Dynamical microstructure evolution of Q235 low carbon steel during high temperature deformation
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摘要: 通過Gleeble 2000上的熱模擬壓縮實驗,分析了Q235低碳鋼在不同熱加工參數下的動態組織演化特征.結果表明:應變速率和溫度對Q235鋼的奧氏體形變特征影響強烈.在相同變形溫度下,應變速率的提高可以明顯推遲動態再結晶的發生:應變速率較低時,降低溫度同樣可以延遲動態再結晶的發生.利用定量金相技術及線性、非線性擬合算法,建立了 Q235鋼熱變形過程的唯像本構關系及組織演化動力學模型,并將其應用于Autoforge3.1有限元軟件平臺.壓縮過程有限元模擬分析表明,分別采用Arrhenius雙曲正弦方程描述Q235鋼的唯像本構關系及Yada模型表征Q235鋼變形過程的平均晶粒尺寸,可以滿足預測精度,與實際變形過程基本吻合.Abstract: The dynamical microstructure evolution behavior of Q235 low carbon steel at high temperature was systematically investigated through physical simulated tests carried out on a Gleeble 2000 machine. The experimental results showed that hot working parameters such as forming temperature and strain rate affected the dynamical micro-structure evolution behavior of Q235 steel to a great extent. At a given temperature, dynamical recrystalization could be postponed with the increasing of strain rate; meanwhile, at a lower strain rate, this phenomenon could occur with the decreasing of temperature. The quantitative metallurgical technique and the linear/non-linear regression analysis were used to construct an Arrhenius-type phenomenological constitutive relationship and a Yada-type kinetically microstructure equation of Q235 steel at high temperature, which were coupled into the finite element software of Autoforge 3.1. The results of numerical simulation showed that the phenomenological constitutive relationship and microstructure evolution equation depicted the dynamical microstructure evolution behavior of Q235 low carbon steel at high temperature very well.
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