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Operating parameters are varied; parameters such as fuel utilisation factor (Uf), current density (j) and STCR (steam to carbon ratio) have significant influence.
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These factors and the lower greenhouse gas emissions, low noise levels, and high fuel utilisation rates have converted, in the last few years, fuel cells to an attractive alternative for portable devices and transport with significant long term economic and environmental benefits [6, 7, 8, 9].
The results of the study indicate that a storage efficiency of 88% and utilisation factor of 85% can be achieved when combining thermal storage and hybridisation with fossil fuels.
The optimal operating parameters were determined in terms of flow rates, cell potential, and fuel utilisation.
Points of polarisation curves were measured at steady state with fuel utilisation varying from 30 to 50%.
The concepts of utilisation factor and storage efficiency are introduced to determine the optimal storage design.
The present article analyses the effects of dilute biogas on efficiency, fuel utilisation, dynamics, control strategy, and design criteria for a polymer electrolyte fuel cell (PEFC) system.
The chapter provides a brief historical review of solid fuel utilisation and outlines recent trends in renewable and fossil fuel consumption.
The steady-state performance of the cell and the impact of changes in fuel and air inlet temperatures, fuel utilisation, average current density, and flow configuration are studied.
The fuel utilisation can be almost 100% as the fuel feed and product gases are distinct phases and thus can be easily separated.
This is not the case with other fuel cell types for which the fuel utilisation within the cell is typically limited to below 85%.
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