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Multi-stage chemical looping combustion (CLC) for combined cycles with CO2 capture
Institution:Norwegian University of Science and Technology (NTNU), Department of Energy and Process Engineering, NO-7491 Trondheim, Norway;IEA Greenhouse Gas R&D Programme, Cheltenham, Gloucestershire, GL52 7RZ;Norwegian University of Science and Technology (NTNU), Trondheim, Norway;Department of Energy and Environment, Chalmers University of Technology, Sweden;Department of Energy and Environment, Chalmers University of Technology, S-412 96 Göteborg, Sweden;Dipartimento di Ingegneria – Universitá degli Studi del Sannio, Piazza Roma, 21-82100 Benevento, Italy;School of Chemical Engineering, University of New South Wales, Sydney, NSW 2052, Australia;Department of Energy and Environment, Instituto de Carboquímica-ICB-CSIC, Miguel Luesma Castán 4, 50018 Zaragoza, Spain;Instituto de Carboquímica (ICB-CSIC), Miguel Luesma Castán 4, E-50018 Zaragoza, Spain
Abstract:This paper presents application of the chemical looping combustion (CLC) method in natural gas-fired combined cycles for power generation with CO2 capture. A CLC combined cycle consisting of single CLC-reactor system, an air turbine, a CO2-turbine and a steam cycle has been designated as the base-case cycle. The base-case cycle can achieve net plant efficiency of about 52% at an oxidation temperature of 1200 °C. In order to achieve a reasonable efficiency at lower oxidation temperatures, reheat is introduced into the air turbine by employing multi CLC-reactors. The results show that the single reheat CLC-combined cycle can achieve net plant efficiency of above 51% at oxidation temperature of 1000 °C and above 53% at the oxidation temperature of 1200 °C including CO2 compression to 110 bar. The double reheat cycle results in marginal efficiency improvement as compared to the single reheat cycle. The CLC-cycles are also compared with a conventional combined cycle with and without post-combustion capture in amine solution. All the CLC-cycles show higher net plant efficiencies with close to 100% CO2 capture as compared to a conventional combined cycle with post-combustion capture, which is very promising.
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