不同因素对炭膜和炭纤维导热性能的影响

Junjie Chen
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摘要

随着碳纳米管的日益普及,需要对纳米结构材料的热输运特性进行更科学的理解。然而,杂质、错位和结构因素对碳纳米管薄膜和纤维导热性的影响仍然知之甚少。制备了碳纳米管薄膜和碳纳米管纤维,并采用平行热导技术测定其导热系数。研究了碳纳米管的结构、纯度和排列对碳膜和碳纤维导热性能的影响,以了解碳纳米管材料的热传递特性。通过实验确定了容重和截面积的重要性。结果表明,制备的碳纳米管薄膜和纤维具有良好的导热性能。碳纳米管的结构、纯度和排列对碳薄膜和纤维的导热性能起着至关重要的作用。单壁碳纳米管薄膜和纤维通常具有高导热性。非碳质杂质的存在由于束接触程度低而降低了热工性能。导热系数与温度呈幂律关系。比导热系数随堆积密度的增大而减小。在室温下,获得了最大比热导率,但发生了乌姆克拉普散射。碳纳米管纤维的比热导率明显高于碳纳米管薄膜,这是由于碳纳米管束排列程度的增加。
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Effects of Different Factors on the Heat Conduction Properties of Carbon Films and Fibers
The increasing popularity of carbon nanotubes has created a demand for greater scientific understanding of the characteristics of thermal transport in nanostructured materials. However, the effects of impurities, misalignments, and structure factors on the thermal conductivity of carbon nanotube films and fibers are still poorly understood. Carbon nanotube films and fibers were produced, and the parallel thermal conductance technique was employed to determine the thermal conductivity. The effects of carbon nanotube structure, purity, and alignment on the thermal conductivity of carbon films and fibers were investigated to understand the characteristics of thermal transport in the nanostructured material. The importance of bulk density and cross-sectional area was determined experimentally. The results indicated that the prepared carbon nanotube films and fibers are very efficient at conducting heat. The structure, purity, and alignment of carbon nanotubes play a fundamentally important role in determining the heat conduction properties of carbon films and fibers. Single-walled carbon nanotube films and fibers generally have high thermal conductivity. The presence of non-carbonaceous impurities degrades the thermal performance due to the low degree of bundle contact. The thermal conductivity may present power law dependence with temperature. The specific thermal conductivity decreases with increasing bulk density. At room temperature, a maximum specific thermal conductivity is obtained but Umklapp scattering occurs. The specific thermal conductivity of carbon nanotube fibers is significantly higher than that of carbon nanotube films due to the increased degree of bundle alignment.
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