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Microstructure and mechanical properties of high-manganese-containing high-speed twin-roll cast Al-Mn-Si alloy strips and their cold-rolled sheets

机译:高锰的高速双辊铸造Al-Mn-Si合金条带及其冷轧板的微观结构和力学性能

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Al-Mn based alloys with high-manganese content are expected to have improved mechanical properties due to solid solution hardening and/or dispersion hardening. However, the increase of Mn solubility of the alloy is difficult by using the conventional DC casting. In order to solve this problem, in the present study, we focused on the twin-roll casting method which is characterized by high cooling rates. Several kinds of high Mn-containing Al-Mn-Si alloy strips were fabricated by using a vertical-type high-speed twin-roll caster equipped with a pair of water-cooled copper rolls. Direct temperature measurement of the liquid melt during the casting was also performed. The alloy strips of various compositions containing up to 4 Mn and 2 Si (wt%) were successfully obtained. By observing the microstructure of the cross section of the strip, we found the characteristic solidified structure. The solidified structure consisted of three layers. Two solidified shells with a columnar dendrite structure grew from the roll surfaces toward the strip center. In the mid-thickness region, the band structure consisting of equiaxed dendrites and globular grains was observed between the solidified shells. Very fine primary particles were observed in the matrix near the strip surface, while, relatively coarse particles with blocky and needle-like shape were observed in the central band of the as-cast strip. The electric conductivity measurement was performed for the as-cast strips. Mn solubility in Al matrix was estimated from the obtained values. The estimated Mn solubility in the Al-2Mn-xSi strips was between 1.5 ~ 1.8wt% Mn. It was over 1.43wt%Mn for the Al-4Mn-xSi strips. We found that the Mn solubility of the as-cast strips was considerably high. The strips were cold-rolled to the sheets and then annealed at various conditions. They were subjected to the tensile tests, and the effects of solid solution hardening and dispersion hardening are discussed.
机译:由于固体溶液硬化和/或分散硬化,预期基于高锰含量的基于高锰含量的合金。然而,通过使用传统的DC铸件,合金的Mn溶解度的增加难以困难。为了解决这个问题,在本研究中,我们专注于双卷铸造方法,其特征在于高冷却速率。通过使用配备有一对水冷铜辊的垂直型高速双辊脚轮制造了几种含高Mn的Al-Mn-Si合金条带。还进行了浇铸期间液体熔体的直接温度测量。成功地获得含有高达4mN和2 Si(WT%)的各种组合物的合金条带。通过观察条带的横截面的微观结构,我们发现特征凝固结构。凝固结构由三层组成。两个具有柱状枝晶结构的凝固壳从朝向条带的辊表面增长。在中厚区域中,在固化壳之间观察到由等轴树枝状和球状晶粒组成的带结构。在条带表面附近的基质中观察非常细的初级颗粒,而在作为铸造条的中心带中观察到具有嵌块和针状形状的相对粗略颗粒。对铸造条进行电导率测量。从所得值估计Al基质中的Mn溶解度。 Al-2MN-XSI条带中的估计Mn溶解度在1.5〜1.8wt%的Mn之间。对于Al-4mn-XSI条,它超过1.43wt%MN。我们发现,铸带的Mn溶解度相当高。将条带冷轧到片材上,然后在各种条件下退火。对它们进行拉伸试验,讨论了固溶硬化和分散硬化的影响。

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