By Andrew Gyekenyesi, Waltraud M. Kriven, Jingyang Wang, Sujanto Widjaja, Dileep Singh
This e-book is a suite of papers from the yankee Ceramic Society's thirty fifth overseas convention on complex Ceramics and Composites, held in Daytona seashore, Florida, January 23-28, 2011. This factor contains papers offered within the Thermal administration fabrics and applied sciences; complex Sensor know-how; Geopolymers; and Computational layout, Modeling, and Simulation of Ceramics and Composites symposia.Content:
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Additional resources for Developments in Strategic Materials and Computational Design II: Ceramic Engineering and Science Proceedings, Volume 32
At high magnification one can see that the microfibers are not in tension and did not break during the passing of the micro-crack. Figure 5 shows that a ductile material was developed by the addition of the microfibers. Figure 5. Ductility comparison among base Geopolymers, Geopolymers with 1% of RECS7 fibers and Geopolymers with 1% of RECS15 fibers using a three point bending test. Developments in Strategic Materials and Computational Design II -33 Mechanical Response of Discontinuous Filament PVA Fiber Reinforced Geopolymers Figure 5 reveals that a ductile material was achieved in the sample using the RECS15 microfibers.
Xie, J. L. Bell, and W. M. Kriven, Fabrication of Structural Leucite Glass-Ceramics from Potassium-Based Geopolymer Precursors, J. Am. Ceram. Soc, 93, 2644-49, (2010). 9 S. Allan, M. Fall, H. Shulman, and G. pdf, (2009). 10 G. Gaustad, J. Metcalfe, H. Shulman, and S. Allan, Susceptor Investigation for Microwave Heating Applications, Innovative Processing and Synthesis of Ceramics, Glasses and Composites VIII, 166, (2005). n J. Wang, J. Binner, and b. Vaidhyanathan, Evidence for the Microwave Effect During Hybrid Sintering, Journal American Ceramic Society, 89, 1977-84, (2006).
This sample contains also portlandite coming from the decomposition of the calcareous aggregates. 24 ■ Developments in Strategic Materials and Computational Design II Synthesis and Thermal Properties of Fly-Ash Based Geopolymer Pastes and Mortars Figure 7: XRD patterns of geopolymer pastes in relation to the exposure temperature (1: quartz, 2: cristobalite, 3: feldspars, 4: gehlenite, 5: maghemite, 6: nepheline, 7: natrite, 8: calcite) Figure 8: XRD patterns of geopolymer mortars in relation to the exposure temperature (1: quartz, 2: cristobalite, 3: feldspars, 4: gehlenite, 5: maghemite, 6: nepheline, 7: natrite, 8: calcite, 9: portlandite) Developments in Strategic Materials and Computational Design II -25 Synthesis and Thermal Properties of Fly-Ash Based Geopolymer Pastes and Mortars All the above measurements are in good accordance with each other.