Lin Huan, Xu Jinbo, Shen Fuhua, Zhang Lijun, Xu Shen, Dong Hua, Luo Siyi
School of Environmental and Municipal Engineering, Qingdao University of Technology, Qingdao 266033, China.
School of Mechanical and Automotive Engineering, Shanghai University of Engineering Science, Shanghai 201620, China.
Nanomaterials (Basel). 2021 Dec 29;12(1):83. doi: 10.3390/nano12010083.
This work documents the annealing effect on the thermal conductivity of nanotube film (CNTB) and carbon nanotube fiber (CNTF). The thermal properties of carbon nanotube samples are measured by using the transient electro-thermal (TET) technique, and the experimental phenomena are analyzed based on numerical simulation. During the current annealing treatment, CNTB1 always maintains the negative temperature coefficient of resistance (TCR), and its thermal diffusivity increases gradually. When the annealing current is 200 mA, it increases by 33.62%. However, with the increase of annealing current, the TCR of CNTB2 changes from positive to negative. The disparity between CNTB2 and CNTB1 suggests that they have different physical properties and even structures along their lengths. The high-level thermal diffusivity of CNTB2 and CNTF are 2.28-2.46 times and 1.65-3.85 times higher than the lower one. The results show that the decrease of the thermal diffusivity for CNTB2 and CNTF is mainly caused by enhanced Umklapp scattering, the high thermal resistance and torsional sliding during high temperature heating.
这项工作记录了退火对纳米管薄膜(CNTB)和碳纳米管纤维(CNTF)热导率的影响。通过瞬态电热(TET)技术测量碳纳米管样品的热性能,并基于数值模拟对实验现象进行分析。在当前的退火处理过程中,CNTB1始终保持负电阻温度系数(TCR),其热扩散率逐渐增加。当退火电流为200 mA时,热扩散率增加了33.62%。然而,随着退火电流的增加,CNTB2的TCR从正变为负。CNTB2和CNTB1之间的差异表明它们沿长度方向具有不同的物理性质甚至结构。CNTB2和CNTF的高水平热扩散率分别比低水平热扩散率高2.28 - 2.46倍和1.65 - 3.85倍。结果表明,CNTB2和CNTF热扩散率的降低主要是由高温加热过程中增强的倒逆散射、高热阻和扭转滑动引起的。