Aluminum alloy foil and method for producing same
A controlled aluminum alloy composition and manufacturing process address the challenges of formability and surface roughness in packaging and battery foils by optimizing grain structure and orientation, resulting in a foil with enhanced mechanical properties and surface quality for large deformations.
Patent Information
- Application Number
- JP2025140635
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-11-05
AI Technical Summary
Existing aluminum alloy foils used for packaging and battery applications face challenges in achieving high formability and suppressing surface roughness during deformation, particularly due to inadequate control of crystal grain structure and orientation.
An aluminum alloy foil composition containing specific ranges of Fe and Si, with controlled grain boundary lengths and orientations, is produced through a process involving homogenization, hot rolling, cold rolling without intermediate annealing, and final annealing, to achieve high elongation and reduced surface roughness.
The solution results in an aluminum alloy foil with enhanced formability, mechanical strength, and improved surface quality, suitable for large deformations and press forming applications, while maintaining high productivity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an aluminum alloy foil and a method for producing the same. [Background technology]
[0002] Aluminum alloy foils used as packaging materials for food products, lithium-ion batteries, etc. are required to have high elongation because they are formed by being subjected to large deformations by press forming or the like.
[0003] For example, Patent Document 1 below discloses a method for producing an aluminum foil made of an aluminum alloy containing 0.7 to 2.0% Fe as a method for producing an aluminum foil with excellent formability. The technology described in Patent Document 1 describes a technique in which after hot rolling, the foil is heavily worked at a working rate of 97% or more to produce a foil product without intermediate annealing during the cold rolling process, and then finish annealing is performed at 300 to 450°C. Furthermore, Patent Document 2 below describes an aluminum alloy soft foil containing 0.7 to 1.4 mass % of Fe, in which the average crystal grain size of crystal grains having a tilt angle of more than 5° is 3.5 μm or less. Patent Document 2 describes a technique for producing a soft foil exhibiting excellent strength by homogenizing an ingot at 400 to 500°C, hot rolling it with a hot rolling finish temperature of 300°C or higher, cold rolling it without intermediate annealing, and final annealing it at 220 to 275°C. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2-080541 [Patent Document 2] Japanese Patent Application Laid-Open No. 2017-160509 Summary of the Invention [Problem to be solved by the invention]
[0005] When producing this type of aluminum alloy foil for packaging, an ingot is obtained by casting a molten alloy having a required composition, and the ingot is subjected to a homogenization treatment, followed by hot rolling and cold rolling, and then final annealing to obtain a packaging material having the desired mechanical properties. In view of the above-mentioned background, the present inventors have been conducting research and development into aluminum alloy foils suitable as packaging materials for battery exterior foils and the like, with regard to packaging materials manufactured through such processes.
[0006] Based on this research, the present inventors believe that in order to obtain an aluminum alloy foil with high formability, it is important to be able to suppress surface roughness during deformation. Furthermore, as a result of the inventor's research into aluminum alloy foil for packaging, it was found that the ratio of the area rate of Cu orientation to the area rate of Cube orientation in the crystal grain structure of the packaging material is important in terms of surface roughness during deformation.
[0007] Therefore, the present inventors have reviewed the manufacturing method and examined the crystal structure of aluminum alloy foil for packaging material, with the aim of providing an aluminum alloy foil that can improve productivity and has excellent formability. [Means for solving the problem]
[0008] "1" The aluminum alloy foil of this embodiment is an aluminum alloy foil made of an aluminum alloy having a composition containing 0.8% by mass or more and 2.0% by mass or less of Fe, 0.2% by mass or less of Si, with the remainder being Al and unavoidable impurities, characterized in that the elongation in the 0° direction relative to the rolling direction is 10% or more, the elongation in the 45° direction relative to the rolling direction is 15% or more, and the elongation in the 90° direction relative to the rolling direction is 10% or more, the average grain size of grains surrounded by an orientation difference of 5° or more on the surface is 3.5 μm or less, and the ratio of grain boundary lengths in the same field of view on the surface, obtained by performing crystal orientation analysis using the EBSD method, satisfies the following formula (1): Length of grain boundary of crystal grains with misorientation of 2° or more but less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more > 0.5...Equation (1)
[0009] [2] In the aluminum alloy foil of this embodiment, it is preferable that the maximum tensile strength is 85 MPa or more in a tensile test in a direction at an angle of 45° to the rolling direction. "3" In the aluminum alloy foil of this embodiment, it is preferable that the ratio of the area ratio of Cu orientation to the area ratio of Cube orientation (Cu orientation / Cube orientation) in the area ratios of each orientation on the surface is 3 or more.
[0010] "4" In the aluminum alloy foil of this embodiment, it is preferable that, instead of the formula (1), the ratio of grain boundary lengths in the same field of view obtained by performing crystal orientation analysis by the EBSD method on the surface satisfies the following formula (2): 0.52≦Length of grain boundary of crystal grains with misorientation of 2° or more and less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more≦0.88…Equation (2) "5" In the aluminum alloy foil of this form, the initial surface roughness Ra0 and the surface roughness Ra at 25% strain in the tensile test 25 The difference between the surface roughness (Ra 25 -Ra0) is preferably 0.30 μm or less. "6" In the aluminum alloy foil of this embodiment, the surface roughness (Ra 25 −Ra0) is preferably 0.17 μm or more and 0.29 μm or less.
[0011] "7" A method for producing an aluminum alloy foil of this embodiment is an aluminum alloy foil made of an aluminum alloy having a composition containing Fe: 0.8% by mass or more and 2.0% by mass or less, Si: 0.2% by mass or less, the balance being Al and unavoidable impurities, wherein the elongation in the 0° direction relative to the rolling direction is 10% or more, the elongation in the 45° direction relative to the rolling direction is 15% or more, and the elongation in the 90° direction relative to the rolling direction is 10% or more, and the average grain size of grains surrounded by an orientation difference of 5° or more on the surface is 3.5 μm or less, and The present invention relates to a method for producing an aluminum alloy foil, characterized in that the ratio of grain boundary lengths within the same field of view, obtained by performing crystal orientation analysis using the method described above, satisfies the following formula (1): a method for producing an aluminum alloy foil, characterized in that an ingot of an aluminum alloy having the above composition is subjected to a homogenization treatment in which it is heated and held at 480 to 540°C for 8 hours or more and then cooled, and then hot-rolled to a finishing temperature of 240°C to 300°C, and then cold-rolled to a rolling ratio of 98% or more, followed by foil rolling without intermediate annealing, and then final annealing in which it is heated to 220 to 350°C for 30 minutes to 20 hours. Length of grain boundary of crystal grains with misorientation of 2° or more but less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more > 0.5...Equation (1)
[0012] [8] In the method for producing an aluminum alloy foil of this embodiment, it is preferable that the maximum tensile strength is 85 MPa or more in a tensile test in a direction at an angle of 45° to the rolling direction. [9] In the method for producing an aluminum alloy foil of this embodiment, it is preferable that the ratio of the area rate of Cu orientation to the area rate of Cube orientation (Cu orientation / Cube orientation) in the area rate of each orientation on the surface is 3 or more.
[0013] "10" In the manufacturing method of the aluminum alloy foil of this embodiment, the initial surface roughness Ra0 and the surface roughness Ra at 25% strain in the tensile test 25 The difference between the surface roughness (Ra 25 -Ra0) is preferably 0.30 μm or less.
[0014] "11" In the method for producing an aluminum alloy foil of this embodiment, it is preferable to produce an aluminum alloy foil in which the ratio of grain boundary lengths in the same field of view, obtained by performing crystal orientation analysis by the EBSD method on the surface, satisfies the following formula (2) instead of the formula (1): 0.52≦Length of grain boundary of crystal grains with misorientation of 2° or more and less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more≦0.88…Equation (2)
[12] In the method for producing an aluminum alloy foil of this embodiment, the homogenization treatment is preferably carried out under conditions of heating and holding at 480 to 540°C for 8 hours or more and 16 hours or less, followed by cooling. [Effects of the Invention]
[0015] According to the aluminum alloy foil of the present invention, it is possible to provide an aluminum alloy foil having high formability. [Brief explanation of the drawings]
[0016] [Figure 1] 1 is a plan view showing a first embodiment of an aluminum alloy foil according to the present invention. [Figure 2] FIG. 2 is a diagram showing the planar shape of a square punch used in a limit forming height test in an example of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0017] Hereinafter, an example of an embodiment of the present invention will be described in detail with reference to the accompanying drawings. Note that the drawings used in the following description may show characteristic portions enlarged for convenience in order to make the characteristics easier to understand.
[0018] FIG. 1 is a plan view showing one embodiment of an aluminum alloy foil according to the present invention. The aluminum alloy foil 1 shown in FIG. 1 is a foil obtained by hot rolling, cold rolling, and foil rolling of an ingot obtained by a casting method, and is depicted in FIG. 1 as a strip having a certain width with its length oriented left and right. The rolling direction of this aluminum alloy foil 1 is the left-right direction (length direction of the strip-shaped foil) shown in Fig. 1, and for convenience, the direction at 0° to the rolling direction means the left-right direction in Fig. 1, the direction at 45° to the rolling direction means the direction of the arrow labeled 45° in Fig. 1, and the direction at 90° to the rolling direction means the direction of the arrow labeled 90° in Fig. 1. In other words, the direction at 90° to the rolling direction in the aluminum alloy foil 1 means the width direction of the strip-shaped aluminum alloy foil 1 (the vertical direction on the paper in Fig. 1).
[0019] The aluminum alloy foil 1 shown in FIG. 1 is formed to a thickness of, for example, about 0.01 mm to 0.2 mm. The thickness of the aluminum alloy foil 1 may be a general thickness used for foils. For example, it is formed to a thickness of about 0.04 mm (40 μm). In this specification, when "to" is used to indicate a range by describing upper and lower limits, the range includes the upper and lower limits unless otherwise specified. Therefore, 0.01 mm to 0.2 mm means 0.01 mm or more and 0.2 mm or less. The aluminum alloy foil 1 is made of an aluminum alloy containing, for example, 0.8 mass % to 2.0 mass % of Fe, 0.2 mass % or less of Si, and the remainder being Al and unavoidable impurities.
[0020] As an example, this aluminum alloy foil 1 has a maximum tensile strength of 85 MPa or more, a 0.2% yield strength of 45 MPa or more, and an elongation of 15% or more in a tensile test in a direction 45° to the rolling direction, and the ratio of the area ratio of Cu orientation to the area ratio of Cube orientation in the area ratio of each orientation on the surface (Cu orientation / Cube orientation) is 3 or more. In the aluminum alloy foil 1, it is preferable that the average crystal grain size surrounded by an orientation difference of 5° or more is 4 μm or less. In the aluminum alloy foil 1, the initial surface roughness Ra0 and the surface roughness Ra at a strain of 25% in a tensile test are 25 The difference between the surface roughness (Ra 25 -Ra0) is preferably 0.30 μm or less. Details of the surface roughness measurement will be explained in the examples below.
[0021] In the aluminum alloy foil 1, it is preferable that the ratio of grain boundary lengths in the same field of view, obtained by performing crystal orientation analysis using the EBSD method, satisfies the following formula (1). Length of grain boundary of crystal grains with misorientation of 2° or more but less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more > 0.5...Equation (1) Moreover, it is more preferable to satisfy the following formula (2) instead of the above-mentioned formula (1). 0.52≦Length of grain boundary of crystal grains with misorientation of 2° or more and less than 15° / Length of grain boundary of crystal grains with misorientation of 15° or more≦0.88…Equation (2) Furthermore, it is preferable that the aluminum alloy foil 1 has elongation of 10% or more in both the direction at an angle of 0° and the direction at an angle of 90° to the rolling direction.
[0022] The reasons for limiting the composition, properties, and structure of the aluminum alloy constituting the aluminum alloy foil 1 will be explained below. ·Fe: 0.8 mass% or more and 2.0 mass% or less Fe crystallizes as Al-Fe intermetallic compounds during casting, and if the size of these compounds is appropriate, they serve as recrystallization sites during annealing, effectively refining the recrystallized grains. If the Fe content is less than 0.8% by mass, the distribution density of the intermetallic compounds decreases, the grain refinement effect decreases, the final recrystallized grains become coarse, and the grain boundary density of grains with a misorientation of 2° to less than 15° decreases. If the Fe content exceeds 2.0% by mass, the grain refinement effect saturates or decreases, and the size of the Al-Fe intermetallic compounds formed during casting becomes very large, resulting in reduced foil elongation, formability, and productivity. A particularly preferred range for the Fe content is 1.2% to 1.8% by mass. ·Si: 0.20% by mass or less Si forms intermetallic compounds with Fe, but excessive addition leads to coarsening of the compound size and a decrease in distribution density. If the content exceeds the upper limit, there is a concern that coarse crystals will cause a decrease in elongation and formability, and furthermore, the uniformity of the recrystallized grain size distribution after final annealing will decrease. For these reasons, the Si content is set to 0.20 mass% or less. For the same reason, it is more preferable to set the upper limit of the Si content to 0.04 mass%.
[0023] The balance of the components constituting the aluminum alloy foil of the present invention consists of Al and inevitable impurities. These inevitable impurities refer to elements that are inevitably mixed in during the production of the aluminum alloy foil. These inevitable impurities may be contained to an extent that does not affect the properties of the aluminum alloy foil of the present invention. Examples of the inevitable impurities include elements such as magnesium (Mg), chromium (Cr), manganese (Mn), copper (Cu), zinc (Zn), titanium (Ti), vanadium (V), gallium (Ga), nickel (Ni), boron (B), and zirconium (Zr). One or more of these elements may be contained in an amount of 500 mass ppm or less each.
[0024] "In a tensile test at a 45° angle to the rolling direction, the maximum tensile strength is 85 MPa or more, the 0.2% yield strength is 45 MPa or more, and the elongation is 15% or more." Aluminum alloy foil used in packaging materials is subjected to three-dimensional deformation during press forming, so it is required to have good mechanical properties not only in the rolling direction but also in various directions. The inventors have found that mechanical properties in the 45° direction relative to the rolling direction are particularly important during press forming. Regarding the maximum tensile strength and 0.2% yield strength, in order to maintain the shape during forming and ensure strength after forming, it is preferable that the maximum tensile strength be 85 MPa or more and the 0.2% yield strength be 45 MPa. While there are no particular upper limits, if the maximum tensile strength and 0.2% yield strength are too high, handling during forming becomes difficult. Therefore, it is more preferable that the maximum tensile strength be 130 MPa or less and the 0.2% yield strength be 85 MPa or less. Elongation is most closely correlated with formability, and it has been confirmed that in this product, a high elongation value in the 45° direction, in particular, results in good formability. It is preferable that the elongation in the 45° direction relative to the rolling direction be 15% or more, and most preferably 20% or more.
[0025] "Azimuth area ratio" In the aluminum alloy foil 1, the ratio of the area ratio of Cu orientation to Cube orientation (Cu orientation area ratio / Cube orientation area ratio) is preferably 3 or more. (Cu orientation area ratio / Cube orientation area ratio) can be, for example, 5.0 or more and 31 or less. After electrolytic polishing of the foil surface, crystal orientation analysis can be performed using a scanning electron microscope (SEM)-EBSD to calculate the area ratio of each orientation. TSL Solutions' OIM Analysis can be used for the analysis. Deviation from the ideal orientation is limited to 15°. From the obtained area ratio, the ratio of the area ratios of Cu orientation and Cube orientation (Cu orientation area ratio / Cube orientation area ratio) can be calculated. The ideal orientations for each orientation are shown below. Details of the method for calculating the orientation area ratio will be described in detail in the Examples. In the aluminum alloy foil of this embodiment, aligning the crystal orientations in the same direction can suppress surface roughness and improve formability. The inventors have found that, in the alloy foil of this embodiment, Cu orientation and Cube orientation are the main crystal orientations, and that aligning them to the Cu orientation is particularly important. Furthermore, even if the proportion of Cu orientation increases, the presence of a large amount of Cube orientation can easily cause surface roughness, which can deteriorate formability. Therefore, it was decided to index it by the ratio of the area ratio of Cu orientation to Cube orientation. As a result of the investigation, it was confirmed that the ratio of the area ratio of Cu orientation to Cube orientation (Cu orientation area ratio / Cube orientation area ratio) is preferably 3 or more, and more preferably 5 or more. If it is less than 3, even if the crystal grains are fine, the aluminum alloy foil surface is likely to become rough, and the limit forming height is reduced, resulting in a decrease in formability. Cu orientation {112} <111> Cube direction {001} <100> This ideal direction is expressed as a direction that includes all equivalent directions.
[0026] When the aluminum alloy foil of this embodiment is plastically deformed, surface roughness (irregularities) occurs on the material surface. The surface roughness is considered to be unevenness in thickness, and by suppressing this, it is possible to prevent a decrease in the limit forming height. For the three-dimensional deformation that occurs when used as packaging material, the surface roughness Ra0 at the initial stage before plastic deformation and the surface roughness Ra at 25% strain in the tensile test are 25 The difference between the surface roughness (Ra 25 The inventors have found that the surface roughness (Ra -Ra0) is important. 25 The surface roughness (Ra -Ra0) is preferably 0.30 μm or less, and more preferably 0.25 μm or less. 25 When −Ra0) exceeds 0.30 μm, the limit forming height decreases.
[0027] "The average grain size of grains surrounded by a misorientation of 5° or more is 4.0 μm or less." The fine grain structure of soft aluminum foil can suppress the surface roughness of the foil when deformed, and high elongation and high formability can be expected. One of the factors that affect this surface roughness is the grain size. To achieve high elongation characteristics and the high formability that accompanies it, it is desirable that the average grain size of the grains surrounded by grain boundaries with an orientation difference of 5° or more is 4.0 μm or less. The inventors have also found that when the average grain size exceeds 4.0 μm, surface roughness during forming becomes significant, and control of the grain structure is also important for suppressing surface roughness. In the aluminum alloy foil 1, the average crystal grain size is preferably 4.0 μm or less, more preferably 3.5 μm or less. In electron backscatter diffraction (EBSD), a grain boundary map can be obtained by analyzing the crystal orientation per unit area, depicting crystal grains with an orientation difference of 5° or more. Details of the method for calculating the average crystal grain size will be described in the examples.
[0028] Length of grain boundary (LAGB) of grains with misorientation of 2° to 15° / Length of grain boundary (HAGB) of grains with misorientation of 15° or more > 0.5 In order to suppress surface roughness of the aluminum alloy foil, it is considered important that the density of crystal grains with a misorientation of 2° or more and less than 15° is high on the surface of the aluminum alloy foil. Therefore, it is preferable to satisfy the relationship of formula (1), where the grain boundary length of crystal grains with a misorientation of 2° or more and less than 15° (LAGB) / the grain boundary length of crystal grains with a misorientation of 15° or more (HAGB)>0.5. If the relationship is (LAGB) / (HAGB) > 0.6, the ratio of the grain boundary length of grains with a misorientation of 2° or more but less than 15° to the grain boundary length of grains with a misorientation of 15° or more is ≦ 0.5, the foil surface will become rough, the limit forming height will be lower, etc.
[0029] "Method of manufacturing aluminum alloy foil" To manufacture the aluminum alloy foil 1 shown in Fig. 1, a molten aluminum alloy satisfying the above-mentioned composition is prepared, and an aluminum alloy ingot is obtained by a casting method using this molten aluminum alloy. Next, the aluminum alloy ingot is subjected to a homogenization treatment, and processed to a target thickness by hot rolling, cold rolling, and foil rolling, and then final annealing is performed to obtain the aluminum alloy foil 1.
[0030] Homogenization: Maintain temperature between 480 and 540°C for at least 6 hours The resulting ingot is preferably subjected to a homogenization treatment in which it is heated and held at 480 to 540°C for at least 6 hours and then cooled. At temperatures below 480°C, there is little Fe precipitation and the growth of intermetallic compounds is insufficient. On the other hand, at temperatures above 540°C, the growth of intermetallic compounds is significant, resulting in a significant decrease in the density of fine intermetallic compounds with particle sizes of 0.1 μm to less than 1 μm. For this reason, it is more preferable to select a temperature range of 500 to 540°C, for example. In order to precipitate fine intermetallic compounds at a high density in such homogenization treatment at around 500°C, a long heat treatment time is required, and a minimum of 6 hours is required. If the treatment time is less than 6 hours, precipitation is insufficient and the density of the fine intermetallic compounds may decrease. There is no particular upper limit on the homogenization treatment time, but from the perspective of production costs, it is desirable to keep it within 16 hours.
[0031] Hot rolling: Finishing temperature: 240℃ or higher and less than 300℃ In hot rolling, it is desirable to set the finishing temperature to less than 300°C to suppress recrystallization. By setting the hot rolling finishing temperature to less than 300°C, the hot-rolled sheet will have a uniform fibrous structure. If the hot-rolling finishing temperature is 300°C or higher, recrystallization will occur in part of the hot-rolled sheet, resulting in a structure in which fibrous structure and recrystallized structure are mixed, and there is a risk that the recrystallized grain size will become non-uniform during final annealing. If hot rolling is finished at less than 240°C, the temperature during hot rolling will also be extremely low, which may make cracks more likely to occur on the sides of the rolled sheet and significantly reduce productivity. Therefore, it is preferable that the finishing temperature of hot rolling be in the range of 240°C or higher and less than 300°C. There are no particular restrictions on the finished thickness, but it is preferably 3.0 mm or more in order to reduce the final cold rolling reduction ratio.
[0032] Final cold rolling rate: 98% or more The higher the cold rolling reduction ratio from hot rolling to the final foil thickness, the greater the amount of strain accumulated in the material, resulting in finer recrystallized grains after final annealing. By performing the cold rolling at the required reduction ratio for the required number of times and performing foil rolling, an aluminum alloy foil 1 having a thickness of about 10 μm to 0.2 mm, for example, a thickness of 40 μm, can be obtained. When cold rolling is performed the required number of times, it is preferable to perform final foil rolling without intermediate annealing, and then perform final annealing. Furthermore, when final annealing is performed after cold rolling, the final annealing conditions are preferably such that the steel sheet is heated to 220° C. to 350° C. for about 30 minutes to 20 hours, and then slowly cooled.
[0033] The obtained aluminum alloy foil 1 contains a predetermined amount of Fe, which affects the texture of the aluminum alloy and contributes to refinement of the crystal grain size. Although the aluminum alloy contains 0.8 to 2.0 mass % of Fe, by performing foil rolling as final cold rolling without intermediate annealing in the final stage of cold rolling and then final annealing, the aluminum alloy has good elongation even with an Fe content within the above range. The aluminum alloy used here may contain about 0.2 mass % or less of Si in addition to Fe. Even if the aluminum alloy foil 1 of this embodiment contains Si in the above range, an aluminum alloy foil that can achieve the purpose can be obtained.
[0034] By the manufacturing method described above, it is possible to obtain an aluminum alloy foil 1 having a maximum tensile strength of 85 MPa or more, a 0.2% yield strength of 45 MPa or more, and an elongation of 15% or more in a tensile test in a direction 45° to the rolling direction, and having a ratio of the area ratio of Cu orientation to the area ratio of Cube orientation in the area ratios of each orientation on the surface (Cu orientation / Cube orientation) of 3 or more. The aluminum alloy foil 1 described above is suitable for food packaging or formed packaging materials for lithium ion batteries, and can provide an aluminum alloy foil suitable for applications requiring large deformation by press forming or applications requiring high elongation and formability. Furthermore, since it can be produced without intermediate annealing after cold rolling, the aluminum alloy foil 1 can be obtained with excellent productivity. [Example]
[0035] An aluminum alloy ingot having the composition shown in Tables 1 and 2 (the balance being Al and other unavoidable impurities) was produced by semi-continuous casting. The resulting ingot was then subjected to homogenization treatment, hot rolling, cold rolling, and final annealing under the manufacturing conditions shown in Tables 1 and 2 (homogenization treatment conditions, hot rolling finishing temperature, hot rolling finishing thickness, cold rolling finishing foil thickness), to produce aluminum alloy foil. The final annealing conditions were 300°C x 20 hours. The final thickness of the aluminum alloy foil was the thickness (foil thickness) shown in Tables 1 and 2. For samples that underwent intermediate annealing, intermediate annealing was performed under conditions of 360°C x 3 hours. In Tables 1 and 2, examples that were not subjected to intermediate annealing are marked with an "X" in the intermediate annealing column, and examples that were subjected to intermediate annealing are marked with an "O".
[0036] [Table 1]
[0037] [Table 2]
[0038] The obtained aluminum alloy foil was subjected to the following measurements and evaluations. Tensile strength (MPa), elongation (%) All measurements were performed by tensile testing, which conformed to JIS Z2241. JIS No. 5 test pieces were punched out of the aluminum alloy foil samples (using Super Dumbbell (registered trademark) manufactured by Dumbbell Co., Ltd.) so that the elongation in the direction at 45° to the rolling direction could be measured, and the tensile test was performed using a universal tensile testing machine (AGS-X 10 kN manufactured by Shimadzu Corporation) at a pulling rate of 2 mm / min. The elongation percentage was calculated as follows: First, before the test, two lines were marked in the longitudinal center of the test piece in the perpendicular direction to the test piece at an interval of 50 mm, which is the gauge length. After the test, the fracture surfaces of the aluminum alloy foils were butted together to measure the distance between the marks, and the gauge length (50 mm) was subtracted from the distance to obtain the elongation amount (mm), which was then divided by the gauge length (50 mm) to obtain the elongation percentage (%).
[0039] ·Azimuth area ratio Prior to crystal orientation analysis, the foil surface was electrolytically polished to a mirror finish. Electrolytic polishing was performed using a solution of perchloric acid:ethanol = 1:4 (volume ratio) at a voltage of 20V for 5 seconds. After electrolytic polishing of the foil surface, crystal orientation analysis was performed using a scanning electron microscope (SEM)-EBSD, and the area ratio of each orientation was calculated. A FE-SEM (JEOL JSM-7900F) was used for the SEM, and TSL Solutions' OIM Analysis (Ver. 8.0) was used for the analysis. Deviation from the ideal orientation was limited to 15°.
[0040] The measurement conditions were as follows: observation magnification: 900x, acceleration voltage: 15 kV, sample tilt angle: 70°, step size: 0.3 μm. The observation area was 50,000 μm in total, obtained by combining images measured at 900x magnification. 2 CI (Confidence Index) values of 0.1 or less were excluded, and a Minimum Grain Size [points] of 2 and Anti-Grains of 2 were adopted.
[0041] (Azimuth analysis) The area ratio of each orientation was calculated using the Crystal Orientation function. The tolerance was set to less than 15°, and the Orientation Euler Angles and Orientation{hk(i)l}<uv(t)w> The area ratios were determined by defining them as shown in Table 3 below. The area ratios were calculated from the obtained area ratios (Cu orientation area ratio / Cube orientation area ratio) to calculate the area ratio ratio.
[0042] [Table 3]
[0043] ·Surface roughness In this example, the plastic working was carried out by a tensile test. The tensile test was carried out in the same manner as in the elongation measurement in the previous section, using a JIS No. 5 test piece and applying a tensile strain using the universal tensile tester. The surface roughness of the test specimens was measured in accordance with JIS B0601:2001. The actual measurements were performed using a confocal laser microscope (Keyence, VK-X100) and analyzed using an analytical application (Keyence, VK-H1XA). The observation magnification was 500x, the field of view size was 1000 x 500 μm, and the measurement points were the center of the width and length of the JIS No. 5 test specimen. The data scanned by the laser microscope was subjected to noise removal and tilt correction processing before measuring the surface roughness. For noise removal, the noise detection level was set to "Normal," and for tilt correction, the correction method selected was "Surface tilt correction (profile)." The surface roughness parameter was calculated based on JIS B0601:2001, using the arithmetic mean roughness of the surface roughness. First, the surface quality of the test piece before the test is observed with a confocal laser microscope and this is designated as R0. Then, a tensile test is performed. The test is stopped midway when the strain during plastic deformation reaches 25%, and the surface quality (surface roughness measurement) is performed again on the test piece after plastic deformation at the same location as before the test. This is designated as R0. 25 For the same test piece measured using the above procedure, R0 and R 25 Using (R 25The value of -R0) was calculated. The same test was carried out at n=5 or more for the same level, and the average value excluding the maximum and minimum values was used as the calculated value of surface roughness.
[0044] ·Average grain size After electrolytic polishing of the foil surface, crystal orientation analysis was performed using SEM-EBSD, and crystal grains surrounded by grain boundaries with an inclination angle of more than 5° were analyzed using the Number method (number average crystal grain size) under the following conditions to calculate the average crystal grain size. The details of the analysis conditions are as follows: Grain Tolerance Angle: 5° Minimum Grain Size[points]:2 Anti Grains:2 Minimum Confidence Index: 0 Multiple rows required: All OFF Apply partition before calculation:OFF Include grains at edges of scan in statistics:OFF The average crystal grain size by the Number method is the diameter when the area calculated by dividing the measurement area by the number of crystal grains is assumed to be a circle. The measurement conditions are the same as for the orientation area ratio described above: observation magnification: 900x, total area: 50,000 μm 2 It was decided.
[0045] ·LAGB length / HAGB length After electrolytic polishing the foil surface, crystal orientation analysis was performed using SEM-EBSD to observe high-angle grain boundaries (HAGBs) with a misorientation between crystal grains of 15° or more, and low-angle grain boundaries (LAGBs) with a misorientation between 2° or more and less than 15°. Three fields of view with a field size of 45 x 90 μm were measured at a magnification of 900x, and the lengths of the HAGBs and LAGBs within the field of view were determined, and their ratio was calculated. The measurement conditions were the same as for the orientation area ratio described above: observation magnification: 900x, total area: 50,000 μm 2 It was decided. In EBSD, by specifying boundaries in the grain map, it is possible to perform analysis on grain boundaries with any misorientation. Note that because grain boundaries with a misorientation of less than 2° may contain noise, they were excluded from the calculations. In this application, the analysis was performed by specifying a minimum of 2°-maximum of 15° for misorientations of 2° or more but less than 15° (LAGB) as min:2°-max:15°, and a minimum of 15° (HAGB) as min:15° (-max:90°), and the grain boundary length obtained from the analysis was used to calculate the LAGB / HAGB ratio.
[0046] Limit forming height The forming height was evaluated in a square tube forming test. The test was performed using a universal sheet metal forming tester (Model 142 / 20 manufactured by Erichsen) and a square punch (side length D = 37 mm, corner chamfer diameter R = 4.5 mm)2 with a 40 μm thick aluminum foil as shown in Figure 2. The test conditions were a wrinkle suppression force of 10 kN, a punch rise speed (forming speed) scale of 1, and mineral oil as a lubricant applied to one side of the foil (the side that comes into contact with the punch). The aluminum alloy foil was formed by a punch rising from the bottom of the device, and the maximum height at which the punch could rise without cracks or pinholes after three consecutive forming attempts was defined as the limit forming height (mm) of the aluminum alloy foil. The punch height was changed in 0.1 mm increments. In this example, samples with a formed height of 11.0 mm or more were designated as excellent products and were marked with the symbol A, samples with a formed height of 10.0 mm or more but less than 11.0 mm were designated as acceptable products and were marked with the symbol B, and samples with a formed height of less than 10.0 mm were designated as unacceptable products and were marked with the symbol C.
[0047] Using the alloy compositions shown in Tables 1 and 2 and the manufacturing conditions shown in Tables 1 and 2, Examples No. 1 to 22 and Comparative Examples No. 23 to 31 were prepared. All of the Examples are examples that satisfy the desired compositions or manufacturing conditions described above. All of the Comparative Examples are examples that do not satisfy either the desired compositions or manufacturing conditions described above. For samples No. 1 to No. 31, the tensile strength (MPa) in the 0°, 45°, and 90° directions is shown in Tables 1 and 2. Furthermore, the yield strength (MPa) in the 0°, 45°, and 90° directions, the elongation (%) in the 0°, 45°, and 90° directions, the Cu orientation area ratio, the Cube orientation area ratio, and the area ratio ratio (Cu orientation area ratio / Cube orientation area ratio), the average crystal grain size (μm), and the surface roughness (ΔRa 25 The values of -ΔRa0 (μm), (LAGB length / HAGB length), and limit forming height (mm) were determined. The measurement results and evaluation are shown in Tables 4 and 5.
[0048] [Table 4]
[0049] [Table 5]
[0050] As shown in the results shown in Tables 1, 2, 4, and 5, samples No. 1 to 22 (Examples) were aluminum alloy foils made of an aluminum alloy containing 0.8% by mass or more and 2.0% by mass or less of Fe, 0.2% by mass or less of Si, with the remainder being Al and unavoidable impurities, and had a maximum tensile strength of 85 MPa or more, a 0.2% proof stress of 45 MPa or more, and an elongation of 15% or more in a tensile test at an angle of 45° to the rolling direction, and had a ratio of the area fraction of Cu orientation to the area fraction of Cube orientation (Cu / Cube) of 3 or more in the area fractions of each orientation on the surface. These samples had small surface roughness and excellent limit forming height. Furthermore, the samples of these examples have an average crystal grain size of 4 μm or less, which is sufficiently small. Furthermore, the samples of these examples have a low surface roughness (Ra 25 -Ra0) is 0.30 μm or less, which is sufficiently small.
[0051] The Fe content of the example samples is 0.82% or more and 1.96% or less, and the Si content is 0.03% or more and 0.19% or less. The foil thickness of the example samples is 25 μm or more and 80 μm or less. The maximum tensile strength of the example samples in a tensile test in a 45° direction relative to the rolling direction is 86 MPa or more and 101 MPa or less. The 0.2% proof stress in a 45° direction relative to the rolling direction is 48 MPa or more and 74 MPa or less. The Cu orientation / Cube orientation value of the example samples is 5.8 or more and 30.8 or less. The average crystal grain size of the example samples is 2.53 μm or more and 3.42 μm or less. The surface roughness of the example samples is 0.17 μm or more and 0.29 μm or less. The LAGB / HAGB value of the example samples is 0.52 or more and 0.88 or less. The limit forming height of the example samples is 10.1 mm or more and 12.5 mm or less.
[0052] In contrast to these examples, samples No. 23 and No. 24 had Fe contents outside the above range, but they had lower tensile strength, lower yield strength, and lower elongation than the example samples in the same direction. They also had a tendency to have greater surface roughness and a lower limit forming height. Samples No. 25 and No. 26 had Si contents outside the above range, but compared to the example samples, they had lower tensile strength, lower yield strength, and lower elongation in the same direction. They also had a lower limit forming height. Samples Nos. 27, 28, and 29 were samples that underwent intermediate annealing, but had lower tensile strength, lower yield strength, and lower elongation in the same direction than the example samples. Furthermore, compared to the example samples, samples Nos. 27 to 29 had larger average grain size, greater surface roughness, smaller LAGB / HAGB ratios, and lower limit forming heights.
[0053] Sample No. 30 was a sample in which the homogenization temperature was higher than the desired range, but it had low yield strength, an average crystal grain size slightly larger than that of the example samples, slightly greater surface roughness, and a worsened limit forming height. Sample No. 31 was a sample in which the homogenization temperature was lower than the desirable range, but the average crystal grain size was slightly larger than that of the example samples, the surface roughness was slightly greater, and the limit forming height was worse than that of the example samples. [Explanation of symbols]
[0054] 1...aluminum alloy foil, 2...punch.
Claims
1. An aluminum alloy foil made of an aluminum alloy containing Fe: 0.8% by mass or more and 2.0% by mass or less, Si: 0.2% by mass or less, with the remainder being Al and unavoidable impurities, wherein the aluminum alloy foil has an elongation of 10% or more in a direction at 0° to the rolling direction, an elongation of 15% or more in a direction at 45° to the rolling direction, and an elongation of 10% or more in a direction at 90° to the rolling direction, On the surface, the average grain size of grains surrounded by an orientation difference of 5° or more is 3.5 μm or less, An aluminum alloy foil characterized in that the ratio of grain boundary lengths within the same field of view, obtained by performing crystal orientation analysis by EBSD on the surface, satisfies the following formula (1): Length of the grain boundary of the crystal grain with misorientation of 2° or more and less than 15° / Length of the grain boundary of the crystal grain with misorientation of 15° or more > 0.5... (1)
2. 2. The aluminum alloy foil according to claim 1, wherein the ultimate tensile strength is 85 MPa or more in a tensile test in a direction at an angle of 45° to the rolling direction.
3. 3. The aluminum alloy foil according to claim 1, wherein the ratio of the area ratio of Cu orientation to the area ratio of Cube orientation (Cu orientation / Cube orientation) in the area ratios of each orientation on the surface is 3 or more.
4. 3. The aluminum alloy foil according to claim 1, wherein, instead of the formula (1), the ratio of grain boundary lengths in the same field of view obtained by performing crystal orientation analysis on the surface by an EBSD method satisfies the following formula (2): 0.52≦grain boundary length of crystal grains with misorientation of 2° or more and less than 15° / grain boundary length of crystal grains with misorientation of 15° or more≦0.88 (2)
5. Initial surface roughness Ra 0 and the surface roughness Ra at 25% strain in the tensile test 25 The difference between the surface roughness (Ra 25 -Ra 0 3. The aluminum alloy foil according to claim 1, wherein the thickness of the aluminum alloy foil is 0.30 μm or less.
6. The surface roughness (Ra 25 -Ra 0 6. The aluminum alloy foil according to claim 5, wherein the thickness of the aluminum alloy foil is 0.17 μm or more and 0.29 μm or less.
7. An aluminum alloy foil made of an aluminum alloy containing Fe: 0.8% by mass or more and 2.0% by mass or less, Si: 0.2% by mass or less, with the remainder being Al and unavoidable impurities, wherein the aluminum alloy foil has an elongation of 10% or more in a direction at 0° to the rolling direction, an elongation of 15% or more in a direction at 45° to the rolling direction, and an elongation of 10% or more in a direction at 90° to the rolling direction, On the surface, the average grain size of grains surrounded by an orientation difference of 5° or more is 3.5 μm or less, A method for producing an aluminum alloy foil, characterized in that a ratio of grain boundary lengths within the same field of view, obtained by performing crystal orientation analysis by an EBSD method on a surface, satisfies the following formula (1): A method for producing an aluminum alloy foil, comprising: subjecting an ingot of an aluminum alloy having the above composition to a homogenization treatment in which the ingot is heated and held at 480 to 540°C for 8 hours or more, followed by cooling; subjecting the ingot to hot rolling to a finishing temperature of 240 to 300°C; subjecting the ingot to cold rolling at a rolling reduction of 98% or more; and then subjecting the ingot to foil rolling without intermediate annealing; and subjecting the ingot to final annealing in which the ingot is heated to 220 to 350°C for 30 minutes to 20 hours. Length of the grain boundary of the crystal grain with misorientation of 2° or more and less than 15° / Length of the grain boundary of the crystal grain with misorientation of 15° or more > 0.5... (1)
8. 8. The method for producing an aluminum alloy foil according to claim 7, wherein the ultimate tensile strength is 85 MPa or more in a tensile test in a direction at an angle of 45° to the rolling direction.
9. 9. The method for producing an aluminum alloy foil according to claim 7, wherein the ratio of the area ratio of Cu orientation to the area ratio of Cube orientation in the area ratios of each orientation on the surface (Cu orientation / Cube orientation) is 3 or more.
10. Initial surface roughness Ra 0 and the surface roughness Ra at 25% strain in the tensile test 25 The difference between the surface roughness (Ra 25 -Ra 0 9. The method for producing an aluminum alloy foil according to claim 7, wherein the thickness of the aluminum alloy foil is 0.30 μm or less.
11. 9. The method for producing an aluminum alloy foil according to claim 7 or 8, characterized in that, instead of the formula (1), the ratio of grain boundary lengths in the same field of view obtained by performing crystal orientation analysis on the surface by an EBSD method satisfies the following formula (2): 0.52≦grain boundary length of crystal grains with misorientation of 2° or more and less than 15° / grain boundary length of crystal grains with misorientation of 15° or more≦0.88 (2)
12. The method for producing an aluminum alloy foil according to claim 7 or 8, characterized in that the homogenization treatment is carried out under conditions of heating and holding at 480 to 540°C for 8 hours or more and 16 hours or less, and then cooling.
Citation Information
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