Shi Farui, Fantuzzi Nicholas, Trovalusci Patrizia, Li Yong, Wei Zuoan
State Key Laboratory of Coal Mine Disaster Dynamics and Control, Chongqing University, No. 174 Shazhengjie, Shapingba, Chongqing 400044, China.
School of Resources and Safety Engineering, Chongqing University, No. 174 Shazhengjie, Shapingba, Chongqing 400044, China.
Materials (Basel). 2022 Sep 6;15(18):6196. doi: 10.3390/ma15186196.
It is known that the presence of microstructures in solids such as joints and interfaces has an essential influence on the studies of the development of advanced materials, rock mechanics, civil engineering, and so on. However, microstructures are often neglected in the classical local (Cauchy) continuum model, resulting in inaccurate descriptions of the behavior of microstructured materials. In this work, in order to show the impact of microstructures, an implicit 'non-local' model, i.e., micropolar continuum (Cosserat), is used to numerically investigate the effects of direction and scale of microstructures on the tension problem of a composite plate with a circular hole. The results show that distributions of field variables (such as displacements and stresses) have an obvious directionality with respect to the microstructures' direction. As the scale of microstructures increases, such a direction effect becomes more evident. Unlike the isotropic material where stress concentration occurs at the vertex of the hole and the stress concentration factor is close to 3, for the microstructured composite, the stress concentration can be observed at any location depending on the microstructures' directions, and the concentration factor can exceed 3 to a maximum close to 9 as the increasing scale of microstructures. In addition, differences in the mechanical behavior between Cosserat and Cauchy models can be also observed; such differences are more evident for the material showing a pronounced orthotropic nature.
众所周知,诸如接头和界面等固体中的微观结构的存在对先进材料的发展、岩石力学、土木工程等研究有着至关重要的影响。然而,在经典的局部(柯西)连续介质模型中,微观结构常常被忽略,导致对微观结构材料行为的描述不准确。在这项工作中,为了展示微观结构的影响,采用一种隐式的“非局部”模型,即微极连续介质(柯塞尔)模型,对微观结构的方向和尺度对含圆孔复合材料板拉伸问题的影响进行数值研究。结果表明,场变量(如位移和应力)的分布相对于微观结构的方向具有明显的方向性。随着微观结构尺度的增加,这种方向效应变得更加明显。与各向同性材料在孔的顶点处出现应力集中且应力集中系数接近3不同,对于微观结构复合材料,根据微观结构的方向,在任何位置都可观察到应力集中,并且随着微观结构尺度的增加,应力集中系数可超过3,最大接近9。此外,还可观察到柯塞尔模型和柯西模型之间力学行为的差异;对于表现出明显正交各向异性的材料,这种差异更为明显。