152
Water for Energy and Fuel Production
71. Minowa, T. and Ogi, T., “Hydrogen production from cellulose using a reduced nickel
catalyst,” Catalysis Today, 45, 411–416 (1998).
72. Minowa, T. and Inoue, S., “Hydrogen production from biomass by catalytic gasification
in compressed water,” Renewable Energy, 16, 1114–1117 (1999).
73. Minowa, T., Murakami, M., Dote, Y., Ogi, T., and Yokoyama, S., “Oil production from
garbage by thermochemical liquefaction,” Biomass & Bioenergy, 8, 117–120 (1995).
74. Minowa, T., Kondo, T., and Sudirjo, S., “Thermochemical liquefaction of Indonesian
biomass residues,” Biomass & Bioenergy, 14, 517–524 (1998).
75. Patil, V., Tran, K., and Giselrod, H., “Towards sustainable production of biofuels from
microalgae,” International Journal of Molecular Science, 9, 1188–1195 (2008).
76. Zhou, D., Zhang, L., Zhang, S., Fu, H., and Chen, J., “Hydrothermal liquefaction of
macroalgae Enteromorpha prolifera to bio-oil,” Energy & Fuels, 24, 4054–4061 (2010).
77. Vardon, D., Sharma, B., Blazina, G., Rajagopalan, K., and Strathmann,T., “Thermochemical
conversion of raw and defatted algal biomass via hydrothermal liquefaction and slow
pyrolysis,” Bioresource Technology, 109, 178–187 (2012).
78. Vardon, D., Sharma, B., Scott, J., Yu, G., Wang, Z., Schideman, L., Zhang, Y., and
Strathmann, T., “Chemical properties of biocrude oil from the hydrothermal liquefaction of Spirulina algae, swine manure and digested anaerobic sludge,” Journal of
Bioresource Technology, 102 (17), 8295–8303 (2011).
79. Zhou, S., Wu, Y., Yang, M., Imdad, K., Li, C., and Junmao, T., “Production and characterization of bio oil from hydrothermal liquefaction of microalgae Dunaliella tertiolecta
cake,” Energy, 35 (12), 5406–5411 (2010).
80. Zhong, C.L. and Wei, x.M., “A comparative experimental study on the liquefaction of
wood,” Energy, 29 (11), 1731–1741 (2004).
81. Duan, P. and Savage, P., “Hydrothermal liquefaction of a microalga with heterogeneous
catalysts,” Industrial & Engineering Chemistry Research, 50 (1), 52–61 (2011).
82. Anastasakis, K. and Ross, A., “Hydrothermal liquefaction of the brown macro-alga
Laminaria saccharina: Effect of reaction conditions on product distribution and composition,” Bioresource Technology, 102(7), 4876–4883 (2011).
83. Yu, G., Zhang, Y., Schideman, L., Funk, T., and Wang, Z., “Hydrothermal liquefaction
of low lipid content microalgae into bio crude oil,” Transactions of the ASABE, 54 (1),
239–246 (2011).
84. Biller, P. and Ross, A., “Potential yields and properties of oil from the hydrothermal
liquefaction of microalgae with different biochemical content,” Bioresource Technology,
102 (1), 215–225 (2011).
85. Ross, A., Biller, P., Kubacki, M., Li, H., Lea-Langton, A., and Jones, J., “Hydrothermal
processing of microalgae using alkali and organic acids,” Fuel, 89 (9), 2234–2243 (2010).
86. Chakraborty, M., Miao, C., McDonald, A., and Chen, S., “Concurrent extraction of bio
oil and value added polysaccharides from Chlorella sorokiniana using a unique sequential hydrothermal extraction technology,” Fuel, 95, 63–70 (2012).
87. Biller, P., Riley, R., and Ross, A., “Catalytic hydrothermal processing of microalgae:
Decomposition and upgrading of lipids,” Bioresource Technology, 102 (7), 4841–4848
(2011).
88. Li, D., Chen, L., xu, D., Zhang, x., Ye, N., Chen, F., and Chen, S., “Preparation and
characteristics of bio-oil from marine brown alga Sargassum patens C. Agardh,”
Bioresource Technology, 104, 737–742 (2012).
89. Minowa, T., Yokoyama, S., Kishimoto, M., and Okakurat, T., “Oil production from
algae cells of Dunaliella tertiolecta by direct thermochemical liquefaction,” Fuel, 74,
1735–1738 (1995).
90. Dote, Y., Sawayama, S., Inoue, S., Minowa, T., and Yokoyama, S., “Recovery of liquid fuel from hydrocarbon-rich microalgae by thermochemical liquefaction,” Fuel, 73,
1855–1857 (1994).
Water for Energy and Fuel Production
71. Minowa, T. and Ogi, T., “Hydrogen production from cellulose using a reduced nickel
catalyst,” Catalysis Today, 45, 411–416 (1998).
72. Minowa, T. and Inoue, S., “Hydrogen production from biomass by catalytic gasification
in compressed water,” Renewable Energy, 16, 1114–1117 (1999).
73. Minowa, T., Murakami, M., Dote, Y., Ogi, T., and Yokoyama, S., “Oil production from
garbage by thermochemical liquefaction,” Biomass & Bioenergy, 8, 117–120 (1995).
74. Minowa, T., Kondo, T., and Sudirjo, S., “Thermochemical liquefaction of Indonesian
biomass residues,” Biomass & Bioenergy, 14, 517–524 (1998).
75. Patil, V., Tran, K., and Giselrod, H., “Towards sustainable production of biofuels from
microalgae,” International Journal of Molecular Science, 9, 1188–1195 (2008).
76. Zhou, D., Zhang, L., Zhang, S., Fu, H., and Chen, J., “Hydrothermal liquefaction of
macroalgae Enteromorpha prolifera to bio-oil,” Energy & Fuels, 24, 4054–4061 (2010).
77. Vardon, D., Sharma, B., Blazina, G., Rajagopalan, K., and Strathmann,T., “Thermochemical
conversion of raw and defatted algal biomass via hydrothermal liquefaction and slow
pyrolysis,” Bioresource Technology, 109, 178–187 (2012).
78. Vardon, D., Sharma, B., Scott, J., Yu, G., Wang, Z., Schideman, L., Zhang, Y., and
Strathmann, T., “Chemical properties of biocrude oil from the hydrothermal liquefaction of Spirulina algae, swine manure and digested anaerobic sludge,” Journal of
Bioresource Technology, 102 (17), 8295–8303 (2011).
79. Zhou, S., Wu, Y., Yang, M., Imdad, K., Li, C., and Junmao, T., “Production and characterization of bio oil from hydrothermal liquefaction of microalgae Dunaliella tertiolecta
cake,” Energy, 35 (12), 5406–5411 (2010).
80. Zhong, C.L. and Wei, x.M., “A comparative experimental study on the liquefaction of
wood,” Energy, 29 (11), 1731–1741 (2004).
81. Duan, P. and Savage, P., “Hydrothermal liquefaction of a microalga with heterogeneous
catalysts,” Industrial & Engineering Chemistry Research, 50 (1), 52–61 (2011).
82. Anastasakis, K. and Ross, A., “Hydrothermal liquefaction of the brown macro-alga
Laminaria saccharina: Effect of reaction conditions on product distribution and composition,” Bioresource Technology, 102(7), 4876–4883 (2011).
83. Yu, G., Zhang, Y., Schideman, L., Funk, T., and Wang, Z., “Hydrothermal liquefaction
of low lipid content microalgae into bio crude oil,” Transactions of the ASABE, 54 (1),
239–246 (2011).
84. Biller, P. and Ross, A., “Potential yields and properties of oil from the hydrothermal
liquefaction of microalgae with different biochemical content,” Bioresource Technology,
102 (1), 215–225 (2011).
85. Ross, A., Biller, P., Kubacki, M., Li, H., Lea-Langton, A., and Jones, J., “Hydrothermal
processing of microalgae using alkali and organic acids,” Fuel, 89 (9), 2234–2243 (2010).
86. Chakraborty, M., Miao, C., McDonald, A., and Chen, S., “Concurrent extraction of bio
oil and value added polysaccharides from Chlorella sorokiniana using a unique sequential hydrothermal extraction technology,” Fuel, 95, 63–70 (2012).
87. Biller, P., Riley, R., and Ross, A., “Catalytic hydrothermal processing of microalgae:
Decomposition and upgrading of lipids,” Bioresource Technology, 102 (7), 4841–4848
(2011).
88. Li, D., Chen, L., xu, D., Zhang, x., Ye, N., Chen, F., and Chen, S., “Preparation and
characteristics of bio-oil from marine brown alga Sargassum patens C. Agardh,”
Bioresource Technology, 104, 737–742 (2012).
89. Minowa, T., Yokoyama, S., Kishimoto, M., and Okakurat, T., “Oil production from
algae cells of Dunaliella tertiolecta by direct thermochemical liquefaction,” Fuel, 74,
1735–1738 (1995).
90. Dote, Y., Sawayama, S., Inoue, S., Minowa, T., and Yokoyama, S., “Recovery of liquid fuel from hydrocarbon-rich microalgae by thermochemical liquefaction,” Fuel, 73,
1855–1857 (1994).
