Heat-treatable aluminum alloy material, preparation method thereof, and application thereof

CN118531266BActive Publication Date: 2025-07-29CHERY AUTOMOBILE CO LTD
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Patent Information

Application Number
CN202410755427.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-06-12
Publication Date
2025-07-29
Estimated Expiration
2044-06-12

AI Technical Summary

Technical Problem

然而,目前已知的免热处理的Al-Si系铝合金材料,其强度和韧性仍然有待提高

Benefits of technology

[0027] The heat-treatable aluminum alloy material provided by the embodiment of the present invention includes the following elemental components by mass percentage: Si 4%-5.9%, Mg 0.3%-0.8%, Cu 0.7%-1.8%, Zn 0.1%-0.4%, Mn 0.5%-0.8%, Fe 0-0.4%, Ca 0.1%-0.19%, Sr 0.015%-0.050%, Ti 0.05%-0.30%, V 0.01%-0.03%, RE 0.05%-0.2%, unavoidable impurities <0.03%, and the balance is Al, wherein the RE element is La and/or Ce. The heat-treatable aluminum alloy material provided by the embodiment of the present invention, by selecting specific types of various elements and combining them in specific mass percentages, and the components act synergistically. On the one hand, this is conducive to reducing the liquidus temperature of the aluminum alloy material and improving the fluidity of the aluminum alloy melt, thereby ensuring the filling ability of the aluminum alloy material and being more conducive to forming by the integral die-casting process. On the other hand, this is conducive to improving the strength, toughness, deformation resistance and other properties of the aluminum alloy material.

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Abstract

The present invention discloses a heat-treatable aluminum alloy material, its preparation method and application, belonging to the technical field of alloys. The heat-treatable aluminum alloy material comprises the following elemental components in mass percentages: Si 4% - 5.9%, Mg 0.3% - 0.8%, Cu 0.7% - 1.8%, Zn 0.1% - 0.4%, Mn 0.5% - 0.8%, Fe 0 - 0.4%, Ca 0.1% - 0.2%, Sr 0.015% - 0.050%, Ti 0.05% - 0.30%, V 0.01% - 0.03%, RE 0.05% - 0.2%, inevitable impurities < 0.03%, and Al as the balance, where the RE element is La and / or Ce. On the premise of ensuring excellent fluidity of its melt, the aluminum alloy material also has excellent strength and toughness characteristics.
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Description

Technical Field

[0001] The present invention relates to the technical field of alloys, and particularly to a heat-treatable aluminum alloy material, its preparation method and application. Background Art

[0002] Aluminum alloy die-castings based on aluminum alloy materials have the characteristics of integration, light weight, high toughness, etc., and are usually used to prepare structural parts of automobiles, which is more beneficial for the lightweight design of automobiles.

[0003] Al-Si series aluminum alloy materials have excellent casting properties and are more suitable for preparing structural parts of automobiles. In particular, heat-treatable Al-Si series aluminum alloy materials are also beneficial for reducing production costs. However, for currently known heat-treatable Al-Si series aluminum alloy materials, their strength and toughness still need to be improved. Summary of the Invention

[0004] In view of this, the present invention provides a heat-treatable aluminum alloy material, its preparation method and application, which can solve the technical problems existing in the related art.

[0005] Specifically, the following technical solutions are included:

[0006] On the one hand, a heat-treatable aluminum alloy material is provided. The heat-treatable aluminum alloy material includes the following elemental components by mass percentage: Si 4%-5.9%, Mg 0.3%-0.8%, Cu 0.7%-1.8%, Zn 0.1%-0.4%, Mn 0.5%-0.8%, Fe 0-0.4%, Ca 0.1%-0.19%, Sr 0.015%-0.050%, Ti 0.05%-0.30%, V 0.01%-0.03%, RE 0.05%-0.2%, unavoidable impurities <0.03%, and the balance is Al, where the RE element is La and / or Ce.

[0007] In some possible implementation manners, the mass ratio of the Si element to the Ca element is 25-40:1.

[0008] In some possible implementation manners, the mass ratio of the Si element to the total mass of the Ca element, V element and RE element is 15-35:1.

[0009] In some possible implementation manners, the mass percentage of the Ca element is 0.1%-0.19%.

[0010] On the other hand, a preparation method of a heat-treatable aluminum alloy material is provided, where the heat-treatable aluminum alloy material is as described in any one of the above;

[0011] The preparation method of the heat-treatable aluminum alloy material includes: providing preparation raw materials according to the mass percentages of the elements in the heat-treatable aluminum alloy material;

[0012] Performing smelting treatment, slag skimming treatment, and die-casting treatment on the preparation raw materials in sequence to obtain the heat-treatable aluminum alloy material.

[0013] In some possible implementation manners, at least part of the raw materials in the preparation raw materials are selected from aluminum scraps.

[0014] In some possible implementation manners, the aluminum scraps include at least one of 1xxx series aluminum alloy scraps, 5xxx series aluminum alloy scraps, 6xxx series aluminum alloy scraps, A356 aluminum alloy scraps, A380 aluminum alloy scraps, AlSi7Mg0.3Cu0.5 aluminum alloy scraps, and AlSi9Cu3 aluminum alloy scraps.

[0015] In some possible implementation manners, in the preparation raw materials, the Ca element is added in the form of Al-10Ca alloy; at least part of the Si element is added in the form of Al-20Si alloy; at least part of the Mg element is added in the form of pure Mg; at least part of the Mn element is added in the form of Al-20Mn alloy; at least part of the Cu element is added in the form of Al-50Cu alloy; at least part of the Zn element is added in the form of Al-20Zn alloy; at least part of the V element is added in the form of Al-5V alloy; at least part of the Ti element is added in the form of Al-10Ti alloy, and at least part of the Sr element is added in the form of Al-10Sr alloy.

[0016] In some possible implementation manners, the step of providing preparation raw materials according to the mass percentages of the elements in the heat-treatable aluminum alloy material includes:

[0017] Classifying, crushing, and impurity removing the aluminum scraps in sequence to obtain aluminum scrap raw materials and using them as the first part of the preparation raw materials;

[0018] After determining the first part of the preparation raw materials, determining and providing the second part of the preparation raw materials according to the formula of the heat-treatable aluminum alloy material;

[0019] Performing batching on the first part of the preparation raw materials and the second part of the preparation raw materials according to the mass percentages of the elements in the heat-treatable aluminum alloy material to obtain the preparation raw materials.

[0020] In some possible implementation manners, the step of performing smelting treatment, slag skimming treatment, and die-casting treatment on the preparation raw materials in sequence to obtain the heat-treatable aluminum alloy material includes:

[0021] The raw materials for preparing the first part are sequentially subjected to melting treatment and dross removal treatment to obtain a first raw material melt;

[0022] The components contained in the raw materials for preparing the second part are added to the first raw material melt in a stepwise manner and subjected to melting treatment to obtain an aluminum alloy melt;

[0023] The aluminum alloy melt is subjected to die-casting treatment to prepare the heat-treatable aluminum alloy material.

[0024] On the other hand, provided is the application of the heat-treatable aluminum alloy material in the preparation of aluminum alloy structural parts, wherein the heat-treatable aluminum alloy material is as described in any of the above, or is prepared by the preparation method of the heat-treatable aluminum alloy material described in any of the above.

[0025] On the other hand, provided is an aluminum alloy structural part, which is prepared by the heat-treatable aluminum alloy material, wherein the heat-treatable aluminum alloy material is as described in any of the above, or is prepared by the preparation method of the heat-treatable aluminum alloy material described in any of the above.

[0026] The beneficial effects of the technical solution provided by the embodiment of the present invention at least include:

[0027] The heat-treatable aluminum alloy material provided by the embodiment of the present invention includes the following elemental components by mass percentage: Si 4%-5.9%, Mg 0.3%-0.8%, Cu 0.7%-1.8%, Zn 0.1%-0.4%, Mn 0.5%-0.8%, Fe 0-0.4%, Ca 0.1%-0.19%, Sr 0.015%-0.050%, Ti 0.05%-0.30%, V 0.01%-0.03%, RE 0.05%-0.2%, unavoidable impurities <0.03%, and the balance is Al, wherein the RE element is La and / or Ce. The heat-treatable aluminum alloy material provided by the embodiment of the present invention, by selecting specific types of various elements and combining them in specific mass percentages, and the components act synergistically. On the one hand, this is conducive to reducing the liquidus temperature of the aluminum alloy material and improving the fluidity of the aluminum alloy melt, thereby ensuring the filling ability of the aluminum alloy material and being more conducive to forming by the integral die-casting process. On the other hand, this is conducive to improving the strength, toughness, deformation resistance and other properties of the aluminum alloy material. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention, and those of ordinary skill in the art can also obtain other drawings based on these drawings without creative efforts.

[0029] Figure 1 It is the microstructure image of the aluminum alloy die-casting part corresponding to Example 6;

[0030] Figure 2 It is the scanning electron microscope image of the aluminum alloy die-casting part corresponding to Example 6 under a resolution condition;

[0031] Figure 3 It is the scanning electron microscope image of the aluminum alloy die-casting part corresponding to Example 6 under another resolution condition.

[0032] Through the above-mentioned drawings, specific embodiments of the present invention have been shown, and there will be more detailed descriptions hereinafter. These drawings and written descriptions are not intended to limit the scope of the inventive concept in any way, but to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Description of Embodiments

[0033] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0034] In recent years, under the requirements of the dual-carbon goal, people have increasingly realized the importance of energy conservation and emission reduction for the sustainable development of mankind. In the automotive industry, analysis data shows that for every 10% reduction in vehicle weight, vehicle fuel consumption can be reduced by 6%-8%, and emissions can be reduced by 4%; for new energy vehicles, a 100 Kg reduction in weight can increase the cruising range by 10-11%, and can also reduce battery costs by 20% and daily loss costs by 20%. Therefore, the issue of vehicle lightweight has gradually become an urgent need for the development of the automotive industry.

[0035] Due to its light weight, aluminum alloy materials are increasingly used in automobiles. Especially aluminum die-castings, due to their advantages such as integration, lightweight, and high toughness, have been continuously promoted in automotive applications. This requires continuous improvement in the integration level of die-castings. Traditional AlSi10MnMg alloys are difficult to meet the requirements due to the necessity of heat treatment, thus new heat-treatment-free die-casting aluminum alloy materials are needed. At the same time, the automotive industry has an increasing demand for integrated die-casting technology.

[0036] The Al-Si series aluminum alloy materials have excellent casting properties and are more suitable for preparing structural parts of automobiles. In particular, the heat-treatment-free Al-Si series aluminum alloy materials are also conducive to reducing production costs. However, for the currently known heat-treatment-free Al-Si series aluminum alloy materials, their strength and toughness still need to be improved, making it difficult to meet the requirements of integrated die-cast automobile structures.

[0037] On the one hand, the embodiments of the present invention provide a heat-treatment-free aluminum alloy material, which includes the following elemental components by mass percentage: Si 4%-5.9%, Mg 0.3%-0.8%, Cu 0.7%-1.8%, Zn 0.1%-0.4%, Mn 0.5%-0.8%, Fe 0-0.4%, Ca 0.1%-0.2%, Sr 0.015%-0.050%, Ti 0.05%-0.30%, V 0.01%-0.03%, RE 0.05%-0.2%, unavoidable impurities <0.03%, and Al as the balance, where the RE element is La and / or Ce.

[0038] Regarding the above-mentioned heat-treatment-free aluminum alloy material, the functions of each elemental component in it will be described first.

[0039] In the embodiments of the present invention, the mass percentage of the Si element is 4%-5.9%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 4%, 4.1%, 4.2%, 4.3%, 4.4%, 4.5%, 4.6%, 4.7%, 4.8%, 4.9%, 5%, 5.1%, 5.2%, 5.3%, 5.4%, 5.5%, 5.6%, 5.7%, 5.8%, 5.9%, etc.

[0040] The Si element can not only increase the strength of the aluminum alloy material but also ensure the casting fluidity of the aluminum alloy material. Based on the above mass percentage of the Si element, the aluminum alloy involved in the embodiments of the present invention is a low-silicon-content aluminum alloy, which is usually suitable for preparing structural parts with moderate strength but relatively high elongation, such as the middle section of a three-section integrated die-cast structural part.

[0041] The mass percentage of Mg element is 0.3% - 0.8%, which includes but is not limited to the following point values and the range of intervals formed by any two point values: 0.3%, 0.4%, 0.41%, 0.42%, 0.43%, 0.44%, 0.45%, 0.46%, 0.47%, 0.48%, 0.49%, 0.5%, 0.51%, 0.52%, 0.53%, 0.54%, 0.55%, 0.56%, 0.57%, 0.58%, 0.59%, 0.6%, 0.61%, 0.62%, 0.63%, 0.64%, 0.65%, 0.66%, 0.67%, 0.68%, 0.69%, 0.7%, 0.71%, 0.72%, 0.73%, 0.74%, 0.75%, 0.76%, 0.77%, 0.78%, 0.79%, 0.8%, etc.

[0042] Under die-casting conditions, a part of the Mg element will dissolve into the aluminum alloy matrix to increase the matrix strength, and another part of the Mg element can precipitate the second phase (such as Mg2Si, etc.) in the eutectic region, thereby enhancing the strength of the aluminum alloy.

[0043] The mass percentage of Cu element is 0.7% - 1.8%, which includes but is not limited to the following point values and the range of intervals formed by any two point values: 0.7%, 0.75%, 0.8%, 0.85%, 0.9%, 0.95%, 1%, 1.05%, 1.1%, 1.15%, 1.2%, 1.25%, 1.3%, 1.35%, 1.4%, 1.45%, 1.5%, 1.55%, 1.6%, 1.65%, 1.7%, 1.75%, 1.8%, etc.

[0044] Under die-casting conditions, a part of the Cu element will dissolve into the matrix to increase the matrix strength, and another part of the Cu element precipitates the strengthening phase (such as Al2Cu) in the eutectic region, enhancing the strength of the aluminum alloy. The Cu element with the above mass percentage can also improve the casting fluidity of the aluminum alloy material, compensating for the problem of reduced fluidity caused by the low silicon content.

[0045] The mass percentage of Zn element is 0.1% - 0.4%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 0.1%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19%, 0.2%, 0.21%, 0.22%, 0.23%, 0.24%, 0.25%, 0.26%, 0.27%, 0.28%, 0.29%, 0.3%, 0.31%, 0.32%, 0.33%, 0.34%, 0.35%, 0.36%, 0.37%, 0.38%, 0.39%, 0.4%, etc.

[0046] During the solidification process, the Zn element can enrich on the surfaces of the Al-Si-Cu-Mg phase and the Fe-containing phase, inhibiting their growth, reducing the sizes of the Al-Si-Cu-Mg phase and the Fe-containing phase, and thus significantly improving the as-cast properties of the aluminum alloy material. Moreover, during the aging process, due to the increase in the solid solubility of the Zn element in the α-Al phase, the Zn element is dissolved into the α-Al, which has a solid solution strengthening effect, and this is beneficial to increasing the strength of the aluminum alloy material. When the mass percentage of the Zn element is within the above range and acts synergistically with other component elements, it is more beneficial to optimize the as-cast properties and strength of the aluminum alloy material.

[0047] The mass percentage of Mn element is 0.5% - 0.8%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 0.5%, 0.51%, 0.52%, 0.53%, 0.54%, 0.55%, 0.56%, 0.57%, 0.58%, 0.59%, 0.6%, 0.61%, 0.62%, 0.63%, 0.64%, 0.65%, 0.66%, 0.67%, 0.68%, 0.69%, 0.7%, 0.71%, 0.72%, 0.73%, 0.74%, 0.75%, 0.76%, 0.77%, 0.78%, 0.79%, 0.8%, etc.

[0048] The Mn element with the above mass percentage can not only control the acicular Fe phase and reduce the harm of the Fe phase, but also help improve the demolding performance of the aluminum alloy material.

[0049] The mass percentage of Fe element is 0 - 0.4%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 0%, 0.01%, 0.02%, 0.03%, 0.04%, 0.05%, 0.06%, 0.07%, 0.08%, 0.09%, 0.1%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19%, 0.2%, 0.21%, 0.22%, 0.23%, 0.24%, 0.25%, 0.26%, 0.27%, 0.28%, 0.29%, 0.3%, 0.31%, 0.32%, 0.33%, 0.34%, 0.35%, 0.36%, 0.37%, 0.38%, 0.39%, 0.4%, etc.

[0050] During the solidification process of the Fe element, it is easy to jointly form needle-like and flaky β-Fe phases with elements such as Al and Si. During the stress process, stress concentration is likely to occur, thereby splitting the matrix and deteriorating the performance of the aluminum alloy material. Therefore, in the embodiments of the present invention, it is expected that the mass percentage of the Fe element is less than or equal to 0.4% to avoid deteriorating the performance of the alloy material.

[0051] The mass percentage of Ca element is 0.1% - 0.2%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 0.1%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19%, 0.2%, etc.

[0052] In the embodiments of the present invention, by adding 0.1% - 0.2% of Ca element to the aluminum alloy material, on the one hand, the Ca element plays the role of heterogeneous nucleation sites, which is conducive to increasing the nucleation of primary Al grains. Moreover, the Ca element with the above mass percentage content can smoothly form the second phase with other elements and refine the grains, ultimately achieving the purpose of improving the strength and toughness of the aluminum alloy material.

[0053] Furthermore, the mass percentage of Ca element can be 0.1% - 0.19% to further optimize the strength and toughness of the aluminum alloy material.

[0054] The mass percentage of Sr element is 0.015% - 0.050%, which includes but is not limited to the following point values and the range of intervals formed by any two point values: 0.015%, 0.016%, 0.017%, 0.018%, 0.019%, 0.02%, 0.021%, 0.022%, 0.023%, 0.024%, 0.025%, 0.026%, 0.027%, 0.028%, 0.029%, 0.03%, 0.031%, 0.032%, 0.033%, 0.034%, 0.035%, 0.036%, 0.037%, 0.038%, 0.039%, 0.04%, 0.041%, 0.042%, 0.043%, 0.044%, 0.045%, 0.046%, 0.047%, 0.048%, 0.049%, 0.05%, etc.

[0055] The Sr element with the above mass percentage can transform eutectic Si from lamellar to fine granular, thereby improving the toughness of the aluminum alloy material.

[0056] The mass percentage of Ti element is 0.05% - 0.30%, which includes but is not limited to the following point values and the range of intervals formed by any two point values: 0.05%, 0.06%, 0.07%, 0.08%, 0.09%, 0.1%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19%, 0.2%, 0.21%, 0.22%, 0.23%, 0.24%, 0.25%, 0.26%, 0.27%, 0.28%, 0.29%, 0.3%, etc.

[0057] In the embodiment of the present invention, by adding 0.05% - 0.30% of Ti element to the aluminum alloy material, the Ti element acts as a heterogeneous nucleation site, thereby increasing the nucleation of primary (Al) grains, realizing grain refinement, and achieving the purpose of improving the strength and toughness of the aluminum alloy material.

[0058] RE is a rare earth element, which is selected from at least one of La and Ce. The mass percentage of RE element is 0.05% - 0.2%, which includes but is not limited to the following point values and the range of intervals formed by any two point values: 0.05%, 0.06%, 0.07%, 0.08%, 0.09%, 0.1%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19%, 0.2%, etc.

[0059] In the embodiments of the present invention, by adding 0.05%-0.20% of RE elements to the aluminum alloy material, the RE elements act as heterogeneous nucleation sites, thereby increasing the nucleation of primary (Al) grains, achieving grain refinement, and achieving the purpose of improving the strength and toughness of the aluminum alloy material.

[0060] The mass percentage of V element is 0.01%-0.03%, which includes but is not limited to the following point values and the interval ranges formed by any two point values: 0.01%, 0.011%, 0.012%, 0.013%, 0.014%, 0.015%, 0.016%, 0.017%, 0.018%, 0.019%, 0.02%, 0.021%, 0.022%, 0.023%, 0.024%, 0.025%, 0.026%, 0.027%, 0.028%, 0.029%, 0.03%, etc.

[0061] The V element with the above mass percentage can refine eutectic silicon, form fine and dispersed phases, and at the same time can change the morphology of the iron phase, thereby achieving the purpose of improving the strength and toughness of the aluminum alloy material.

[0062] In summary, the heat-treatment-free aluminum alloy material provided by the embodiments of the present invention, by selecting specific types of various elements and combining them in specific mass percentages, and the components act synergistically. On the one hand, this is beneficial to reducing the liquidus temperature of the aluminum alloy material, improving the fluidity of the aluminum alloy melt, thereby ensuring the filling ability of the aluminum alloy material, and is more conducive to forming by the integral die-casting process. On the other hand, this is beneficial to improving the properties such as strength, toughness, and deformation resistance of the aluminum alloy material.

[0063] Among them, the principle of improving the properties such as strength, toughness, and deformation resistance of the aluminum alloy material in the embodiments of the present invention can be shown as follows:

[0064] During the solidification process of the aluminum alloy melt, elements such as Ca and Mg can form secondary phases such as AlCaSi phase, Al4Ca, Mg2Si, and Al-Si-Cu-Mg at the grain boundaries, while refining the grains. The addition of element V and rare earth element RE makes there be more crystallization nuclei during the crystallization process of the aluminum alloy melt, the structure is finer, and at the same time, it also leads to the generation of more small granular secondary phases (such as Al2CaSi2). By strengthening the interaction between the phase and the dislocation, the movement of the dislocation is hindered, and the deformation resistance and mechanical strength of the alloy are significantly improved. In addition, elements Cu, Mg, and Si existing in the aluminum alloy matrix are retained more in the aluminum alloy matrix during the rapid cooling process. These strengthening elements will form strengthening phases in the aluminum alloy matrix during the subsequent aging heat treatment process, thereby enhancing the strength of the aluminum alloy matrix, and achieving the condition of obtaining an aluminum alloy material with excellent comprehensive performance without additional solution heat treatment. In addition, a specific content of element V and rare earth element RE in the aluminum alloy material can form a near-spherical AlFeSiMnV phase with elements such as Al, Fe, Si, and Mn. This can not only effectively reduce the side effects brought by the harmful Fe phase in the aluminum alloy matrix, but also act as a strengthening phase to hinder the movement of dislocations, so that the aluminum alloy can achieve the purpose of improving strength and toughness without heat treatment.

[0065] Regarding the above-mentioned aluminum alloy materials that do not require heat treatment, it is found that the mass ratio of elements such as Si and Ca will affect the change of the morphology and size of the AlCaSi phase, and this directly affects the comprehensive performance of the aluminum alloy materials.

[0066] In the embodiments of the present invention, it is expected that the mass ratio of Si element to Ca element is 25 - 40:1, which includes but is not limited to: 25:1, 26:1, 27:1, 28:1, 29:1, 30:1, 31:1, 32:1, 33:1, 34:1, 35:1, 36:1, 37:1, 38:1, 39:1, 40:1, etc. This is not only conducive to improving the tensile strength, yield strength and elongation at break of the aluminum alloy material, but also conducive to improving the fluidity of the aluminum alloy melt.

[0067] In some examples, in the embodiments of the present invention, it is expected that the mass ratio of Si element to the total mass of Ca element, V element and RE element is 15 - 35:1, which includes but is not limited to: 15:1, 16:1, 17:1, 18:1, 19:1, 20:1, 21:1, 22:1, 23:1, 24:1, 25:1, 26:1, 27:1, 28:1, 29:1, 30:1, 31:1, 32:1, 33:1, 34:1, 35:1, etc. This is not only conducive to improving the tensile strength, yield strength and elongation at break of the aluminum alloy material, but also conducive to improving the fluidity of the aluminum alloy melt.

[0068] In summary, the aluminum alloy provided by the embodiments of the present invention has both excellent strength and toughness, is suitable for large-sized high-vacuum die-castings of automobiles, and this aluminum alloy can be produced using recycled aluminum from automobiles, realizing the closed-loop generation of automobile products and achieving the goal of low-carbon sustainable circular production.

[0069] On the other hand, the embodiments of the present invention also provide a preparation method for a heat-treatment-free aluminum alloy material, wherein the heat-treatment-free aluminum alloy material is as described in any of the above.

[0070] The preparation method for the heat-treatment-free aluminum alloy material includes the following steps:

[0071] Step 1: Provide the preparation raw materials according to the mass percentages of the various elements in the heat-treatment-free aluminum alloy material.

[0072] Step 2: Perform melting treatment, slag skimming treatment, and die-casting treatment on the preparation raw materials in sequence to prepare the heat-treatment-free aluminum alloy material.

[0073] Based on using the aluminum alloy material of the above volume in the embodiments of the present invention, it is possible to prepare an aluminum alloy material with excellent properties such as strength, toughness, and deformation resistance without heat treatment during its preparation process.

[0074] In some examples, at least part of the raw materials in the preparation raw materials are selected from aluminum scrap, for example, the aluminum scrap is aluminum scrap recycled from automobiles.

[0075] By using aluminum scrap to provide the preparation raw materials, the carbon emissions are greatly reduced, achieving low carbon and low cost, which is conducive to the low-carbon sustainable development of the industry.

[0076] In some examples, the aluminum scrap includes at least one of 1-series aluminum alloy scrap, 5-series aluminum alloy scrap, 6-series aluminum alloy scrap, A356 aluminum alloy scrap, A380 aluminum alloy scrap, AlSi7Mg0.3Cu0.5 aluminum alloy scrap, and AlSi9Cu3 aluminum alloy scrap. Among them, AlSi7Mg0.3Cu0.5 aluminum alloy scrap means that the mass percentages of Si element, Mg element, and Cu element in it are 7%, 0.3%, and 0.5% respectively. AlSi9Cu3 aluminum alloy scrap means that the mass percentages of Si element and Cu element in it are 9% and 3% respectively.

[0077] For example, 1-series aluminum alloy scrap usually includes aluminum wires, 5-series aluminum alloy scrap and 6-series aluminum alloy scrap usually include automobile body sheets, A356 aluminum alloy scrap usually includes wheels and hubs, A380 aluminum alloy scrap and AlSi9Cu3 aluminum alloy scrap usually include automobile suspension brackets, and AlSi7Mg0.3Cu0.5 aluminum alloy scrap usually includes automobile cylinder heads.

[0078] Automobiles have a wealth of aluminum alloy materials that can be recycled to obtain recycled aluminum. Moreover, compared with primary aluminum, the recycled aluminum process only requires 5% of the energy of primary aluminum, and the greenhouse gas emissions reach 95%. Of course, the cost is also significantly reduced.

[0079] When at least part of the raw materials in the preparation raw materials are selected from aluminum scrap, in order to ensure that each element in the aluminum alloy material is sufficiently provided and can be smoothly released into the aluminum alloy matrix through melting, the following elements in the preparation raw materials can be provided in specific forms respectively.

[0080] The Ca element is added in the form of Al-10Ca alloy (the mass percentage of Ca element in it is 10%); at least a part of the Si element is added in the form of Al-20Si alloy (the mass percentage of Si element in it is 20%); at least a part of the Mg element is added in the form of pure Mg; at least a part of the Mn element is added in the form of Al-20Mn alloy (the mass percentage of Mn element in it is 20%); at least a part of the Cu element is added in the form of Al-50Cu alloy (the mass percentage of Cu element in it is 50%); at least a part of the Zn element is added in the form of Al-20Zn alloy (the mass percentage of Zn element in it is 20%); at least a part of the V element is added in the form of Al-5V alloy (the mass percentage of V element in it is 5%); at least a part of the Ti element is added in the form of Al-10Ti alloy (the mass percentage of Ti element in it is 10%), and at least a part of the Sr element is added in the form of Al-10Sr alloy (the mass percentage of Sr element in it is 10%).

[0081] In some examples, in step 1, according to the mass percentages of each element in the heat-treatable aluminum alloy material, the preparation raw materials are provided, including:

[0082] Step 11: Classify, crush, and remove impurities from the aluminum scrap in sequence to obtain aluminum scrap raw materials and use them as the first part of the preparation raw materials.

[0083] Step 12: After determining the first part of the preparation raw materials, according to the formula of the heat-treatable aluminum alloy material, determine and provide the second part of the preparation raw materials.

[0084] Step 13: According to the mass percentages of each element in the heat-treatable aluminum alloy material, proportion the first part of the preparation raw materials and the second part of the preparation raw materials to obtain the preparation raw materials. Thus, it is ensured that the preparation raw materials can obtain a heat-treatable aluminum alloy material with a desired composition after melting.

[0085] Further, in Step 2, the preparation raw materials are sequentially subjected to melting treatment, slag skimming treatment, and die-casting treatment to prepare a heat-treatable aluminum alloy material, including: sequentially performing melting treatment and dross removal treatment on the first part of the preparation raw materials to obtain a first raw material melt; adding the components contained in the second part of the preparation raw materials to the first raw material melt in a stepwise manner and performing melting treatment to obtain an aluminum alloy melt; performing die-casting treatment on the aluminum alloy melt to prepare a heat-treatable aluminum alloy material.

[0086] For example, at least one of waste aluminum wheels, waste suspension brackets, waste aluminum plates, and waste aluminum wires is used as the first part of the preparation raw materials, and according to the formula of the heat-treatable aluminum alloy material, the first part of the preparation raw materials is proportioned. The first part of the preparation raw materials after proportioning is placed in a melting furnace for melting, and the melting temperature is set at 720°C - 740°C. After all the preparation raw materials are melted, the surface dross is removed, and then stirring is performed for 15 minutes - 20 minutes to obtain a first raw material melt.

[0087] The first raw material melt is transferred to a holding furnace at a temperature of 740 - 750°C, and then the components contained in the second part of the preparation raw materials are added to the first raw material melt in a stepwise manner and melting treatment is performed. For example, this may include: after the second part of the preparation raw materials is proportioned, adding Al-20Si, Al-20Mn, and Al-50Cu master alloys with specific ratios to the first raw material melt. After all these master alloys are melted, stirring is started for 5 - 8 minutes and held for 15 minutes - 20 minutes. Then, the temperature is further raised to 750 - 760°C, and Al-10Ca, Al-5V, and Al-10Ti master alloys are added. After all these master alloys are melted, stirring is performed for 5 minutes - 8 minutes and held for 15 minutes - 20 minutes after stirring. Then, a sodium-free refining agent is continuously added for refining for 10 minutes - 15 minutes to reduce the temperature of the alloy liquid to 740°C - 750°C, and then preheated Al-10Sr master alloy and rare earth element RE are added, stirring for 5 - 8 minutes, and high-purity nitrogen is introduced for sufficient degassing, and the degassing time is greater than or equal to 20 minutes to obtain a pure aluminum alloy melt. After skimming the dross from the aluminum alloy melt, it is left standing for 20 minutes - 25 minutes for later use.

[0088] In some examples, die-casting treatment is performed on the aluminum alloy melt to prepare a heat-treatable aluminum alloy material, which may include: reducing the temperature of the aluminum alloy melt to 710°C - 720°C and then performing die-casting forming treatment.

[0089] In another aspect, the embodiments of the present invention also provide an application of the heat-treatment-free aluminum alloy material in the preparation of aluminum alloy structural parts, wherein the heat-treatment-free aluminum alloy material is any one of the above, or is prepared by using any one of the preparation methods of the heat-treatment-free aluminum alloy materials described above.

[0090] For example, the aluminum alloy structural part can be a structural part for an automobile, such as a whole vehicle body, an inner panel of a rear wheel cover, a rear longitudinal beam, a floor connecting plate, a rear floor, a reinforcing plate inside a beam, an engine hood, a fender, a car door, a rear compartment, and a car roof, etc.

[0091] In another aspect, the embodiments of the present invention also provide an aluminum alloy structural part, which is prepared from a heat-treatment-free aluminum alloy material, wherein the heat-treatment-free aluminum alloy material is any one of the above, or is prepared by using any one of the preparation methods of the heat-treatment-free aluminum alloy materials described above.

[0092] The exemplary embodiments of the present invention will be described in more detail below. Although the exemplary embodiments of the present invention are described below, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments set forth herein. For those without specific technical or conditions noted in the examples, the techniques or conditions described in the literature in the art or according to the product specifications are followed. Those reagents or instruments without the manufacturer noted are all conventional products that can be obtained through commercial purchase.

[0093] The embodiments of the present invention provide specific Examples 1 - 8, and Comparative Examples 1 - 5. Their formulations are shown in Table 1 below. Table 1 shows other elements and their mass percentages except for the Al element. The Al element and its mass percentage are not shown in Table 1. The amount of the Al element and inevitable impurities constitutes the remainder in the current examples. Among them, the RE element is a mixture of La single substance and Ce single substance, wherein the mass percentage of La single substance is 35%, and the mass percentage of Ce single substance is 65%.

[0094] Table 1

[0095]

[0096]

[0097] Based on the same preparation parameters, die-cast aluminum alloy structural parts are prepared from the aluminum alloy materials shown in each of the examples and comparative examples in Table 1. The embodiments of the present invention also conduct tensile mechanical property tests and bending angle tests on each die-cast aluminum alloy structural part, and test the fluidity of the aluminum alloy melt corresponding to each aluminum alloy material before die-casting. The test results are shown in Table 2.

[0098] Among them, the bending angle test can refer to the standard described in VDA238-100. The bending angle has a certain correlation with the toughness of the aluminum alloy material. Generally, the larger the bending angle, the better the toughness.

[0099] Regarding the fluidity test, after obtaining the aluminum alloy melt corresponding to the aluminum alloy material and before performing die-casting forming treatment, the temperature of the aluminum alloy melt is reduced to 715 °C, and then the aluminum alloy melt with the reduced temperature is poured into a horizontally placed mold to allow it to flow freely. After cooling until the aluminum alloy melt solidifies and forms, measure the length of the obtained flow sample.

[0100] Table 2

[0101]

[0102]

[0103] It can be seen from Table 1 and Table 2 that no Ca element is added in Comparative Example 1 and Comparative Example 2. Compared with Examples 1-6, it can be known that when no Ca element is added to the aluminum alloy material, the strength, toughness, and fluidity of the aluminum alloy material all become worse.

[0104] No RE element is added in Comparative Example 3. Compared with Examples 1-6, it can be known that when no RE element is added to the aluminum alloy material, the strength, toughness, and fluidity of the aluminum alloy material all become worse.

[0105] In Example 7, the mass ratio of Si to Ca is 54:1, and in Example 8, the mass ratio of Si to Ca is 59:1, which is not within the range of 25-40:1. Moreover, in Example 8, the mass ratio of Si to (Ca+V+RE) does not meet 15-35:1. Compared with Example 6, the strength, toughness, and fluidity of the aluminum alloy material will become worse to a certain extent.

[0106] In Comparative Example 4, the mass percentage of Ca element is 0.3%, which is not within the desired range of 0.1%-0.2%, and the mass ratio of Si to Ca is 20:1, which is not within the range of 25-40:1. Compared with Example 7, the strength, toughness, and fluidity of the aluminum alloy material become even worse.

[0107] In Comparative Example 5, the mass percentage of Ca element is 0.25%, which is not within the desired range of 0.1%-0.2%, and the mass ratio of Si to (Ca+V+RE) does not meet 15-35:1. It can be seen that the strength, toughness, and fluidity of the aluminum alloy material in Comparative Example 5 are even worse than those in Example 8.

[0108] In addition, it was also found during the testing process that for the aluminum alloy materials provided in Examples 1 - 6, the castings did not stick to the mold during die casting, and the fluidity test results were good. In addition, the present invention also conducted a microscopic structure analysis and a fracture scanning electron microscope analysis on the aluminum alloy die castings corresponding to Example 6. For the test results, please refer to Figures 1 - 3 .

[0109] Combined with the data in Table 2, it can be seen that the aluminum alloy die castings corresponding to Example 6 have both high yield strength and high elongation (i.e., excellent toughness). From Figure 1 , it can be seen that the matrix structure of the aluminum alloy die castings corresponding to Example 6 is fine and uniform, and the modification effect is good. From Figures 2 - 3 , it can be seen that the dimples on the fracture micro-morphology of the aluminum alloy die castings corresponding to Example 6 are dense and uniform in size, and the toughness is good.

[0110] It can be seen that the aluminum alloy materials provided in the embodiments of the present invention have both excellent strength and toughness on the premise of ensuring excellent fluidity, achieving unexpected effects.

[0111] The term "and / or" in the embodiments of the present invention is merely a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone.

[0112] The above is only for the convenience of those skilled in the art to understand the technical solutions of the present invention, and is not intended to limit the present invention. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. An aluminum alloy material that does not require heat treatment, characterized in that, The heat-treatable aluminum alloy material comprises the following elemental components by mass percentage: Si 4%-5.9%, Mg 0.3%-0.8%, Cu 0.7%-1.8%, Zn 0.1%-0.4%, Mn 0.5%-0.8%, Fe 0-0.4%, Ca 0.1%-0.2%, Sr 0.015%-0.050%, Ti 0.05%-0.30%, V 0.01%-0.03%, RE 0.05%-0.2%, unavoidable impurities <0.03%, and the balance is Al, wherein the RE element is La and / or Ce; The mass ratio of the Si element to the Ca element is 25-40:1; The mass ratio of the Si element to the total mass of the Ca element, V element and RE element is 15-35:

1.

2. The heat-treatment-free aluminum alloy material according to claim 1, wherein The mass percentage of the Ca element is 0.1%-0.19%.

3. A preparation method of a heat-treatment-free aluminum alloy material, characterized in that, The heat-treatable aluminum alloy material is as described in any one of claims 1-2; The preparation method of the heat-treatable aluminum alloy material comprises: providing preparation raw materials according to the mass percentages of the elements in the heat-treatable aluminum alloy material; Performing smelting treatment, slag skimming treatment, and die-casting treatment on the preparation raw materials in sequence to prepare the heat-treatable aluminum alloy material.

4. The preparation method of the heat-treatment-free aluminum alloy material according to claim 3, wherein At least part of the preparation raw materials are selected from aluminum scrap.

5. The preparation method of the heat-treatment-free aluminum alloy material according to claim 4, characterized in that, The aluminum scrap includes at least one of 1-series aluminum alloy scrap, 5-series aluminum alloy scrap, 6-series aluminum alloy scrap, A356 aluminum alloy scrap, A380 aluminum alloy scrap, AlSi7Mg0.3Cu0.5 aluminum alloy scrap, and AlSi9Cu3 aluminum alloy scrap.

6. The preparation method of the heat-treatment-free aluminum alloy material according to claim 4, characterized in that, In the preparation raw materials, the Ca element is added in the form of Al-10Ca alloy; at least part of the Si element is added in the form of Al-20Si alloy; at least part of the Mg element is added in the form of pure Mg; at least part of the Mn element is added in the form of Al-20Mn alloy; at least part of the Cu element is added in the form of Al-50Cu alloy; at least part of the Zn element is added in the form of Al-20Zn alloy; at least part of the V element is added in the form of Al-5V alloy; at least part of the Ti element is added in the form of Al-10Ti alloy, and at least part of the Sr element is added in the form of Al-10Sr alloy.

7. The preparation method of the heat-treatment-free aluminum alloy material according to claim 4, wherein, The step of providing preparation raw materials according to the mass percentages of the elements in the heat-treatable aluminum alloy material includes: Classifying, crushing, and impurity removing the aluminum scrap in sequence to obtain aluminum scrap raw materials and use them as the first part of the preparation raw materials; After determining the first part of the preparation raw materials, determining and providing the second part of the preparation raw materials according to the formula of the heat-treatable aluminum alloy material; According to the mass percentages of the elements in the heat-treatable aluminum alloy material, proportioning the first part of the preparation raw materials and the second part of the preparation raw materials to obtain the preparation raw materials.

8. The preparation method of the heat-treatment-free aluminum alloy material according to claim 7, characterized in that, The step of performing smelting treatment, slag skimming treatment, and die-casting treatment on the preparation raw materials in sequence to prepare the heat-treatable aluminum alloy material includes: The raw materials for preparing the first part are sequentially subjected to smelting treatment and dross removal treatment to obtain a first raw material melt; The components contained in the raw materials for preparing the second part are added to the first raw material melt in a step-by-step manner and subjected to smelting treatment to obtain an aluminum alloy melt; The aluminum alloy melt is subjected to die-casting treatment to prepare the heat-treatable aluminum alloy material.

9. Application of the heat-treatment-free aluminum alloy material in the preparation of aluminum alloy structural parts, characterized in that The heat-treatable aluminum alloy material is as described in any one of claims 1-2, or is prepared by using the preparation method of the heat-treatable aluminum alloy material described in any one of claims 3-8.

10. An aluminum alloy structural member, characterized in that, The aluminum alloy structural member is prepared from the heat-treatable aluminum alloy material, and the heat-treatable aluminum alloy material is as described in any one of claims 1-2, or is prepared by using the preparation method of the heat-treatable aluminum alloy material described in any one of claims 3-8.

Citation Information

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