首页> 外文会议>ASME international mechanical engineering congress and exposition >SIMULATION OF THERMAL CONDUCTIVITY IN FABRICATED VARIABLE VOLUME FRACTION ALIGNED CARBON NANOTUBE POLYMER COMPOSITES
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SIMULATION OF THERMAL CONDUCTIVITY IN FABRICATED VARIABLE VOLUME FRACTION ALIGNED CARBON NANOTUBE POLYMER COMPOSITES

机译:制造可变体积分数对准碳纳米管聚合物复合材料的热导率模拟

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Thermal conductivities of aligned carbon nanotube (CNT)-polymer nano-composites were estimated using the off-lattice Monte Carlo simulation. High thermal conductivity to density ratio is theoretically and experimentally recognized as one of the exceptional properties of CNTs. Aligned CNTs combined with existing advanced composites are being explored for macro-scale aerospace structures that benefit from thermal tailoring and light weight. Accurate thermal transport models within different polymer nanocomposites, and larger-scale and complexity composites, remain to be developed. The model previously developed for single-walled nanotube (SWNT)-polymer composites was modified to simulate the thermal property of aligned multi-walled nanotube (MWNT)-polymer nanocomposites of different volume fraction. Random walk simulations of thermal walkers are used to determine the interfacial resistance to heat flow inside the nano-composites in the directions parallel and perpendicular to the CNT alignment axis. The thermal equilibrium factor between the MWNTs and the composite matrix material is also determined numerically in this study. The CNT-polymer samples were fabricated for thermal conductivity measurements using two methods: the pump-and-probe method and the infrared microscopy. Aligned SWNT and MWNT forests were grown using chemical vapor deposition (CVD). The MWNTs were mechanically densified up to ~20 % aligned-CNT volume fraction. The MWNT forests were immersed in an aerospace-grade thermoset resin, and cured. Near future work is to compare the simulated effective thermal conductivities of the CNT-epoxy composites with the measured data of the fabricated specimens to determine thermal boundary resistance between CNTs and the polymer.
机译:使用脱晶片蒙特卡罗模拟估计对准碳纳米管(CNT) - 共聚物纳米复合材料的热导体。在理论上和实验地被认为是密度比的高导热系数作为CNT的卓越性质之一。对准CNT与现有的高级复合材料相结合,用于宏观级航空航天结构,这些结构受益于热剪裁和重量轻。在不同的聚合物纳米复合材料中的准确热传输模型以及较大尺度和复杂性复合材料仍然待开发。修饰了先前开发用于单壁纳米管(SWNT) - 共聚物复合材料的模型,以模拟不同体积分数的对齐的多壁纳米管(MWNT)纳米复合材料的热性。热步行者的随机步道模拟用于确定平行的方向和垂直于CNT对准轴线的纳米复合材料内部的界面阻力。在该研究中,MWNT和复合基质材料之间的热平衡因子也在数量上确定。使用两种方法制造CNT-聚合物样品,用于使用两种方法进行导热率测量:泵和探针方法和红外显微镜。使用化学气相沉积(CVD)生长对齐的SWNT和MWNT林。机械地致密于〜20%对准-CNT体积分数。 MWNT林浸入航空级热固性树脂中并固化。近期工作是将CNT-环氧复合材料的模拟有效的热导体与制造标本的测量数据进行比较,以确定CNT和聚合物之间的热抗辐射电阻。

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