Aluminum alloy transparent conductive anode oxide film producing and processing device
By introducing the volume control output technology of the feeder and spiral shaft in the aluminum alloy anodized film production and processing equipment, as well as the design and rotation angle adjustment of the inner and outer screening cylinders, the problem of inability to adjust the feed control and screen hole size in existing equipment is solved, and the screening effect is significantly improved.
Patent Information
- Application Number
- CN202510496408.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2025-05-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing aluminum alloy anodized film production and processing equipment has problems such as poor feed control and unadjusted screen hole size during the crushing and screening process, resulting in unsatisfactory screening effect.
By using a feeder and a spiral shaft in the crushing mechanism, the volume control output of the crushed raw materials is achieved; the inner and outer screening cylinders are designed in the screening mechanism, and the rotation angle of the outer screening cylinder is adjusted to adjust the size of the screen hole to flexibly control the raw material specifications.
It effectively avoids uneven screening caused by excessive feeding of crushed raw materials, realizes flexible control of raw material specifications, and improves screening effect.
Smart Images

Figure CN120022976A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of oxide film production and processing, and in particular to a production and processing device for an aluminum alloy transparent conductive anodized film. Background Art
[0002] In an acidic solution, when the aluminum anode is oxidized under the action of an external current, two processes occur simultaneously: the formation of an oxide film and the dissolution of an oxide film. When the film formation rate exceeds the film dissolution rate, an oxide film actually exists on the aluminum surface, thus forming an anodic oxide film. In an acidic solution, when the aluminum anode is oxidized under the action of an external current, two processes occur simultaneously: the formation of an oxide film and the dissolution of an oxide film. Before oxidation, the oxidized raw materials need to be crushed to facilitate mixing of different materials for the next step of processing.
[0003] Chinese patent document CN116351528A discloses an aluminum alloy anodized film production and processing equipment. In view of the problems in the prior art related to the field of crushing and screening technology, the following scheme is proposed, including a device base, a first support block and a second support block are respectively provided on the left and right sides of the upper end of the device base, and a screening device is provided at one end of the first support block and the second support block that are close to each other, and a collecting plate is provided at the upper end of the device base, and the collecting plate is located between the first support block and the second support block, and a crushing device is provided at the upper end of the first support block and the second support block. The design of the screening device increases the stability of the device during operation, and the design of the discharge chute and the feed chute prevents excessive raw materials from affecting the screening effect, and at the same time, the mutual cooperation between the discharge chute and the screw conveying device. However, the feeding control of the crushed material during use and the size of the screened particles during screening cannot be adjusted, resulting in poor screening effect. Summary of the invention
[0004] The purpose of the present invention is to solve at least one of the technical problems existing in the prior art, and to provide an aluminum alloy transparent conductive anodized film production and processing device. The crushed raw materials are transmitted by a spiral shaft through a distributor in a crushing mechanism, and the output of the crushed materials is controlled according to the rotation speed, so that when the crushed raw materials enter the screening mechanism, excessive feeding is avoided, which leads to uneven screening. Through the design of inner and outer screening cylinders in the screening mechanism, the size of the sieve holes formed by the combination of the inner and outer screening cylinders can be adjusted by fine-tuning the rotation angle of the outer screening cylinder, so as to realize flexible control of the specifications of the screened raw materials.
[0005] The present invention also provides a production and processing device for an aluminum alloy transparent conductive anodized film, comprising a base, a crushing mechanism, a material return mechanism, and a screening mechanism, wherein a first support platform is fixedly connected to the left upper surface of the base, a second support platform is fixedly connected to the right upper surface of the base, the crushing mechanism is located on the upper surface of the first support platform, and the material return mechanism is located on the upper surface of the second support platform; The crushing mechanism includes a crushing box, a distributor, and a base frame. The upper surface of the base frame is fixedly connected to the second motor, the upper surface of the base frame is fixedly connected to the crushing box, the inside of the crushing box is rotatably connected to a first gear roller, the inside of the crushing box is rotatably connected to a second gear roller, the lower surface of the base frame is fixedly connected to the distributor, the input end of the distributor is connected to the output end of the crushing box, the outer surface of the distributor is fixedly connected to the first motor, the inside of the distributor is provided with an arc groove, the inside of the arc groove is rotatably connected to a spiral shaft, and the output end of the distributor is fixedly connected to a material guide nozzle; The material return mechanism includes a collecting cover and a conveying auger. The lower surface of the collecting cover is fixedly connected with a material return bin. The output end of the material return bin is connected with the input end of the conveying auger. The output end of the conveying auger is fixedly connected with a transfer bin. The output end of the transfer bin is fixedly connected with a material return conduit. The material return conduit is connected with the inside of the crushed material box. The screening mechanism comprises a material collection bin, an outer screening drum and an inner screening drum, the left surface of the material collection bin is fixedly connected with a left supporting plate, the right surface of the material collection bin is fixedly connected with a right supporting plate, the inner screening drum is arranged inside the outer screening drum, the outer surfaces of the outer screening drum and the inner screening drum are both provided with screening holes, the screening holes of the outer screening drum overlap with the screening holes of the inner screening drum, the left end portion of the outer screening drum is fixedly connected with an outer drum connecting seat, the right end portion of the outer screening drum is fixedly connected with a rotating disk, the left end portion of the inner screening drum is fixedly connected with an inner drum connecting seat, the right end portion of the inner screening drum is fixedly connected with a discharging rotating interface, the outer surface of the inner screening drum is fixedly connected with an annular raceway, the left surface of the annular raceway is provided with engaging teeth, the rotating disk is rotatably connected to the right surface of the annular raceway, and the outer drum connecting seat is rotatably connected to the inner drum connecting seat.
[0006] The outer surface of the inner cylinder connecting seat is fixedly connected with a balance bracket, and both ends of the balance bracket are fixedly connected with an electromagnetic brake, the outer surface of the outer cylinder connecting seat is fixedly connected with a brake disc, and the outer surface of the outer cylinder connecting seat is fixedly connected with a toothed disc, and the brake disc is movably connected to the electromagnetic brake, and the outer surface of the left support plate is fixedly connected with an L-shaped bracket, and the outer surface of the L-shaped bracket is fixedly connected with a telescopic push rod 2, and the output end of the telescopic push rod 2 is fixedly connected with a slide seat, and the upper surface of the slide seat is fixedly connected with a third motor, and the output end of the third motor is meshed with the toothed disc through a gear, and the slide seat is slidably connected to the L-shaped bracket; The inner surface of the left support plate is fixedly connected with a cross beam, and the other end of the cross beam is fixedly connected to the right support plate, and the left and right sides of the upper surface of the cross beam are fixedly connected with seven-shaped brackets, and the lower surface of the seven-shaped bracket is fixedly connected with a telescopic push rod 1, and the output end of the telescopic push rod 1 is fixedly connected with a cleaning brush, and the cleaning brush is slidably connected to the cross beam, and the brush head of the cleaning brush is movably connected to the outer screening drum; the upper surface of the first support platform is fixedly connected with a fourth motor, and the output end of the fourth motor is meshed with the meshing teeth on the left side surface of the annular raceway through a gear, and the upper surface of the first support platform is fixedly connected with a driven guide wheel, and the driven guide wheel is rollingly connected to the annular raceway, and the upper surface of the second support platform is fixedly connected with a driven guide seat, and the driven guide seat is rotatably connected to the inner cylinder connecting seat.
[0007] According to a production and processing device for transparent conductive anodized film of aluminum alloy provided by the present invention, one end of the gear roller 1 is fixedly connected to a driving gear, one end of the gear roller 2 is fixedly connected to a driven gear, the driving gear is meshed with the driven gear, and the output end of the second motor is meshed with the driving gear through a gear. Effective rotation of the gear roller 1 and the gear roller 2 is achieved to crush the raw material.
[0008] According to the aluminum alloy transparent conductive anodized film production and processing device provided by the present invention, the output end of the first motor is fixedly connected to the spiral shaft, the discharge end of the spiral shaft is connected to the inside of the guide nozzle, and the bottom frame is fixedly connected to the upper surface of the first support platform through the legs, so as to realize the quantitative output of the crushed raw materials.
[0009] According to an aluminum alloy transparent conductive anodized film production and processing device provided by the present invention, the upper surface of the return bin is fixedly connected to a support frame, the end face of the support frame is fixedly connected to the outer surface of the transfer bin, and the lower surface of the return bin is fixedly connected to the upper surface of the second support platform.
[0010] According to the aluminum alloy transparent conductive anodized film production and processing device provided by the present invention, the upper surface of the collection bin is fixedly connected with a top plate, the lower surface of the collection bin is fixedly connected with a material discharge guide plate, the lower surface of the collection bin is provided with a material discharge port, and one end of the material discharge guide plate is fixedly connected to the edge of the material discharge port. The screened raw materials are effectively discharged through the lower material guide plate to avoid accumulation inside the collection bin.
[0011] According to a production and processing device for an aluminum alloy transparent conductive anodized film provided by the present invention, the lower surface of the left support plate is fixedly connected to the upper surface of the first support platform, the lower surface of the right support plate is fixedly connected to the upper surface of the second support platform, the outer surfaces of the left support plate and the right support plate are both provided with through holes, and the left and right side surfaces of the outer screening cylinder both pass through the through holes and are rotatably connected to the inner walls of the through holes.
[0012] According to the aluminum alloy transparent conductive anodized film production and processing device provided by the present invention, the material guide nozzle is rotatably connected to the inner cylinder connection seat, a channel is provided at the center of the inner cylinder connection seat, the output end of the material guide nozzle is connected to the inside of the channel, and the other end of the channel is connected to the inside of the inner screening cylinder, so that the material can be effectively introduced into the screening mechanism for screening processing.
[0013] According to the aluminum alloy transparent conductive anodized film production and processing device provided by the present invention, the output end of the discharge rotary interface is rotatably connected to the input end of the collection cover, so that the raw materials that do not meet the specifications during screening can be collected.
[0014] Compared with the prior art, the present invention is an aluminum alloy transparent conductive anodized film production and processing device, which uses a spiral shaft to transmit the crushed raw materials through the distributor in the crushing mechanism, and realizes the controlled output of the crushed materials according to the different rotation speeds, so that when the crushed raw materials enter the screening mechanism, excessive feeding can be avoided, resulting in uneven screening.
[0015] Compared with the prior art, the present invention is an aluminum alloy transparent conductive anodized film production and processing device, through the design of inner and outer screening cylinders in the screening mechanism, and through fine-tuning the rotation angle of the outer screening cylinder to achieve adjustable size of the sieve holes formed by the combination of the inner and outer screening cylinders, thereby achieving flexible control of the specifications of the screened raw materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention is further described below in conjunction with the accompanying drawings and embodiments; Figure 1 This is an overall structural diagram of an aluminum alloy transparent conductive anodized film production and processing device of the present invention; Figure 2 This is a left side view of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 3 This is a right side view of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 4 A bottom view of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 5 A top view of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 6 It is a rear view of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 7 It is a schematic diagram of the structure of a material distributor in a material crushing mechanism of a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Figure 8It is a schematic diagram of the internal structure of a screening mechanism in a production and processing device for an aluminum alloy transparent conductive anodized film according to the present invention; Fig. 9 It is a schematic diagram of the structure of inner and outer screening cylinders in a screening mechanism of an aluminum alloy transparent conductive anodic oxide film production and processing device of the present invention; Fig.10 This is a cross-sectional view of inner and outer screening cylinders in a screening mechanism of an aluminum alloy transparent conductive anodized film production and processing device of the present invention.
[0017] Legend: 1. Base; 2. First support platform; 3. Second support platform; 4. Crushing mechanism; 401. Base frame; 402. Crushing box; 403. Distributor; 404. Guide nozzle; 405. First motor; 406. Screw shaft; 407. Driving gear; 408. Driven gear; 409. Gear roller 1; 410. Gear roller 2; 411. Second motor; 5. Return mechanism; 501. Collecting cover; 502. Return bin; 503. Support frame; 504. Conveying auger; 505. Transfer bin; 506. Return conduit; 6. Screening mechanism; 601. Collecting bin; 602. Top plate; 603. Left support plate; 604. Right support Plate; 605, material discharge guide plate; 606, material discharge port; 607, outer screening cylinder; 608, crossbeam; 609, seven-shaped bracket; 610, telescopic push rod one; 611, cleaning brush; 612, toothed disc; 613, rotating disc; 614, L-shaped bracket; 615, telescopic push rod two; 616, sliding seat; 617, third motor; 618, inner screening cylinder; 619, material discharge rotating interface; 620, annular raceway; 621, outer cylinder connecting seat; 622, brake disc; 623, inner cylinder connecting seat; 624, balance bracket; 625, electromagnetic brake; 626, fourth motor; 627, driven guide wheel; 628, driven guide seat. DETAILED DESCRIPTION
[0018] This section will describe in detail the specific embodiments of the present invention. The preferred embodiments of the present invention are shown in the accompanying drawings. The purpose of the accompanying drawings is to supplement the description of the text part of the specification with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present invention, but it cannot be understood as a limitation on the scope of protection of the present invention.
[0019] Reference Figure 1-10 An embodiment of the present invention is a production and processing device for an aluminum alloy transparent conductive anodized film, which includes a base 1, a crushing mechanism 4, a returning mechanism 5, and a screening mechanism 6. The left upper surface of the base 1 is fixedly connected to a first support platform 2, and the right upper surface of the base 1 is fixedly connected to a second support platform 3. The crushing mechanism 4 is located on the upper surface of the first support platform 2, and the returning mechanism 5 is located on the upper surface of the second support platform 3.
[0020] The crushing mechanism 4 includes a crushing box 402, a divider 403, and a base frame 401. The upper surface of the base frame 401 is fixedly connected to the second motor 411, the upper surface of the base frame 401 is fixedly connected to the crushing box 402, the inside of the crushing box 402 is rotatably connected to the gear roller 1 409, the inside of the crushing box 402 is rotatably connected to the gear roller 2 410, the lower surface of the base frame 401 is fixedly connected to the divider 403, and the input end of the divider 403 is connected to the output end of the crushing box 402.
[0021] The outer surface of the distributor 403 is fixedly connected with the first motor 405, the inside of the distributor 403 is provided with an arc groove, the inside of the arc groove is rotatably connected with the spiral shaft 406, the output end of the distributor 403 is fixedly connected with the guide nozzle 404, one end of the gear roller 1 409 is fixedly connected with the driving gear 407, one end of the gear roller 2 410 is fixedly connected with the driven gear 408, the driving gear 407 is meshed and connected with the driven gear 408, and the output end of the second motor 411 is meshed and connected with the driving gear 407 through a gear. The output end of the first motor 405 is fixedly connected with the spiral shaft 406, the discharge end of the spiral shaft 406 is connected with the inside of the guide nozzle 404, and the bottom frame 401 is fixedly connected with the upper surface of the first support platform 2 through the legs. The guide nozzle 404 is rotatably connected with the inner cylinder connection seat 623, and a channel is provided at the center of the inner cylinder connection seat 623. The output end of the guide nozzle 404 is connected with the inside of the channel, and the other end of the channel is connected with the inside of the inner screening cylinder 618.
[0022] The return material mechanism 5 includes a collecting hood 501 and a conveying auger 504. The lower surface of the collecting hood 501 is fixedly connected with a return material bin 502. The output end of the return material bin 502 is connected to the input end of the conveying auger 504. The output end of the conveying auger 504 is fixedly connected with a transfer bin 505. The output end of the transfer bin 505 is fixedly connected with a return material conduit 506. The return material conduit 506 is connected to the interior of the crushing box 402. The upper surface of the return material bin 502 is fixedly connected with a support frame 503. The end face of the support frame 503 is fixedly connected to the outer surface of the transfer bin 505. The lower surface of the return material bin 502 is fixedly connected to the upper surface of the second support platform 3.
[0023] The screening mechanism 6 includes a material collecting bin 601, an outer screening drum 607, and an inner screening drum 618. The left surface of the material collecting bin 601 is fixedly connected with a left support plate 603, and the right surface of the material collecting bin 601 is fixedly connected with a right support plate 604. The inner screening drum 618 is arranged inside the outer screening drum 607. The outer surfaces of the outer screening drum 607 and the inner screening drum 618 are both provided with sieve holes. The sieve holes of the outer screening drum 607 and the sieve holes of the inner screening drum 618 overlap with each other. The left end of the outer screening drum 607 is fixedly connected with the outer drum connecting plate 603. Seat 621, the right end of the outer screening cylinder 607 is fixedly connected with a rotating disk 613, the left end of the inner screening cylinder 618 is fixedly connected with an inner cylinder connecting seat 623, the right end of the inner screening cylinder 618 is fixedly connected with a discharge rotating interface 619, the outer surface of the inner screening cylinder 618 is fixedly connected with an annular raceway 620, the left surface of the annular raceway 620 is provided with engaging teeth, the rotating disk 613 is rotatably connected to the right surface of the annular raceway 620, and the outer cylinder connecting seat 621 is rotatably connected to the inner cylinder connecting seat 623.
[0024] The outer surface of the inner cylinder connecting seat 623 is fixedly connected with a balance bracket 624, and both ends of the balance bracket 624 are fixedly connected with an electromagnetic brake 625. The outer surface of the outer cylinder connecting seat 621 is fixedly connected with a brake disc 622, and the outer surface of the outer cylinder connecting seat 621 is fixedly connected with a toothed disc 612. The brake disc 622 is movably connected to the electromagnetic brake 625. The outer surface of the left support plate 603 is fixedly connected with an L-shaped bracket 614, and the outer surface of the L-shaped bracket 614 is fixedly connected with a telescopic push rod 2 615, and the output end of the telescopic push rod 2 615 is fixedly connected with a slide 616, and the upper surface of the slide 616 is fixedly connected with a third motor 617, and the output end of the third motor 617 is meshed with the toothed disc 612 through a gear, and the slide 616 is slidably connected to the L-shaped bracket 614.
[0025] The inner surface of the left support plate 603 is fixedly connected with a crossbeam 608, and the other end of the crossbeam 608 is fixedly connected to the right support plate 604. The upper surface of the crossbeam 608 is fixedly connected to seven-shaped brackets 609 on both sides, and the lower surface of the seven-shaped bracket 609 is fixedly connected to a telescopic push rod 610. The output end of the telescopic push rod 610 is fixedly connected to a cleaning brush 611. The cleaning brush 611 is slidably connected to the crossbeam 608, and the brush head of the cleaning brush 611 is connected to the outer screening cylinder. 607 is actively connected; the upper surface of the first support platform 2 is fixedly connected with a fourth motor 626, and the output end of the fourth motor 626 is meshed with the meshing teeth on the left surface of the annular raceway 620 through a gear; the upper surface of the first support platform 2 is fixedly connected with a driven guide wheel 627, and the driven guide wheel 627 is rollingly connected to the annular raceway 620; the upper surface of the second support platform 3 is fixedly connected with a driven guide seat 628, and the driven guide seat 628 is rotationally connected to the inner cylinder connecting seat 623.
[0026] The upper surface of the material collecting bin 601 is fixedly connected with a top plate 602, the lower surface of the material collecting bin 601 is fixedly connected with a material discharging guide plate 605, the lower surface of the material collecting bin 601 is provided with a material discharging port 606, one end of the material discharging guide plate 605 is fixedly connected with the edge of the material discharging port 606. The lower surface of the left support plate 603 is fixedly connected with the upper surface of the first support platform 2, the lower surface of the right support plate 604 is fixedly connected with the upper surface of the second support platform 3, the outer surfaces of the left support plate 603 and the right support plate 604 are both provided with through holes, the left and right side surfaces of the outer screening cylinder 607 are both penetrated by the through holes and are rotatably connected with the inner wall of the through holes. The output end of the material discharging rotating interface 619 is rotatably connected with the input end of the collecting cover 501.
[0027] Working principle: When in use, first adjust the crushing mechanism 4 according to the size of the oxide film raw material after crushing. When adjusting, first push the third motor 617 forward through the telescopic push rod 2 615, so that the gear on the third motor 617 is engaged with the toothed disc 612, the third motor 617 is energized, and the electromagnetic brake 625 is started at the same time, and the force of the brake block in the electromagnetic brake 625 acting on the surface of the brake disc 622 is released, and the third motor 617 works to drive the outer screening drum 607 to rotate. The third motor 617 is controlled by the controller, and the number of circles and angles of its rotation are set. After rotating to the specified position, the electromagnetic brake 625 is powered off, and the brake block is used to lock the brake disc 622. The telescopic push rod 2 615 is started again to push the third motor 617 backward, so that the gear is disengaged from the toothed disc 612.
[0028] The oxide film raw material enters the crushing mechanism 4, and the second motor 411 drives the gear roller 1 409 and the gear roller 2 410 to rotate, and the raw material is crushed. The crushed raw material falls into the distributor 403, and the first motor 405 drives the spiral shaft 406 to rotate, and the crushed material is introduced into the inner screening cylinder 618 through the guide nozzle 404; During screening, the fourth motor 626 works, and the gear at the output end of the fourth motor 626 is meshed with the meshing teeth set on the left side of the annular raceway 620 to drive the inner screening drum 618 to rotate. When the inner screening drum 618 rotates, the brake disc 622 on the outer screening drum 607 is locked by the electromagnetic brake 625. Therefore, when the inner screening drum 618 rotates, the outer screening drum 607 is synchronously driven to rotate, and the crushed materials are screened. Qualified crushed materials are discharged through the discharge port 606 at the bottom of the collecting bin 601, and unqualified crushed materials enter the collecting cover 501 through the discharge rotating interface 619, and fall into the return bin 502 uniformly. The unqualified crushed materials are transported to the transfer bin 505 through the conveying auger 504, and are re-introduced into the crushing box 402 through the return conduit 506 for re-crushing.
[0029] After long-term use, the filter holes of the inner screening cylinder 618 and the outer screening cylinder 607 need to be cleaned regularly. During cleaning, the telescopic push rod 1 610 is activated to move the cleaning brush 611 downward so that the brush head contacts the surface of the outer screening cylinder 607. The filter holes pass through the brush head in sequence through the synchronous rotation of the inner screening cylinder 618 and the outer screening cylinder 607. After cleaning, the telescopic push rod 1 610 is activated again to drive the cleaning brush 611 to move upward to the initial position.
[0030] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the knowledge scope of ordinary technicians in the technical field without departing from the purpose of the present invention.
Claims
1. A production and processing device for an aluminum alloy transparent conductive anodized film, comprising a base (1), a crushing mechanism (4), a material returning mechanism (5), and a screening mechanism (6), characterized in that: A first support platform (2) is fixedly connected to the left upper surface of the base (1), a second support platform (3) is fixedly connected to the right upper surface of the base (1), the material crushing mechanism (4) is located on the upper surface of the first support platform (2), and the material returning mechanism (5) is located on the upper surface of the second support platform (3); The screening mechanism (6) comprises a material collection bin (601), an outer screening drum (607), and an inner screening drum (618); the left side surface of the material collection bin (601) is fixedly connected to a left support plate (603); the right side surface of the material collection bin (601) is fixedly connected to a right support plate (604); the inner screening drum (618) is arranged inside the outer screening drum (607); the outer surfaces of the outer screening drum (607) and the inner screening drum (618) are both provided with screening holes; the screening holes of the outer screening drum (607) and the screening holes of the inner screening drum (618) overlap with each other; the left end portion of the outer screening drum (607) is fixedly connected to an outer screening drum (618); A cylinder connecting seat (621), the right end of the outer screening cylinder (607) is fixedly connected to a rotating disk (613), the left end of the inner screening cylinder (618) is fixedly connected to an inner cylinder connecting seat (623), the right end of the inner screening cylinder (618) is fixedly connected to a discharge rotating interface (619), the outer surface of the inner screening cylinder (618) is fixedly connected to an annular raceway (620), the left surface of the annular raceway (620) is provided with engaging teeth, the rotating disk (613) is rotatably connected to the right surface of the annular raceway (620), and the outer cylinder connecting seat (621) is rotatably connected to the inner cylinder connecting seat (623); The outer surface of the inner cylinder connection seat (623) is fixedly connected to a balancing bracket (624), and both ends of the balancing bracket (624) are fixedly connected to an electromagnetic brake (625). The outer surface of the outer cylinder connection seat (621) is fixedly connected to a brake disc (622), and the outer surface of the outer cylinder connection seat (621) is fixedly connected to a toothed disc (612). The brake disc (622) is movably connected to the electromagnetic brake (625). The outer surface of the left support plate (603) is fixedly connected to an L-shaped bracket (614), and the outer surface of the L-shaped bracket (614) is fixedly connected to a telescopic push rod 2 (615). The output end of the telescopic push rod 2 (615) is fixedly connected to a slide seat (616), and the upper surface of the slide seat (616) is fixedly connected to a third motor (617). The output end of the third motor (617) is meshed with the toothed disc (612) via a gear, and the slide seat (616) is slidably connected to the L-shaped bracket (614). A crossbeam (608) is fixedly connected to the inner surface of the left support plate (603); the other end of the crossbeam (608) is fixedly connected to the right support plate (604); seven-shaped brackets (609) are fixedly connected to the left and right sides of the upper surface of the crossbeam (608); a telescopic push rod (610) is fixedly connected to the lower surface of the seven-shaped bracket (609); a cleaning brush (611) is fixedly connected to the output end of the telescopic push rod (610); the cleaning brush (611) is slidably connected to the crossbeam (608); and a brush head of the cleaning brush (611) is movably connected to the outer screening cylinder (607); A fourth motor (626) is fixedly connected to the upper surface of the first support platform (2), and an output end of the fourth motor (626) is meshed with the meshing teeth on the left surface of the annular raceway (620) via a gear. A driven guide wheel (627) is fixedly connected to the upper surface of the first support platform (2), and the driven guide wheel (627) is rollingly connected to the annular raceway (620). A driven guide seat (628) is fixedly connected to the upper surface of the second support platform (3), and the driven guide seat (628) is rotationally connected to the inner cylinder connecting seat (623).
2. The device for producing and processing an aluminum alloy transparent conductive anodized film according to claim 1, characterized in that: The crushing mechanism (4) comprises a crushing box (402), a distributor (403), and a base frame (401); the upper surface of the base frame (401) is fixedly connected to a second motor (411); the upper surface of the base frame (401) is fixedly connected to the crushing box (402); the inside of the crushing box (402) is rotatably connected to a first gear roller (409); the inside of the crushing box (402) is rotatably connected to a second gear roller (410); the lower surface of the base frame (401) is fixedly connected to the distributor (403); the input end of the distributor (403) is connected to the output end of the crushing box (402); the outer surface of the distributor (403) is fixedly connected to a first motor (405); the inside of the distributor (403) is provided with an arc groove; the inside of the arc groove is rotatably connected to a spiral shaft (406); the output end of the distributor (403) is fixedly connected to a material guide nozzle (404); One end of the gear roller 1 (409) is fixedly connected to a driving gear (407), one end of the gear roller 2 (410) is fixedly connected to a driven gear (408), the driving gear (407) is meshingly connected to the driven gear (408), and the output end of the second motor (411) is meshingly connected to the driving gear (407) via a gear.
3. The device for producing and processing an aluminum alloy transparent conductive anodized film according to claim 1, characterized in that: The output end of the first motor (405) is fixedly connected to the screw shaft (406), the discharge end of the screw shaft (406) is connected to the inside of the material guide nozzle (404), and the base frame (401) is fixedly connected to the upper surface of the first support platform (2) via the supporting legs.
4. The device for producing and processing an aluminum alloy transparent conductive anodized film according to claim 2, characterized in that: The material return mechanism (5) comprises a collecting cover (501) and a conveying auger (504); a material return bin (502) is fixedly connected to the lower surface of the collecting cover (501); an output end of the material return bin (502) is connected to an input end of the conveying auger (504); the output end of the conveying auger (504) is fixedly connected to a transfer bin (505); the output end of the transfer bin (505) is fixedly connected to a material return conduit (506); and the material return conduit (506) is communicated with the interior of the crushed material box (402); The upper surface of the return bin (502) is fixedly connected to a support frame (503), the end surface of the support frame (503) is fixedly connected to the outer surface of the transfer bin (505), and the lower surface of the return bin (502) is fixedly connected to the upper surface of the second support platform (3).
5. The device for producing and processing an aluminum alloy transparent conductive anodized film according to claim 1, characterized in that: The upper surface of the material collecting bin (601) is fixedly connected to a top plate (602), the lower surface of the material collecting bin (601) is fixedly connected to a material discharge guide plate (605), the lower surface of the material collecting bin (601) is provided with a material discharge port (606), and one end of the material discharge guide plate (605) is fixedly connected to the edge of the material discharge port (606).
6. The aluminum alloy transparent conductive anodized film production and processing device according to claim 1, characterized in that: The lower surface of the left support plate (603) is fixedly connected to the upper surface of the first support platform (2), and the lower surface of the right support plate (604) is fixedly connected to the upper surface of the second support platform (3). The outer surfaces of the left support plate (603) and the right support plate (604) are both provided with through holes, and the left and right side surfaces of the outer screening cylinder (607) are both penetrated by the through holes and are rotatably connected to the inner walls of the through holes.
7. The aluminum alloy transparent conductive anodized film production and processing device according to claim 1, characterized in that: The material guide nozzle (404) is rotatably connected to the inner cylinder connecting seat (623); a channel is provided at the center of the inner cylinder connecting seat (623); the output end of the material guide nozzle (404) is connected to the inside of the channel; and the other end of the channel is connected to the inside of the inner screening cylinder (618).
8. The device for producing and processing an aluminum alloy transparent conductive anodized film according to claim 1, characterized in that: The output end of the discharge rotating interface (619) is rotationally connected to the input end of the collection cover (501).
Citation Information
Patent Citations
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