热机械加工
材料科学
杂质
极限抗拉强度
微观结构
成核
降水
冶金
变形(气象学)
残余应力
纳米尺度
复合材料
基质(化学分析)
产量(工程)
工作(物理)
材料的强化机理
剪切(地质)
抗剪强度(土壤)
纳米颗粒
化学工程
机械强度
变形机理
奥氏体
作者
Kechang Shen,K. Li,Qingtao Gong,Xicheng Zhang,Yao Teng,Jianping Niu,Yanqing Han
标识
DOI:10.1002/srin.202501297
摘要
This study proposes a synergistic design strategy for clean steel that integrates effective purification with tailored thermomechanical processing. A proprietary impurity removal agent was employed to reduce the concentrations of O, N, and S effectively. Thermodynamic analysis provided quantitative guidance on deoxidation limits, while optimized processing parameters led to significant microstructural refinement. The resulting microstructure consists of a fine ferrite‐bainite matrix containing a high number density of nanoscale precipitates. This integrated approach yielded a superior combination of strength and toughness, with a yield strength of 487 MPa and a tensile strength of 635 MPa. The underlying mechanism was elucidated by first‐principles calculations, which revealed that a high cleanliness environment stabilizes the anionic states of residual impurities and enhances their covalent bonding with microalloying elements (Nb, Ti, V). This electronic‐level effect promotes the nucleation of refined, stable precipitates and correlates with a marked increase in shear modulus. By establishing clear correlations between impurity removal, microstructural evolution, and mechanical enhancement, this work provides a robust framework for precision precipitation engineering via chemical purification, outlining a scalable pathway for developing advanced high‐strength steels.
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