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首页> 外文期刊>Journal of Materials Engineering and Performance >Flow Stress Behavior, Constitutive Modeling, and Microstructural Characteristics of DP 590 Steel at Elevated Temperatures
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Flow Stress Behavior, Constitutive Modeling, and Microstructural Characteristics of DP 590 Steel at Elevated Temperatures

机译:升高温度下DP 590钢的流量应力行为,本构建模和微观结构特性

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In the present study, the flow stress behavior and material properties of dual-phase (DP) 590 steel have been investigated for different process parameters such as temperature (room temperature (RT) to 400 degrees C), strain rate (0.0001-0.01 s(-1)), and three different sheet orientations, viz., rolling direction (RD), transverse direction (TD), and normal direction (ND). The flow stress increases with an increase in temperature and strain rate. The yield and ultimate stress also decreased by approximately 13.85 and 13.45%, respectively, with an increase in temperature from RT to 400 degrees C; but no particular trend was observed for elongation. Subsequently, microstructural and fractographic studies were conducted using a scanning electron microscope. The volume fraction of the martensitic phase seems to decrease with an increase in temperature. In addition, from the electron backscattering diffraction studies, an increase in the ratio of high-angle grain boundaries was observed with an increase in the grain size of the material. The ductile type of failure was observed at all testing conditions. Furthermore, an investigation of strain hardening behavior using Swift and Voce modeling was carried out for DP590 steel. Three stages of hardening were observed in the case of both the applied strain hardening models. Predicted flow stress with the Voce model displayed a good agreement with the experimental data. The combined effect of temperature and strain rate was considered by formulating an Arrhenius-based Sellar model for the flow stress prediction.
机译:在本研究中,已经研究了双相(DP)590钢的流量应力行为和材料特性,用于不同的工艺参数,如温度(室温(RT)至400℃),应变率(0.0001-0.01秒(-1))和三种不同的纸张方向,viz,滚动方向(rd),横向(td)和正常方向(nd)。流量应力随温度和应变率的增加而增加。产量和最终应力也分别降低了约13.85%和13.45%,从RT到400℃的温度升高;但没有特别趋势伸长。随后,使用扫描电子显微镜进行微观结构和地形研究。马氏体相的体积分数似乎随温度的增加而降低。另外,从电子背散射衍射研究中,观察到高角度晶界比的增加,随着材料的晶粒尺寸的增加。在所有测试条件下观察到延性类型的失效。此外,对使用SWIFT和VOCE建模的应变硬化行为的研究进行了用于DP590钢。在施加的应变硬化模型的情况下观察到三个硬化阶段。预测流量压力与Voce模型显示出与实验数据的良好一致性。通过制定基于Arhenius的Sellar模型来考虑温度和应变速率的综合效果,用于流量应力预测。

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