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首页> 外文期刊>Journal of Materials Science >Crack growth in a new nickel-based superalloy at elevated temperature - Part II - Finite element analysis of crack growth
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Crack growth in a new nickel-based superalloy at elevated temperature - Part II - Finite element analysis of crack growth

机译:新型镍基高温合金在高温下的裂纹扩展-第二部分-裂纹扩展的有限元分析

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Crack growth at elevated temperature has been simulated using the finite element method for sustained and cyclic loading conditions, representative of time-dependent and time-independent crack growth. Elastic-creep (EC) and elastic-plastic-creep (EPC) models have been used to simulate the crack growth under sustained loads at 650 and 725 degrees C. Crack mouth opening displacements as well as the evolution of the inelastic zones due to creep and plasticity have been obtained. Elastic-plastic finite element analysis has been carried out to simulate the crack growth under cyclic load using a constitutive model. Fatigue crack growth was simulated for plane stress, plane strain and generalized plane strain loading conditions. The influence of plasticity on the effective crack driving force was also examined.Creep damage was found to be very limited at both temperatures for this alloy. Plasticity-induced crack closure was found to be absent in plane strain or generalized plane strain conditions, overestimated in plane stress loading conditions by the conventional compliance method. (C) 2005 Springer Science + Business Media, Inc.
机译:对于持续和循环的载荷条件,已经使用有限元方法模拟了高温下的裂纹扩展,代表了随时间和与时间无关的裂纹扩展。弹性蠕变(EC)和弹塑性蠕变(EPC)模型已用于模拟在650和725摄氏度的持续载荷下的裂纹扩展。裂纹口张开位移以及由于蠕变引起的非弹性区域的演变已经获得了可塑性。进行了弹塑性有限元分析,以使用本构模型模拟循环载荷下的裂纹扩展。模拟了平面裂纹,平面应变和广义平面应变载荷条件下的疲劳裂纹扩展。还研究了塑性对有效裂纹驱动力的影响。发现该合金在两个温度下的蠕变损伤都非常有限。发现在平面应变或广义平面应变条件下不存在塑性诱导的裂纹闭合,而在常规应力柔顺方法下,平面应力载荷条件下该裂纹估计过高。 (C)2005年Springer Science + Business Media,Inc.

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