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Solid Oxide Fuel Cell Performance and Fuel Contaminants
Details
The solid oxide fuel cell (SOFC) has much higher energy efficiency than combustion-based energy conversion. This efficiency, coupled with its environmentally friendly nature, makes it a favorable candidate as part of the solution for today's increasing demand for energy spurred by economic development, population increase, and competition for limited fossil fuels. Out of all other types of fuel cells, the SOFC shows higher efficiencies and greater fuel flexibility because of its higher operating temperature. The concept of generating electrical power from SOFCs fueled by coal-derived syngas as a clean coal technology has been well established within the SOFC research community. However, some of the impurities contained in syngas have been identified as potential threats to SOCF performance and durability. The study reported in this book was made to determine the effects of mercury as a contaminant in coal syngas on the performance of a Ni/YSZ anode of a planar SOFC. This book covers necessary thermodynamics, electrochemistry, loss mechanisms, and electrochemical techniques, as well as background, methods, and procedures for fuel cell testing.
Autorentext
Chaminda Perera earned his BS degree in production engineering in Sri Lanka. After working as a lecturer, he came to the USA. He completed his Master's degree at Ohio University in 2004 and PhD in 2010, studying solid oxide fuel cells using coal derived gas as fuel. At present, he is doing postdoctoral work on PEM fuel cells for vehicles.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783639357837
- Sprache Englisch
- Genre Allgemeines & Lexika
- Größe H220mm x B150mm x T11mm
- Jahr 2011
- EAN 9783639357837
- Format Kartonierter Einband (Kt)
- ISBN 978-3-639-35783-7
- Titel Solid Oxide Fuel Cell Performance and Fuel Contaminants
- Autor Chaminda Perera
- Untertitel A complete study to determine effects of mercury in coal syngas on the Ni/YSZ anode of a planar SOFC
- Gewicht 296g
- Herausgeber VDM Verlag
- Anzahl Seiten 188