材料科学
奥氏体
延伸率
纳米尺度
极限抗拉强度
冶金
无扩散变换
可塑性
沉淀硬化
延展性(地球科学)
降水
复合材料
合金
纳米技术
微观结构
气象学
蠕动
物理
作者
Shidong Wang,Jinhua Wang,Shijie Zhang,Daixiu Wei,Yang Chen,Xuequan Rong,Wu Gong,Stefanus Harjo,Xiaochun Liu,Zengbao Jiao,Zhigang Yang,Gang Sha,Chunxu Wang,Guang Chen,Hao Chen
标识
DOI:10.1016/j.jmst.2023.10.048
摘要
Nanoprecipitates and nanoscale retained austenite (RA) with suitable stability play crucial roles in determining the yield strength (YS) and ductility of ultrahigh strength steels (UHSSs). However, owing to the kinetics incompatibility between nanoprecipitation and austenite reversion, it is highly challenging to simultaneously introduce high-density nanoprecipitates and optimized RA in UHSSs. In this work, through the combination of austenite reversion treatment (ART) and subsequent flash austenitizing (FA), nanoscale chemical heterogeneity was successfully introduced into a low-cost UHSS prior to the aging process. This chemical heterogeneity involved the enrichment of Mn and Ni in the austenite phase. The resulting UHSS exhibited dual-nanoprecipitation of Ni(Al,Mn) and (Mo,Cr)2C and nanoscale austenite stabilized via Mn and Ni enrichment. The hard martensitic matrix strengthened by high-density dual-nanoprecipitates constrains the plastic deformation of soft RA with relatively low fraction, and the presence of relatively stable nanoscale RA with adequate Mn and Ni enrichment leads to only a marginal loss in YS but keeps a persistent transformation-induced plasticity (TRIP) effect. As a result, the newly-developed UHSS exhibits an ultrahigh YS of ∼ 1.7 GPa, an ultimate tensile strength (UTS) of ∼1.8 GPa, a large uniform elongation (UE) of ∼8.5%, and a total elongation (TE) of ∼13%. The strategy of presetting chemical heterogeneity to introduce proper metastable phases before aging can be extended to other UHSSs and precipitation-hardened alloys.
科研通智能强力驱动
Strongly Powered by AbleSci AI