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Micromechanical Boundary Element Modelling of Transgranular and Intergranular Cohesive Cracking in Polycrystalline Materials

机译:多晶体材料中跨晶和晶间粘性裂缝的微机械边界元模拟

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摘要

In this paper a cohesive formulation is proposed for modelling intergranular and transgranular damage and microcracking evolution in brittle polycrystalline materials. The model uses a multi region boundary element approach combined with a dual boundary element formulation. Polycrystalline microstructures are created through a Voronoi tessellation algorithm. Each crystal has an elastic orthotropic behaviour and specific material orientation. Transgranular surfaces are inserted as the simulation evolves and only in those grains that experience stress levels high enough for the nucleation of a new potential crack. Damage evolution along (inter- or transgranular) interfaces is then modelled using cohesive traction separation laws and, upon failure, frictional contact analysis is introduced to model separation, stick or slip.Moreover some physical consideration based on cohesive energies were made, in order to guarantee the cohesive model in consideration was appropriate for the purpose of this work.Finally numerical simulations have been performed to demonstrate the validity of the proposed formulation in comparison with experimental observations and literature results.
机译:在本文中,提出了一种用于在脆性多晶体材料中对晶间损伤和微裂纹演变进行建模的内聚制剂。该模型使用多区域边界元接近与双边界元件配方组合。通过Voronoi曲面细分算法产生多晶微观结构。每个晶体具有弹性正向性行为和特定的材料取向。由于模拟演化并且仅在那些体验到足够高的那些颗粒的那些颗粒中的颗粒中的粒度被插入,以便对新的潜在裂缝成核来进行压力水平。然后使用凝聚力牵引分离法建模(或跨晶状体)接口的损伤演化,并且在发生故障时,将摩擦接触分析引入模拟分离,粘附或滑动。根据粘性能量进行一些物理考虑,以便保证考虑的凝聚力模型适合本工作的目的。已经进行了数值模拟,以证明所提出的制剂的有效性与实验观察和文献结果相比。

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