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首页> 外文期刊>Proceedings of the institution of mechanical engineers >A precipitate evolution-based continuum damage mechanics model of creep behaviour in welded 9Cr steel at high temperature
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A precipitate evolution-based continuum damage mechanics model of creep behaviour in welded 9Cr steel at high temperature

机译:基于析出物的连续9Cr钢在高温下蠕变行为的连续损伤力学模型

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摘要

A multiaxial, physically based, continuum damage mechanics methodology for creep of welded 9Cr steels is presented, incorporating a multiple precipitate-type state variable, which simulates the effects of strain- and temperature-induced coarsening kinematics. Precipitate volume fraction and initial diameter for carbide and carbo-nitride precipitate types are key microstructural variables controlling time to failure in the model. The heat-affected zone material is simulated explicitly utilising measured microstructural data, allowing detailed investigation of failure mechanisms. Failure is shown to be controlled by a combination of microstructural degradation and Kachanov-type damage for the formation and growth of creep cavities. Comparisons with experimental data demonstrate the accuracy of this model for P91 material.
机译:提出了一种用于焊接9Cr钢蠕变的基于物理的多轴连续损伤力学方法,该方法结合了多个析出物类型的状态变量,该变量模拟了应变和温度引起的粗化运动学的影响。碳化物和碳氮化物沉淀物类型的沉淀物体积分数和初始直径是控制模型失效时间的关键微结构变量。利用测量的微结构数据明确模拟了热影响区的材料,从而可以详细研究破坏机理。结果表明,破坏是由微结构退化和蠕变腔的形成和生长的卡尚诺夫型破坏共同控制的。与实验数据的比较证明了该模型对P91材料的准确性。

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