Shan Meijuan, Zhao Libin, Ye Jinrui
Department of Mechanics, School of Physical Science and Engineering, Beijing Jiaotong University, Beijing 100044, China.
School of Mechanical Engineering, Hebei University of Technology, Tianjin 300401, China.
Materials (Basel). 2022 Jul 22;15(15):5090. doi: 10.3390/ma15155090.
Considerable uncertainties in the mechanical properties of composites not only prevent them from having efficient applications but also threaten the safety and reliability of structures. In order to determine the uncertainty in the elastic properties of unidirectional CFRP composites, this paper develops a probabilistic analysis method based on a micromechanics theoretical model and the Monte Carlo simulation. Firstly, four commonly used theoretical models are investigated by calculating the deterministic elastic parameters of three unidirectional CFRP composites, which are compared with experimental outcomes. According to error analyses, the bridging model is the most brilliant one, with errors lower than 6%, which suggests that it can be used in probabilistic analyses. Furthermore, constituent parameters are regarded as normally distributed random variables, and the Monte Carlo simulation was used to obtain samplings based on the statistics of constituent parameters. The predicted probabilistic elastic parameters of the T800/X850 composite coincide with those from experiments, which verified the effectiveness of the developed probabilistic analysis method. According to the probabilistic analysis results, the statistics of the elastic parameters, the correlations between the elastic parameters, and their sensitivity to the constituent's properties are determined. The moduli , , and of the T800/X850 composite follow the lognormal distribution, namely, ln()[5.15, 0.028], ln()[2.15, 0.024], and ln()~[1.48, 0.038], whereas its Poisson's ratio, , obeys the normal distribution, namely, ~(0.33, 0.012). Additionally, the correlation coefficients between and // are small and thus can be ignored, whereas the correlation coefficients between any two of , , and are larger than 0.5 and should be considered in the reliability analyses of composite structures. The developed probabilistic analysis method based on the bridging model and the Monte Carlo simulation is fast and reliable and can be used to efficiently evaluate the probabilistic properties of the elastic parameters of any unidirectional composite in the reliability design of structures in engineering practice.
复合材料力学性能存在的诸多不确定性,不仅阻碍了它们的高效应用,还对结构的安全性和可靠性构成威胁。为了确定单向碳纤维增强塑料(CFRP)复合材料弹性性能的不确定性,本文基于细观力学理论模型和蒙特卡洛模拟,开发了一种概率分析方法。首先,通过计算三种单向CFRP复合材料的确定性弹性参数,研究了四种常用的理论模型,并将其与实验结果进行比较。根据误差分析,桥联模型是最出色的,误差低于6%,这表明它可用于概率分析。此外,将组分参数视为正态分布随机变量,并基于组分参数的统计数据,使用蒙特卡洛模拟来获取样本。T800/X850复合材料预测的概率弹性参数与实验结果一致,这验证了所开发概率分析方法的有效性。根据概率分析结果,确定了弹性参数的统计数据、弹性参数之间的相关性及其对组分性能的敏感性。T800/X850复合材料的模量、和服从对数正态分布,即ln()[5.15, 0.028],ln()[2.15, 0.024],ln()[1.48, 0.038],而其泊松比服从正态分布,即(0.33, 0.012)。此外,和//之间的相关系数较小,因此可以忽略,而、和中任意两个之间的相关系数大于0.5,在复合材料结构的可靠性分析中应予以考虑。基于桥联模型和蒙特卡洛模拟所开发的概率分析方法快速且可靠,可用于在工程实践中的结构可靠性设计中,高效评估任何单向复合材料弹性参数的概率特性。