Aluminum alloy ingot transfer device
By designing an aluminum alloy ingot transfer device, using a motor-driven screw system to adjust the support plate height and angle, combined with buffer pads, the shaking and wear problems during the transportation of aluminum alloy ingots were solved, and stable transportation was achieved.
Patent Information
- Application Number
- CN202422985653.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-12-04
AI Technical Summary
Existing aluminum alloy ingots are prone to shaking and causing wear during transportation, especially when shaking up and down on bumpy roads. The existing fixing method cannot effectively prevent collisions between aluminum alloy ingots.
An aluminum alloy ingot transfer device was designed, which included a bottom plate, side plates, chutes, sliders, partitions, moving components and a motor-driven screw system. By adjusting the height and angle of the support plate and combining it with a buffer pad, the aluminum alloy ingots could be stably fixed and collision-proofed.
It effectively avoids the collision and wear of aluminum alloy ingots during transportation, and improves transportation stability and protection effect.
Smart Images

Figure CN223356240U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of aluminum alloy ingot transportation, and particularly relates to an aluminum alloy ingot transfer device. Background Art
[0002] Aluminum alloy ingots are made from pure aluminum and recycled aluminum. Other elements, such as silicon (Si), copper (Cu), magnesium (Mg), and iron (Fe), are added according to international standards or special requirements to improve the deficiencies of pure aluminum in castability, chemical properties, and physical properties. Aluminum alloy ingots are non-ferrous structural materials with a silvery-white appearance and are considered one of the lightest metal materials.
[0003] Existing aluminum alloy ingots need to be transported after processing. However, the aluminum alloy ingots will shake during transportation, causing collisions between the aluminum alloy ingots and wear on their surfaces. Therefore, the transported aluminum alloy ingots need to be fixed. However, currently, the stacked aluminum alloy ingots are usually clamped on both sides. However, if a bumpy road is encountered during transportation, the stacked aluminum alloy ingots are prone to shaking up and down, which can easily cause wear between the upper and lower parts of the aluminum alloy ingots. Utility Model Content
[0004] The purpose of the utility model is to solve the shortcomings of the prior art and to propose an aluminum alloy ingot transfer device.
[0005] To achieve the above purpose, the utility model provides an aluminum alloy ingot transfer device, comprising a bottom plate, side plates are evenly connected to both sides of the upper end of the bottom plate, a chute is opened in the middle of one side of the two side plates, sliders are slidably connected inside the two chute, partitions are connected between one end of several sliders and the other several sliders, and moving components are connected to both sides of the upper end of the bottom plate;
[0006] The movable assembly facilitates adjustment of the height of the two support plates;
[0007] One side of the two moving components is connected to a moving plate, and the lower part of one side of one of the moving plates is connected to a rotating component;
[0008] The rotating assembly facilitates adjustment of the angle of the support plate;
[0009] The lower parts of one side of the two movable plates are rotatably connected with a support plate, the upper ends of the two support plates are connected with a top plate, and the lower ends of the top plates are both connected with a buffer pad.
[0010] In the above technical solution, further, the moving component includes a box body, and the number of the box bodies is two groups. The lower end of the bottom plate is connected to a support seat, and the upper end of the support seat is connected to a first motor corresponding to the lower end of the two boxes. The output end of the first motor is connected to a screw rod, and the lower outer side of the screw rod is slidably connected to a moving block, and one end of the moving block extends through to one side of the box body.
[0011] In the above technical solution, further, the moving block is shaped as an inverted convex structure, a moving groove is provided on one side of the box body corresponding to one end of the moving block, and one end of the moving block slides inside the moving groove.
[0012] In the above technical solution, further, the support seat is in the shape of a U-shaped structure, and the lower end of the support seat is connected to a non-slip pad made of rubber material.
[0013] In the above technical solution, further, the rotating assembly includes a support plate, the upper end of the support plate is connected to a shell, the middle part of one side of the inner wall of the shell is connected to a second motor, the output end of the second motor extends through one side of the shell, and the output end of the second motor is connected to the lower part of one side of one of the support plates.
[0014] In the above technical solution, further, the lower part of one side of the two support plates is connected to a limiting rod, and limiting grooves are respectively provided on one side of the two movable plates corresponding to the two limiting rods. One end of the two limiting rods is respectively located in the two limiting grooves and slides, and the shape of the limiting groove is a semi-arc structure.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] Through the arrangement of the first motor, screw rod, moving block, moving plate, supporting plate, shell, second motor, support plate, top plate, buffer pad, limit rod and limit slot, it is convenient to adjust the angle and height of the top plate, which not only makes it convenient to place the top plate on the upper end of the bottom plate, but also makes it convenient to press the upper end of the aluminum alloy ingot to avoid collision between the aluminum alloy ingots.
[0017] By setting up the bottom plate, side plates, chutes, sliders and partitions, it is convenient to block multiple groups of aluminum alloy ingots, avoid bumps during transportation that may cause collisions between multiple groups of aluminum alloy ingots, and improve the stability of the aluminum alloy ingots on the upper end of the bottom plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the structure proposed by the utility model;
[0019] Figure 2 A cross-sectional view of the present invention;
[0020] Figure 3This is a schematic diagram of the structure of the chute provided by the present invention;
[0021] Figure 4 The utility model proposed Figure 2 Schematic diagram of the enlarged structure of A;
[0022] Figure 5 This is a schematic diagram of the structure of the limit groove proposed in the utility model.
[0023] In the figure: 1. bottom plate; 2. side plate; 3. slide groove; 4. slider; 5. partition; 6. box body; 7. support seat; 8. first motor; 9. screw rod; 10. moving block; 11. moving plate; 12. support plate; 13. housing; 14. second motor; 15. support plate; 16. top plate; 17. buffer pad; 18. limit rod; 19. limit groove. DETAILED DESCRIPTION
[0024] In order to more clearly understand the above-mentioned objectives, features and advantages of the present invention, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.
[0025] like Figure 1-Figure 5 The aluminum alloy ingot transfer device shown in the figure includes a bottom plate 1, side plates 2 are evenly connected to both sides of the upper end of the bottom plate 1, a chute 3 is opened in the middle of one side of each of the two side plates 2, and sliders 4 are slidably connected inside the two chute 3, wherein partitions 5 are connected between one end of several sliders 4 and other sliders 4, and moving components are connected to both sides of the upper end of the bottom plate 1. The moving components facilitate the height adjustment of the two support plates 15, and the lower part of one side of the two moving plates 11 is rotatably connected to the support plates 15, and the upper ends of the two support plates 15 are connected to the top plates 16, and the lower ends of the top plates 16 are connected to the buffer pads 17;
[0026] The slider 4 and the chute 3 are both in an inverted convex structure, which is convenient for improving the stability of the partition 5. The stacked aluminum alloy ingots are hoisted to the upper end of the bottom plate 1 by a crane, and the partition 5 is pushed so that the slider 4 slides inside the chute 3, so that the aluminum alloy ingots can be contacted on one side through the partition 5. Then, another pile of aluminum alloy ingots is hoisted to one side of one of the partitions 5 by a crane. The partition 5 can be used to block the two piles of aluminum alloy ingots to avoid contact and collision between the aluminum alloy ingots. The height of the support plate 15, the top plate 16 and the buffer pad 17 can be adjusted by moving the assembly, which is convenient for pressing the upper ends of aluminum alloy ingots of different heights.
[0027] One side of the two moving components is connected to a moving plate 11, and the moving component includes a box body 6. There are two groups of box bodies 6. The lower end of the bottom plate 1 is connected to a support seat 7. The upper end of the support seat 7 corresponds to the lower end of the two box bodies 6 and is connected to a first motor 8. The output end of the first motor 8 is connected to a screw rod 9. The lower outer part of the screw rod 9 is slidably connected to a moving block 10. One end of the moving block 10 extends through one side of the box body 6. The shape of the moving block 10 is an inverted convex structure. A moving groove is opened at one end of the box body 6 corresponding to the moving block 10. One end of the moving block 10 slides inside the moving groove. The shape of the support seat 7 is a U-shaped structure. The lower end of the support seat 7 is connected to an anti-slip pad, which is made of rubber material;
[0028] The first motor 8 drives the screw rod 9 to rotate, and then the moving block 10 and the screw rod 9 slide outside the screw rod 9, so as to drive the height of the moving plate 11, the support plate 15 and the top plate 16 to be adjusted, which is suitable for pressing the upper ends of the stacked aluminum alloy ingots of different heights, thereby improving the stability of the aluminum alloy ingots during transportation.
[0029] A rotating assembly is connected to the lower portion of one side of one of the movable plates 11. The rotating assembly facilitates adjustment of the angle of the support plate 15. The rotating assembly includes a support plate 12. The upper end of the support plate 12 is connected to a housing 13. A second motor 14 is connected to the middle of one side of the inner wall of the housing 13. The output end of the second motor 14 extends through one side of the housing 13 and is connected to the lower portion of one side of one of the support plates 15.
[0030] The support plate 12 is in an L-shaped structure. The support plate 12, the shell 13 and the second motor 14 move upward with the movable plate 11. When the support plate 15 and the top plate 16 move to the highest point, the second motor 14 drives one of the support plates 15 to rotate, thereby driving the top plate 16 and the other support plate 15 to rotate. The two limit rods 18 are respectively located in the two limit grooves 19 and slide. The limit grooves 19 can limit the rotation angle of the support plate 15, so that the support plate 15 can be driven to be parallel to the bottom plate 1, and the top plate 16 is parallel to one side of one of the side plates 2, which is convenient for loading aluminum alloy ingots.
[0031] The lower part of one side of the two support plates 15 is connected to a limiting rod 18, and one side of the two movable plates 11 is respectively provided with a limiting groove 19 corresponding to the two limiting rods 18. One end of the two limiting rods 18 is respectively located in the two limiting grooves 19 and slides therein. The limiting grooves 19 are arranged in a semi-arc structure.
[0032] When the support plate 15 rotates, the limiting rod 18 slides inside the limiting groove 19 , which can facilitate limiting the rotation angle of the support plate 15 .
[0033] Working principle: When the device is in use, when the top plate 16 is parallel to one of the side plates 2, the stacked aluminum alloy ingots are hoisted by a crane and placed on the upper end of the bottom plate 1. One side of the aluminum alloy ingot contacts one side of one of the partitions 5, pushing the partition 5 on the other side of the aluminum alloy ingot so that the other side of the aluminum alloy ingot contacts one side of the other partition 5, so as to separate multiple groups of aluminum alloy ingots. Subsequently, multiple groups of aluminum alloy ingots are placed on the upper end of the bottom plate 1 in turn to avoid collisions between multiple groups of aluminum alloy ingots. Subsequently, one of the support plates 15 is driven to rotate by the second motor 14, thereby driving the angle of the top plate 16 and the other support plate 15 to change, so that one end of the two limit rods 18 is respectively located in the two limit grooves 19 and slides, so that the top plate 16 is located at the upper end of the multiple groups of aluminum alloy ingots. The screw rod 9 is driven to rotate by the first motor 8, driving the moving block 10 to move downward, and the moving block 10 is located on the outside of the screw rod 9 and slides to adjust the height of the top plate 16 and the buffer pad 17, so that the top plate 16 and the buffer pad 17 press the upper ends of the multiple groups of aluminum alloy ingots.
[0034] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions only illustrate the principles of the present invention. Various changes and improvements are possible without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention.
Claims
1. An aluminum alloy ingot transfer device, comprising a bottom plate (1), characterized in that: The upper ends of the bottom plate (1) are evenly connected to side plates (2), and a slide groove (3) is provided in the middle of one side of each of the two side plates (2). Slide blocks (4) are slidably connected inside the two slide grooves (3), and partitions (5) are connected between one end of several of the slide blocks (4) and the other several of the slide blocks (4). Both sides of the upper end of the bottom plate (1) are connected to moving components. The movable assembly facilitates adjustment of the height of the two support plates (15); One side of the two moving assemblies is connected to a moving plate (11), and the lower part of one side of one of the moving plates (11) is connected to a rotating assembly; The rotating assembly facilitates adjustment of the angle of the support plate (15); The lower portion of one side of the two movable plates (11) is rotatably connected to a support plate (15), the upper ends of the two support plates (15) are connected to a top plate (16), and the lower ends of the top plates (16) are both connected to a buffer pad (17).
2. The aluminum alloy ingot transfer device according to claim 1, characterized in that: The moving assembly includes a box (6), the number of the box (6) is two groups, the lower end of the bottom plate (1) is connected to a support seat (7), the upper end of the support seat (7) is connected to the lower end of the two boxes (6) respectively, the output end of the first motor (8) is connected to a screw rod (9), the lower outer part of the screw rod (9) is slidably connected to a moving block (10), and one end of the moving block (10) extends through and extends to one side of the box (6).
3. The aluminum alloy ingot transfer device according to claim 2, characterized in that: The moving block (10) is shaped as an inverted convex structure, and a moving groove is provided on one side of the box body (6) corresponding to one end of the moving block (10), and one end of the moving block (10) slides inside the moving groove.
4. The aluminum alloy ingot transfer device according to claim 2, characterized in that: The support seat (7) is in the form of a U-shaped structure, and the lower end of the support seat (7) is connected to an anti-slip pad, which is made of rubber material.
5. The aluminum alloy ingot transfer device according to claim 1, characterized in that: The rotating assembly includes a supporting plate (12), the upper end of the supporting plate (12) is connected to a housing (13), a second motor (14) is connected to the middle of one side of the inner wall of the housing (13), an output end of the second motor (14) extends through one side of the housing (13), and the output end of the second motor (14) is connected to the lower part of one side of one of the support plates (15).
6. The aluminum alloy ingot transfer device according to claim 1, characterized in that: The lower part of one side of the two support plates (15) is connected to a limiting rod (18), and one side of the two movable plates (11) is provided with a limiting groove (19) corresponding to the two limiting rods (18). One end of the two limiting rods (18) is respectively located in the two limiting grooves (19) and slides therein, and the limiting groove (19) is shaped like a semi-arc structure.