TY - JOUR
T1 - Mechanical and thermophysical properties of carbon/carbon composites with hafnium carbide
AU - Li, Cuiyan
AU - Li, Kezhi
AU - Li, Hejun
AU - Ouyang, Haibo
AU - Zhang, Yulei
AU - Guo, Lingjun
PY - 2013/8
Y1 - 2013/8
N2 - Carbon/carbon (C/C) composites with addition of hafnium carbide (HfC) were prepared by immersing the carbon felt in a hafnium oxychloride aqueous solution, followed by densification and graphitization. Mechanical properties, coefficients of thermal expansion (CTE), and thermal conductivity of the composites were investigated. Results show that mechanical properties of the composites decrease dramatically when the HfC content is greater than 6.5 wt%. CTE of the composites increases with the increase of HfC contents. The composites with addition of 6.5 wt% HfC show the highest thermal conductivity. The high thermal conductivity results from the thermal motion of CO in the gaps and pores, which can improve phonon-defect interaction of the C/C composites. Thermal conductivities of the composites decrease when the HfC content is greater than 6.5 wt%, which is due to formation of a large number of cracks in the composites. Cracks increase the phonon scattering and hence restrain heat transport, which results in the decrease of thermal conductivity of the composites.
AB - Carbon/carbon (C/C) composites with addition of hafnium carbide (HfC) were prepared by immersing the carbon felt in a hafnium oxychloride aqueous solution, followed by densification and graphitization. Mechanical properties, coefficients of thermal expansion (CTE), and thermal conductivity of the composites were investigated. Results show that mechanical properties of the composites decrease dramatically when the HfC content is greater than 6.5 wt%. CTE of the composites increases with the increase of HfC contents. The composites with addition of 6.5 wt% HfC show the highest thermal conductivity. The high thermal conductivity results from the thermal motion of CO in the gaps and pores, which can improve phonon-defect interaction of the C/C composites. Thermal conductivities of the composites decrease when the HfC content is greater than 6.5 wt%, which is due to formation of a large number of cracks in the composites. Cracks increase the phonon scattering and hence restrain heat transport, which results in the decrease of thermal conductivity of the composites.
KW - B. C/C composites
KW - C. Mechanical properties
KW - D. Carbides
KW - Thermophysical properties
UR - http://www.scopus.com/inward/record.url?scp=84877707243&partnerID=8YFLogxK
U2 - 10.1016/j.ceramint.2013.02.006
DO - 10.1016/j.ceramint.2013.02.006
M3 - 文章
AN - SCOPUS:84877707243
SN - 0272-8842
VL - 39
SP - 6769
EP - 6776
JO - Ceramics International
JF - Ceramics International
IS - 6
ER -