Final Report on the Development of a Hydrogen-Fueled Combustion Turbine Cycle for Power Generation

Author:

Bannister R. L.1,Newby R. A.2,Yang W. C.2

Affiliation:

1. Westinghouse Power Generation, 4400 Alafaya Trail, Orlando, FL 32826-2399

2. Westinghouse Power Generation, Science and Technology Center, Pittsburgh, PA 15235

Abstract

Through its New Energy and Industrial Technology Development Organization (NEDO) the Japanese government is sponsoring the World Energy Network (WE-NET) Program. WE-NET is a 28-year global effort to define and implement technologies needed for hydrogen-based energy systems. A critical part of this effort is the development of a hydrogen-fueled combustion turbine system to efficiently convert the chemical energy stored in hydrogen to electricity when hydrogen is combusted with pure oxygen. A Rankine cycle, with reheat and recuperation, was selected by Westinghouse as the general reference system. Variations of this cycle have been examined to identify a reference system having maximum development feasibility, while meeting the requirement of a minimum of 70.9 percent low heating value (LHV) efficiency. The strategy applied by Westinghouse was to assess both a near-term and long-term Reference Plant. The near-term plant requires moderate development based on extrapolation of current steam and combustion turbine technology. In contrast, the long-term plant requires more extensive development for an additional high pressure reheat turbine, and is more complex than the near-term plant with closed-loop steam cooling and extractive feedwater heating. Trade-offs between efficiency benefits and development challenges of the near-term and long-term reference plant are identified. Results of this study can be applied to guide the future development activities of hydrogen-fueled combustion turbine systems.

Publisher

ASME International

Subject

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

Reference15 articles.

1. Amos, D. J., Diakunchak, I. S., McQuiggan, G., Southall, L. R., and Wagner, G. P., 1997, “Update on Westinghouse’s Advanced Turbine Systems Program,” ASME Paper 97-GT-369.

2. Bannister, R. L., Newby, R. A., and Yang, W. C, 1997, “Development of a Hydrogen-Fueled Combustion Turbine Cycle for Power Generation,” ASME Paper 97-GT-14.

3. Bannister, R. L., Huber, D. J., Newby, R. A., and Paffenbarger, J. A., 1996, “Hydrogen-Fueled Combustion Turbine Cycles,” ASME Paper 96-GT-247.

4. Bannister R. L. , CheruvuN. S., LittleD. A., and McQuigganG., 1994, “Turbines for the Turn of the Century,” Mechanical Engineering, Vol. 116, No. 6, pp. 68–75.

5. Bannister R. L. , SilvestriG. J., HizumeA., and FujikawaT., 1987, “High-Temperature Supercritical Steam Turbines,” Mechanical Engineering, Vol. 109, No. 2, pp. 60–65.

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