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首页> 外文期刊>International Journal of Mechanical Sciences >Multiscale-constraint based model to predict uniaxial/multiaxial creep damage and crack growth in 316-H steels
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Multiscale-constraint based model to predict uniaxial/multiaxial creep damage and crack growth in 316-H steels

机译:基于多尺度约束的模型预测三轴/多轴蠕变损伤和316-H钢的裂纹增长

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摘要

A new failure ductility/multiscale constraint strain-based model to predict creep damage, rupture and crack growth under uniaxial and multiaxial conditions is developed for 316H Type stainless steels by linking globally uniform failure strains with a multiaxial constraint factor. The model identifies a geometric constraint and a time dependent local constraint at the sub-grain level. Uniaxial and notched 316H steel as-received and pre-compressed data at various load levels and temperatures with substantial scatter were used to derive the appropriate constitutive equations by using the proposed empirical/mechanistic approach. Constrained hydrostatic development of creep damage at the sub-grain level is assumed to directly relate to the uniform lower-bound creep steady state region of damage development measured at the global level. Uniaxial and notched bar rupture at long terms is predicted based on the initial short-term creep or a representative tensile strength and a multiaxial constraint factor. The model is consistent with the well-known NSW remaining multiaxial ductility creep crack growth model which predicts crack growth bounds over the plane strain/stress states. This model, therefore, unifies the creep process response over the whole range of uniaxial, notched and crack growth processes which is extremely consequential to simple long term failure predictions of components at elevated temperatures.
机译:通过将全球均匀的衰竭菌株与多轴约束因子连接,开发了一种新的失效延展性/多尺度约束菌株基于蠕变损伤,在单轴和多轴条件下的破裂和裂纹增长。该模型识别几何约束以及子粒度的依赖于局部约束。在各种负载水平和具有实质散射的温度下的单轴和缺口316H钢的接收和预压缩数据通过使用所提出的经验/机械方法来得出适当的本构体方程。假设在亚粒水平处的蠕变损伤的受限静水压发育,以直接涉及在全球水平测量的均匀下束蠕变稳定状态区域。基于初始短期蠕变或代表性拉伸强度和多轴约束因子,预测单轴和缺口条破裂。该模型与众所周知的NSW剩余的多轴延展性蠕变裂纹裂纹生长模型,其预测平面应变/应力状态的裂纹生长界限。因此,该模型统一了在整个单轴,缺口和裂纹生长过程中的蠕变过程响应,这对于在升高的温度下的组件的简单长期失效预测方面是极其影响。

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