Thermo-Economic Optimization of a Solid Oxide Fuel Cell, Gas Turbine Hybrid System

Author:

Autissier N.1,Palazzi F.1,Marechal F.1,van Herle J.1,Favrat D.1

Affiliation:

1. Ecole Polytechnique Fédérale de Lausanne (EPFL), Laboratory for Industrial Energy Systems (LENI), CH-1015 Lausanne, Switzerland

Abstract

Large scale power production benefits from the high efficiency of gas-steam combined cycles. In the lower power range, fuel cells are a good candidate to combine with gas turbines. Such systems can achieve efficiencies exceeding 60%. High-temperature solid oxide fuel cells (SOFC) offer good opportunities for this coupling. In this paper, a systematic method to select a design according to user specifications is presented. The most attractive configurations of this technology coupling are identified using a thermo-economic multi-objective optimization approach. The SOFC model includes detailed computation of losses of the electrodes and thermal management. The system is integrated using pinch based methods. A thermo-economic approach is then used to compute the integrated system performances, size, and cost. This allows to perform the optimization of the system with regard to two objectives: minimize the specific cost and maximize the efficiency. Optimization results prove the existence of designs with costs from 2400$∕kW for a 44% efficiency to 6700$∕kW for a 70% efficiency. Several design options are analyzed regarding, among others, fuel processing, pressure ratio, or turbine inlet temperature. The model of a pressurized SOFC–μGT hybrid cycle combines a state-of-the-art planar SOFC with a high-speed micro-gas turbine sustained by air bearings.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference14 articles.

1. A High-Efficiency Solid Oxide Fuel Cell Hybrid Power System using the Mercury 50 Advanced Turbine Systems Gas Turbine;Lundberg;J. Eng. Gas Turbines Power

2. Internal Reforming Solid Oxide Fuel Cell Gas Turbine Combined Cycles (irsofc-gt) - Part II: Exergy and Thermoeconomic Analyses;Massardo;J. Eng. Gas Turbines Power

3. Analysis and Optimization of a Solid Oxide Fuel Cell and Intercooled Gas Turbine (SOFC-ICGT) Hybrid Cycle;Yi;J. Power Sources

4. Thermo-Economic Modelling and Optimisation of Fuel Cell Systems;Marechal;Fuel Cells

5. A Methodology for Thermo-Economic Modeling and Optimization of SOFC Systems;Palazzi;Chemical Engineering Transactions

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