SiC Composite Ceramic Materials Oxidation Behaviour Based on Three Kinds of Cp Content

Jump To References Section

Authors

  • Ministry of Education Key Laboratory with Modern Metallurgical Technology, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210 ,CN
  • Ministry of Education Key Laboratory with Modern Metallurgical Technology, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210 ,CN
  • Institute of Light Industry, North China University of Science and Technology, Tangshan 063210 ,CN
  • Ministry of Education Key Laboratory with Modern Metallurgical Technology, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210 ,CN

Keywords:

Temperature range, oxidation behaviour, mass change rate, show porosity, Bending strength

Abstract

SiC material is a kind of material with excellent properties, in order to inhibit it’s oxidation behaviour and prolong the service life of the material during the process of using, the oxidation behaviour of three kinds of SiC materials containing different amounts of Cp in the three temperature ranges from 400oC to 1100oC is studied in this paper. It emphatically analyzes the relations among Cp/SiC’s quality change fraction in air and oxidation temperature, oxidation time, Cp/SiC’s apparent porosity and oxidation temperature, Cp/SiC’s bending strength and oxidation temperature, oxidation time. It is concluded that the Cp content of SiC is the key factor to influence the strength and oxidation behaviour of composite materials and the kind of SiC composite ceramics which add Cp can improve oxidation resistance of the materials.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

Downloads

Published

2022-10-20

How to Cite

Xing, H., Liu, Z., Zhang, H., & Zhang, Y. (2022). SiC Composite Ceramic Materials Oxidation Behaviour Based on Three Kinds of C<sub>p</sub> Content. Journal of Mines, Metals and Fuels, 67(3), 153–157. Retrieved from https://informaticsjournals.com/index.php/jmmf/article/view/31536

Issue

Section

Articles

 

References

Kim M S, Rhee K Y, Park S J, (2016): Pitch coating of SiC and its effects on the thermal stability and oxidation resistance of SiC/epoxy composites. Composites Part B Engineering, 94, 218-223.

Kaushal, R (2013): Syntheses and biological screening of Schiff base complexes of titanium (IV), Chemical Engineering Transactions, 32, 1801-1806.

Rüffer T, (2015): The disilanes Cp*SiCl2SiH3 and Cp*SiH2SiH2Cp*. Main Group Metal Chemistry, 38, 69-74.

Noël S, Léger B, Ponchel A, Hapiot F and Monflier E, (2014): Effective catalytic hydrogenation of fatty acids methyl esters by aqueous rhodium (0) nanoparticles stabilized by cyclodextrin-based polymers. Chemical Engineering Transactions, 37, 337-342.

Dimartino Simone, Herigstad Omon M, Boi Cristiana, Eleonora Lalli, Giulio Sarti, (2016): Experimental and Theoretical Analysis to Assess the Use of Monolithic Columns in Process Chromatography. Chemical Engineering Transactions, 49, 25-30.

Tang D, Yi R, Zhang W, (2017): Bottom-up synthesis of mesoporous carbon/silicon carbide composite at low temperature for supercapacitor electrodes. Materials Letters, 198, 140-143.

Wei C, Zhao L, Hu D, (2013): Electrical discharge machining of ceramic matrix composites with ceramic fiber reinforcements. International Journal of Advanced Manufacturing Technology, 64,187-194.

Yanmin Wang, (2013): Nano carbon particles/oxidation behavior of silicon carbide ceramic matrix composites. Journal of Silicate, 41, 1431-1436.

Youjun Lu, (2013): Preparation of carbon-silicon carbide composite powder via a mechanochemical route. Ceramics International, 39, 4421-4426.

Zhao G, Huang C, Liu H, (2013): Preparation of in-situ growth TaC whiskers toughening Al2O3, ceramic matrix composite. International Journal of Refractory Metals & Hard Materials, 36, 122-125.