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Syntactic Closed-cell Foams Based on Silicon Carbide

Published online by Cambridge University Press:  01 February 2011

Engin Ozcivici
Affiliation:
Mechanics of Advanced Materials Laboratory, Department of Mechanical Engineering, Stony Brook University, Stony Brook, NY 11794–2300, USA
Raman P. Singh
Affiliation:
Mechanics of Advanced Materials Laboratory, Department of Mechanical Engineering, Stony Brook University, Stony Brook, NY 11794–2300, USA
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Abstract

Closed cell foams were fabricated by incorporating two different grades of hollow alumino-silicate spheres (cenospheres) into a silicon carbide matrix. The silicon carbide matrix was formed by the pyrolysis of a preceramic polymer, and multiple polymer infiltration and pyrolysis (PIP) cycles were employed to minimize the open voids in the material. The physical, mechanical and thermal properties of the fabricated foams were characterized as functions of the number of reinfiltration cycles. The open- and closed-void volume fractions were determined by measurements of bulk and skeletal densities. Mechanical properties, including strength and modulus, were evaluated using four-point bend and compression tests. Finally, thermophysical (thermal conductivity) values of the material were determined using laser-flash technique. This processing technique results in closed-cell syntactic foams with low density (≤ 1.8g/cm3), reasonable mechanical strength (∼ 30 MPa) and very low thermal conductivity (≤ 1 W/m-K). In this manner, this process can be used for the low-cost and net-shape fabrication of closed-cell silicon carbide syntactic foams for high temperature applications.

Type
Research Article
Copyright
Copyright © Materials Research Society 2005

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References

REFERENCES

1. Ashby, M.F., The Mechanical-Properties of Cellular Solids . Metallurgical Transactions a-Physical Metallurgy and Materials Science, 1983. 14(9): p. 17551769.Google Scholar
2. Gibson, L.J. and Ashby, M.F., Cellular solids, structure and properties. 2nd ed. 1999, Cambridge: Cambridge University Press.Google Scholar
3. Harte, A.M., Fleck, N.A., and Ashby, M.F., Fatigue failure of an open cell and a closed cell aluminium alloy foam . Acta Materialia, 1999. 47(8): p. 25112524.Google Scholar
4. Gibson, L.J., Cellular solids . Mrs Bulletin, 2003. 28(4): p. 270271.Google Scholar
5. Sepulveda, P. and Binner, J.G.P., Processing of cellular ceramics by foaming and in situ polymerisation of organic monomers . Journal of the European Ceramic Society, 1999. 19(12): p. 20592066.Google Scholar
6. Vogt, U., et al., Highly porous Silicon Carbide by Gas Infiltration. Proceedings of Materials Week 2000, 2000.Google Scholar
7. Data from Trelleborg Fillite Inc. material sheet.Google Scholar
8. Barbare, N., Shukla, A., and Bose, A., Uptake and loss of water in a cenosphere-concrete composite material . Cement and Concrete Research, 2003. 33(10): p. 16811686.Google Scholar
9. Chalivendra, V.B., et al., Processing and mechanical characterization of lightweight polyurethane composites . Journal of Materials Science, 2003. 38(8): p. 16311643.Google Scholar
10. McBride, S.P., Shukla, A., and Bose, A., Processing and characterization of a lightweight concrete using cenospheres . Journal of Materials Science, 2002. 37(19): p. 42174225.Google Scholar
11. Tiwari, V., Shukla, A., and Bose, A., Acoustic properties of cenosphere reinforced cement and asphalt concrete . Applied Acoustics, 2004. 65(3): p. 263275.Google Scholar
12. ASTM C 1161 – 02c, “Standard test method for flexural strength of advanced ceramics at ambient temperature,” ASTM International, West Conshohocken, PA 19428–2959, USAGoogle Scholar
13. ASTM C365–03 “Standard Test Method for Flatwise Compressive Properties of Sandwich Cores,” ASTM International, West Conshohocken, PA 19428–2959, USAGoogle Scholar
14. Gupta, N., Woldesenbet, E., and Mensah, P., Compression properties of syntactic foams: effect of cenosphere radius ratio and specimen aspect ratio . Composites Part a-Applied Science and Manufacturing, 2004. 35(1): p. 103111.Google Scholar