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首页> 外文期刊>Journal of Materials Engineering and Performance >Elastic Properties of UHMWPE-SWCNT Nanocomposites' Fiber: An Experimental, Theoretic, and Molecular Dynamics Evaluation
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Elastic Properties of UHMWPE-SWCNT Nanocomposites' Fiber: An Experimental, Theoretic, and Molecular Dynamics Evaluation

机译:UHMWPE-SWCNT纳米复合材料纤维的弹性性能:实验,理论和分子动力学评估

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摘要

Ultrahigh molecular weight polyethylene (PE) filaments were reinforced with 2 wt.% of single-walled carbon nanotubes (SWCNTs). The solution spinning method was used to produce both neat and reinforced PE filaments. Tensile tests and strain hardening through repeated loading-unloading cycles of the filaments revealed a spectacular contribution of the SWCNTs in enhancing the elastic properties, e.g., strength and modulus. The theoretic strength and modulus of the reinforced PE were predicted using the shear lag model and micromechanics-based model, respectively, and verifying with experimental results. It was observed that the predicted strength and modulus were comparable only with those obtained after strain hardening. In the next step, a molecular dynamic simulation was conducted by simulating a unit cell containing a SWCNT surrounded by PE matrix subjected to uniaxial tensile strain. The strength and modulus of the simulated structure showed an agreement, to certain extent, with experimental observations of strain-hardened nanocomposites.
机译:超高分子量聚乙烯(PE)长丝用2 wt。%的单壁碳纳米管(SWCNT)增强。溶液纺丝法用于生产纯净和增强的PE长丝。通过细丝的反复加载-卸载循环的拉伸测试和应变硬化显示出SWCNT在增强弹性性能例如强度和模量方面的惊人贡献。分别使用剪切滞后模型和基于微力学的模型预测了增强PE的理论强度和模量,并与实验结果进行了验证。观察到,预测的强度和模量仅与应变硬化后获得的强度和模量相当。在下一步中,通过模拟包含被单轴拉伸应变的PE基质包围的SWCNT的晶胞进行分子动力学模拟。模拟结构的强度和模量在一定程度上与应变硬化纳米复合材料的实验观察结果一致。

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