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Modeling Creep Fracture in Rock by Using Kelvin Discretized Virtual Internal Bond

机译:使用开尔文离散虚拟内部键对岩石中的蠕变断裂建模

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摘要

Discretized virtual internal bond (DVIB) is a lattice model, which is composed of bond cells. Each bond cell has a finite number of bonds. The DVIB is used to model the creep fracture. It is done by introducing a viscous bond to the original hyperelastic DVIB. The hyperelastic bond is parallel coupled with a viscous bond together, forming a hybrid hyperelastic-Kelvin bond. The hyperelastic bond reflects the microfracture mechanism, whereas the viscous bond reflects the creep mechanism. Based on this hyperelastic-Kelvin bond, the constitutive relation of a cell is derived. The microbond parameters are calibrated based on the ideal cell approach. The simulation results suggest that this method can represent the typical features of creep and can simulate the creep fracture. The merit of this method lies in that the complicated 3D macrocreep problem is reduced to the 1D microbond creep problem. No creep law is previously derived. The macrocreep fracture behavior is the natural response of the assembly of the micro hyperelastic-Kelvin bonds.
机译:离散虚拟内部键(DVIB)是一个由键单元组成的晶格模型。每个键单元具有有限数量的键。 DVIB用于模拟蠕变断裂。通过在原始超弹性DVIB上引入粘性键来完成此操作。超弹性键与粘性键平行耦合在一起,形成杂化的超弹性-开尔文键。超弹性键反映了微断裂机制,而粘性键反映了蠕变机制。基于该超弹性开尔文键,得出细胞的本构关系。微键参数是根据理想的电池方法进行校准的。仿真结果表明,该方法可以代表蠕变的典型特征,并且可以模拟蠕变断裂。该方法的优点在于将复杂的3D宏观蠕变问题简化为1D微键蠕变问题。以前没有推导蠕变定律。宏观蠕变断裂行为是微观超弹性-开尔文键组装的自然响应。

著录项

  • 来源
    《Advances in civil engineering》 |2018年第3期|8042965.1-8042965.8|共8页
  • 作者

    He Wangyang; Zhang Zhennan;

  • 作者单位

    Shanghai Jiao Tong Univ, Sch Naval Architecture Ocean & Civil Engn, Shanghai 200240, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
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