Title of article :
Computational analysis of the thermal conductivity
of the carbon–carbon composite materials
Author/Authors :
M. Grujicic، نويسنده , , C. L. ZHAO، نويسنده , , E. C. Dusel، نويسنده , , D. R. Morgan، نويسنده , , R. S. Miller، نويسنده , , D. E. Beasley، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2006
Abstract :
Experimental data for carbon–carbon constituent
materials are combined with a three-dimensional
stationary heat-transfer finite element analysis
to compute the average transverse and longitudinal
thermal conductivities in carbon–carbon composites.
Particular attention is given in elucidating the roles
of various micro-structural defects such as de-bonded
fiber/matrix interfaces, cracks and voids on thermal
conductivity in these materials. In addition, the effect
of the fiber precursor material is explored by
analyzing PAN-based and pitch-based carbon fibers,
both in the same type pitch-based carbon matrix.
The finite element analysis is carried out at two
distinct length scales: (a) a micro scale comparable
with the diameter of carbon fibers and (b) a macro
scale comparable with the thickness of carbon–
carbon composite structures used in the thermal
protection systems for space vehicles. The results
obtain at room temperature are quite consistent with
their experimental counterparts. At high temperatures,
the model predicts that the contributions of
gas-phase conduction and radiation within the microstructural
defects can significantly increase the transverse
thermal conductivity of the carbon–carbon
composites
Journal title :
Journal of Materials Science
Journal title :
Journal of Materials Science