Stacked aluminum ingot
By incorporating a complementary interlocking design of protrusions and V-grooves on the aluminum ingot body, combined with a limiting protrusion and a slot structure, the stability problem of the aluminum ingot in both horizontal and vertical directions is solved, achieving a stable connection and neat stacking of the aluminum ingot, and improving handling and storage efficiency.
Patent Information
- Application Number
- CN202423283781.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Traditional aluminum ingots have poor stability when arranged horizontally, and are prone to displacement due to vibration or external impact, resulting in loose stacking. Furthermore, they may stick together during storage due to moisture or oxidation, affecting handling efficiency and storage compactness.
The aluminum ingot body is designed with first and second protrusions and V-shaped grooves on both sides. The horizontal connection is achieved through the complementary interlocking of the V-shaped grooves. Limiting protrusions and slots are set at the top and bottom to ensure the stability of the aluminum ingot in the horizontal and vertical directions. The slots are used to increase friction and limit the structure to prevent displacement.
It improves the stability and neatness of aluminum ingots during handling and storage, prevents displacement and adhesion, and enhances handling efficiency and storage space utilization.
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Figure CN223632182U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of aluminium ingot production, and particularly relates to a stacked aluminium ingot. BACKGROUND
[0002] When the conventional aluminium ingot is arranged horizontally, it lacks an effective connecting structure and is only placed in contact with each other, so the stability is very poor. During the carrying process, the aluminium ingot is prone to displacement due to slight vibration or external force impact, resulting in loose stacking and collapse, which not only affects the carrying efficiency but also threatens the safety of the production site. For example, when the aluminium ingot tray is carried by a forklift, the aluminium ingot often scatters on the ground due to road bumps or careless operation, causing material confusion and consuming a large amount of manpower and material resources for subsequent reorganization.
[0003] On the other hand, during the long-term storage of the aluminium ingot, the simply stacked aluminium ingot is prone to adhesion due to environmental factors such as moisture and oxidation because there is no reliable positioning means between them. It is difficult to separate, and when the storage space is limited and needs to be tightly stacked, it is impossible to ensure the neatness and compactness of the stacking, wasting valuable storage space.
[0004] In summary, in order to overcome the shortcomings of the conventional aluminium ingot in stacking, carrying, storage and automated production, it is urgent to develop a new structure of aluminium ingot. SUMMARY
[0005] To solve the above problems, the utility model discloses a stacked aluminium ingot.
[0006] In order to achieve the above purpose, the application discloses a stacked aluminium ingot, which comprises an aluminium ingot body, a first protruding strip is arranged on one side of the aluminium ingot body, a first V-shaped groove is formed in the bottom of the first protruding strip, a second protruding strip is arranged on the other side of the aluminium ingot body, a second V-shaped groove is formed in the top of the second protruding strip, the first V-shaped groove is used for alignment and cooperation with the second V-shaped groove, and when two aluminium ingot bodies are arranged horizontally, the first V-shaped groove of the first protruding strip is clamped into the top of the second protruding strip and is buckled together with the second V-shaped groove.
[0007] The inner surface of the first V-shaped groove and the second V-shaped groove is provided with a plurality of clamping strips, the clamping strips are arranged at intervals, and the clamping strips are parallel to the width direction of the aluminium ingot body.
[0008] The top of the aluminum ingot body is uniformly provided with a plurality of first limiting protrusions parallel to the width direction of the aluminum ingot body, and the bottom of the aluminum ingot body is provided with a clamping groove matched with the top of the aluminum ingot body, and the clamping groove is uniformly provided with a second limiting protrusion, and when the two aluminum ingot bodies are stacked up and down, the first limiting protrusions and the second limiting protrusions are arranged in a staggered manner to form a limiting.
[0009] The top of the aluminum ingot body is in the shape of an isosceles trapezoid, and the clamping groove is in the shape of a V matched with the top of the aluminum ingot body.
[0010] The aluminum ingot of the embodiment of the present application is provided with a first protrusion on one side of the aluminum ingot body, a first V-shaped groove is formed in the bottom, a second protrusion is correspondingly provided on the other side, and a second V-shaped groove is provided on the top, when the two aluminum ingot bodies are arranged horizontally, the first V-shaped groove can be precisely clamped into the top of the second protrusion and tightly buckled with the second V-shaped groove, so that the aluminum ingots are stably connected in the horizontal direction. BRIEF DESCRIPTION OF DRAWINGS
[0011] Figure 1 The structure of the aluminum ingot body in the embodiment of the present application is shown in the figure;
[0012] Figure 2 The structure of the aluminum ingot body in the embodiment of the present application is shown in the figure; Figure 1 The local enlarged view of A in the figure is shown in the figure;
[0013] Figure 3 The structure of the bottom of the aluminum ingot body in the embodiment of the present application is shown in the figure;
[0014] Figure 4 The horizontal arrangement of the aluminum ingot body in the embodiment of the present application is shown in the figure;
[0015] Figure 5 The arrangement of the aluminum ingot body in the horizontal and vertical directions in the embodiment of the present application is shown in the figure. DETAILED DESCRIPTION
[0016] The present application will be further described in conjunction with the specific embodiments, and it should be understood that the following specific embodiments are only used to illustrate the present application and not to limit the scope of the present application. It should be noted that the words "front", "back", "left", "right", "up" and "down" used in the following description refer to the directions in the figures, and the words "in" and "out" refer to the directions towards or away from the geometric center of a particular component.
[0017] Embodiment 1: as Figures 1-3As shown, a stacked aluminum ingot includes an aluminum ingot body 1, one side of the aluminum ingot body 1 is provided with a first protruding strip 2, the bottom of the first protruding strip 2 is provided with a first V-shaped groove 3, the other side of the aluminum ingot body 1 is provided with a second protruding strip 4, the top of the second protruding strip 4 is provided with a second V-shaped groove 5, the first V-shaped groove 3 is used for alignment and cooperation with the second V-shaped groove 5, when two aluminum ingot bodies 1 are arranged horizontally, the first V-shaped groove 3 of the first protruding strip 2 is clamped into the top of the second protruding strip 4, and the first V-shaped groove 3 is clamped together with the second V-shaped groove 5.
[0018] On one side of the aluminum ingot body 1, a first protruding strip 2 is integrally formed, which extends along the length direction of the aluminum ingot body 1 and has a certain width and height to ensure the structural strength. The bottom of the first protruding strip 2 is carefully provided with a first V-shaped groove 3, and the angle of the V-shaped groove is optimized, for example, it can be between 60°-120°, to achieve good cooperation effect. Correspondingly, the other side of the aluminum ingot body 1 is provided with a second protruding strip 4, which also extends along the length direction and cooperates with the first protruding strip 2, and the top of the second protruding strip 4 is provided with a second V-shaped groove 5.
[0019] As shown, Figures 4-5 When two aluminum ingot bodies 1 need to be arranged horizontally, the operator aligns the first protruding strip 2 of one aluminum ingot body 1 with the second protruding strip 4 of the other aluminum ingot body 1, and slowly clamps the first V-shaped groove 3 into the top of the second protruding strip 4. Because the shapes of the two are complementary, they can be accurately aligned, and finally the first V-shaped groove 3 and the second V-shaped groove 5 are tightly clamped together. This design makes the aluminum ingot connection stable in the horizontal direction, effectively prevents horizontal displacement during handling and stacking, and improves the overall stability.
[0020] The inner surface of the first V-shaped groove 3 and the second V-shaped groove 5 is provided with a plurality of clamping strips 6, a plurality of clamping strips 6 are arranged at intervals, and the clamping strips 6 are parallel to the width direction of the aluminum ingot body 1. When two aluminum ingots are clamped by V-shaped grooves, the clamping strips 6 are interlaced and embedded, further increasing the friction, making the horizontal connection more firm and reliable, even if it is subjected to a certain external impact, it can also maintain the tight combination state between the aluminum ingots.
[0021] The top of the aluminum ingot body 1 is isosceles trapezoidal, and the clamping groove 8 is V-shaped and cooperates with the top of the aluminum ingot body 1. When two aluminum ingot bodies 1 need to be stacked up and down, the bottom clamping groove 8 of the upper aluminum ingot body 1 is aligned with the top isosceles trapezoidal structure of the lower aluminum ingot body 1, and is slowly lowered. Because of the complementarity of the shapes, accurate alignment can be quickly achieved.
[0022] Embodiment 2: As shown in Figure 1 The top of the aluminum ingot body 1 is uniformly distributed with a plurality of first limiting protrusions 7, which are parallel to the width direction of the aluminum ingot body 1, as shown in Figure 3 The bottom of the aluminum ingot body 1 is provided with a clamping groove 8 matched with the top of the aluminum ingot body 1, and the clamping groove 8 is uniformly distributed with a second limiting protrusion 9, and when the two aluminum ingot bodies 1 are stacked up and down, the first limiting protrusion 7 and the second limiting protrusion 9 are arranged in a staggered manner to form a limiting.
[0023] The number of first limiting protrusions 7 can be reasonably set according to the width, generally between 10-30mm, to ensure that sufficient limiting support points are provided, and the manufacturing difficulty and cost are not increased due to excessive density. The cross-sectional shape of each first limiting protrusion 7 is usually designed as a semicircle or a rectangle, the semicircular cross-section is beneficial to smoothly embed into the lower clamping groove when stacked, reducing friction resistance, and the rectangular cross-section can provide more stable lateral support force, which can be flexibly selected according to specific application scenarios.
[0024] Correspondingly, the bottom of the aluminum ingot body 1 is provided with a clamping groove 8 specially matched with the top, and the shape and size of the clamping groove 8 are accurately matched with the top profile of the aluminum ingot body 1, to ensure that the upper and lower aluminum ingots can be closely fitted. The clamping groove 8 is uniformly distributed with a second limiting protrusion 9, which is also arranged along the width direction and is related to the distribution rule of the first limiting protrusion 7.
[0025] As shown in Figure 5 In the vertical direction, the mutual blocking of the first limiting protrusion 7 and the second limiting protrusion 9 effectively prevents the upward and downward movement of the aluminum ingot due to factors such as vibration and handling, ensuring the stability of the stacking height and avoiding the risk of aluminum ingot stacking collapse. In the horizontal direction, due to the close fitting between the protrusions, the transverse displacement of the aluminum ingot is limited, so that the entire aluminum ingot stack can maintain a uniform form during transportation and storage.
[0026] The technical means disclosed in the utility model scheme is not limited to the technical means disclosed in the above embodiments, but also includes technical solutions composed of any combination of the above technical features. It should be noted that for ordinary skilled persons in the technical field, without departing from the principle of the utility model, some improvements and refinements can be made, which are also considered as the protection scope of the utility model.
Claims
1. A stack of aluminium ingots, characterized in that Including aluminum ingot body (1), one side of the aluminum ingot body (1) is provided with first convex strip (2), the bottom of the first convex strip (2) is provided with first V-shaped groove (3), the other side of the aluminum ingot body (1) is provided with second convex strip (4), the top of the second convex strip (4) is provided with second V-shaped groove (5), the first V-shaped groove (3) is used for alignment with the second V-shaped groove (5), when two aluminum ingot bodies (1) are arranged horizontally, the first V-shaped groove (3) of the first convex strip (2) is clamped into the top of the second convex strip (4), and is buckled together with the second V-shaped groove (5).
2. The stacked aluminum ingot of claim 1, wherein The inner surface of the first V-shaped groove (3) and the second V-shaped groove (5) is provided with a plurality of clamping strips (6), a plurality of clamping strips (6) are arranged at intervals, and the clamping strips (6) are parallel to the width direction of the aluminum ingot body (1).
3. The stacked aluminum ingot according to claim 1 or 2, characterized in that, The top of the aluminum ingot body (1) is uniformly provided with a plurality of first limiting convex strips (7), the first limiting convex strips (7) are parallel to the width direction of the aluminum ingot body (1), the bottom of the aluminum ingot body (1) is provided with a clamping groove (8) matched with the top of the aluminum ingot body (1), the clamping groove (8) is uniformly provided with second limiting convex strips (9), when two aluminum ingot bodies (1) are stacked, the first limiting convex strips (7) and the second limiting convex strips (9) are arranged in a staggered manner to form a limit.
4. The stacked aluminum ingot of claim 3, wherein The top of the aluminum ingot body (1) is isosceles trapezoidal, and the clamping groove (8) is V-shaped matched with the top of the aluminum ingot body (1).