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Deformation-induced phase transformation and strain hardening in type 304 austenitic stainless steel

机译:304型奥氏体不锈钢的变形诱发相变和应变硬化

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摘要

Deformation-induced phase transformation in a type 304 austenitic stainless steel has been studied in tension at room temperature and −50 °C. The evolution of transformation products was monitored using X-ray diffraction (XRD) line profile analysis of diffraction peaks from a single XRD scan employing the direct comparison method. Crystallographic texture transitions due to deformation strain have been evaluated using (111) γ pole figures. The tensile stress-strain data have been analyzed to explain the influence of underlying deformation-induced microstructural changes and associated texture changes in the steel. It is found that the initial stage of rapidly decreasing strain hardening rate in type 304 steel is primarily influenced by hcp ɛ-martensite formation, and the second stage of increasing strain hardening rate is associated with an increase in the α′-martensite formation. The formation of ɛ-martensite is associated with a gradual strengthening of the copper-type texture components up to 15 pct strain and decreasing with further strain at −50 °C. Texture changes during low-temperature deformation not only change the mechanism of ɛ-martensite formation but also influence the strain rate sensitivity of the present steel.
机译:304型奥氏体不锈钢在室温和-50°C的张力下已经研究了变形引起的相变。使用直接比较法,对来自单个XRD扫描的衍射峰进行X射线衍射(XRD)线轮廓分析,监控转化产物的演变。已经使用(111)γ极坐标图评估了由于形变应变引起的晶体结构转变。分析了拉伸应力-应变数据,以解释钢中潜在的形变引起的微观结构变化和相关的织构变化的影响。发现304型钢应变硬化速率快速降低的初始阶段主要受hcpɛ-马氏体形成的影响,应变硬化速率增加的第二阶段与α'-马氏体形成的增加有关。 ɛ-马氏体的形成与铜型织构成分的逐渐强化有关,应变强度最高可达15 pct,而在-50°C时应变进一步降低。低温变形过程中的织构变化不仅改变了β-马氏体形成的机理,而且还影响了本发明钢的应变速率敏感性。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2006年第6期|1875-1886|共12页
  • 作者单位

    Advanced Steel Processing and Products Research Center Colorado School of Mines Golden CO;

    Advanced Steel Processing and Products Research Center Department of Metallurgical and Materials Engineering Colorado School of Mines 80401 Golden CO;

    Advanced Steel Processing and Products Research Center Department of Metallurgical and Materials Engineering Colorado School of Mines 80401 Golden CO;

    Micromotion Division of Emerson 7070 Winchester Circle 80301 Boulder CO;

    Los Alamos National Laboratory 87545 Los Alamos NM;

    Carbon Steel Product Research AK Steel Corporation 45043 Middletown OH;

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