287
Fuel Production by Supercritical Water
39. Noam, E. and Ronald, M.L., “Review of materials issues in supercritical water oxidation
systems and the need for corrosion control,” Transactions of the Indian Institute of
Metals, 56, 1–10 (2003).
40. Takuya, Y. and Yoshito, O., “Partial oxidative and catalytic biomass gasification in supercritical water: A promising flow reactor system,” Industrial & Engineering Chemistry
Research, 43, 4097–4104 (2004).
41. Watanabe, M., Inomata, H., Osada, M., Sato, T., Adschiri, T., and Arai, K., “Catalytic
effects of NaOH and ZrO 2 for partial oxidative gasification of n-hexadecane and lignin
in supercritical water,” Fuel, 82 (5), 545–552 (2003).
42. Watanabe, M., Inomata, H., Osada, M., Sato, T., Adschiri, T., and Arai, K., “Partial
oxidation of n-hexadecane and polyethylene in supercritical water,” The Journal of
Supercritical Fluids, 20 (3), 257–266 (2001).
43. Oka, H., Yamago, S., Yoshida, J., and Kajimoto, O., “Evidence for a hydroxide ion
catalyzed pathway in ester hydrolysis in supercritical water.” Angewandte Chemie
International Edition, 41, 623–625 (2002).
44. Jin, F.M., Takehiko, M., and Heiji, E., “Oxidation reaction of high molecular weight carboxylic acids in supercritical water,” Environmental Science & Technology, 37, 3220–3231
(2003).
45. Shamsi, A., “Partial oxidation and dry reforming of methane over Ca/Ni/K (Na) catalysts,” Catalysis Letters, 109 (3/4), 189–193 (2006).
46. Krietemeyer, S. and Wagner, T., Supercritical Water Oxidation. Risk Reduction
Engineering Laboratory, Cincinnati, OH (1992).
47. Modell, M., “Supercritical water oxidation,” in Freeman, H. (ed.), Standard Handbook
of Hazardous Waste Treatment and Disposal. McGraw-Hill, New York (1989).
48. Tester, J., Holgate, H., Amellini, F., Webley, P., Killilea, W., Hong, G., and
Barner, H., “Supercritical water oxidation technology: Process development and
fundamental research,” in Tedder, D. and Pohland, F. (eds.), Emerging Technologies
in Hazardous Waste Management III. American Chemical Society, Washington, DC
(1993).
49. McBrayer, R., “Design and operation of first commercial supercritical water oxidation
facility,” First International Workshop on Supercritical Water Oxidation, Jacksonville,
FL, February 6–9 (1995).
50. Lourdes, C. and David, V., “Formation of organic acids during the hydrolysis and oxidation of several wastes in sub- and supercritical water,” Industrial & Engineering
Chemistry Research, 41, 6503–6509 (2002).
51. Hodes, M., Marrone, P.A., Hong, G.T., Smith, K.A., and Tester, J.W., “Salt precipitation
and scale control in supercritical water oxidation—Part A: Fundamentals and research.”
The Journal of Supercritical Fluids, 29, 265–288 (2004).
52. Svensson, P., “Look no stack, supercritical water destroys organic wastes,” Chemical
Technology Europe, 2, 16 (1995).
53. Savage, P., Gopalan, S., Mizan, T., Martino, C., and Brock, E., “Reactions in
supercritical conditions: Application and fundamentals,” AIChE Journal, 41, 1723
(1995a).
54. Savage, P., Gopalan, S., Mizan, T., Martino, C., and Brock, E., “Oxidation in supercritical water: Pathways, kinetics and mechanisms,” First International Workshop on
Supercritical Water Oxidation, Jacksonville, FL February 6–9 (1995).
55. Watanabe, M., Adschiri,T., and Arai, K., “Polyethylene decomposition via pyrolysis
and partial oxidation in supercritical water,” Kobunshi Ronbunshu, 58 (12), 631 (2001)
(Japanese).
56. Lilac, W. and Lee, S., “Kinetics and mechanisms of styrene monomer recovery from
waste polystyrene by supercritical water partial oxidation,” Advances in Environmental
Research, 6 (1), 9–16 (2001).
