Jensen Benjamin D, Odegard Gregory M, Kim Jae-Woo, Sauti Godfrey, Siochi Emilie J, Wise Kristopher E
Advanced Materials and Processing Branch, NASA Langley Research Center, Hampton, VA USA.
Department of Mechanical Engineering - Engineering Mechanics, Michigan Technological University, Houghton, MI USA.
Compos Sci Technol. 2018 Sep 29;166:10-19. doi: 10.1016/j.compscitech.2018.02.008. Epub 2018 Feb 14.
Molecular dynamics simulations of carbon nanotube (CNT) composites, in which the CNTs are continuous across the periodic boundary, overestimate the experimentally measured mechanical properties of CNT composites along the fiber direction. Since the CNTs in these composites are much shorter than the composite dimensions, load must be transferred either directly between CNTs or through the matrix, a mechanism that is absent in simulations of effectively continuous CNTs. In this study, the elastic and fracture properties of high volume fraction discontinuous carbon nanotube/amorphous carbon composite systems were compared to those of otherwise equivalent continuous CNT composites using ReaxFF reactive molecular dynamics simulations. These simulations were used to show how the number of nanotube-matrix interfacial covalent bonds affect composite mechanical properties. Furthermore, the mechanical impact of interfacial bonding was decomposed to reveal its effect on the properties of the CNTs, the interfacial layer of matrix, and the bulk matrix. For the composites with continuous reinforcement, it was found that any degree of interfacial bonding has a negative impact on axial tensile strength and stiffness. This is due to disruption of the structure of the CNTs and interfacial matrix layer by the interfacial bonds. For the discontinuous composites, the modulus was maximized between 4%-7% interfacial bonding and the strength continues to increase up to the highest levels of interfacial bonding studied. Areas of low stress and voids were observed in the simulated discontinuous composites at the ends of the tubes, from which fracture was observed to initiate. Experimental carbon nanotube yarn composites were fabricated and tested. The results were used to illustrate knockdown factors relative to the mechanical performance of the tubes themselves.
碳纳米管(CNT)复合材料的分子动力学模拟中,碳纳米管在周期性边界处是连续的,这高估了碳纳米管复合材料沿纤维方向的实验测量力学性能。由于这些复合材料中的碳纳米管比复合材料尺寸短得多,载荷必须直接在碳纳米管之间或通过基体传递,而这种机制在有效连续碳纳米管的模拟中并不存在。在本研究中,使用ReaxFF反应分子动力学模拟,将高体积分数的不连续碳纳米管/非晶碳复合体系的弹性和断裂性能与其他等效的连续碳纳米管复合材料进行了比较。这些模拟用于展示纳米管-基体界面共价键的数量如何影响复合材料的力学性能。此外,界面结合的力学影响被分解以揭示其对碳纳米管、基体界面层和块状基体性能的影响。对于具有连续增强的复合材料,发现任何程度的界面结合都会对轴向拉伸强度和刚度产生负面影响。这是由于界面键破坏了碳纳米管和界面基体层的结构。对于不连续复合材料,模量在界面结合为4%-7%时达到最大值,并且强度在研究的最高界面结合水平之前持续增加。在模拟的不连续复合材料中,在管的端部观察到低应力区域和空隙,从这些地方观察到断裂起始。制备并测试了实验性碳纳米管纱线复合材料。结果用于说明相对于碳纳米管自身力学性能的折减系数。