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Electrical and Thermal Experimental Characterization and Modeling of Carbon Nanotube/Epoxy Composites

机译:碳纳米管/环氧树脂复合材料的电学和热学实验表征与建模

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摘要

The present work investigates the effect of carbon nanotube (CNT) inclusions on the electrical and thermal conductivity of a thermoset epoxy resin. The characterization of electrical and thermal conductivity of CNT/epoxy composites is presented. Pristine, oxidized, and fluorine-functionalized unpurified CNT mixtures ("XD grade") were dispersed in an epoxy matrix, and the effect of stirring rate and pre-curing of the epoxy on the dispersion of the CNTs was evaluated. In order to characterize the dispersion of the CNTs at different length scales, Optical Microscopy (OM), Raman Spectroscopy, and Scanning Electron Microscopy (SEM) was performed. Samples of varying CNT weight fractions were fabricated in order to find the effect of CNT weight fraction on thermal and electrical conductivity. Electrical conductivity was measured using a dielectric spectrometer, and thermal conductivity was determined by a transient plane source thermal analyzer. It was found that electrical conductivity increases by orders of magnitude for the pristine and oxidized XD CNT composites relative to the neat epoxy matrix, while fluorinated XD CNT composites remain electrically non-conductive. A small, but significant, increase in thermal conductivity was observed for pristine, oxidized, and fluorinated XD CNT composites, showing a linear increase in thermal conductivity with increasing CNT weight fraction. Pristine XD CNTs were ball-milled for different times in order to reduce the degree of agglomeration and entanglement of CNTs, and composites were fabricated using the same technique as with non-milled XD CNTs. Using ball-milled CNTs shows improved dispersion but results in an electrically non-conductive composite at the CNT weight fractions tested. The thermal conductivity of the ball-milled CNT samples shows an initial increase higher than that of non-milled pristine, oxidized, and fluorinated XD CNTs, but remains constant with increasing CNT weight fraction. A micromechanics model based on the composite cylinders method was implemented to model the electrical and thermal conductivity of the CNT/epoxy composites. Nanoscale effects in electrical and thermal conduction, such as electron hopping and interface thermal resistance, respectively, were incorporated into the model in order to accurately predict the acquired results. Modeling results show good agreement with acquired experimental results.
机译:本工作研究了碳纳米管(CNT)夹杂物对热固性环氧树脂的电导率和热导率的影响。给出了碳纳米管/环氧树脂复合材料的电导率和导热率的表征。将原始的,氧化的和氟官能化的未纯化CNT混合物(“ XD级”)分散在环氧基质中,并评估了搅拌速率和环氧树脂的预固化对CNT分散性的影响。为了表征碳纳米管在不同长度尺度上的分散,进行了光学显微镜(OM),拉曼光谱和扫描电子显微镜(SEM)。为了发现CNT重量分数对热导率和电导率的影响,制造了变化的CNT重量分数的样品。使用介电谱仪测量电导率,并通过瞬态平面源热分析仪确定热导率。已经发现,相对于纯净的环氧基质,原始的和氧化的XD CNT复合材料的电导率增加了几个数量级,而氟化的XD CNT复合材料则保持非导电性。对于原始的,氧化的和氟化的XD CNT复合材料,观察到导热系数小幅但显着的增加,显示随着CNT重量分数的增加,导热系数呈线性增加。为了减少CNT的团聚和缠结程度,对原始XD CNT进行球磨不同的时间,然后使用与未研磨的XD CNT相同的技术制造复合材料。使用球磨的CNT显示出改善的分散性,但在测试的CNT重量分数下会形成非导电复合材料。球磨的CNT样品的热导率显示出比未研磨的原始,氧化和氟化XD CNT更高的初始增加,但随着CNT重量分数的增加而保持恒定。实现了基于复合圆柱体方法的微力学模型,以对CNT /环氧树脂复合材料的电导率和导热率进行建模。分别将电子和热传导中的纳米级效应(例如电子跳变和界面热阻)纳入模型中,以便准确预测获得的结果。建模结果与获得的实验结果吻合良好。

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    Gardea Frank;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en_US
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