A 1 MW Direct Fuel Cell® (DFC) power plant began operation at California State University, Northridge (CSUN) in January, 2007. This plant is currently the largest fuel cell plant in the world operating on a university campus. The plant consists of four 250 kW DFC300MA™ fuel cell units purchased from FuelCell Energy, Inc., and a waste heat recovery system which produces dual heating hot water loops for campus building ventilation heating, and domestic water and swimming pool heating water for the University Student Union (USU). The waste heat recovery system was designed by CSUN’s Physical Plant Management and engineering student staff personnel to accommodate the operating conditions required by the four individual fuel cell units as well as the thermal energy needs of the campus. A Barometric Thermal Trap (BaTT) was designed to mix the four fuel cell exhaust streams prior to flowing through a two stage heat exchanger unit. The BaTT is required to maintain an appropriate exhaust back pressure at the individual fuel cell units under a variety of operating conditions and without reliance on mechanical systems for control. The two stage heat exchanger uses separate coils for recovering sensible and latent heat in the exhaust stream. The sensible heat is used for heating water for the campus’ hot water system. The latent heat represents a significant amount of energy because of the high steam content in the fuel cell exhaust, although it is available at a lower temperature. CSUN’s design is able to make effective use of the latent heat because of the need for swimming pool heating and hot water for showers in an adjacent recreational facility at the USU. Design calculations indicate that a Combined Heat and Power efficiency of 74% is possible. This paper discusses the integration of the fuel cell plant into the campus’ energy systems, and presents preliminary operational data for the performance of the heat recovery system.
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ASME 2007 International Mechanical Engineering Congress and Exposition
November 11–15, 2007
Seattle, Washington, USA
Conference Sponsors:
- ASME
ISBN:
0-7918-4309-2
PROCEEDINGS PAPER
Design and Performance of a Fuel Cell Plant Heat Recovery System
Robert G. Ryan,
Robert G. Ryan
California State University at Northridge, Northridge, CA
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Tom Brown
Tom Brown
California State University at Northridge, Northridge, CA
Search for other works by this author on:
Robert G. Ryan
California State University at Northridge, Northridge, CA
Tom Brown
California State University at Northridge, Northridge, CA
Paper No:
IMECE2007-42029, pp. 139-147; 9 pages
Published Online:
May 22, 2009
Citation
Ryan, RG, & Brown, T. "Design and Performance of a Fuel Cell Plant Heat Recovery System." Proceedings of the ASME 2007 International Mechanical Engineering Congress and Exposition. Volume 15: Sustainable Products and Processes. Seattle, Washington, USA. November 11–15, 2007. pp. 139-147. ASME. https://doi.org/10.1115/IMECE2007-42029
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