Xu L Roy, Sengupta Sreeparna
Department of Civil and Environmental Engineering & Interdisciplinary Materials Science Program, VU Station B 351831, 2301 Vanderbilt Place, Vanderbilt University, Nashville, Tennessee 37235, USA.
J Nanosci Nanotechnol. 2005 Apr;5(4):620-6. doi: 10.1166/jnn.2005.077.
Novel nanotubes/nanofibers with high strength and stiffness did not lead to high failure strengths/strains of nanocomposite materials. Therefore, the interfacial stress transfer and possible stress singularities, arising at the interfacial ends of discontinuous nanofibers embedded in a matrix, subjected to tensile and shear loading, were investigated by finite element analysis. The effects of Young's moduli and volume fractions on interfacial stress distributions were studied. Round-ended nanofibers were proposed to remove the interfacial singular stresses, which were caused by high stiffness mismatch of the nanoscale reinforcement and the matrix. However, the normal stress induced in the nanofiber through interfacial stress transfer was still less than 2 times that in the matrix. This stress value is far below the high strength of the nanofiber. Therefore, the load transfer efficiency of discontinuous nanofibers or nanotube composites is very low. Hence, nanofibers or nanotubes in continuous forms, which also preclude the formation of singular interfacial stress zones, are recommended over discontinuous nanofibers to achieve high strengths in nanocomposite materials.
具有高强度和高刚度的新型纳米管/纳米纤维并未使纳米复合材料具有高的破坏强度/应变。因此,通过有限元分析研究了在拉伸和剪切载荷作用下,嵌入基体中的不连续纳米纤维界面端部产生的界面应力传递及可能的应力奇异性。研究了杨氏模量和体积分数对界面应力分布的影响。提出了圆端纳米纤维以消除由纳米级增强材料与基体之间的高刚度失配引起的界面奇异应力。然而,通过界面应力传递在纳米纤维中产生的法向应力仍小于基体中的2倍。该应力值远低于纳米纤维的高强度。因此,不连续纳米纤维或纳米管复合材料的载荷传递效率非常低。因此,建议使用连续形式的纳米纤维或纳米管(这也可避免奇异界面应力区的形成),而不是不连续纳米纤维,以实现纳米复合材料的高强度。