Solar-Hybrid Gas Turbine-based Power Tower Systems (REFOS)*

Author:

Buck Reiner1,Bra¨uning Thomas1,Denk Thorsten1,Pfa¨nder Markus2,Schwarzbo¨zl Peter3,Tellez Felix4

Affiliation:

1. DLR-ITT, Pfaffenwaldring 38-40, D-70569 Stuttgart, Germany

2. DLR-PSA, Apartado 39, E-04200 Tabernas, Spain

3. DLR-SE, Linder Ho¨he, D-51147 Ko¨ln, Germany

4. CIEMAT/IER-PSA, Avenida Complutense 22, E-28040 Madrid, Spain

Abstract

Solar hybrid power plants have a significant potential for cost reduction when the solar energy is introduced into a gas turbine system. The introduction into gas turbine systems could be realized with pressurized volumetric air receivers heating the compressed air of the gas turbine before it enters the combustor. A receiver module, consisting of a secondary concentrator and a volumetric receiver unit, was tested at the Plataforma Solar de Almerı´a, Spain. Air exit temperatures up to 815°C and power levels of 410 kW were achieved. Total solar test time summed up to 400 hours. Receiver efficiencies were in the range of 70%. A new secondary concentrator with improved efficiency was designed and built. Based on an inexpensive manufacturing technology, the secondary concentrator geometry was optimized to reduce the optical losses. Performance tests with this new secondary concentrator and a cold-water calorimeter proved the expected increase in efficiency of about 10%. Maximum operation power was 450 kW at the exit aperture. The dependency of performance on the incidence-angle showed good agreement with the predictions, as well as the results of a special photographic measurement campaign. Several configurations of solar-hybrid gas turbine cycles in the low to medium power range are examined for performance and costs. The results confirm the promising potential of this technology to reach competitiveness in certain power markets; a comparison between a 30 MW solar-hybrid combined cycle plant and an ISCCS power plant are presented. Future developments for system improvement and cost reduction are discussed.

Publisher

ASME International

Subject

Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

Reference12 articles.

1. Kribus, A., Zaibel, R., Carrey, D., Segal, A., and Karni, J., 1997, “A Solar-Driven Combined Cycle Power Plant,” Sol. Energy, 62, pp. 121–129.

2. Buck, R., Abele, M., Kunberger, J., Denk, T., Heller, P., and Lu¨pfert, E., 1998, “Receiver for Solar-Hybrid Gas Turbine and Combined Cycle Systems,” Proc. of 9th SolarPACES Int. Symp. on Solar Thermal Concentrating Technologies, June 22-26, 1998, Font-Romeu, France, pp. 537–544.

3. Buck, R., Lu¨pfert, E., and Te´llez, F., 2000, “Receiver for Solar-Hybrid Gas Turbine and CC Systems (REFOS),” Proc. of 10th SolarPACES Int. Symp. Solar Thermal 2000, March 8–10, 2000, Sydney, Australia, pp. 95–100.

4. Lu¨pfert, E., Monterreal, R., Heller, P., and Reche, J. F., 2000, “Concentrated Solar Radiation Measurement With Video Image Processing and Online Fluxgage Calibration,” Proc. of 10th SolarPACES Int. Symp. Solar Thermal 2000, March 8–10, 2000, Sydney, Australia.

5. Timinger, A. et al., 1998, “Optical in-situ analysis of secondary reflectors in solar tower plants,” Proc. of 9th SolarPACES Int. Symp. on Solar Thermal Concentrating Technologies, June 22–26, 1998, Font-Romeu, France, pp. 117–122.

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