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Modelling the failure behaviour of brittle or quasi-brittle materials by analysing the growth of micro-cracks

机译:通过分析微裂纹的增长来模拟脆性或准脆性材料的破坏行为

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摘要

In order to better understand the failure behaviour of brittle or quasi-brittle materials, we developed a numerical model to analyse the creation of a main macro-crack from a large number of micro-cracks. The boundary element method is used to simulate numerically the formation of a main macro-crack by the growth and the coalescence of the micro-cracks. Different two-dimensional panels in PMMA with initial micro-cracks are studied. The macroscopic responses of the panels are observed by simulating the damage process induced by the growth of micro-cracks. The ultimate tensile stress of the material can be then determined. The material toughness heterogeneity is taken into account in the developed model. The toughness heterogeneity is considered as existence of different energy barriers for the growth of micro-cracks. The influences of different parameters such as the level of local stress concentration, the density and the initial length of micro-cracks and the toughness heterogeneity on the failure behaviour of the materials are also studied. The numerical results show that the present model is realistic and efficient. It can be used to describe brittle or quasi-brittle material failure due to the creation of a main macro-crack from micro-cracks.
机译:为了更好地了解脆性或准脆性材料的破坏行为,我们开发了一个数值模型来分析由大量微裂纹产生的主要宏观裂纹。边界元法被用来通过微裂纹的生长和聚结来数值模拟主宏观裂纹的形成。研究了具有初始微裂纹的PMMA中的不同二维面板。通过模拟由微裂纹的生长引起的破坏过程,可以观察到面板的宏观响应。然后可以确定材料的极限拉伸应力。在开发的模型中考虑了材料韧性的异质性。韧性异质性被认为是存在微裂纹增长的不同能垒。还研究了局部应力集中程度,微裂纹的密度和初始长度以及韧性非均质性等不同参数对材料破坏行为的影响。数值结果表明,该模型是真实有效的。它可以用来描述由于微裂纹产生的主要宏观裂纹而导致的脆性或准脆性材料破坏。

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