Vu Chi-Cong, Weiss Jérôme
National University of Civil Engineering, 100000 Ha Noi, Vietnam.
University Grenoble Alpes, CNRS, ISTerre, 38000 Grenoble, France.
Phys Rev Lett. 2020 Sep 4;125(10):105502. doi: 10.1103/PhysRevLett.125.105502.
Crackling dynamics is characterized by a release of incoming energy through intermittent avalanches. The shape, i.e., the internal temporal structure of these avalanches, gives insightful information about the physical processes involved. It was experimentally shown recently that progressive damage toward compressive failure of quasibrittle materials can be mapped onto the universality class of interface depinning when considering scaling relationships between the global characteristics of the microcracking avalanches. Here we show, for three concrete materials and from a detailed analysis of the acoustic emission waveforms generated by microcracking events, that the shape of these damage avalanches is strongly asymmetric, characterized by a very slow decay. This remarkable asymmetry, at odds with mean-field depinning predictions, could be explained, in these quasibrittle materials, by retardation effects induced by enhanced viscoelastic processes within a fracture process zone generated by the damage avalanche as it progresses. It is associated with clusters of subavalanches, or aftershocks, within the main avalanche.
爆裂动力学的特征是通过间歇性雪崩释放输入能量。这些雪崩的形状,即其内部时间结构,提供了有关所涉及物理过程的深刻信息。最近的实验表明,当考虑微裂纹雪崩的全局特征之间的标度关系时,准脆性材料向压缩破坏的渐进损伤可以映射到界面脱钉的普适类上。在这里,我们通过对三种具体材料以及对微裂纹事件产生的声发射波形的详细分析表明,这些损伤雪崩的形状是强烈不对称的,其特征是衰减非常缓慢。这种显著的不对称性与平均场脱钉预测不一致,在这些准脆性材料中,可以用损伤雪崩进展过程中在断裂过程区内增强的粘弹性过程引起的延迟效应来解释。它与主雪崩内的子雪崩或余震簇有关。