Yılmaz Okan, Derlet Peter Michael, Molinari Jean-François
Civil Engineering Institute, Materials Science and Engineering Institute, École Polytechnique Fédérale de Lausanne (EPFL), Station 18, CH-1015 Lausanne, Switzerland.
Condensed Matter Theory Group, Paul Scherrer Institute, CH-5232 Villigen PSI, Switzerland.
Phys Rev E. 2017 Apr;95(4-1):043002. doi: 10.1103/PhysRevE.95.043002. Epub 2017 Apr 26.
We investigate the size distribution of damage clusters in concrete under uniaxial tension loading conditions. Using the finite-element method, the concrete is modeled at the mesoscale by a random distribution of elastic spherical aggregates within an elastic mortar paste. The propagation and coalescence of damage zones are then simulated by means of dynamically inserted cohesive elements. Dynamic failure analysis shows that the size distribution of damage clusters follows a power law when a system-spanning cluster is first observed, with an exponent close to that of percolation theory. This is found for a range of selected mesostructural parameters, material defects, and applied strain rates. In all cases, the system-spanning cluster occurs prior to the onset of local decohesion, a regime of crack nucleation and propagation, and eventual material failure. The resulting fully damaged crack surfaces after failure are found to be only weakly correlated with the percolated damage region structures.
我们研究了单轴拉伸加载条件下混凝土中损伤簇的尺寸分布。采用有限元方法,在细观尺度上通过弹性砂浆浆体中弹性球形骨料的随机分布对混凝土进行建模。然后通过动态插入内聚单元来模拟损伤区域的扩展和合并。动态失效分析表明,当首次观察到跨越系统的簇时,损伤簇的尺寸分布遵循幂律,其指数接近渗流理论的指数。在一系列选定的细观结构参数、材料缺陷和应用应变率下均发现了这一现象。在所有情况下,跨越系统的簇出现在局部脱粘、裂纹成核和扩展以及最终材料失效之前。发现失效后产生的完全损伤裂纹表面与渗流损伤区域结构的相关性很弱。