Perovskite Oxide for Solid Oxide Fuel Cells

Nonfiction, Science & Nature, Science, Physics, Energy, Technology, Electricity
Cover of the book Perovskite Oxide for Solid Oxide Fuel Cells by , Springer US
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: ISBN: 9780387777085
Publisher: Springer US Publication: June 12, 2009
Imprint: Springer Language: English
Author:
ISBN: 9780387777085
Publisher: Springer US
Publication: June 12, 2009
Imprint: Springer
Language: English

Fuel cell technology is quite promising for conversion of chemical energy of hydrocarbon fuels into electricity without forming air pollutants. There are several types of fuel cells: polymer electrolyte fuel cell (PEFC), phosphoric acid fuel cell (PAFC), molten carbonate fuel cell (MCFC), solid oxide fuel cell (SOFC), and alkaline fuel cell (AFC). Among these, SOFCs are the most efficient and have various advantages such as flexibility in fuel, high reliability, simple balance of plant (BOP), and a long history. Therefore, SOFC technology is attracting much attention as a power plant and is now close to marketing as a combined heat and power generation system. From the beginning of SOFC development, many perovskite oxides have been used for SOFC components; for example, LaMnO -based oxide for the cathode and 3 LaCrO for the interconnect are the most well known materials for SOFCs. The 3 current SOFCs operate at temperatures higher than 1073 K. However, lowering the operating temperature of SOFCs is an important goal for further SOFC development. Reliability, durability, and stability of the SOFCs could be greatly improved by decreasing their operating temperature. In addition, a lower operating temperature is also beneficial for shortening the startup time and decreasing energy loss from heat radiation. For this purpose, faster oxide ion conductors are required to replace the conventional Y O -stabilized ZrO 2 3 2 electrolyte. A new class of electrolytes such as LaGaO is considered to be 3 highly useful for intermediate-temperature SOFCs.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

Fuel cell technology is quite promising for conversion of chemical energy of hydrocarbon fuels into electricity without forming air pollutants. There are several types of fuel cells: polymer electrolyte fuel cell (PEFC), phosphoric acid fuel cell (PAFC), molten carbonate fuel cell (MCFC), solid oxide fuel cell (SOFC), and alkaline fuel cell (AFC). Among these, SOFCs are the most efficient and have various advantages such as flexibility in fuel, high reliability, simple balance of plant (BOP), and a long history. Therefore, SOFC technology is attracting much attention as a power plant and is now close to marketing as a combined heat and power generation system. From the beginning of SOFC development, many perovskite oxides have been used for SOFC components; for example, LaMnO -based oxide for the cathode and 3 LaCrO for the interconnect are the most well known materials for SOFCs. The 3 current SOFCs operate at temperatures higher than 1073 K. However, lowering the operating temperature of SOFCs is an important goal for further SOFC development. Reliability, durability, and stability of the SOFCs could be greatly improved by decreasing their operating temperature. In addition, a lower operating temperature is also beneficial for shortening the startup time and decreasing energy loss from heat radiation. For this purpose, faster oxide ion conductors are required to replace the conventional Y O -stabilized ZrO 2 3 2 electrolyte. A new class of electrolytes such as LaGaO is considered to be 3 highly useful for intermediate-temperature SOFCs.

More books from Springer US

Cover of the book Advanced Flip Chip Packaging by
Cover of the book Petrology of Lamproites by
Cover of the book Molecular Mechanisms of Programmed Cell Death by
Cover of the book Handbook of Clinical Health Psychology by
Cover of the book Voice Disorders and their Management by
Cover of the book Genetic Engineering: Principles and Methods by
Cover of the book The Commercialization of Genetic Research by
Cover of the book The Promotion of Continence in Adult Nursing by
Cover of the book Contemporary American Jewelry Design by
Cover of the book Interactions of Man and His Environment by
Cover of the book Cancer, Stress, and Death by
Cover of the book Soft Tissue Roentgenography in Diagnosis of Thyroid Cancer by
Cover of the book Endometrial Cytology with Tissue Correlations by
Cover of the book Teaching Mathematical Reasoning in Secondary School Classrooms by
Cover of the book Analytical Theory of Biological Populations by
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy