290
Water for Energy and Fuel Production
104. Johnson, D.K., Chum, H.L., Anzick, R., and Baldwin, R.M., “Lignin liquefaction in
supercritical water,” in Bridgwater, A.V. and Kuester, J.L. (eds.), Research in
Thermochemical Biomass Conversion. Elsevier, London, 485–496 (1988).
105. Palu, V., Kruusement, K., and Veski, R. “Supercritical water extraction of biomass and
oil shale,” 29th Estonian Chemistry Days, Tallinn, Estonia, 77 (2005).
106. Li, L. and Eglebor, N., “Oxygen removal from coal during supercritical water and toluene extraction,” Energy & Fuels, 6 (1), 35–40 (1992).
107. Chen, D., Perman, C., Riechert, M., and Hoven, J., “Depolymerization of tire and natural rubber using supercritical fluids,” Journal of Hazardous Materials, 44, 53–60 (1995).
108. Park, S. and Gloyna, E., “Statistical study of the liquefaction of used rubber tyre in
supercritical water,” Fuel, 76 (11), 999–1003 (1997).
109. Su, x., Zhao, Y., Zhang, R., and Bi, J., “Investigation on degradation of polyethylene to
oils in supercritical water,” Fuel Processing Technology, 85, 1249–1258 (2004).
110. Moriya, T. and Enomoto, H., “Investigation of the basic hydrothermal cracking conditions of polyethylene in supercritical water,” Shigen to Sozai, 115, 245 (1999) (Japanese).
111. Matsubara, W. et al., “Development of liquefaction process of plastic waste in supercritical water,” Mitsubishi Juko Giho, 34, 438 (1997) (Japanese).
112. Broll, D., Kaul, C., Kramer, A., Krammer, P., Richter, T., Jung, M., Vogel, H., and
Zehner, P., “Chemistry in supercritical water,” Angewandte Chemie International
Edition, 38, 2998 (1999).
113. Moriya, T. and Enomoto, H., “Characteristics of polyethylene cracking in supercritical
water compared to thermal cracking,” Polymer Degradation and Stability, 65, 373 (1999).
114. Moriya, T. and Enomoto, H., “Role of water in conversion of polyethylene to oils
through supercritical water cracking,” Kagaku Kogaku Ronbunshu, 25 (6), 940 (1999)
(Japanese).
115. Holliday, R., King, J., and List, G., “Hydrolysis of vegetable oils in sub- and supercritical water,” Industrial & Engineering Chemistry Research, 36 (3), 932–935 (1997).
116. Li, Y., Guo, L., and Zhang, x., “Hydrogen production from coal gasification in supercritical water with a continuous flowing system,” International Journal of Hydrogen
Energy, 35, 3036–3045 (2010).
117. Lee, S. and Shah, Y., Biofuels and Bioenergy—Processes and Technologies. CRC Press,
New York (2012).
118. May, A., Salvado, J., Torras, C., and Montane, D., “Catalytic gasification of glycerol in
supercritical water,” Chemical Engineering Journal, 160 (2), 751–759 (2010).
119. Osada, M., Sato, T., Watanabe, M., Shirai, M., and Arai, K., “Catalytic gasification
of wood biomass in subcritical and supercritical water,” Combustion Science and
Technology, 178 (1–3), 537–552 (2006).
120. Yu, D., Aihara, M., and Antal, M., “Hydrogen production by steam reforming glucose in
supercritical water,” Energy & Fuels, 7 (5), 574–577 (1993).
121. D’Jesus, P., Boukis, N., Kraushaar-Czarnetzki, B., and Dinjus, E., “Gasification of corn
and clover grass in supercritical water,” Fuel, 85, 1032–1038 (2006).
122. Pinkwart, K., Bayha, T., Lutter, W., and Krausa, M., “Gasification of diesel oil in supercritical water for fuel cells,” Journal of Power Sources, 136, 211–214 (2004).
123. Yamaguchi, A., Hiyoshi, N., Sato, O., Osada, M., and Shirai, M., “ExAFS study on
structural change of charcoal-supported ruthenium catalysts during lignin gasification
in supercritical water,” Catalysis Letters, 122, 188–195 (2008).
124. Byrd, A., Kumar, S., Kong, L., Ramsurn, H., and Gupta, R., “Hydrogen production
from catalytic gasification of switchgrass biocrude in supercritical water,” International
Journal of Hydrogen Energy, 36, 3426–3433 (2011).
125. Sato, T., Osada, M., Watanabe, M., Shirai, M., and Arai, K., “Gasification of alkylphenols
with supported noble metal catalysts in supercritical water,” Industrial & Engineering
Chemistry Research, 42, 4277–4282 (2003).
