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Micromechanics-based characterization of mechanical properties of fuzzy fiber-reinforced composites containing carbon nanotubes

机译:基于微力学的含碳纳米管的模糊纤维增强复合材料力学性能表征

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General off-axis mechanical behavior of fuzzy fiber-reinforced composites (FFRCs) is investigated using a 3-dimensional unit cell micromechanics model. In the FFRCs studied herein, uniformly aligned carbon nanotubes (CNTs) are radially grown on the circumferential surfaces of carbon fibers. The effects of orientation and volume fraction of carbon fiber, volume fraction of CNT, stiffness and thickness of the interphase region created due to non-boned interaction between the CNT and polymer matrix on the elastic response of the FFRCs are studied. The results reveal that the mechanical properties of the FFRCs are strongly dependent on the off-axis angle of carbon fiber. With the increase of off-axis angle from 0 degrees up to 90 degrees, the elastic modulus of FFRC sharply decreases up to 45 degrees and then its value increases, whereas without considering CNTs on the surface of carbon fiber, the elastic modulus continuously decreases. It is shown that the growth of CNTs on the surface of carbon fiber can lead to the highest enhancement for the elastic modulus of 90 degrees on-axis coupon. Poisson's ratio of the FFRC rises with the increase of off-axis angle from 0 degrees up to about 35 degrees and then its value decreases. Also, the increase of CNT volume fraction yields a significant increase for the elastic modulus of 90 degrees on-axis coupon, while rising carbon fiber volume fraction can substantially enhance the elastic modulus of 0 degrees coupon. According to the obtained results, increasing both stiffness and thickness of the interphase can improve the elastic modulus of FFRC over the range of 0-90 degrees, especially for 90 degrees on-axis coupon. The results predicted by the present model are much closer to the experiment than those predicted by the numerical simulations available in the literature.
机译:使用三维晶胞微力学模型研究了模糊纤维增强复合材料(FFRC)的一般离轴力学行为。在本文研究的FFRC中,均匀排列的碳纳米管(CNT)在碳纤维的圆周表面上径向生长。研究了碳纤维的取向和体积分数,碳纳米管的体积分数,碳纳米管与聚合物基体之间非键相互作用产生的相间区域的硬度和厚度对FFRCs弹性响应的影响。结果表明,FFRCs的机械性能在很大程度上取决于碳纤维的离轴角。随着离轴角从0度增加到90度,FFRC的弹性模量急剧下降到45度,然后其值增加,而在不考虑碳纤维表面上的CNT的情况下,弹性模量连续降低。结果表明,碳纤维表面上碳纳米管的生长可导致90度轴上试样的弹性模量最高增强。 FFRC的泊松比随离轴角从0度增加到大约35度而增加,然后减小。同样,CNT体积分数的增加会显着提高90度轴上试样的弹性模量,而碳纤维体积分数的升高则可以显着提高0度试样的弹性模量。根据获得的结果,增加相间的刚度和厚度可以在0-90度范围内提高FFRC的弹性模量,特别是对于90度轴上试样。与文献中可用的数值模拟预测的结果相比,本模型预测的结果更接近于实验。

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