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具有复杂微观结构的0-3/3-3连通性复合材料中的波传播

Wave propagation in 0-3/3-3 connectivity composites with complex microstructure.

作者信息

Gómez Alvarez-Arenas T E, Mulholland A J, Hayward G, Gomatam J

机构信息

Department of Electronic and Electrical Engineering, The Centre for Ultrasonic Engineering, University of Strathclyde, Glasgow, UK.

出版信息

Ultrasonics. 2000 Sep;38(9):897-907. doi: 10.1016/s0041-624x(00)00021-4.

Abstract

This work presents a study of the properties of particulate composites. The whole range of particle volume fraction (0-1) and ideal 0-3, 3-3 and intermediate 0-3/3-3 connectivities are analysed. Two different approaches to produce a realistic model of the complex microstructure of the composites are considered. The first one is based on a random location of mono-dispersed particles in the matrix; while the second incorporates a size distribution of the particles based on experimental measurements. Different particle shapes are also considered. A commercial finite element package was used to study the propagation of acoustic plane waves through the composite materials. Due to the complexity of the problem, and as a first step, a two-dimensional model was adopted. The results obtained for the velocity of sound propagation from the finite element technique are compared with those from other theoretical approaches and with experimental data. The study validates the use of this technique to model acoustic wave propagation in 0-3/3-3 connectivity composites. In addition, the finite element calculations, along with the detailed description of the microstructure of the composite, provide valuable information about the micromechanics of the sample and the influence of the microstructure on macroscopic properties.

摘要

这项工作展示了对颗粒复合材料特性的研究。分析了颗粒体积分数的整个范围(0 - 1)以及理想的0 - 3、3 - 3和中间的0 - 3/3 - 3连通性。考虑了两种不同的方法来生成复合材料复杂微观结构的真实模型。第一种方法基于单分散颗粒在基体中的随机分布;而第二种方法则根据实验测量纳入了颗粒的尺寸分布。还考虑了不同的颗粒形状。使用商业有限元软件包来研究声平面波在复合材料中的传播。由于问题的复杂性,作为第一步,采用了二维模型。将有限元技术得到的声传播速度结果与其他理论方法的结果以及实验数据进行了比较。该研究验证了使用此技术对0 - 3/3 - 3连通性复合材料中的声波传播进行建模的有效性。此外,有限元计算以及对复合材料微观结构的详细描述,提供了有关样品微观力学以及微观结构对宏观性能影响的有价值信息。

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