A nonlinear multi zone boundary element method is applied to simulate the size effect of a series of geome trically similar three point bend specimens. The material in which particles are randomly dispersed in a relat...A nonlinear multi zone boundary element method is applied to simulate the size effect of a series of geome trically similar three point bend specimens. The material in which particles are randomly dispersed in a relatively hard matrix can be applicable to various aggregate materials as well as unidirectionally reinforced fiber composites in the transverse plane. A single edge macrocrack and interfacial microcracks randomly distributed between particles and matrix are prescribed as initial defects. The shape, size and location of the fracture process zone (FPZ) are realistically simulated and described. The nominal strength of the material is in agreement with the Bazant size effect law. In addition, the results show that microcracking is one of the most important micromechanisms for the size effect in aggregate materials.展开更多
文摘A nonlinear multi zone boundary element method is applied to simulate the size effect of a series of geome trically similar three point bend specimens. The material in which particles are randomly dispersed in a relatively hard matrix can be applicable to various aggregate materials as well as unidirectionally reinforced fiber composites in the transverse plane. A single edge macrocrack and interfacial microcracks randomly distributed between particles and matrix are prescribed as initial defects. The shape, size and location of the fracture process zone (FPZ) are realistically simulated and described. The nominal strength of the material is in agreement with the Bazant size effect law. In addition, the results show that microcracking is one of the most important micromechanisms for the size effect in aggregate materials.