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Enhanced strength and electrical conductivity of ultrafine-grained Al-Mg-Si alloy processed by hydrostatic extrusion

机译:通过静压挤压加工超细晶粒Al-Mg-Si合金的增强强度和导电性

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摘要

AbstractThe effect of hydrostatic extrusion combined with an artificial aging on microstructure, mechanical and electrical properties of 6101 Al-Mg-Si alloy was investigated. It has been shown that such thermo-mechanical treatment is an effective method for producing of long wires with an ultrafine-grained microstructure (grain size of 300–400nm) and enhanced ultimate tensile strength (>330MPa) and electrical conductivity (up to 58% IACS). The mechanical behavior of 6101 Al-Mg-Si alloy depended strongly on applied strains by hydrostatic extrusion and crystallographic texture. Higher accumulative strain accelerated the precipitation kinetics but decreased the age hardening response. The double fiber ?100? and ?111? texture was observed for hydrostatically extruded samples. The ?001? grains with homogenously distributed needle-like β″ precipitates provided precipitation strengthening of material while ?111? grains resulted in more efficient grain boundary strengthening. Quantitative microstructure characterization allowed adjusting physical model to estimate the electrical conductivity and compare it with experimental data. The high conductivity was provided mainly by decomposition of solid solution due to precipitation of needle-like β″ precipitates in the grain interior and spherical β′ or β particles located at grain boundaries.Highlights?Al-Mg-Si alloy was subjected to hydrostatic extrusion combined with aging treatment.?UFG Al-Mg-Si alloy with UTS of 332MPa and conductivity of 58% IACS was obtained.?Precipitation process depended on applied strains and crystallographic texture.?Strengthening effect was achieved by UFG structure and needle-like β″ precipitates.?Precipitation of β″ and spherical β′/β particles at GB provided high conductivity.]]>
机译:<![cdata [ 抽象 静水挤出结合的效果与人工老化进行了组织,机械和电性能为6101 al-mg-研究了Si合金。已经表明这种热机械处理是一种有效的长线,具有超细粒度微观结构(晶粒尺寸为300-400nm),增强的极限拉伸强度(> 330MPa)和电导率(高达58%) IACS)。 6101 Al-Mg-Si合金的机械特性通过静压挤出和晶体纹理强烈依赖于施用菌株的施用菌株。较高的累积菌株加速沉淀动力学,但降低了年龄硬化反应。双纤维?100?和?111?静态挤出样品观察到纹理。 ?001?具有均匀分布的针状β的晶粒“沉淀物提供了材料的沉淀加强?111?谷物导致更有效的晶界强化。定量微结构表征允许调整物理模型来估计电导率并将其与实验数据进行比较。主要通过针状β“沉淀物在晶粒边界的晶粒内部和球形β”或β颗粒中的沉淀而分解的高导电率。 突出显示 < CE:Abstract-Sec ID =“AS0010”View =“全部”> 对Al-mg-si合金进行静压挤出结合老化处理。 获得UTS的UFG Al-Mg-Si合金,具有332MPa的和58%IACS的电导率。 降水过程取决于施加的菌株和晶体纹理。 通过UFG结构和针状β“沉淀物实现了加强效果。 降水GB的β“和球形β'/β粒子提供了高导电性。 ]]>

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