Low-oxygen rare earth steels

材料科学 冶金 奥氏体 氧气 铁氧体(磁铁) 成核 晶界 微观结构 复合材料 化学 有机化学
作者
Dianzhong Li,Pei Wang,Xing‐Qiu Chen,Paixian Fu,Yikun Luan,Xiaoqiang Hu,Hongwei Liu,Mingyue Sun,Yun Chen,Yanfei Cao,Leigang Zheng,Jinzhu Gao,Yangtao Zhou,Lei Zhang,Xiuliang Ma,Chunli Dai,Chaoyun Yang,Zhonghua Jiang,Yang Liu,Yiyi Li
出处
期刊:Nature Materials [Nature Portfolio]
卷期号:21 (10): 1137-1143 被引量:178
标识
DOI:10.1038/s41563-022-01352-9
摘要

Rare earth (RE) addition to steels to produce RE steels has been widely applied when aiming to improve steel properties. However, RE steels have exhibited extremely variable mechanical performances, which has become a bottleneck in the past few decades for their production, utilization and related study. Here in this work, we discovered that the property variation of RE steels stems from the presence of oxygen-based inclusions. We proposed a dual low-oxygen technology, and keeping low levels of oxygen content in steel melts and particularly in the raw RE materials, which have long been ignored, to achieve impressively stable and favourable RE effects. The fatigue life is greatly improved by only parts-per-million-level RE addition, with a 40-fold improvement for the tension–compression fatigue life and a 40% enhancement of the rolling contact fatigue life. We find that RE appears to act by lowering the carbon diffusion rate and by retarding ferrite nucleation at the austenite grain boundaries. Our study reveals that only under very low-oxygen conditions can RE perform a vital role in purifying, modifying and micro-alloying steels, to improve the performance of RE steels.
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