Environmental Engineering Reference
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Oral, J., Sikula, J., Puchyr, R., Hajny, Z., Stehlik, P. & Bebar, L. (2005b). Processing of waste
from pulp and paper plant. Journal of Cleaner Production, 13, 509-515.
Ponsá, S., Ferrer, I., Vázquez, F. & Font, X. (2008). Optimization of the hydrolytic-
acidogenic anaerobic digestion stage (55oC) of sewage sludge: Influence of pH and solid
content. Water Research, 42, 3972-3980.
Perry, R., Green, D., 1999. Perry's Chemical Engineers' Handbook, 7 th Edition. McGraw
Hill, 23-34.
Ptasinski, K. J., Prins, M. J. & Pierik, A. (2007). Exergetic evaluation of biomass gasification.
Energy, 32, 568-574.
Puhakka, J. A., Alavakeri, M. & Shieh, W. K. (1992). Anaerobic treatment of Kraft pulp-mill
waste activated sludge: gas production and solid reduction. Bioresource Technol., 39, 61-
68.
Qu, Y., Wei, X. & Zhong, C. (2003). Experimental study on the direct liquefaction of
Canninghamia lanceolata in water. Energy, 28, 597-606.
Ramalho, R. S. (1983). Introduction to wastewater treatment processes. 2nd ed. Academic
Press, California, ISBN 0-12-576560-6.
Rampling, T. W. A. & Gill, P. J. (1993). Fundamental Research on the Thermal Treatment of
Wastes and Biomass: Thermal Treatment Characteristics of Biomass. Harwell
Laboratory, Energy Technology Support Unit.
Rezaiyan, J. & Cheremisinoff, N. P. (2005). Gasification technologies- a primer for engineers
and scientists. CRC Press Taylor & Francis Groups, Boca Raton, FL.
Reid, I. (1998). Solid residues generation and management at Canadian pulp and paper mills
in 1999 and 1995. Pulp Paper Can. 99 (4), 49-53.
Rulkenes, W. H. (1989). Feasibility study of wet oxidation processes for treatment of six
selected waste streams. Dutch Rijkswaterstaat Report No. DBW/RIZA 89-079.
Shinogi, Y., Yoshida, H., Koizumai, T., Yamaoka, M. & Saito, T. (2003). Basic
characteristics of low-temperature carbon products from waste sludge. Advances in
Environmental Research, 7, 661-665.
Song, Y. C., Kwon, S. J. & Woo, J. H. (2004). Mesophilic and thermophilic temperature co-
phase anaerobic digestion compared with single-stage mesophilic- and thermophilic
digestion of sewage sludge. Water Research, 38, 1653-1662.
Stahl, N., Tenenbaum, A. & Hebets, I. (2004). American-Israel paper mills benefits from pre-
treatment with an anaerobic reacor to improve to improve the activated sludge plant
performance. Pulp Pap. Inc. 46, 29-32.
Stark, K., Plaza, E. & Hultmank, B., 2006. Phosphorus release from ash, dried sludge and
sludge residue from supercritical water oxidation by acid or base. Chemosphere, 62, 827-
832.
Suzuki, A., Yokoyama, S., Murakami, M., Ogi, T. & Koguchi, K. (1986). New treatment of
sewage sludge by direct thermochemical liquefaction. Chem. Lett. CMLTAG, 9, 1425-
1428.
Svanström, M., Fröling, M., Modell, M., Peters, W. A. & Tester, J. (2004). Environmental
assessment of supercritical water oxidation of sewage sludge. Resources Conservation
and Recycling, 41, 321-338.
Telles, C., Tavares, C. R.G., Prado, D. F. B. & da Luz Ribeiro, M. M. (2002). Operation of a
slow rate anaerobic digester treating municipal secondary sludge, Electronic Journal of
Biotechnology, 5, 216-227.
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