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首页> 外文期刊>Journal of Microscopy >Influence of CNTs decomposition during reactive friction‐stir processing of an Al–Mg alloy on the correlation between microstructural characteristics and microtextural components
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Influence of CNTs decomposition during reactive friction‐stir processing of an Al–Mg alloy on the correlation between microstructural characteristics and microtextural components

机译:Al-Mg合金反应性摩擦搅拌加工过程中CNTs分解对微观结构特征与微妙部件的相关性

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Summary Multipass friction‐stir processing was employed to uniformly disperse multiwalled carbon nanotubes (MW‐CNTs) within an Al–Mg alloy metal matrix. Decomposition of MW‐CNTs occurs in situ as a result of solid‐state chemical reactions, forming fullerene (C60) and aluminium carbide (Al 4 C 3 ) phases during reactive high temperature severe plastic processing. The effects of this decomposition on the microstructural features, dynamic restoration mechanisms and crystallographic microtextural developments are studied for the first time by using electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM) analysis. The formation of an equiaxed grain structure with an average size of ~1.5 μm occurs within the stirred zone (SZ) under the influence of inclusions which hinder grain boundary migration via Zener‐Smith pinning mechanisms during the discontinuous dynamic recrystallisation (DDRX). Formation of two strong Cubic and Brass microtextural components in the heat affected zone (HAZ) and thermomechanical affected zone (TMAZ) was noted as compared to the completely random and Cube components found in the base and SZ regions, respectively. The microstructural modification led to hardening and tensile strength improvement for the processed nanocomposite by ~55% and 110%, respectively with respect to the annealed Al–Mg base alloy.
机译:发明内容使用多脂摩擦搅拌加工在Al-Mg合金金属基质中均匀地分散多壁碳纳米管(MW-CNT)。由于固态化学反应,在反应性高温严重塑料加工期间形成富勒烯(C60)和碳化铝(Al 4 C 3)相,形成MW-CNT的分解。通过使用电子反向散射衍射(EBSD)和透射电子显微镜(TEM)分析,首次研究该分解对微结构特征,动态恢复机制和晶体显微易致发射的影响。在搅拌的区(Sz)的影响下,在不连续的动态重结晶(DDRX)期间,在搅拌的区(SZ)内发生平均尺寸为〜1.5μm的平均尺寸为〜1.5μm的平均尺寸的晶粒结构。与分别在基础和SZ区域中发现的完全随机和立方体组分相比,注意到在热影响区(HAZ)和热机械受影响区(TMAZ)中形成两个强立方和黄铜微调组分。微观结构改性导致加工纳米复合材料的硬化和拉伸强度改善〜55%和110%相对于退火的Al-Mg碱基合金。

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