了解超高静水压力下沉淀生长动力学

Siyua Cao, Naveen Weerasekera, Dawa Ram Shingdan, Ahmed Ijaz Abdulla
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引用次数: 0

摘要

在这项工作中,我们研究了金属基体在静水压力下的析出物生长行为。采用基于体积应变能的自由能密度积分泛函Zenner-Frank相场动力学。研究了在不同体积模量条件下析出相在2gpa以下的生长情况。我们观察到静水压力对生长动力学的影响是随着时间的推移而减少析出相的生长。此外,与静水压力下的一般观察结果相比,析出相的体积模量显示出异常的生长行为。这项工作有助于新材料的智能剪裁,以减少对材料整体性能的有害影响,用于大型静水压力应用。
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Understanding Precipitate Growth Kinetics at Ultra-High Hydrostatic Pressures
In this work, we have studied the precipitate growth behavior of a metal matrix when subjected to hydrostatic pressure. We utilized Zenner-Frank phase field kinetics with integrated free energy density functional based on volumetric strain energy. We studied the precipitate growth up to 2 GPa under varying bulk modulus of the precipitate phase. We observed that subjecting to hydrostatic pressure influences the growth kinetics by reducing the precipitate growth under time evolution. In addition, the bulk modulus of the precipitate has shown an abnormality in the growth behavior compared to general observations under hydrostatic pressure. This work contributes to the smart tailoring of novel materials to reduce detrimental impacts on holistic material properties, used in large hydrostatic pressure applications.
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