from shifting and rotating during pushing, reduce frictional damage, improve the efficiency and push stability of processing equipment, and extend the service life of the push head.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the technical field of profile processing equipment, and in particular to a processing equipment and a processing technology for imitation copper oxidized electrophoretic aluminum profiles. The equipment includes a profile cutting machine, which is connected with a feeding device and a discharging device. The feeding device includes a first mounting frame, on which a first roller and a pushing head are installed. The pushing head includes a fixing plate, on which a fixing cylinder is installed. A first sliding rod is installed on the fixing cylinder, and a first connecting rod is hinged on the first sliding rod. Guide plates are arranged on both sides of the fixing cylinder, and sliders are installed on the guide plates. The first connecting rod is hinged with the slider, and a second connecting rod is connected to the first connecting rod. A movable cylinder is hinged on the second connecting rod, and a third connecting rod is hinged on the movable cylinder. The third connecting rod is hinged with the slider, and the third connecting rod is arranged parallel to the second connecting rod. A clamping plate is connected to the movable cylinder. This application has the effect of improving the convenience of the processing equipment for imitation copper oxidized electrophoretic aluminum profiles during the operation process.
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Description

Technical Field

[0001] This application relates to the technical field of profile processing equipment, and in particular to a processing equipment and its processing technology for imitating copper oxidized electrophoretic aluminum profiles. Background Art

[0002] In daily life, aluminum profiles have become common materials, widely used in construction or mechanical production and manufacturing. Aluminum profiles are usually long and whole materials during production. After production, the whole profiles need to be cut, punched, and assembled with corner codes according to the usage scenarios and lengths.

[0003] During the cutting process of profiles, the profiles are usually pushed into the cutting machine by a push plate. However, during the pushing process, the profiles are prone to deviation, and when the profiles are cut, the profiles themselves will rotate, resulting in easy friction between the profiles and the push plate, causing damage to the profiles. Summary of the Invention

[0004] In order to improve the convenience of the processing equipment for imitating copper oxidized electrophoretic aluminum profiles during use, this application provides a processing equipment for imitating copper oxidized electrophoretic aluminum profiles.

[0005] This application provides a processing equipment for imitating copper oxidized electrophoretic aluminum profiles, adopting the following technical solutions:

[0006] A processing equipment for imitating copper oxidized electrophoretic aluminum profiles, wherein the profile cutting machine is connected with a feeding device and a discharging device. The feeding device includes a first mounting frame, on which a first roller for carrying profiles is rotatably mounted. A second sliding table is mounted on the first mounting frame, and a push head for pushing the profiles to move on the first roller is connected to the second sliding table. The push head includes a fixing plate connected to the second sliding table. A fixed cylinder is mounted on the fixing plate. A first sliding rod is slidably mounted on the fixed cylinder. A connecting shaft is mounted on the first sliding rod. First connecting rods are hinged at both ends of the connecting shaft. Guide plates are arranged on both sides of the fixed cylinder. The guide plates are mounted on the fixing plate. Sliders are slidably mounted on the guide plates. The first connecting rods are hinged to the sliders. A second connecting rod is connected to the first connecting rods. A movable cylinder is hinged to the second connecting rod. A third connecting rod is hinged to the movable cylinder. The end of the third connecting rod away from the movable cylinder is hinged to the slider. The third connecting rod is arranged parallel to the second connecting rod. A clamping plate for positioning the profiles is connected to the movable cylinder.

[0007] By adopting the above technical solution, the profile is placed on the first roller, and the pusher head pushes the profile. The profile will abut against the baffle and press the baffle. The profile will push the baffle and the first slide bar to slide. The first slide bar will drive the first connecting rod to rotate. The first connecting rod will drive the second connecting rod to rotate. The second connecting rod will drive the movable cylinder and the clamping plate to approach each other. When the clamping plates approach each other, they will position the profile by pushing the profile to move, so that the profile is in the center position of the pusher head, facilitating the profile to move in a straight line and be vertically pushed into the profile cutting machine. Since the third connecting rod is arranged parallel to the second connecting rod, the third connecting rod will pull the movable cylinder to keep the movable cylinder always perpendicular to the first slide bar, ensuring that the clamping plates can be completely perpendicular to the movement track of the profile and finally clamp on both sides of the profile. The first connecting rod will pull the sliders to approach each other on the guide plate, compensating for the distance change between the clamping plates and the fixed cylinder caused by the rotation of the second connecting rod and the third connecting rod, and keeping the clamping plates only trending to move perpendicular to the profile. This prevents the clamping plates from moving closer to or away from the fixed cylinder, thus scratching the profile and causing damage to the profile, which is beneficial to improving the efficiency of pushing the profile during the use of the processing equipment for imitation copper oxidized electrophoretic aluminum profiles.

[0008] In a specific feasible implementation, one end of the first slide bar extends into the fixed cylinder. A first pressing plate is installed at the end of the first slide bar extending into the fixed cylinder. A first spring is arranged in the fixed cylinder. One end of the first spring is connected to the first pressing plate, and the other end is connected to the fixed cylinder. A baffle is installed at the end of the first slide bar away from the first pressing plate.

[0009] In a specific feasible implementation, a second slide bar is slidably installed on the movable cylinder. One end of the second slide bar extends into the movable cylinder. A second pressing plate is installed at the end of the second slide bar extending into the movable cylinder. A second spring is sleeved on the second slide bar. One end of the second spring is connected to the second pressing plate, and the other end is connected to the movable cylinder. One end of the second slide bar extends out of the movable cylinder and the end extending out of the movable cylinder is connected to the clamping plate.

[0010] By adopting the above technical solution, the clamping plates are installed on the second slide bar, and the second spring is used to support the second slide bar; a first spring is connected to the first slide bar, and the first spring is used to support the first slide bar. When the pusher head cuts the profile during the process of pushing the profile, the vibration generated by the profile can be reduced, the influence of the profile vibration on the pusher head can be reduced, and the service life of the pusher head can be enhanced.

[0011] In a specific feasible implementation, a guide rod is installed on the clamping plate. A movable block is slidably installed on the guide rod. A third spring is sleeved on the guide rod. One end of the third spring is connected to the movable block, and the other end is connected to the clamping plate. A clamping piece is installed on the movable block.

[0012] By adopting the above technical solution, after the clamping plates are clamped on both sides of the profile, if the profile continues to push the baffle and the first sliding rod to move, the profile will drive the clamping piece to slide on the guiding rod, avoiding relative movement between the profile and the clamping piece, and preventing the clamping piece from scratching the profile when the profile moves.

[0013] In a specific feasible embodiment, an inclined cutting surface for guiding the profile is provided on the clamping plate.

[0014] By adopting the above technical solution, through the guiding of the inclined cutting surface on the clamping plate, it is convenient for the profile to enter between the two clamping plates more easily.

[0015] In a specific feasible embodiment, a first transport rack is installed on the first mounting rack, a first conveyor belt is installed on the first transport rack, and a first motor for controlling the operation of the first conveyor belt is installed on the first transport rack.

[0016] By adopting the above technical solution, transporting the profile through the first conveyor belt facilitates the rapid and stable transportation of the profile to the first roller.

[0017] In a specific feasible embodiment, a first cylinder is installed on the first mounting rack, the output shaft of the first cylinder is connected to a lifting frame, a first positioning column is installed on the lifting frame, the first positioning column is arranged at one end of the first roller away from the first conveyor belt, a first sliding table is installed on the lifting frame, a moving plate is installed on the first sliding table, and a second positioning column is installed on the moving plate, and the second positioning column is arranged at one end of the first roller close to the first conveyor belt.

[0018] By adopting the above technical solution, the first sliding table controls the second positioning column to move close to the first positioning column, and the second positioning column pushes the profile to be in tight contact with the first positioning column to position the profile and prevent the profile from tilting during the pushing process.

[0019] In a specific feasible embodiment, the blanking device includes a second mounting rack, a second roller is rotatably installed on the second mounting rack, a second transport rack is installed on the second mounting rack, a second conveyor belt is installed on the second transport rack, and a second motor for controlling the operation of the second conveyor belt is installed on the second transport rack.

[0020] By adopting the above technical solution, after the profile is cut, it will be transported to the second roller, and the second motor controls the movement of the second conveyor belt, which facilitates the rapid transportation of the profile to the next processing station.

[0021] A processing process for imitation copper oxidized electrophoretic aluminum profiles includes the following steps:

[0022] The first step is cutting. The profile is transported into a profile cutting machine through a feeding device for cutting;

[0023] In the second step, drilling: Take out the profiled bar after cutting from the profiled bar cutting machine, and then perform stamping and drilling on the profiled bar.

[0024] In the third step, assembling corner codes: Assemble corner codes at both ends of the profiled bar.

[0025] In the fourth step, collecting: Uniformly collect the profiled bars after assembling corner codes and place them on the inventory rack.

[0026] In summary, the present application includes at least one of the following beneficial technical effects:

[0027] 1. Place the profiled bar on the first roller, the pusher head pushes the profiled bar, the profiled bar will abut against the baffle and press the baffle, the profiled bar will push the baffle and the first slide bar to slide, the first slide bar will drive the first connecting rod to rotate, the first connecting rod will drive the second connecting rod to rotate, the second connecting rod will drive the movable cylinder and the clamping plate to approach each other. When the clamping plates approach each other, they will position the profiled bar by pushing the profiled bar to move, so that the profiled bar is at the exact center position of the pusher head, thus facilitating the profiled bar to move in a straight line and be vertically pushed into the profiled bar cutting machine. Since the third connecting rod is arranged parallel to the second connecting rod, the third connecting rod will pull the movable cylinder to keep the movable cylinder always perpendicular to the first slide bar, thereby ensuring that the clamping plates can be completely perpendicular to the movement track of the profiled bar and finally clamp on both sides of the profiled bar. The first connecting rod will pull the sliders to approach each other on the guide plate, compensating for the distance change between the clamping plate and the fixed cylinder caused by the rotation of the second connecting rod and the third connecting rod, and keeping the clamping plate only in the trend of moving perpendicular to the profiled bar. Prevent the clamping plate from moving closer to or away from the fixed cylinder, thereby scratching the profiled bar and causing damage to the profiled bar, which is beneficial to improving the efficiency of pushing the profiled bar during the use of the processing equipment for imitation copper oxidized electrophoretic aluminum profiled bars. Description of the Drawings

[0028] Figure 1 is a schematic diagram of the processing equipment for electrophoretic aluminum profiled bars according to the embodiment of the present application.

[0029] Figure 2 is a schematic diagram of the feeding device according to the embodiment of the present application.

[0030] Figure 3 is a cross-sectional view of the pusher head according to the embodiment of the present application.

[0031] Figure 4 is a top view of the pusher head according to the embodiment of the present application.

[0032] Figure 5 is a cross-sectional view of the fixed cylinder according to the embodiment of the present application.

[0033] Figure 6 is Figure 5 an enlarged view of part A in

[0034] Figure 7 It is a schematic diagram of the blanking device according to an embodiment of the present application.

[0035] Reference numerals: 1, profile cutting machine; 2, loading device; 21, first mounting frame; 22, stock table; 231, first transport frame; 232, first conveyor belt; 233, first motor; 234, first roller; 235, first cylinder; 236, lifting frame; 237, first positioning column; 238, first sliding table; 2391, moving plate; 2392, second positioning column; 24, second sliding table; 241, push rod; 25, push head; 251, fixing plate; 252, fixing cylinder; 253, first sliding rod; 254, first pressing plate; 255, first spring; 256, connecting shaft; 257, first connecting rod; 258, retaining piece; 261, guiding plate; 262, slider; 263, second connecting rod; 264, movable cylinder; 265, tail piece; 266, third connecting rod; 267, second sliding rod; 268, clamping plate; 271, second pressing plate; 272, second spring; 273, guiding rod; 274, movable block; 275, third spring; 276, clamping piece; 3, blanking device; 31, second mounting frame; 32, second roller; 33, second transport frame; 34, second conveyor belt; 35, second motor. Detailed implementation manners

[0036] The following further describes the present application in detail with reference to the Figure 1-7 accompanying drawings.

[0037] An embodiment of the present application discloses a processing device for imitation copper oxidized electrophoretic aluminum profiles. Referring to Figure 1 , it includes a profile cutting machine 1, a loading device 2 and a blanking device 3. The loading device 2 transports profiles into the profile cutting machine 1, and the blanking device 3 further transports and blanks the profiles after cutting. The profile cutting machine 1 is a prior art, and the cutting principle and cutting process of the profile cutting machine 1 will not be described in the embodiment of the present application.

[0038] The feeding device 2 includes a first mounting frame 21. A stock table 22 for storing profiles is fixedly connected to the first mounting frame 21. A first conveyor frame 231 is fixedly installed on the first mounting frame 21. A first conveyor belt 232 is arranged on the first conveyor frame 231. A first motor 233 for controlling the operation of the first conveyor belt 232 is fixedly installed on the first conveyor frame 231. A first roller 234 for receiving the profiles on the first conveyor belt 232 is rotatably installed on the first mounting frame 21. A first cylinder 235 is fixedly installed on the first mounting frame 21. The output shaft of the first cylinder 235 is arranged vertically. A lifting frame 236 is fixedly installed on the output shaft of the first cylinder 235. A first positioning post 237 is rotatably installed on the lifting frame 236. The first positioning post 237 is arranged at one end of the first roller 234 away from the first conveyor belt 232. A first sliding table 238 is fixedly installed on the lifting frame 236. The first sliding table 238 is an electric sliding table. A moving plate 2391 is connected to the first sliding table 238. A second positioning post 2392 is fixedly installed on the moving plate 2391. The second positioning post 2392 is arranged at one end of the first roller 234 close to the first conveyor belt 232.

[0039] Stack the profiles on the stock table 22. When the profiles need to be cut and processed, move the profiles on the stock table 22 onto the first conveyor belt 232. In this embodiment, the profiles can be manually moved or moved by a manipulator from the stock table 22 onto the first conveyor belt 232, and the handling method is not limited. After the profiles are moved onto the first conveyor belt 232, the first motor 233 controls the first conveyor belt 232 to operate and transport the profiles to the first roller 234. Then, the first cylinder 235 controls the lifting frame 236 to rise, so that the profiles are located between the first positioning post 237 and the second positioning post 2392. The first sliding table 238 controls the second positioning post 2392 to move close to the first positioning post 237. The second positioning post 2392 pushes the profiles to be in close contact with the first positioning post 237, positioning the profiles to prevent the profiles from tilting during the pushing process.

[0040] Refer to Figure 1 and Figure 2 , a second sliding table 24 is fixedly installed on the first mounting frame 21. The second sliding table 24 is also an electric sliding table. A push rod 241 is connected to the second sliding table 24. A push head 25 is fixedly connected to the push rod 241. Refer to Figure 3 , Figure 4 and Figure 5, the push head 25 includes a fixing plate 251. The fixing plate 251 is fixedly connected to the push rod 241. A fixing cylinder 252 is fixedly installed on the fixing plate 251. A first sliding rod 253 is slidably installed on the fixing cylinder 252. One end of the first sliding rod 253 extends into the fixing cylinder 252 and is fixedly connected to a first pressing plate 254. A first spring 255 is installed in the fixing cylinder 252. One end of the first spring 255 is fixedly connected to the first pressing plate 254, and the other end is fixedly connected to the fixing cylinder 252. A connecting shaft 256 is fixedly installed on the first sliding rod 253. Two first connecting rods 257 are respectively hinged at both ends of the connecting shaft 256. Two guiding plates 261 are fixedly installed on the fixing plate 251. The two guiding plates 261 are respectively arranged on both sides of the fixing cylinder 252. One ends of the guiding plates 261 far away from the connection positions with the fixing plate 251 are inclined towards the fixing cylinder 252. A slider 262 is slidably installed on the guiding plate 261. One end of the first connecting rod 257 far away from the connecting shaft 256 is hinged to the slider 262. A second connecting rod 263 is fixedly connected to the first connecting rod 257. One end of the second connecting rod 263 far away from the slider 262 is hinged to a movable cylinder 264. A tail piece 265 is fixedly installed on the movable cylinder 264. A third connecting rod 266 is hinged to the tail piece 265. One end of the third connecting rod 266 far away from the tail piece 265 is hinged to the slider 262. The third connecting rod 266 is arranged parallel to the second connecting rod 263. The third connecting rod 266 pulls the tail piece 265 to make the movable cylinder 264 perpendicular to the first sliding rod 253.

[0041] Referring to Figure 5 and Figure 6 , a second sliding rod 267 is slidably installed on the movable cylinder 264. One end of the second sliding rod 267 extends into the movable cylinder 264 and is fixedly installed with a second pressing plate 271. A second spring 272 is sleeved on the second sliding rod 267. One end of the second spring 272 is fixedly connected to the second pressing plate 271, and the other end is fixedly connected to the movable cylinder 264. The end of the second sliding rod 267 far away from the second pressing plate 271 is fixedly installed with a clamping plate 268. An inclined plane for guiding the profile is provided on the clamping plate 268. A guiding rod 273 is fixedly installed on the clamping plate 268. A movable block 274 is slidably installed on the guiding rod 273. A third spring 275 is sleeved on the guiding rod 273. One end of the third spring 275 is fixedly connected to the movable block 274, and the other end is fixedly connected to the clamping plate 268. A clamping piece 276 is fixedly installed on the movable block 274. The end of the first sliding rod 253 far away from the first pressing plate 254 is fixedly installed with a stop piece 258.

[0042] Referring to Figure 3 , Figure 4 , Figure 5 and Figure 6, when the pusher 25 needs to push the profile, the profile will enter between the two clamping plates 268. Through the guidance of the inclined cutting surfaces on the clamping plates 268, it is easier for the profile to enter between the two clamping plates 268. When the pusher 25 pushes the profile, the profile will abut against the stop piece 258 and press the stop piece 258. The profile will push the stop piece 258 and the first sliding rod 253 to slide into the fixed cylinder 252. The first sliding rod 253 drives the first pressing plate 254 to move and press the first spring 255. The first sliding rod 253 will drive the first connecting rod 257 to rotate clockwise. The first connecting rod 257 will drive the second connecting rod 263 to rotate clockwise. The second connecting rod 263 will drive the movable cylinder 264 and the clamping plates 268 to approach each other. When the clamping plates 268 approach each other, they will position the profile by pushing the profile to move, so that the profile is at the center position of the pusher 25, facilitating the profile to move in a straight line and be vertically pushed into the profile cutting machine 1.

[0043] When the clamping plates 268 approach each other, the movable cylinder 264 will drive the third connecting rod 266 to rotate. Since the third connecting rod 266 is arranged in parallel with the second connecting rod 263, it will pull the movable cylinder 264 to keep the movable cylinder 264 always perpendicular to the first sliding rod 253, ensuring that the clamping plates 268 can be completely perpendicular to the movement track of the profile and finally clamp on both sides of the profile. When the second connecting rod 263 and the third connecting rod 266 rotate, the first connecting rod 257 will pull the slider 262 to approach each other on the guide plate 261. The slider 262 drives the second connecting rod 263, the third connecting rod 266, the movable cylinder 264 and the clamping plates 268 to move as a whole, avoiding the situation that the clamping plates 268 will move closer to the fixed cylinder 252 when the second connecting rod 263 and the third connecting rod 266 drive the movable cylinder 264 to rotate, compensating for the distance change between the clamping plates 268 and the fixed cylinder 252 caused by the rotation of the second connecting rod 263 and the third connecting rod 266, and keeping the tendency of the clamping plates 268 to move only perpendicular to the profile. Prevent the clamping plates 268 from moving closer to or away from the fixed cylinder 252, so as not to scratch the profile and cause damage to the profile.

[0044] After the clamping plates 268 are clamped on both sides of the profile, if the profile continues to push the stop piece 258 and the first sliding rod 253 to move, when the slider 262 moves to drive the second connecting rod 263, the third connecting rod 266, the movable cylinder 264 and the clamping plates 268 to move as a whole, the profile will drive the clamping piece 276 to slide on the guide rod 273, avoiding relative movement between the profile and the clamping piece 276 and preventing the clamping piece 276 from scratching the profile when the profile moves. The clamping plates 268 are installed on the second sliding rod 267, and the second spring 272 is used to support the second sliding rod 267; a first spring 255 is connected to the first sliding rod 253, and the first spring 255 is used to support the first sliding rod 253. When the push head 25 cuts the profile during the process of pushing the profile, the vibration generated by the profile can be reduced, the influence on the push head 25 caused by the vibration of the profile can be reduced, and the service life of the push head 25 can be enhanced.

[0045] Referring to Figure 1 and Figure 7 As shown in FIGS. 7 and 8, the blanking device 3 includes a second mounting frame 31 which is arranged on the side of the profile cutting machine 1 away from the feeding device 2. A second roller 32 is rotatably mounted on the second mounting frame 31. A second conveying frame 33 is fixedly mounted on the second mounting frame 31. A second conveyor belt 34 is arranged on the second conveying frame 33. A second motor 35 for controlling the rotation of the second conveyor belt 34 is fixedly mounted on the second conveying frame 33.

[0046] After the profile cutting is completed, it will be transported onto the second roller 32. The second motor 35 controls the movement of the second conveyor belt 34, which is convenient for quickly transporting the profile to the next processing station.

[0047] The embodiment of the present application also discloses a processing technology for imitation copper oxidized electrophoretic aluminum profiles, including the following steps:

[0048] The first step: cutting. Place the profile on the first conveying frame 231, control the first conveyor belt 232 to operate through the first motor 233 to transport the profile onto the first roller 234, and the second sliding table 24 controls the push head 25 to push the profile into the profile cutting machine 1 for cutting;

[0049] The second step: punching. Punch the profile after cutting to form holes of a certain size on the profile by stamping;

[0050] The third step: assembling corner codes. Install corner codes at both ends of the profile;

[0051] The fourth step: storing. Uniformly collect and place the profiles after assembling the corner codes on the storage rack for subsequent taking and using.

[0052] The implementation principle of the embodiment of this application is as follows: Place the profile on the first conveyor belt 232 on the first mounting frame 21, control the operation of the first conveyor belt 232 by the first motor 233 to transport the profile to the first roller 234. After the profile is pushed to one side of the first positioning post 237 by the second positioning post 2392, the second sliding table 24 controls the push head 25 to push the profile into the profile cutting machine 1. During the pushing process, the profile is positioned by the clamping plate 268 to ensure that the profile can be pushed into the profile cutting machine 1 in a straight line and finally complete the cutting of the profile, which is beneficial to improving the efficiency of the processing equipment for imitation copper oxidized electrophoretic aluminum profiles during the processing process.

[0053] The above are all the preferred embodiments of this application, and the protection scope of this application is not limited accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.

Claims

1. A processing device for imitation copper-oxidized electrophoretic aluminum profiles, including a profile cutting machine (1), characterized in that: The profile cutting machine (1) is connected with a feeding device (2) and a discharging device (3). The feeding device (2) includes a first mounting frame (21). A first roller (234) for carrying profiles is rotatably mounted on the first mounting frame (21). A second sliding table (24) is mounted on the first mounting frame (21). A push head (25) for pushing the profile to move on the first roller (234) is connected to the second sliding table (24). The push head (25) includes a fixing plate (251) connected to the second sliding table (24). A fixing cylinder (252) is mounted on the fixing plate (251). A first sliding rod (253) is slidably mounted on the fixing cylinder (252). A connecting shaft (256) is mounted on the first sliding rod (253). First connecting rods (257) are hinged to both ends of the connecting shaft (256). Guide plates (261) are arranged on both sides of the fixing cylinder (252). The guide plates (261) are mounted on the fixing plate (251). Sliders (262) are slidably mounted on the guide plates (261). The first connecting rods (257) are hinged to the sliders (262). A second connecting rod (263) is connected to the first connecting rods (257). A movable cylinder (264) is hinged to the second connecting rod (263). A third connecting rod (266) is hinged to the movable cylinder (264). One end of the third connecting rod (266) away from the movable cylinder (264) is hinged to the slider (262). The third connecting rod (266) is arranged in parallel with the second connecting rod (263). A clamping plate (268) for positioning the profile is connected to the movable cylinder (264). One end of the first sliding rod (253) extends into the fixing cylinder (252). A first pressing plate (254) is mounted on the end of the first sliding rod (253) extending into the fixing cylinder (252). A first spring (255) is arranged in the fixing cylinder (252). One end of the first spring (255) is connected to the first pressing plate (254), and the other end is connected to the fixing cylinder (252). A retaining piece (258) is mounted on the end of the first sliding rod (253) away from the first pressing plate (254). A first transport frame (231) is mounted on the first mounting frame (21). A first conveyor belt (232) is mounted on the first transport frame (231). A first motor (233) for controlling the operation of the first conveyor belt (232) is mounted on the first transport frame (231). A first cylinder (235) is installed on the first mounting bracket (21). The output shaft of the first cylinder (235) is connected to a lifting bracket (236). A first positioning column (237) is installed on the lifting bracket (236). The first positioning column (237) is arranged at one end of the first roller (234) away from the first conveyor belt (232). A first sliding table (238) is installed on the lifting bracket (236). A moving plate (2391) is installed on the first sliding table (238). A second positioning column (2392) is installed on the moving plate (2391). The second positioning column (2392) is arranged at one end of the first roller (234) close to the first conveyor belt (232).

2. The processing equipment for the copper-like oxidized electrophoretic aluminum profile according to claim 1, wherein: A second sliding rod (267) is slidably installed on the movable cylinder (264). One end of the second sliding rod (267) extends into the movable cylinder (264). A second pressing plate (271) is installed at the end of the second sliding rod (267) extending into the movable cylinder (264). A second spring (272) is sleeved on the second sliding rod (267). One end of the second spring (272) is connected to the second pressing plate (271), and the other end is connected to the movable cylinder (264). One end of the second sliding rod (267) extends out of the movable cylinder (264) and is connected to the clamping plate (268).

3. The processing equipment for copper-imitating anodic electrophoretic aluminum profiles according to claim 1, characterized in that: A guide rod (273) is installed on the clamping plate (268). A movable block (274) is slidably installed on the guide rod (273). A third spring (275) is sleeved on the guide rod (273). One end of the third spring (275) is connected to the movable block (274), and the other end is connected to the clamping plate (268). A clip (276) is installed on the movable block (274).

4. The processing equipment for the copper-like oxidized electrophoretic aluminum profile according to claim 1, wherein: An inclined plane for guiding the profile is formed on the clamping plate (268).

5. The processing equipment for the copper imitation oxidized electrophoretic aluminum profile according to claim 1, characterized in that: The blanking device (3) includes a second mounting bracket (31). A second roller (32) is rotatably installed on the second mounting bracket (31). A second transport bracket (33) is installed on the second mounting bracket (31). A second conveyor belt (34) is installed on the second transport bracket (33). A second motor (35) for controlling the operation of the second conveyor belt (34) is installed on the second transport bracket (33).

6. A processing technology for imitation copper oxidized electrophoretic aluminum profiles, based on the processing equipment for any one of the imitation copper oxidized electrophoretic aluminum profiles described in claims 1-5, characterized in that: It includes the following steps: The first step is cutting. The profile is transported into the profile cutting machine (1) through the feeding device (2) for cutting. The second step is punching. The cut profile is taken out from the profile cutting machine (1), and then punching is performed on the profile. The third step is assembling corner codes. Corner codes are assembled at both ends of the profile. The fourth step is collecting. The profiles with assembled corner codes are uniformly collected and placed on the storage rack.

Citation Information

Patent Citations

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