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Predicting creep-fatigue crack growth rates in Alloy 709 using finite element simulations of plasticity and creep-induced crack closure

机译:使用塑性和蠕变引起的裂纹闭合的有限元模拟预测709合金的蠕变疲劳裂纹扩展速率

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This paper reports on a computational study and experimental validation of creep-fatigue crack growth rates at high temperature in two structural materials. The objectives are to develop a methodology to predict creep-fatigue crack growth rates using plasticity-induced crack closure under creep-fatigue loading conditions by characterizing the effect of hold time on crack growth rates during cyclic loading. In this study, the computation of fatigue crack growth rates is based on the crack closure phenomenon. The total crack growth rate during creep-fatigue loading is based on the addition of fatigue crack growth rate during cyclic loading and creep crack growth rate during hold time. The study identifies the effects of frequency and shape of loading cycle on crack-tip opening stresses induced by the combined action of the plasticity-induced crack closure and creep relaxation at the crack tip. Two-dimensional finite element analyses of compact tension specimens are performed to simulate crack growth under cyclic and time-dependent loading conditions. Elastic-plastic-creep material behavior is considered in these simulations. Closure levels are computed for high temperature structural materials such as 9Cr-1Mo steel and Alloy 709. The numerical predictions provide satisfactory agreement with experimental data of creep-fatigue crack growth rates in modified 9Cr-1Mo and Alloy 709 steels at high temperatures.
机译:本文报道了两种结构材料在高温下蠕变疲劳裂纹扩展速率的计算研究和实验验证。目的是开发一种方法,通过表征在周期性载荷过程中保持时间对裂纹扩展速率的影响,在蠕变疲劳加载条件下使用塑性诱导的裂纹闭合来预测蠕变疲劳裂纹扩展速率。在这项研究中,疲劳裂纹扩展率的计算基于裂纹闭合现象。蠕变疲劳加载过程中的总裂纹增长率基于循环加载过程中的疲劳裂纹增长率和保持时间内的蠕变裂纹增长率。该研究确定了加载周期的频率和形状对由塑性引起的裂纹闭合和裂纹尖端的蠕变松弛的联合作用所引起的裂纹尖端打开应力的影响。对致密拉伸试样进行了二维有限元分析,以模拟在周期性和时变载荷条件下的裂纹扩展。在这些模拟中考虑了弹塑性蠕变材料的行为。计算了高温结构材料(例如9Cr-1Mo钢和709合金)的闭合水平。数值预测与改性9Cr-1Mo和709合金钢在高温下的蠕变疲劳裂纹扩展速率的实验数据提供了令人满意的一致性。

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