291
Fuel Production by Supercritical Water
126. Takuya, Y. and Yukihiko, M., “Gasification of cellulose, xylan, and lignin mixtures in
supercritical water,” Industrial & Engineering Chemistry Research, 40, 5469–5474
(2001).
127. Takuya, Y., Yoshito, O., and Yukihiko M., “Gasification of biomass model compounds
and real biomass in supercritical water,” Biomass & Bioenergy, 26, 71–78 (2004).
128. Tang, H.Q. and Kuniyuki, K, “Supercritical water gasification of biomass: Thermodynamic
analysis with direct Gibbs free energy minimization,” Chemical Engineering Journal,
106, 261–267 (2005).
129. xu, x., Matsumura, Y., Stenberg, J., and Antal, M.J., Jr., “Carbon-catalyzed gasification of organic feedstocks in supercritical water,” Industrial & Engineering Chemistry
Research, 35, 2522–2530 (1996).
130. Guo, L., Cao, C., and Lu, Y., “Supercritical water gasification of biomass and organic
wastes,” in Momba, M. and Bux, F. (eds.), Biomass. 165–182 (2010).
131. Demirbas, A., “Hydrogen production from biomass via supercritical water gasification,”
Energy Sources, Part A, 32, 1342–1354 (2010).
132. Kruse, A., “Supercritical water gasification,” Biofuels, Bioproducts and Biorefining,
2, 415–437 (2008).
133. Lu, Y., Guo, L., Zhang, x., and Yan, Q., “Thermodynamic modeling and analysis of biomass gasification for hydrogen production in supercritical water,” Chemical Engineering
Journal, 131, 233–244 (2007).
134. Zhang, L., Champagne, P., and xu, C., “Supercritical water gasification of an aqueous
by-product from biomass hydrothermal liquefaction with novel Ru modified Ni catalysts,” Bioresource Technology, 102 (17), 8279–8287 (2011).
135. Michael, J.A., Jr., Allen, S.G., Schulman, D., and xu, x., “Biomass gasification in
supercritical water,” Industrial & Engineering Chemistry Research, 39, 4040–4053
(2000).
136. Paul, T.W. and Jude, O., “Composition of products from the supercritical water gasification of glucose: A model biomass compound,” Industrial & Engineering Chemistry
Research, 44, 8739–8749 (2005).
137. Peter, K, “Corrosion in high-temperature and supercritical water and aqueous solutions:
A review,” The Journal of Supercritical Fluids, 29, 1–29 (2004).
138. Yamaguchi, A., Hiyoshi, N., Sato, O., Bando, K., Osada, M., and Shirai, M., “Hydrogen
production from woody biomass over supported metal catalysts in supercritical water,”
Catalysis Today, 146, 192–195 (2009).
139. Guo, Y., Wang, S., xu, D., Gong, Y., Ma, H., and Tang, x., “Review of catalytic supercritical water gasification for hydrogen production from biomass,” Renewable &
Sustainable Energy Reviews, 14, 334–343 (2010).
140. Knoef, H., Handbook Biomass Gasification. Biomass Technology Group Press,
Enschede, the Netherlands, 22–23 (2005).
141. Kruse, A. and Gawlik, A., “Biomass conversion in water at 330°C–410°C and 30–50
MPa. identification of key compounds for indicating different chemical reaction pathways,” Industrial & Engineering Chemistry Research, 42, 267–279 (2003).
142. Kruse, A. and Henningsen, T., “Biomass gasification in supercritical water: Influence
of the dry matter content and the formation of phenols,” Industrial & Engineering
Chemistry Research, 42, 3711–3717 (2003).
143. Lee, I.G., Kim, M.S., and Ihm, S.K., “Gasification of glucose in supercritical water,”
Industrial & Engineering Chemistry Research, 41, 1182–1188 (2002).
144. Antal, M., Allen, S., Schulman, D., and xu, x., “Biomass gasification in supercritical
water,” Industrial & Engineering Chemistry Research, 39, 4040–4053 (2000).
145. Kruse, A., Meier, D., Rimbrecht, P., and Schacht, M., , “Gasification of pyrocatechol in
supercritical water in the presence of potassium hydroxide,” Industrial & Engineering
Chemistry Research, 39, 4842–4848 (2000).
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