Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 2: Redox oxide-coated porous ceramic structures as integrated thermochemical reactors/heat exchangers
Author:
Funder
European Commission
Publisher
Elsevier BV
Subject
General Materials Science,Renewable Energy, Sustainability and the Environment
Reference30 articles.
1. Agrafiotis, C., Roeb, M., Sattler, C., 2014a. Cobalt oxide-based structured thermochemical reactors/heat exchangers for solar thermal energy storage in Concentrated Solar Power plants, Proceedings of ASME 2014 8th International Conference on Energy Sustainability & 12th Fuel Cell Science, Engineering and Technology Conference, Boston, U.S.A., Manuscript No ES-FuelCell 2014–6336.
2. Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 1: testing of cobalt oxide-based powders;Agrafiotis;Sol. Energy,2014
3. Agrafiotis, C., Tescari, S., Roeb, M., Schmücker, M., Sattler, C., 2015. Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 3: Cobalt Oxide Monolithic Porous Structures as Integrated Thermochemical Reactors/Heat Exchangers. Solar Energy (in press). http://dx.doi.org/10.1016/j.solener.2014.12.037.
4. The effect of powder characteristics on washcoat quality. Part I: alumina washcoats;Agrafiotis;J. Eur. Ceram. Soc.,2000
5. The effect of powder characteristics on washcoat quality. Part II: Zirconia, titania washcoats — multilayered structures;Agrafiotis;J. Eur. Ceram. Soc.,2000
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