Jiang Yunpeng
State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
Materials (Basel). 2018 Feb 24;11(2):327. doi: 10.3390/ma11020327.
A meso-mechanical damage model is developed to predict the tensile damage behaviors of bulk metallic glass composites (BMGCs) toughened by ductile particles. In this model, the deformation behaviors of the BMG matrix and particles are described by the free volume model and Ludwik flow equation, respectively. Weng's dual-phase method is used to establish the relationship between the constituents and the composite system. The strain-based Weibull probability distribution function and percolation theory are adopted in characterizing the evolution of shear bands leading to the progressive failure of BMGCs. Moreover, the present model is performed under strain-controlled loading. Comparing to experiments on various BMGCs, the predictions are in good agreement with the measured results, which confirms that the present model successfully depicts the composite properties, such as yield strength, uniform deformation and strain softening elongation.
建立了一种细观力学损伤模型,用于预测韧性颗粒增韧块状金属玻璃复合材料(BMGCs)的拉伸损伤行为。在该模型中,分别采用自由体积模型和Ludwik流动方程描述BMG基体和颗粒的变形行为。利用翁氏双相法建立了组分与复合体系之间的关系。采用基于应变的威布尔概率分布函数和逾渗理论来表征导致BMGCs逐渐失效的剪切带演化。此外,本模型在应变控制加载下进行。与各种BMGCs的实验结果相比,预测结果与实测结果吻合良好,这证实了本模型成功地描述了复合材料的性能,如屈服强度、均匀变形和应变软化伸长率。