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首页> 外文期刊>Polymer engineering and science >Effect of carbon nanotube dispersion and network formation on thermal conductivity of thermoplastic polyurethane/carbon nanotube nanocomposites
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Effect of carbon nanotube dispersion and network formation on thermal conductivity of thermoplastic polyurethane/carbon nanotube nanocomposites

机译:碳纳米管分散和网络形成对热塑性聚氨酯/碳纳米管纳米复合材料导热系数的影响

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摘要

Carbon nanotubes (CNTs) were dispersed without any solvent in poly(tetramethylene ether glycol), (PTMEG) well above its melting point by ultrasonication in the pulse mode and different times. The polyol/CNT suspensions were used to prepare in situ polymerized thermoplastic polyurethane TPU/CNT nanocomposites with the CNT concentration of approximate to 0.05 vol%, much below the CNT geometrical percolation threshold calculated at 0.43 vol%. Results of rotational rheological measurements and ultraviolet-visible (UV-Vis) spectroscopy analysis revealed improvement in the nanoscale CNT dispersion with sonication time. Moreover, the optical microscopic images and sedimentation behavior for these samples pointed out to the formation of segregated CNT networks with different microstructures at different sonication times. Through-plane thermal conductivity measurements showed an increase in thermal conductivity of the in-situ polymerized TPU/CNT nanocomposites from polyol/CNT suspensions with increasing sonication time followed by a decrease at long sonication times. Different models were used to evaluate the role of CNT dispersion state and created microstructure on thermal conductivity of nanocomposites. The formation of a segregated network at medium sonication times consisting of large CNT aggregates and small bundles increased the nanocomposite thermal conductivity up to 99.7%, while at longer sonication times, an increase in interfacial area with a corresponding increase in kapitza boundary resistance, effectively decreased the system thermal conductivity. POLYM. ENG. SCI., 56:394-407, 2016. (c) 2016 Society of Plastics Engineers
机译:碳纳米管(CNTs)通过脉冲方式和不同时间的超声处理,在没有任何溶剂的情况下分散在聚四亚甲基醚二醇(PTMEG)中,而该溶剂远高于其熔点。多元醇/ CNT悬浮液用于制备原位聚合的热塑性聚氨酯TPU / CNT纳米复合材料,其CNT浓度约为0.05 vol%,远低于计算为0.43 vol%的CNT几何渗滤阈值。旋转流变学测量和紫外-可见(UV-Vis)光谱分析的结果表明,纳米级CNT分散体随着超声处理时间的延长而改善。此外,这些样品的光学显微图像和沉降行为指出在不同的超声处理时间下形成具有不同微观结构的分离的CNT网络。沿平面的热导率测量结果显示,随着超声处理时间的增加,原位聚合的TPU / CNT纳米复合材料的多元醇/ CNT悬浮液的热导率增加,而随着超声处理时间的延长,热导率降低。使用不同的模型评估CNT分散状态的作用,并创建了纳米结构对纳米复合材料导热性的影响。在中等超声处理时间下,由大的CNT聚集体和小束组成的隔离网络的形成使纳米复合材料的导热系数高达99.7%,而在更长的超声处理时间下,界面面积的增加以及kapitza边界电阻的相应增加有效地降低了系统的导热系数。 POLYM。 ENG。 SCI。,56:394-407,2016.(c)2016年塑料工程师学会

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