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首页> 外文期刊>Journal of Applied Polymer Science >Modeling of tensile strength in polymer particulate nanocomposites based on material and interphase properties
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Modeling of tensile strength in polymer particulate nanocomposites based on material and interphase properties

机译:基于材料和差异性质的聚合物颗粒纳米复合材料中拉伸强度的建模

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摘要

In this work, a simple model is presented to determine tensile/yield strength in polymer nanocomposites containing spherical nanofillers based on material and interphase properties. The accuracy of the proposed model is estimated by comparing with the experimental strength of several samples from the literature. In addition, the effects of thickness (t) and tensile strength (sigma(i)) of the interphase as well as the radius (R) and volume fraction (phi(f)) of the nanoparticles on the tensile strength are explained according to the proposed model. The high level of nanoparticle strength (more than 100 GPa) commonly leads to overestimates of the tensile strength of nanocomposites, whereas the assumption of correct interphase properties produces accurate calculations. The tensile strength of nanocomposites does not change at sigma(i)< 38 MPa, while it increases by 140% at t = 20nm and sigma(i) = 90 MPa. However, a maximum 14% growth in tensile strength is obtained with the optimum values of phi(f) = 0.04 and R = 10 nm. Therefore, the concentration and size of the nanoparticles have minor effects on the tensile strength of nanocomposites, but the major influences of interphase thickness and strength are pronounced. (C) 2017 Wiley Periodicals, Inc.
机译:在这项工作中,提出了一种简单的模型,以确定基于材料和差异性的球形纳米填充物的聚合物纳米复合物中的拉伸/屈服强度。通过与文献中的几个样品的实验强度相比,估计了所提出的模型的准确性。另外,根据厚度(T)和抗拉强度(Sigma(I))的效果和纳米颗粒的半径(r)和体积分数(Phi(f))的作用根据拉伸强度的解释拟议的模型。高水平的纳米颗粒强度(大于100GPa)通常导致纳米复合材料的拉伸强度高估,而正确的间间性能的假设产生精确的计算。纳米复合材料的拉伸强度在Sigma(I)<38MPa处不会改变,而在T = 20nm和Sigma(i)= 90MPa时,它在增加140%。然而,利用PHI(F)= 0.04和R = 10nm的最佳值,获得拉伸强度的最大增长的最大14%。因此,纳米颗粒的浓度和尺寸对纳米复合材料的拉伸强度具有轻微影响,但是差异厚度和强度的主要影响是显着的。 (c)2017 Wiley期刊,Inc。

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