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Rapid High Temperature Solar Thermal Biomass Gasification in a Prototype Cavity Reactor

J. Sol. Energy Eng.  -- February 2010 --  Volume 132,  Issue 1, 011012 (7 pages)
doi:10.1115/1.4000356

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Author(s):
Paul Lichty, Christopher Perkins, and Bryan Woodruff
Department of Chemical and Biological Engineering, University of Colorado at Boulder, 1111 Engineering Drive, UCB 424, CO 80309-0424

Carl Bingham
National Renewable Energy Laboratory, 1617 Cole Boulevard, Golden, CO 80401-3393

Alan Weimer
Department of Chemical and Biological Engineering, University of Colorado at Boulder, 1111 Engineering Drive, UCB 424, CO 80309-0424
High temperature biomass gasification has been performed in a prototype concentrated solar reactor. Gasification of biomass at high temperatures has many advantages compared with historical methods of producing fuels. Enhancements in overall conversion, product composition ratios, and tar reduction are achievable at temperatures greater than 1000°C. Furthermore, the utilization of concentrated solar energy to drive these reactions eliminates the need to consume a portion of the product stream for heating and some of the solar energy is stored as chemical energy in the product stream. Experiments to determine the effects of temperature, gas flow rate, and feed type were conducted at the high flux solar furnace at the National Renewable Energy Laboratory, Golden, CO. These experiments were conducted in a reflective cavity multitube prototype reactor. Biomass type was found to be the only significant factor within a 95% confidence interval. Biomass conversion as high as 68% was achieved on sun. Construction and design considerations of the prototype reactor are discussed as well as initial performance results.

©2010 American Society of Mechanical Engineers

History: Received 13 May 2009; revised 27 July 2009; published 4 January 2010
doi: http://dx.doi.org/10.1115/1.4000356

KEYWORDS and PACS

Keywords
PACS
  • 84.60.Rb
    Thermoelectric, electrogasdynamic and other direct energy conversion
  • 88.20.-j
    Biomass energy
  • 88.40.-j
    Solar energy
  • YEAR: 2010

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PUBLICATION DATA

Coden:
JSEEDO
ISSN:
0199-6231 (print)   1528-8986 (online)
Publisher:
AIP is a member of CrossRef ASME

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