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Microstructure and Mechanical Properties of Low-Activation Fe-Cr-V Multicomponent Single-Phase Alloys

机译:低活化Fe-Cr-V多相单相合金的组织和力学性能

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摘要

A ternary equiatomic and nearly equiatomic alloy composed of the low-activation elements Fe, Cr, and V was designed for potential application as low-activation structural materials for the first wall of fusion reactors. The optimal composition of the multicomponent alloy was determined by minimizing the Gibbs free energy for solid-solution formation. The microstructure, phase stability, and mechanical properties of the equiatomic and optimized Fe-Cr-V alloys were studied. The equiatomic alloy consisted of a body-centered-cubic (BCC) solid-solution phase with a small amount of a face-centered-cubic (FCC) solid-solution phase, whereas the optimized alloy consisted of a single BCC solid-solution phase in the as-cast state. The crystal grains of both alloys were equiaxial. No phase transition was observed in the optimized alloy after homogenization; however, for the equiatomic alloy, the FCC solid-solution phase disappeared and surface relief was observed. The Vickers microhardness and yield strength of the Fe-Cr-V alloys increased after homogenization compared with those of the as-cast alloys.
机译:由低活化元件Fe,Cr和V组成的三元赤型和近赤脂合金被设计用于潜在应用作为融合反应器第一壁的低激活结构材料。通过最小化Gibbs自由能为固溶体形成来确定多组分合金的最佳组成。研究了阶梯和优化的Fe-Cr-V合金的微观结构,相位稳定性和机械性能。赤脂合金由具有少量面中心立方(FCC)固溶体相的体为立立方(BCC)固溶体组成,而优化的合金由单一BCC固溶液组成在铸造状态。两种合金的晶粒均匀。在均质化后,在优化合金中观察到不观察到的相转变;然而,对于赤脂合金,观察到FCC固溶体相消失和表面浮雕。与铸造合金相比,均匀化后,致铬剂的微硬度和屈服强度增加。

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