Evaluation of effective thermal conductivity for carbon nanotube/polymer composites using control volume finite element method

被引:135
作者
Song, YS [1 ]
Youn, JR [1 ]
机构
[1] Seoul Natl Univ, Sch Mat Sci & Engn, Seoul 151744, South Korea
关键词
carbon nanotubes; resins; thermal conductivity;
D O I
10.1016/j.carbon.2005.09.034
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Effective thermal conductivity of the polymeric composites filled with carbon nanotubes (CNTs) is predicted by using the asymptotic expansion homogenization technique (AEH), which makes it possible to localize and homogenize a heterogeneous medium. In the present study, CNT embedded epoxy composites are taken into account as the heterogeneous system. The representative volume element (RVE) employed in the homogenization process is constructed by assuming that the CNTs are dispersed homogeneously in the polymer matrix. It is presumed that the RVE contains a single CNT and that there is no direct interaction between neighboring CNTs. The dispersion state of CNTs in the composites is morphologically characterized by the field emission scanning electronic microscope (FESEM). In order to consider the orientation state of CNTs, the bounding approach is adopted by using the orientation tensor. It is found that the numerically homogenized thermal conductivity is higher than that obtained by the analytic model. Predicted conductivities are also compared with experimental results as well as analytic results. The homogenization technique yields the effective thermal conductivity accordant with experimental results. In the case that a heterogeneous material has anisotropic properties or geometrical complexity, the homogenization technique is an efficient method to obtain averaged material properties equivalent to those of the real heterogeneous medium. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:710 / 717
页数:8
相关论文
共 32 条
[1]   THE USE OF TENSORS TO DESCRIBE AND PREDICT FIBER ORIENTATION IN SHORT FIBER COMPOSITES [J].
ADVANI, SG ;
TUCKER, CL .
JOURNAL OF RHEOLOGY, 1987, 31 (08) :751-784
[2]   Homogenization procedure and Pade approximants for effective heat conductivity of composite materials with cylindrical inclusions having square cross-section [J].
Andrianov, IV ;
Starushenko, GA ;
Danishevs'kyy, VV ;
Tokarzewski, S .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1999, 455 (1989) :3401-3413
[3]   Homogenization method for effective thermal conductivity of metal hydride bed [J].
Asakuma, Y ;
Miyauchi, S ;
Yamamoto, T ;
Aoki, H ;
Miura, T .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2004, 29 (02) :209-216
[4]   Unusually high thermal conductivity of carbon nanotubes [J].
Berber, S ;
Kwon, YK ;
Tománek, D .
PHYSICAL REVIEW LETTERS, 2000, 84 (20) :4613-4616
[5]  
BHUSHAN B, 2004, SPRINGER HDB NANO TE
[6]   Carbon nanotube composites for thermal management [J].
Biercuk, MJ ;
Llaguno, MC ;
Radosavljevic, M ;
Hyun, JK ;
Johnson, AT ;
Fischer, JE .
APPLIED PHYSICS LETTERS, 2002, 80 (15) :2767-2769
[7]   Analytical model for the thermal conductivity of nanostructures [J].
Chantrenne, P ;
Barrat, JL .
SUPERLATTICES AND MICROSTRUCTURES, 2004, 35 (3-6) :173-186
[8]   Thermal conductivity of carbon nanotubes [J].
Che, JW ;
Çagin, T ;
Goddard, WA .
NANOTECHNOLOGY, 2000, 11 (02) :65-69
[9]   Homogenization of temperature-dependent thermal conductivity in composite materials [J].
Chung, PW ;
Tamma, KK ;
Namburu, RR .
JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 2001, 15 (01) :10-17
[10]  
Donnet J.B., 1984, CARBON FIBERS