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Modeling of progressive failures in quasi-brittle media based on a temporal stress-redistribution mechanism

机译:基于时间应力分布机制的准脆性介质中渐进式破坏建模

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摘要

A new attempt is made to simulate progressive failure processes in heterogeneous brittle materials such as concrete, ceramics, rocks etc., by considering the time-dependence of stress redistributions induced by local breakages. Two mechanisms of stress redistribution are incorporated into the proposed model in order to account for the influence of each local breakage on the remaining specimen: (1) one is the immediate release of internal forces in the breaking element, which is assumed to happen within an infinitesimal time when compared with the characteristic time of external loadings. The release of such internal forces is hence suddenly applied to the remaining specimen, which is considered to take time to deform correspondingly due to material viscosity. This deformation delay is implemented by introducing a viscous force (VF) field prevailing in the entire specimen. (2) The other is the gradual release of previously stored VF fields, whose characteristic time is assumed to be material-dependent. Here the release of VF is approximated as stepwise for simplicity. The proposed model is found to be capable of overcoming the unreasonably-low-ductility problem encountered in many existing lattice models when it comes to the uniaxial tensile test. Furthermore, the force–displacement response obviously depends on the ratio of the VF releasing time to the characteristic time of external loading, showing trends agreeing with experimental observations. Compared with results without viscosity, the failure pattern is more scattering, and the force–displacement curve has a higher peak load and a more ductile post-peak tail.
机译:通过考虑局部断裂引起的应力重新分布的时间依赖性,进行了新的尝试来模拟异质脆性材料(例如混凝土,陶瓷,岩石等)中的渐进破坏过程。为了考虑每个局部破损对剩余试样的影响,将两种应力重新分布机制纳入了所提出的模型:(1)一种是立即释放破断元件中的内力,这假定发生在一个构件内。与外部负载的特征时间相比,是最短的时间。因此,这种内力的释放突然施加到剩余的样品上,这被认为由于材料粘度而花费时间相应地变形。通过引入整个样本中普遍存在的粘性力(VF)场来实现这种变形延迟。 (2)另一个是以前存储的VF字段的逐渐释放,假定其特征时间与材料有关。为了简化,此处VF的释放近似为逐步的。发现所提出的模型能够克服单轴拉伸试验中许多现有晶格模型中遇到的不合理的低延展性问题。此外,力-位移响应显然取决于VF释放时间与外部载荷特征时间的比值,显示出与实验观察结果一致的趋势。与没有粘度的结果相比,破坏模式更加分散,力-位移曲线的峰值载荷更高,峰后尾部的韧性更高。

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