Method for manufacturing aluminum alloy clad material for press molding, aluminum alloy clad material for press molding, and press molded article
By using the method of preparing the stamping material with the aluminum alloy residue of the automobile radiator, the problem of increasing impurity concentration caused by multiple recycling of the same type of aluminum alloy materials is solved, which improves the recycling efficiency and reduces the production cost.
Patent Information
- Application Number
- JP2023188802
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-11-02
- Publication Date
- 2025-05-16
AI Technical Summary
In the prior art, by recycling the same type of aluminum alloy material multiple times, the impurity concentration increases and the amount of new aluminum metal is increased, which reduces the recycling efficiency.
A method of manufacturing aluminum alloy stamping material is adopted. The core material is prepared by using aluminum alloy residues from automobile radiators as raw materials, and the outer skin material is prepared using aluminum alloys of different components, and the stamping material is formed by hot rolling and cold rolling.
Through this method, the efficiency of aluminum alloy recycling is improved, the impurity concentration is reduced, the service life of the material is extended, and the production cost is reduced.
Abstract
Description
[Technical field]
[0001] The present invention relates to a manufacturing method for an aluminum alloy clad material for press molding, an aluminum alloy clad material for press molding, and a press-molded product, and in particular to a manufacturing method for an aluminum alloy clad material for press molding that is more efficient in recycling than conventional methods, an aluminum alloy clad material for press molding manufactured by such a manufacturing method, and a press-molded product manufactured using such an aluminum alloy clad material for press molding. [Background technology]
[0002] In recent years, there has been an increasing demand for recycling resources in various fields. Aluminum alloys, which are produced by reducing bauxite, consume a huge amount of electricity, so there is a demand for promoting recycling from the perspective of resource conservation and cost reduction.
[0003] For example, Patent Document 1 discloses a recycling method including the steps of melting a recycled aluminum alloy into a liquid metal, adding magnesium, silicon, or copper as an alloying element to the liquid metal to form a modified liquid metal, casting the modified liquid metal, and rolling the cast alloy, characterized in that the modified liquid metal contains 50% or more of recycled aluminum alloy. According to the recycling method described in Patent Document 1, a metal product with high strength and high formability can be cast from aluminum alloy scrap. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Special table 2020-514556 (Patent No. 7163304) Summary of the Invention [Problem to be solved by the invention]
[0005] The present inventors have studied ways to improve recycling efficiency by limiting the scraps of aluminum alloy materials to be recycled and the aluminum alloy materials to be produced by recycling. If the same type of material is simply recycled repeatedly, the impurity concentration increases, and if it is attempted to repeatedly recycle the same alloy composition, the amount of new aluminum metal to be added increases, resulting in a problem of reduced recycling efficiency.
[0006] The present invention aims to provide a method for producing an aluminum alloy clad material for press molding capable of improving recycling efficiency. It is also an object of the present invention to provide an aluminum alloy clad material for press molding that can be produced by such a production method, and a press-molded product produced using such an aluminum alloy clad material for press molding. [Means for solving the problem]
[0007] According to an embodiment of the present invention, there are provided solutions as described in the following items.
[0008] [Item 1] A method for producing an aluminum alloy clad material for press molding, comprising: a core material; and a first skin material and a second skin material joined to both sides of the core material so as to sandwich the core material, the method comprising the steps of: A step A of preparing a first aluminum alloy using scrap of an aluminum alloy clad material of an automobile heat exchanger, the scrap containing Si, Fe, Cu, Mn, Mg, Cr, Zn and Ti as additive elements; A step B of preparing a second aluminum alloy having a content rate of at least Si and Cu less than that of the first aluminum alloy; A step C of forming a core plate material using the first aluminum alloy; A step D of forming a first skin plate and a second skin plate using the second aluminum alloy, A step E of rolling the first skin plate and the second skin plate in a state in which the core plate is sandwiched between the first skin plate and the second skin plate; A manufacturing method comprising:
[0009] The additive elements contained in the second aluminum alloy may further include at least one element selected from the group consisting of Fe, Mn, Mg, Cr, Zn, and Ti, in addition to Si and Cu. Mn, Cr, Zn, and Ti contribute to the color tone and / or material strength after anodizing.
[0010] [Item 2] 2. The method according to item 1, wherein the scrap of the aluminum alloy clad material of the automotive heat exchanger contains Si: 0.50% by mass or more, Fe: 0.10% by mass or more, Cu: 0.10% by mass or more, Mn: 0.50% by mass or more, Mg: 0.05% by mass or more, Cr: 0.01% by mass or more, Zn: 0.10% by mass or more, and Ti: 0.01% by mass or more.
[0011] [Item 3] 3. The manufacturing method according to item 1 or 2, wherein the first aluminum alloy contains 10% by mass or more of the scrap.
[0012] [Item 4] 3. The manufacturing method according to item 1 or 2, wherein the first aluminum alloy contains 50% by mass or more of the scrap.
[0013] [Item 5] 5. The method according to any one of items 1 to 4, wherein the step A includes a step of adding any one of the additive elements and / or new aluminum ingot so that the first aluminum alloy contains 0.50% by mass or more of Si, 0.05% by mass or more of Fe, 0.12% by mass or more of Cu, 0.60% by mass or more of Mn, 0.30% by mass or more of Mg, 0.01% by mass or more of Cr, 0.11% by mass or more of Zn, and 0.01% by mass or more of Ti, with the remainder being aluminum and unavoidable impurities.
[0014] [Item 6] 6. The method according to item 5, wherein the step A includes a step of adding any one of the additive elements and / or new aluminum ingot so that the first aluminum alloy contains 2.00% by mass or less of Si, 1.00% by mass or less of Fe, 1.00% by mass or less of Cu, 1.80% by mass or less of Mn, 0.80% by mass or less of Mg, 0.03% by mass or less of Cr, 1.50% by mass or less of Zn, and 0.30% by mass or less of Ti.
[0015] [Item 7] 7. The manufacturing method according to any one of items 1 to 6, wherein the first skin plate material and the second skin plate material are formed by dividing one skin plate material formed using the second aluminum alloy.
[0016] [Item 8] An aluminum alloy clad material for press molding, comprising a core material and a first skin material and a second skin material joined to both sides of the core material so as to sandwich the core material, the core material is formed of an aluminum alloy containing, as additive elements, 0.50% by mass or more of Si, 0.05% by mass or more of Fe, 0.12% by mass or more of Cu, 0.60% by mass or more of Mn, 0.30% by mass or more of Mg, 0.01% by mass or more of Cr, 0.11% by mass or more of Zn, and 0.01% by mass or more of Ti, with the remainder being aluminum and unavoidable impurities; The first skin material and the second skin material are each independently formed of an aluminum alloy having a content of at least Si and Cu less than that in the core material. Clad material.
[0017] The first skin material and the second skin material may further contain at least one element selected from the group consisting of Fe, Mn, Mg, Cr, Zn and Ti, in addition to Si and Cu.
[0018] [Item 9] Item 9. The aluminum alloy of the core material contains Si: 2.00% by mass or less, Fe: 1.00% by mass or less, Cu: 1.00% by mass or less, Mn: 1.80% by mass or less, Mg: 0.80% by mass or less, Cr: 0.03% by mass or less, Zn: 1.50% by mass or less, and Ti: 0.30% by mass or less. The clad material according to item 8.
[0019] [Item 10] 10. A press-molded product manufactured using the aluminum alloy clad material for press molding according to item 8 or 9.
[0020] [Item 11] Item 11. The manufacturing method according to any one of items 1 to 7, wherein scrap of the press-molded product according to item 10 is used instead of the scrap of the aluminum alloy clad material of the automotive heat exchanger. Effect of the Invention
[0021] According to an embodiment of the present invention, there is provided a method for producing an aluminum alloy clad material for press molding capable of improving recycling efficiency. According to another embodiment of the present invention, there is provided an aluminum alloy clad material for press molding that can be produced by such a production method, and a press-molded product produced using such an aluminum alloy clad material for press molding. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] Hereinafter, a method for producing an aluminum alloy clad material for press molding, an aluminum alloy clad material for press molding, and a press-molded product according to embodiments of the present invention will be described.
[0023] The method for producing an aluminum alloy clad material for press molding according to an embodiment of the present invention improves recycling efficiency by using scrap aluminum alloy clad material of automotive heat exchangers as the aluminum alloy raw material to be recycled.
[0024] The aluminum alloy clad material for press molding manufactured by the manufacturing method according to the embodiment of the present invention has a core material and a first skin material and a second skin material joined to either side of the core material so as to sandwich the core material. The manufacturing method according to the embodiment of the present invention includes the following steps.
[0025] A first aluminum alloy is prepared using scrap of an aluminum alloy clad material for an automobile heat exchanger, the scrap containing Si, Fe, Cu, Mn, Mg, Cr, Zn, and Ti as additive elements. A core plate material for forming a core material is formed using the first aluminum alloy.
[0026] A second aluminum alloy is prepared, the content of at least Si and Cu being less than the content in the first aluminum alloy. The second aluminum alloy is used to form a first skin plate for forming the first skin and a second skin plate for forming the second skin. The second aluminum alloy for forming the first skin plate and the second skin plate can be selected independently. That is, the compositions of the first skin plate and the second skin plate may be different from each other or the same. From the viewpoint of productivity, it is preferable to form the first skin plate and the second skin plate by dividing one skin plate formed using the second aluminum alloy.
[0027] The first skin plate and the second skin plate are arranged so as to sandwich the core plate, and then rolled. The rolling process may be a hot rolling process and / or a cold rolling process. Through the rolling process, an aluminum alloy clad material for press molding having the core, the first skin, and the second skin is obtained. The obtained aluminum alloy clad material for press molding may be subjected to a heat treatment, if necessary.
[0028] Examples of heat treatments include homogenization treatment performed after ingot casting and before the hot rolling process, intermediate heat treatment performed after the hot rolling process and before the cold rolling process, solution treatment performed after the cold rolling process, and artificial aging treatment performed after the solution treatment. Note that the intermediate heat treatment may be omitted.
[0029] The heat treatment is carried out so as to uniformly disperse small crystal precipitates in order to improve the formability of the aluminum alloy sheet for press forming.
[0030] The homogenization treatment is carried out, for example, at a temperature of about 500°C to about 600°C, which is higher than the solubility limit, for about 24 hours or less. If the treatment is carried out for more than about 24 hours, the crystal precipitate may become coarse. If the treatment temperature is less than about 500°C, the treatment takes a long time and the throughput decreases.
[0031] The intermediate heat treatment is carried out, for example, at about 300° C. or more and about 500° C. or less, preferably about 400° C. The heat treatment time is, for example, about 2 hours or more and about 24 hours or less. The intermediate heat treatment can reduce the size of crystal precipitates produced in the hot rolling process, reduce distortion caused in the hot rolling process, and recrystallize the material. The intermediate heat treatment can be omitted.
[0032] The solution treatment is performed to heat the crystal precipitates generated by rolling or the like to sufficiently dissolve them. The solution treatment is preferably performed at a temperature lower than the solidus and preferably higher than the solubility limit line. The heat treatment time is, for example, more than about 0 seconds and 12 hours or less. After the solution treatment, it is preferable to cool the material by air cooling or water cooling in order to prevent the dissolved crystal precipitates from re-precipitating.
[0033] Artificial aging is performed at a temperature of about 100° C. to about 200° C. for about 4 hours to about 24 hours. By artificial aging, elements contained in the solid solution in a supersaturated state are precipitated, thereby making it possible to approach the target strength.
[0034] A process of preparing a first aluminum alloy will be described. The first aluminum alloy is used to form a core plate material that is the core material of an aluminum alloy clad material for press molding. Scrap of an aluminum alloy clad material for an automobile heat exchanger, which contains Si, Fe, Cu, Mn, Mg, Cr, Zn, and Ti as additive elements, is used for the first aluminum alloy. The scrap of an aluminum alloy clad material for an automobile heat exchanger contains, for example, Si: 0.50 mass% or more, Fe: 0.10 mass% or more, Cu: 0.10 mass% or more, Mn: 0.50 mass% or more, Mg: 0.05 mass% or more, Cr: 0.01 mass% or more, Zn: 0.10 mass% or more, and Ti: 0.01 mass% or more. The composition of the scrap is determined by melting the scrap and following a method in accordance with JIS H 1351-1972.
[0035] Any of the additive elements and / or new aluminum ingots are added to the scrap so that the first aluminum alloy contains, for example, Si: 0.50% by mass or more, Fe: 0.05% by mass or more, Cu: 0.12% by mass or more, Mn: 0.60% by mass or more, Mg: 0.30% by mass or more, Cr: 0.01% by mass or more, Zn: 0.11% by mass or more, and Ti: 0.01% by mass or more, with the remainder being aluminum and inevitable impurities. Also, any of the additive elements and / or new aluminum ingots are added to the scrap so that the first aluminum alloy contains, for example, Si: 2.00% by mass or less, Fe: 1.00% by mass or less, Cu: 1.00% by mass or less, Mn: 1.80% by mass or less, Mg: 0.80% by mass or less, Cr: 0.03% by mass or less, Zn: 1.50% by mass or less, and Ti: 0.30% by mass or less.
[0036] The first aluminum alloy preferably contains 10% by mass or more of scrap, more preferably 30% by mass or more, and even more preferably 50% by mass or more. The greater the mass fraction of scrap, the less the amount of virgin aluminum metal to be added.
[0037] The content of at least Si and Cu in the second aluminum alloy (sometimes referred to as the second content) is less than the content in the first aluminum alloy (sometimes referred to as the first content). At least Si and Cu in the second aluminum alloy include at least Si and Cu whose content increases due to scrap of a press-molded product manufactured using an aluminum alloy clad material for press molding. The additive element in the second aluminum alloy may further include at least one element selected from the group consisting of Fe, Mn, Mg, Cr, Zn and Ti in addition to Si and Cu. In this case, the content (second content) of any one or more additive elements of Fe, Mn, Mg, Cr, Zn and Ti in the second aluminum alloy may be smaller than the content (first content) in the first aluminum alloy, and the content of at least one element selected from the group consisting of Fe, Mn, Mg, Cr, Zn and Ti other than Si and Cu may not be smaller than the first content.
[0038] According to the above manufacturing method, there is obtained an aluminum alloy clad material for press molding, which has a core material and a first skin material and a second skin material joined to either side of the core material so as to sandwich the core material, wherein the core material contains, as additive elements, the following: Si: 0.50% by mass or more, Fe: 0.05% by mass or more, Cu: 0.12% by mass or more, Mn: 0.60% by mass or more, Mg: 0.30% by mass or more, Cr: 0.01% by mass or more, Zn: 0.11% by mass or more, and Ti: 0.01% by mass or more, with the remainder being formed of an aluminum alloy consisting of aluminum and unavoidable impurities, and the first skin material and the second skin material are each independently formed of an aluminum alloy whose content of at least Si and Cu is less than the content in the core material. The aluminum alloy of the core material contains, for example, Si: 2.00 mass% or less, Fe: 1.00 mass% or less, Cu: 1.00 mass% or less, Mn: 1.80 mass% or less, Mg: 0.80 mass% or less, Cr: 0.03 mass% or less, Zn: 1.50 mass% or less, and Ti: 0.30 mass% or less.
[0039] The content of at least Si and Cu of each additive element of the first aluminum alloy in the entire aluminum alloy clad material for press molding is adjusted so as not to exceed the upper limit of the first content. Therefore, even if impurities are contained in scrap of a press-molded product manufactured using the aluminum alloy clad material for press molding and the content of at least Si and Cu contained in the scrap increases, it is possible to suppress the content from exceeding the upper limit of the first content, or to reduce the amount by which the content exceeds the upper limit of the first content. Therefore, in the manufacturing method of the clad material, if scrap of a press-molded product manufactured using the aluminum alloy clad material for press molding is used instead of scrap of an aluminum alloy clad material for an automobile heat exchanger, it is possible to reduce the amount of new aluminum ingot required to prepare the first aluminum alloy, and to improve recycling efficiency.
[0040] The first content rate and the second content rate in the manufacturing method of the aluminum alloy clad material for press molding according to the embodiment of the present invention depend on the thickness of the core material, the thickness of the first skin material and the second skin material, and the properties required for the core material, the first skin material and the second skin material, as well as the content rate of added elements including at least Si and Cu that will be contained in excess in the scrap.
[0041] The thickness of the core material is, for example, 0.1 mm to 10.0 mm, and the thicknesses of the first skin material and the second skin material are each, independently, for example, 0.005 mm to 3 mm. The thickness of the skin material is, for example, about 5% to about 30% of the thickness of the core material.
[0042] The composition of the first aluminum alloy is, for example, Si: 0.50 mass% or more and 2.00 mass% or less Fe: 0.05 mass% or more and 1.00 mass% or less Cu: 0.12 mass% or more and 1.00 mass% or less Mn: 0.60 mass% or more and 1.80 mass% or less Mg: 0.30 mass% or more and 0.80 mass% or less Cr: 0.01 mass% or more and 0.03 mass% or less Zn: 0.11 mass% or more and 1.50 mass% or less Ti: 0.01 mass% or more: 0.30 mass% or less It is.
[0043] In the case where the additive elements to be contained in the first aluminum alloy by using the scrap are Si and Cu, the composition of the second aluminum alloy is, for example, Si: 0.20 mass% or more and 1.00 mass% or less Fe: More than 0.0 mass% and 0.50 mass% or less Cu: More than 0.0 mass% and 0.30 mass% or less Mg: 0.20 mass% or more and 1.00 mass% or less It is.
[0044] When the first skin material and the second skin material are intended to have the effect of improving press moldability (surface quality) and / or improving surface treatability, the composition of the second aluminum alloy can be adjusted, for example, as follows. Si: 0.30 mass% or more and 0.70 mass% or less Fe: More than 0.0 mass% and 0.40 mass% or less Cu: more than 0.0 mass% and 0.15 mass% or less Mg: 0.30 mass% or more and 0.70 mass% or less
[0045] The second aluminum alloy may not contain any of the above-mentioned additive elements. In addition, the second aluminum alloy may have a lower content of one or more additive elements that will be contained in the scrap than the content of the one or more additive elements in the first aluminum alloy. Depending on the properties required for the first skin material and the second skin material, the second aluminum alloy may have one or more additive elements (e.g., Zn, Mn, Cr, Ti, Ga, and Ni) that are greater in content than the first aluminum alloy. In addition, the first aluminum alloy and the second aluminum alloy may contain additive elements other than the exemplified additive elements.
[0046] The press-molding aluminum alloy clad material according to the embodiment of the present invention can be manufactured by a known method (for example, see JP-A-01-252759). The entire disclosure of JP-A-01-252759 is incorporated herein by reference. The melting (dissolution), casting, rolling, and heat treatment (annealing, etc.) of the aluminum alloy raw material including scrap can be carried out by a known method.
[0047] The aluminum alloy clad material for press molding according to the embodiment of the present invention can be suitably used for manufacturing various press molded products (for example, automobile housings such as bumpers and fronts, housings for electronic devices such as smartphones, tablet terminals, and notebook computers, etc.) Furthermore, scrap of press molded products manufactured using the aluminum alloy clad material for press molding according to the embodiment of the present invention can be suitably used for manufacturing the aluminum alloy clad material for press molding according to the embodiment of the present invention. [Industrial Applicability]
[0048] The manufacturing method of the aluminum alloy clad material for press molding, the aluminum alloy clad material for press molding, and the press molded product according to the embodiments of the present invention can improve the recycling efficiency of aluminum alloy materials. The embodiments of the present invention can also be used in combination with a known recycling method, such as the recycling method described in Patent Document 1.
Claims
1. A method for producing an aluminum alloy clad material for press molding, comprising: a core material; and a first skin material and a second skin material joined to either side of the core material so as to sandwich the core material, the method comprising the steps of: A step A of preparing a first aluminum alloy using scrap of an aluminum alloy clad material of an automobile heat exchanger, the scrap containing Si, Fe, Cu, Mn, Mg, Cr, Zn and Ti as additive elements; A step B of preparing a second aluminum alloy having a content rate of at least Si and Cu less than that of the first aluminum alloy; A step C of forming a core plate material using the first aluminum alloy; A step D of forming a first skin plate and a second skin plate using the second aluminum alloy, A step E of rolling the first skin plate and the second skin plate in a state in which the core plate is sandwiched between the first skin plate and the second skin plate; A manufacturing method comprising:
2. 2. The method according to claim 1, wherein the scrap of the aluminum alloy clad material of the automotive heat exchanger contains Si: 0.50% by mass or more, Fe: 0.10% by mass or more, Cu: 0.10% by mass or more, Mn: 0.50% by mass or more, Mg: 0.05% by mass or more, Cr: 0.01% by mass or more, Zn: 0.10% by mass or more, and Ti: 0.01% by mass or more.
3. The manufacturing method according to claim 1 or 2, wherein the first aluminum alloy contains 10 mass% or more of the scrap.
4. The manufacturing method according to claim 1 or 2, wherein the first aluminum alloy contains 50 mass% or more of the scrap.
5. 3. The manufacturing method according to claim 1, wherein the step A includes a step of adding any one of the additive elements and / or new aluminum ingot so that the first aluminum alloy contains at least 0.50 mass% Si, at least 0.05 mass% Fe, at least 0.12 mass% Cu, at least 0.60 mass% Mn, at least 0.30 mass% Mg, at least 0.01 mass% Cr, at least 0.11 mass% Zn, and at least 0.01 mass% Ti, with the remainder being aluminum and unavoidable impurities.
6. 6. The manufacturing method according to claim 5, wherein the step A includes a step of adding any of the additional elements and / or new aluminum ingot so that the first aluminum alloy contains not more than 2.00 mass% Si, not more than 1.00 mass% Fe, not more than 1.00 mass% Cu, not more than 1.80 mass% Mn, not more than 0.80 mass% Mg, not more than 0.03 mass% Cr, not more than 1.50 mass% Zn, and not more than 0.30 mass% Ti.
7. 3. The manufacturing method according to claim 1, wherein the first skin plate and the second skin plate are formed by dividing one skin plate formed using the second aluminum alloy.
8. 1. An aluminum alloy clad material for press molding, comprising a core material and a first skin material and a second skin material joined to both sides of the core material so as to sandwich the core material, the core material is formed of an aluminum alloy containing, as additive elements, 0.50% by mass or more of Si, 0.05% by mass or more of Fe, 0.12% by mass or more of Cu, 0.60% by mass or more of Mn, 0.30% by mass or more of Mg, 0.01% by mass or more of Cr, 0.11% by mass or more of Zn, and 0.01% by mass or more of Ti, with the remainder being aluminum and unavoidable impurities; The first skin material and the second skin material are each independently formed of an aluminum alloy having a content of at least Si and Cu less than that of the core material. Clad material.
9. The aluminum alloy of the core material contains Si: 2.00 mass% or less, Fe: 1.00 mass% or less, Cu: 1.00 mass% or less, Mn: 1.80 mass% or less, Mg: 0.80 mass% or less, Cr: 0.03 mass% or less, Zn: 1.50 mass% or less, and Ti: 0.30 mass% or less. The clad material of claim 8.
10. A press-molded product produced using the aluminum alloy clad material for press molding according to claim 8 or 9.
11. The manufacturing method according to claim 1 , wherein scrap of the press-molded product according to claim 10 is used in place of the scrap of the aluminum alloy clad material of the heat exchanger for an automobile.
Citation Information
Patent Citations
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