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Paper The following article is Open access

Dependence of equivalent thermal conductivity coefficients of single-wall carbon nanotubes on their chirality

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Published under licence by IOP Publishing Ltd
, , Citation V S Zarubin and E S Sergeeva 2018 J. Phys.: Conf. Ser. 991 012080 DOI 10.1088/1742-6596/991/1/012080

1742-6596/991/1/012080

Abstract

Composite materials (composites) composed of a matrix and reinforcing components are currently widely used as structural materials for various engineering devices designed to operate under extreme thermal and mechanical loads. By modifying a composite with structure-sensitive inclusions such as single-wall carbon nanotubes, one can significantly improve the thermomechanical properties of the resulting material. The paper presents relationships obtained for the equivalent thermal conductivity coefficients of single-wall carbon nanotubes versus their chirality using a simulation model developed to simulate the heat transfer process through thermal conductivity in a transversely isotropic environment. With these coefficients, one can conventionally substitute a single-wall carbon nanotube with a continuous anisotropic fiber, thus allowing one to estimate the thermal properties of composites reinforced with objects of this sort by using the well-known models developed for fibered composites. The results presented here can be used to estimate the thermal properties of carbon nanotube-reinforced composites.

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10.1088/1742-6596/991/1/012080