Design Concept for Large Output Graz Cycle Gas Turbines

Author:

Jericha H.1,Sanz W.1,Göttlich E.1

Affiliation:

1. Institute for Thermal Turbomachinery and Machine Dynamics, Graz University of Technology, Graz, Austria

Abstract

The introduction of closed cycle gas turbines with their capability of retaining combustion generated CO2 can offer a valuable contribution to the Kyoto goal and to future power generation. Therefore research and development work at the Graz University of Technology since the 1990s has led to the Graz Cycle, a zero emission power cycle of highest efficiency. It burns fossil fuels with pure oxygen which enables the cost-effective separation of the combustion CO2 by condensation. The efforts for the oxygen supply in an air separation plant are partly compensated by cycle efficiencies far higher than for modern combined cycle plants. Upon the basis of the previous work, the authors present the design concept for a large power plant of 400 MW net power output making use of the latest developments in gas turbine technology. The Graz Cycle configuration is changed, insofar as condensation and separation of combustion generated CO2 takes place at the 1 bar range in order to avoid the problems of condensation of water out of a mixture of steam and incondensable gases at very low pressure. A final economic analysis shows promising CO2 mitigation costs in the range of $20–30/ton CO2 avoided. The authors believe that they present here a partial solution regarding thermal power production for the most urgent problem of saving our climate.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference25 articles.

1. Jericha, H. , 1985, “Efficient Steam Cycles With Internal Combustion of Hydrogen and Stoichiometric Oxygen for Turbines and Piston Engines,” CIMAC Conference Paper No. T13, Oslo, Norway.

2. Jericha, H., Sanz, W., Woisetschläger, J., and Fesharaki, M., 1995, “CO2-Retention Capability of CH4∕O2-Fired Graz Cycle,” CIMAC Conference Paper, Interlaken, Switzerland.

3. Jericha, H., and Fesharaki, M., 1995, “The Graz Cycle—1500°C Max Temperature Potential H2-O2 Fired CO2 Capture With CH4-O2 Firing,” ASME Paper No. 95-CTP-79.

4. Jericha, H., Lukasser, A., and Gatterbauer, W., 2000, “Der Graz Cycle für Industriekraftwerke gefeuert mit Brenngasen aus Kohle- und Schwerölvergasung” (in German), VDI Berichte 1566, VDI Conference Essen, Germany.

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