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THERMAL PROPERTY MEASUREMENTS OF CARBON NANOTUBE FOREST SYNTHESIZED BY THERMAL CVD PROCESS

机译:热CVD法合成碳纳米管森林的热性能测定

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Carbon nanotube (CNT) forest/cluster synthesized by a thermal CVD process has millimeter growth height, large porosity and nano level pore size, plus high thermal conductivity of individual CNT, thus it is potentially a good wick structure material in developing micro heat transfer devices.However, thermal properties, including effective thermal conductivity (ETC) of a bulky CNT layer, may not be as good as the common metallic wick materials. In this paper, a Netzsch DSC 404 C Pegasus is used for measurement of the CNT heat capacity. CNT volume density is obtained by measuring the ratio of a bulky CNT weight and volume. Both the laser flash and 3-omega measurement methods are employed to measure ETC for CNT wick structures synthesized by the thermal CVD processes. For the laser flash method, measurement deviations caused by reflective silicon and thin substrate are corrected by surface treatment and increased sample thickness. Measurement results of the laser flash indicate that a 600μm thick CNT layer has ETC varying from 0.7-1.2W/m.K. For the 3-omega approach, the measurement system is validated on a quartz substrate. However, the test results yield larger ETC on 250μm CNT samples. Geometric and one dimensional thermal conduction analysis indicate that the bulky CNT thermal properties are tied to CNT synthesis processes. ETC of bulky CNT layer can be enhanced by straightening CNT growth and increasing CNT growth volume density.
机译:通过热CVD工艺合成的碳纳米管森林/簇具有毫米长的生长高度,大的孔隙率和纳米级的孔径,再加上各个CNT的高导热性,因此在开发微型传热装置中可能是一种良好的灯芯结构材料。 但是,包括大体积CNT层的有效热导率(ETC)在内的热性能可能不如普通金属芯材料好。在本文中,使用Netzsch DSC 404 C飞马来测量CNT的热容量。 CNT体积密度是通过测量庞大的CNT重量与体积之比而获得的。激光闪光和3-Ω测量方法均用于测量通过热CVD工艺合成的CNT芯结构的ETC。对于激光闪光法,通过表面处理和增加的样品厚度来校正由反射硅和薄基板引起的测量偏差。激光闪光的测量结果表明,厚度为600μm的CNT层的ETC为0.7-1.2W / m.K。对于3-Ω方法,测量系统在石英基板上进行了验证。但是,测试结果在250μmCNT样品上产生了更大的ETC。几何和一维热导分析表明,庞大的CNT热性能与CNT合成过程有关。可以通过拉直CNT生长并增加CNT生长体积密度来增强大体积CNT层的ETC。

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