共沉淀
材料科学
碳化物
延伸率
冶金
极限抗拉强度
奥氏体
产量(工程)
降水
纳米尺度
粒子(生态学)
纳米颗粒
复合材料
化学工程
微观结构
纳米技术
物理
海洋学
地质学
气象学
工程类
作者
Lei Yang,Zhiming Li,Xiang Li,Yunhu Zhang,Ke Han,Changjiang Song,Qijie Zhai
标识
DOI:10.1002/srin.201900665
摘要
Fe–Mn–Al–C austenitic matrix lightweight steels show a high ultimate tensile strength and total elongation but a relatively low yield strength. The yield strength is increased by coprecipitation of nanoscale Cu‐rich and κ‐carbide particles. For lightweight steel, strips of Fe–28Mn–9Al–0.8C (wt%) are prepared in near‐rapid solidification conditions, the addition of Cu up to 5 wt% leads to the coprecipitation of nanoscale Cu‐rich and κ‐carbide particles in certain heat‐treating conditions. The formation of Cu‐rich particles has promoted the precipitation of nanosized κ‐carbide particles. The yield strength of particle‐strengthened Fe–28Mn–9Al–0.8C–5Cu (wt%) austenitic matrix steel reaches 808 MPa with total elongation greater than 20%. Thus, the addition of 5 wt% Cu increases the yield strength of heat‐treated austenitic matrix lightweight steel without seriously deteriorating its plasticity by coprecipitation of nanoscale Cu‐rich and κ‐carbide particles.
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