Overturning structure for heavy aluminum plate
By designing a flip structure including a U-shaped mounting base, a rotating plate and a motor system, the problem of inconvenient flip operation of heavy-duty aluminum sheets is solved, stable and convenient flip operation is achieved, and processing safety and operation convenience are improved.
Patent Information
- Application Number
- CN202421495404.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-27
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-06-27
AI Technical Summary
During the processing of aluminum sheets, the flip operation of heavy-duty aluminum sheets is inconvenient when using lifting equipment and cannot meet the processing needs.
A flip structure is designed, including a U-shaped mounting base, a rotating plate, a clamping bearing plate and a motor system, and a stable flip of the heavy-duty aluminum sheet is achieved through synchronous rotation and clamping adjustment.
It realizes convenient and stable flip operation of heavy-duty aluminum sheets, improves processing safety and operation convenience, and meets the needs of flip processing of heavy-duty aluminum sheets.
Smart Images

Figure CN222818871U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of aluminum plate processing, in particular to a turnover structure for heavy aluminum plates. Background Art
[0002] Aluminum sheet is a type of aluminum material. It refers to the use of plastic processing methods to process aluminum billets through rolling, extrusion, stretching and forging to finally manufacture them into plate-type aluminum products. In order to ensure the final performance of the plate, the finished product is annealed, solution treated, quenched, naturally aged and artificially aged. Aluminum sheets have a wide range of uses, and aluminum sheets can be processed into light, medium and heavy types according to usage requirements. During the processing of aluminum sheets, its surface needs to be processed. At present, when the surface of aluminum sheets is processed, the aluminum sheets are usually placed on a processing table. After one side is processed, the aluminum sheets need to be turned over by a lifting device. It is more convenient to turn over some smaller and lighter aluminum sheets, but for the flipping operation of heavy aluminum sheets, the lifting and flipping operation of the lifting equipment is very inconvenient, which cannot meet the usage requirements of aluminum sheet processing. Therefore, improvements are needed to address the above problems. Utility Model Content
[0003] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a flipping structure for heavy-duty aluminum plates, comprising a U-shaped mounting base, two rotating plates, a first clamping load plate and a second clamping load plate, the two rotating plates being mounted on both sides inside the U-shaped mounting base and being capable of rotational adjustment, the first clamping load plate and the second clamping load plate being located between the two rotating plates and being capable of effective movement and adjustment to support and clamp the heavy-duty aluminum plates, two reinforcing rods being fixedly connected between the ends of the two rotating plates, and anti-slip grooves being equidistantly provided on opposite sides of the first clamping load plate and the second clamping load plate.
[0004] Preferably, the upper parts of both sides inside the U-shaped mounting base are rotatably connected with rotating shafts, the middle parts of the opposite sides of the two rotating plates are respectively fixedly connected to the ends of the two rotating shafts, and the middle parts of the two rotating shafts are symmetrically fixedly installed with first bevel gears, both sides inside the U-shaped mounting base are rotatably connected with first rotating long shafts, the tops of the two first rotating long shafts are fixedly connected with second bevel gears, the two second bevel gears are respectively meshed with the two first bevel gears, and the bottoms of the two rotating long shafts are fixedly connected with third bevel gears.
[0005] Preferably, a double-shaft motor is installed in the middle of the bottom of the U-shaped mounting base, and the two output ends of the double-shaft motor are respectively rotatably connected to the second rotating long shaft on both sides of the inside of the U-shaped mounting base, and one end of the two second rotating long shafts are symmetrically fixed with fourth bevel gears, and the two fourth bevel gears are respectively meshed with the two third bevel gears, so that the two rotating plates can be rotated and adjusted synchronously.
[0006] Preferably, a first slide groove is opened in the middle of the opposite sides of the two rotating plates, the inside of the four first slide grooves are rotatably connected with a threaded shaft, the surfaces of the four threaded shafts are threadedly connected with a first sliding block, the two first sliding blocks opposite to each other on the two rotating plates are respectively fixedly connected to the middle of the two ends of the first clamping carrier plate and the second clamping carrier plate, one end of the four threaded shafts extends to the outside of the end of the two rotating plates and is fixedly connected with a sprocket, a chain is installed between the two sprockets at the same end of the two rotating plates, an n-shaped plate is installed at both ends of one of the rotating plates, a forward and reverse motor is installed in the middle of the n-shaped plate, and the output ends of the two forward and reverse motors are respectively fixedly connected to the axis center of the two sprockets on one of the rotating plates, so that the first clamping carrier plate and the second clamping carrier plate can be adjusted respectively.
[0007] Preferably, second sliding blocks are fixedly installed at both ends of the two first clamping supporting plates and the second clamping supporting plates, and two second sliding grooves are symmetrically opened at both ends of the opposite sides of the two rotating plates, and the two second sliding blocks are respectively slidably installed inside the two second sliding grooves, so that the first clamping supporting plate and the second clamping supporting plate can be stably slidably moved and adjusted.
[0008] Compared with the prior art, the beneficial effects of the utility model are as follows: by providing a U-shaped mounting base, a rotating plate, a first clamping bearing plate, a second clamping bearing plate, a rotating shaft, a first bevel gear, a first rotating long shaft, a second bevel gear, a third bevel gear, a fourth bevel gear, a double-output shaft motor, a first slide groove, a threaded shaft, a first sliding block, a sprocket, a chain, an n-shaped plate and a forward and reverse motor, the flipping structure has a clamping and fixing flipping function, and can conveniently and stably flip and turn over heavy aluminum plates, thereby effectively ensuring the safety of the flipping processing of heavy aluminum plates, and facilitating the processing and flipping operations of heavy aluminum plates. At the same time, the flipping structure has a simple structural design, is easy and convenient to use, and is stable and reliable to adjust. Its performance can meet the use requirements of the flipping processing of heavy aluminum plates. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention.
[0010] In the attached picture:
[0011] Figure 1 This is a schematic diagram of the turning structure of the utility model for heavy aluminum plates;
[0012] Figure 2 For this utility model Figure 1 A schematic cross-sectional structure diagram of ;
[0013] Figure 3 For this utility model Figure 2 A schematic diagram of a partial cross-sectional structure;
[0014] In the figure: 1. U-shaped mounting base; 2. rotating plate; 3. first clamping bearing plate; 4. second clamping bearing plate; 5. rotating shaft; 6. first bevel gear; 7. first rotating long shaft; 8. second bevel gear; 9. third bevel gear; 10. fourth bevel gear; 11. double-output shaft motor; 12. first slide groove; 13. threaded shaft; 14. first sliding block; 15. sprocket; 16. chain; 17. n-shaped plate; 18. forward and reverse motor; 19. second slide groove; 20. second sliding block. DETAILED DESCRIPTION
[0015] The technical solutions in the embodiments of the utility model will be clearly and completely described below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all of the embodiments; based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the utility model.
[0016] Depend on Figures 1 to 3 The utility model includes a U-shaped mounting base 1, two rotating plates 2, a first clamping bearing plate 3 and a second clamping bearing plate 4. The two rotating plates 2 are installed on both sides inside the U-shaped mounting base 1 and can be rotated and adjusted. The first clamping bearing plate 3 and the second clamping bearing plate 4 are located between the two rotating plates 2 and can be effectively moved and adjusted to support and clamp heavy aluminum plates. Two reinforcing rods are fixedly connected between the ends of the two rotating plates 2, and anti-slip grooves are equidistantly provided on opposite sides of the first clamping bearing plate 3 and the second clamping bearing plate 4.
[0017] The upper parts of both sides of the U-shaped mounting base 1 are rotatably connected with the rotating shaft 5, the middle parts of the opposite sides of the two rotating plates 2 are respectively fixedly connected to the ends of the two rotating shafts 5, and the middle parts of the two rotating shafts 5 are symmetrically fixedly installed with the first bevel gears 6, both sides of the U-shaped mounting base 1 are rotatably connected with the first rotating long shaft 7, the tops of the two first rotating long shafts 7 are fixedly connected with the second bevel gears 8, the two second bevel gears 8 are respectively meshed with the two first bevel gears 6, and the bottoms of the two rotating long shafts 7 are fixedly connected with the third bevel gears 9, and a double-output shaft motor 11 is installed in the middle part of the bottom of the U-shaped mounting base 1, and the two output ends of the double-output shaft motor 11 are respectively rotatably connected with the second rotating long shafts on both sides of the U-shaped mounting base 1, and one end of the two second rotating long shafts is symmetrically fixedly installed with the fourth bevel gears 10, and the two fourth bevel gears 10 are respectively meshed with the two third bevel gears 9, so that the two rotating plates 2 can be synchronously rotated and adjusted;
[0018] By starting the double-output shaft motor 11, the two second rotating long shafts drive the two fourth bevel gears 10 to rotate, the rotation of the two fourth bevel gears 10 will transmit the two third bevel gears 9 and drive the two first rotating long shafts 7 to rotate, the rotation of the two first rotating long shafts 7 will drive the two second bevel gears 8 to rotate and transmit the rotation of the two first bevel gears 6, the rotation of the two first bevel gears 6 will drive the two rotating shafts 5 to rotate, so that the two rotating plates 2 can be rotated synchronously and adjusted.
[0019] A first slide groove 12 is provided in the middle of the opposite sides of the two rotating plates 2, and a threaded shaft 13 is rotatably connected inside the four first slide grooves 12. The surfaces of the four threaded shafts 13 are threadedly connected with a first sliding block 14. The two first sliding blocks 14 opposite to each other on the two rotating plates 2 are fixedly connected to the middle of the two ends of the first clamping carrier plate 3 and the second clamping carrier plate 4, respectively. One end of the four threaded shafts 13 extends to the outside of the ends of the two rotating plates 2 and is fixedly connected with a sprocket 15. A chain 16 is installed between the two sprockets 15 at the same end of the two rotating plates 2. An n-shaped plate 17 is installed at both ends of one of the rotating plates 2. A forward and reverse motor 18 is installed in the middle, and the output ends of the two forward and reverse motors 18 are respectively fixedly connected to the axis of the two sprockets 15 on one of the rotating plates 2, so that the first clamping carrier plate 3 and the second clamping carrier plate 4 can be adjusted respectively. The two ends of the two first clamping carrier plates 3 and the second clamping carrier plates 4 are fixedly installed with second sliding blocks 20, and the two ends of the opposite sides of the two rotating plates 2 are symmetrically provided with two second sliding grooves 19. The two second sliding blocks 20 are respectively slidably installed in the inside of the two second sliding grooves 19, so that the first clamping carrier plate 3 and the second clamping carrier plate 4 can be stably slid and moved for adjustment;
[0020] As shown in the accompanying drawings, a heavy aluminum sheet is placed on the surface of the second clamping carrier plate 4, and then the top of the heavy aluminum sheet is processed. When the heavy aluminum sheet needs to be turned over, the forward and reverse motor 18 close to the first clamping carrier plate 3 is started, and the two threaded shafts 13 are rotated and adjusted through the chain 16 and the two sprockets 15. The rotation of the two threaded shafts 13 causes the first clamping carrier plate 3 to move toward the second clamping carrier plate 4 through the two first sliding blocks 14 to clamp and fix the heavy aluminum sheet;
[0021] Afterwards, the first clamping carrier plate 3 and the second clamping carrier plate 4 are driven by the synchronous rotation adjustment of the two rotating plates 2 to rotate 180° and turn over the clamped heavy aluminum plate. At this time, the first clamping carrier plate 3 is located below the second clamping carrier plate 4, and then the forward and reverse motor 18 close to one side of the second clamping carrier plate 4 is started to move the second clamping carrier plate 4 upward and away from the heavy aluminum plate, thereby facilitating the processing operation on the other side of the heavy aluminum plate.
[0022] The flipping structure has a clamping, fixing and flipping function, which can conveniently and stably flip and turn over the heavy aluminum plate, thereby effectively ensuring the safety of the flipping processing of the heavy aluminum plate and facilitating the processing and flipping operation of the heavy aluminum plate.
[0023] The flip structure has a simple structural design, is easy to use, and is stable and reliable to adjust. Its performance can meet the use requirements of heavy aluminum plate flip processing.
Claims
1. A turning structure for heavy aluminum plates, comprising a U-shaped mounting base (1), two rotating plates (2), a first clamping bearing plate (3) and a second clamping bearing plate (4), characterized in that: The two rotating plates (2) are mounted on both sides of the U-shaped mounting base (1) and can be rotated and adjusted. The first clamping support plate (3) and the second clamping support plate (4) are located between the two rotating plates (2) and can be effectively moved and adjusted to support and clamp the heavy aluminum plate. Two reinforcing rods are fixedly connected between the ends of the two rotating plates (2). Anti-slip grooves are evenly spaced on the opposite sides of the first clamping support plate (3) and the second clamping support plate (4).
2. The turning structure for heavy aluminum plates according to claim 1, characterized in that: The upper parts of both sides of the U-shaped mounting base (1) are rotatably connected to the rotating shafts (5), the middle parts of the two rotating plates (2) on the opposite sides are respectively fixedly connected to the ends of the two rotating shafts (5), and the middle parts of the two rotating shafts (5) are symmetrically fixedly installed with first bevel gears (6), the two sides of the U-shaped mounting base (1) are rotatably connected to the first rotating long shafts (7), the tops of the two first rotating long shafts (7) are fixedly connected to the second bevel gears (8), the two second bevel gears (8) are respectively meshed with the two first bevel gears (6), and the bottoms of the two rotating long shafts (7) are fixedly connected to the third bevel gears (9).
3. The turning structure for heavy aluminum plates according to claim 2, characterized in that: A double-shaft motor (11) is installed in the middle of the bottom of the U-shaped mounting base (1), and two output ends of the double-shaft motor (11) are rotatably connected to second rotating long shafts on both sides of the U-shaped mounting base (1), and fourth bevel gears (10) are symmetrically fixedly installed at one end of the two second rotating long shafts, and the two fourth bevel gears (10) are respectively meshed and connected with the two third bevel gears (9).
4. The turning structure for heavy aluminum plates according to claim 1, characterized in that: A first slide groove (12) is provided in the middle of the opposite sides of the two rotating plates (2), and the insides of the four first slide grooves (12) are rotatably connected with threaded shafts (13), and the surfaces of the four threaded shafts (13) are threadedly connected with first sliding blocks (14), and the two first sliding blocks (14) opposite to each other on the two rotating plates (2) are respectively fixedly connected to the middle of the two ends of the first clamping carrier plate (3) and the second clamping carrier plate (4), one end of the four threaded shafts (13) extends to the outside of the ends of the two rotating plates (2) and is fixedly connected with a sprocket (15), and a chain (16) is installed between the two sprockets (15) at the same end of the two rotating plates (2), and an n-shaped plate (17) is installed at both ends of one of the rotating plates (2), and a forward and reverse motor (18) is installed in the middle of the n-shaped plate (17), and the output ends of the two forward and reverse motors (18) are respectively fixedly connected to the axis center of the two sprockets (15) on one of the rotating plates (2).
5. The turning structure for heavy aluminum plates according to claim 4, characterized in that: Second sliding blocks (20) are fixedly installed at both ends of the two first clamping supporting plates (3) and the second clamping supporting plates (4), and two second sliding grooves (19) are symmetrically opened at both ends of the opposite sides of the two rotating plates (2), and the two second sliding blocks (20) are respectively slidably installed inside the two second sliding grooves (19).