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Propagation of interacting microcracks results in macroscopic tensile strain-softening of brittle materials - a combined fracture and micromechanics approach

机译:相互作用微裂纹的繁殖导致脆性材料的宏观拉伸应变软化 - 一种组合骨折和微机械方法

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We propose a micromechanics-based damage evolution law by combining the propagation criterion for a single penny-shaped crack embedded in an infinite matrix subjected to remote stresses (taken from linear-elastic fracture mechanics) with stiffness estimates for representative material volumes comprising interacting microcracks (taken from continuum micromechanics). This allows for modeling tensile strain-softening as a result of propagation of interacting microcracks, i.e. as a microstructural effect. The initial degree of damage, i.e. the initial microcrack size and the number of microcracks per unit volume, implies two different types of model-predicted tensile strain-softening behavior under strain control: (ⅰ) continuous strain-softening, which occurs in case of initial damage beyond a critical value, and (ⅱ) an instantaneous stress drop at the peak load ("snap-back"), which occurs in case of initial damage below a critical value.
机译:我们通过将嵌入于无限基质中的单个一分钱形状的裂缝的传播标准组合在经过遥控率(从线性弹性断裂力学造成的裂缝)中,用刚度估计与包括相互作用微裂纹的代表性材料体积的刚度估计(取自连续微机器)。这允许以相互作用微裂纹的繁殖,即微观结构效果来建模拉伸应变软化。初始损坏程度,即每单位体积的初始微裂纹尺寸和微裂纹数量,意味着两种不同类型的模型预测拉伸菌株软化行为在应变控制下:(Ⅰ)连续应变软化,在此情况下发生初始损坏超出临界值,(Ⅱ)峰值负荷(“张切安”)的瞬时应力下降,其发生在低于临界值的初始损伤的情况下。

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