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By R. Martin

Ageing of composites is a hugely topical topic given the expanding use of composites in structural purposes in lots of industries. Ageing of composites addresses a few of the uncertainties concerning the long term functionality of composites and the way they age below stipulations encountered in provider. the 1st a part of the booklet reports approaches and modeling of composite getting older together with actual and chemical aging of polymeric composites, ageing of glass-ceramic matrix composites, chemical growing older mechanisms, pressure corrosion cracking, thermo-oxidative getting older, spectroscopy of getting old composites, modeling actual and speeded up growing older and getting old of silicon carbide composites. half examines growing older of composites in shipping functions together with airplane, automobiles and ships. half 3 reports growing older of composites in non-transport functions resembling implants in clinical units, oil and gasoline refining, building, chemical processing and underwater functions. With its wonderful editor and overseas staff of participants, Ageing of composites could be a important reference advisor for composite brands and builders. it's going to additionally function a resource of knowledge for fabric scientists, designers and engineers in industries that use composites, together with delivery, chemical processing and scientific engineering.

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477–493. -H. and J. A. NAIRN (2003). ’ Composites: Part A 34: 979–986. HAN, W. H. and G. B. MCKENNA (2000). The influence of moisture on the physical aging response of epoxy: experimental results and modeling considerations. In Recent Developments in Durability Analysis of Composite Systems. A. H. Cardon, H. Fukuda, K. L. Reifsnider, and G. Verchery (Eds). A. Balkema: pp. 153–157. HASTIE, R. L. and D. H. MORRIS (1992). The effect of physical aging on the creep response of a thermoplastic composite.

Journal of Materials Science 29: 584–613. ZHENG, S. F. and G. J. WENG (2002). ’ European Journal of Mechanics A/ Solids 21: 411–421. ZHENG, Y. and G. B. MCKENNA (2003). ’ Macromolecules 36: 2387–2396. ZHOU, J. (1993). ’ Polymer 34(20): 4252–4256. SULLIVAN, J. , E. J. BLAIS, © 2008, Woodhead Publishing Limited except Chapter 6 2 Ageing of glass–ceramic matrix composites K. 1 Introduction Traditionally, ceramics are viewed as being brittle materials. In this context, they are susceptible to failure from flaws or damage, either surface or internal, and their mechanical performance can be expected to exhibit some degree of variability.

R. and A. TURNBULL (1994). ’ Journal of Materials Science 29: 584–613. ZHENG, S. F. and G. J. WENG (2002). ’ European Journal of Mechanics A/ Solids 21: 411–421. ZHENG, Y. and G. B. MCKENNA (2003). ’ Macromolecules 36: 2387–2396. ZHOU, J. (1993). ’ Polymer 34(20): 4252–4256. SULLIVAN, J. , E. J. BLAIS, © 2008, Woodhead Publishing Limited except Chapter 6 2 Ageing of glass–ceramic matrix composites K. 1 Introduction Traditionally, ceramics are viewed as being brittle materials. In this context, they are susceptible to failure from flaws or damage, either surface or internal, and their mechanical performance can be expected to exhibit some degree of variability.

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