The Journal of
the Korean Society on Water Environment

The Journal of
the Korean Society on Water Environment

Bimonthly
  • ISSN : 2289-0971 (Print)
  • ISSN : 2289-098X (Online)
  • KCI Accredited Journal

Editorial Office

1 
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Andreottola G., Baldassarre L., Collivignarelli C., Pedrazzani R., Principi P., Sorlini C., Ziglio G., (2002), A Com­parison among Different Methods for Evaluating the Biomass Activity in Activated Sludge Systems: Preliminary Results, Water Science and Technology, Andreottola, G., Baldassarre, L., Collivignarelli, C., Pedrazzani, R., Principi, P., Sorlini, C., and Ziglio, G. (2002). A Com­parison among Different Methods for Evaluating the Biomass Activity in Activated Sludge Systems: Preliminary Results, Water Science and Technology, 46(1-2), pp. 413-417., Vol. 46, No. 1-2, pp. 413-417Google Search
3 
Boe-Hansen R., Albrechtsen H., Arvin E., Jørgensen C., (2002), Bulk Water Phase and Biofilm Growth in Drinking Water at Low Nutrient Conditions, Water Research, Boe-Hansen, R., Albrechtsen, H., Arvin, E., and Jørgensen, C. (2002). Bulk Water Phase and Biofilm Growth in Drinking Water at Low Nutrient Conditions, Water Research, 36(18), pp. 4477-4486., Vol. 36, No. 18, pp. 4477-4486DOI
4 
Brdjanovic D., Loosdrecht M., Hooijmans C. M., Mino T., Alaerts G. J., Heijnen J. J., (1999), Innovative Methods for Sludge Characterization in Biological Phosphorus Removal Systems, Water Science and Technology, Brdjanovic, D., Loosdrecht, M., Hooijmans, C. M., Mino, T., Alaerts, G. J., and Heijnen, J. J. (1999). Innovative Methods for Sludge Characterization in Biological Phosphorus Removal Systems, Water Science and Technology, 39(6), pp. 37-43., Vol. 39, No. 6, pp. 37-43Google Search
5 
Chen G., An K., Saby S., Brois E., Djafer M., (2003), Possible Cause of Excess Sludge Reduction in an Oxic­settling-anaerobic Activated Sludge Process (OSA Process), Water Research, Chen, G., An, K., Saby, S., Brois, E., and Djafer, M. (2003). Possible Cause of Excess Sludge Reduction in an Oxic­settling-anaerobic Activated Sludge Process (OSA Process), Water Research, 37(16), pp. 3855-3866., Vol. 37, No. 16, pp. 3855-3866DOI
6 
Chen G., Mo H., Saby S., Yip W., Liu Y., (2000), Minimization of Activated Sludge Production by Chemically Stimulated Energy Spilling, Water Science and Technology, Chen, G., Mo, H., Saby, S., Yip, W., and Liu, Y. (2000). Minimization of Activated Sludge Production by Chemically Stimulated Energy Spilling, Water Science and Technology, 42(12), pp. 189-200., Vol. 42, No. 12, pp. 189-200Google Search
7 
Chudoba P., Chang J., Capdeville B., (1991), Synchronized Division of Activated Sludge Microorganisms, Water Re­search, Chudoba, P., Chang, J., and Capdeville, B. (1991). Synchronized Division of Activated Sludge Microorganisms, Water Re­search, 25(7), pp. 817-822., Vol. 25, No. 7, pp. 817-822Google Search
8 
Chudoba P., Chudoba J., Capdeville B., (1992), The Aspect of Energetic Uncoupling of Microbial Growth in the Activated Sludge Process-OSA System, Water Science and Technology, Chudoba, P., Chudoba, J., and Capdeville, B. (1992). The Aspect of Energetic Uncoupling of Microbial Growth in the Activated Sludge Process-OSA System, Water Science and Technology, 26(9-11), pp. 2477-2480., Vol. 26, No. 9-11, pp. 2477-2480DOI
9 
Chudoba P., Morel A., Capdeville B., (1992), The Case of Both Energetic Uncoupling and Metabolic Selection of Micro­organisms in the OSA Activated Sludge System, Environ­mental Technology, Chudoba, P., Morel, A., and Capdeville, B. (1992). The Case of Both Energetic Uncoupling and Metabolic Selection of Micro­organisms in the OSA Activated Sludge System, Environ­mental Technology, 13(8), pp. 761-770., Vol. 13, No. 8, pp. 761-770Google Search
10 
Dalzell D. J., Christofi N., (2002), An ATP Luminescence Method for Direct Toxicity Assessment of Pollutants Impac­ting on the Activated Sewage Sludge Process, Water Research, Dalzell, D. J. and Christofi, N. (2002). An ATP Luminescence Method for Direct Toxicity Assessment of Pollutants Impac­ting on the Activated Sewage Sludge Process, Water Research, 36(6), pp. 1493-1502., Vol. 36, No. 6, pp. 1493-1502DOI
11 
Farabegoli G., Hellinga C., Heijnen J., Van Loosdrecht M., (2003), Study on the Use of NADH Fluorescence Mea­surements for Monitoring Wastewater Treatment Systems, Water Research, Farabegoli, G., Hellinga, C., Heijnen, J., and Van Loosdrecht, M. (2003). Study on the Use of NADH Fluorescence Mea­surements for Monitoring Wastewater Treatment Systems, Water Research, 37(11), pp. 2732-2738., Vol. 37, No. 11, pp. 2732-2738DOI
12 
Hammes F., Goldschmidt F., Vital M., Wang Y., Egli T., (2010), Measurement and Interpretation of Microbial Adeno­sine Tri-phosphate (ATP) in Aquatic Environments, Water Research, Hammes, F., Goldschmidt, F., Vital, M., Wang, Y., and Egli, T. (2010). Measurement and Interpretation of Microbial Adeno­sine Tri-phosphate (ATP) in Aquatic Environments, Water Research, 44(13), pp. 3915-3923., Vol. 44, No. 13, pp. 3915-3923DOI
13 
Horiuchi J., Ebie K., Tada K., Kobayashi M., Kanno T., (2003), Simplified Method for Estimation of Microbial Activity in Compost by ATP Analysis, Bioresour Technology, Horiuchi, J., Ebie, K., Tada, K., Kobayashi, M., and Kanno, T. (2003). Simplified Method for Estimation of Microbial Activity in Compost by ATP Analysis, Bioresour Technology, 86(1), pp. 95-98., Vol. 86, No. 1, pp. 95-98DOI
14 
Kuba T., Wachtmeister A., Van Loosdrecht M., Heijnen J., (1994), Effect of Nitrate on Phosphorus Release in Biological Phosphorus Removal Systems, Water Science and Technology, Kuba, T., Wachtmeister, A., Van Loosdrecht, M., and Heijnen, J. (1994). Effect of Nitrate on Phosphorus Release in Biological Phosphorus Removal Systems, Water Science and Technology, 30(6), pp. 263-269., Vol. 30, No. 6, pp. 263-269Google Search
15 
Lautenschlager K., Hwang C., Liu W., Boon N., Köster O., Vrouwenvelder H., Egli T., Hammes F., (2013), A Microbiology-based Multi-parametric Approach towards Ass­essing Biological Stability in Drinking Water Distribution Networks, Water Research, Lautenschlager, K., Hwang, C., Liu, W., Boon, N., Köster, O., Vrouwenvelder, H., Egli, T., and Hammes, F. (2013). A Microbiology-based Multi-parametric Approach towards Ass­essing Biological Stability in Drinking Water Distribution Networks, Water Research, 47(9), pp. 3015-3025., Vol. 47, No. 9, pp. 3015-3025DOI
16 
Levin G.V., Schrot J. R., Hess W. C., (1975), Methodo­logy for Application of ATP Determination in Wastewater Treat­ment, Environmental Science and Technology, Levin, G. V., Schrot, J. R., and Hess, W. C. (1975). Methodo­logy for Application of ATP Determination in Wastewater Treat­ment, Environmental Science and Technology, 9(10), pp. 961­-965., Vol. 9, No. 10, pp. 961-965DOI
17 
Liu G., Lut M., Verberk J., Van Dijk J., (2013), A Comparison of Additional Treatment Processes to Limit Particle Accumulation and Microbial Growth during Drinking Water Distribution, Water Research, Liu, G., Lut, M., Verberk, J., and Van Dijk, J. (2013). A Comparison of Additional Treatment Processes to Limit Particle Accumulation and Microbial Growth during Drinking Water Distribution, Water Research, 47(8), pp. 2719-2728., Vol. 47, No. 8, pp. 2719-2728DOI
18 
Liu Y., Tay J., (2001), Strategy for Minimization of Excess Sludge Production from the Activated Sludge Process, Bio­technology Advances, Liu, Y. and Tay, J. (2001). Strategy for Minimization of Excess Sludge Production from the Activated Sludge Process, Bio­technology Advances, 19(2), pp. 97-107., Vol. 19, No. 2, pp. 97-107DOI
19 
Liu Y., (2003), Chemically Reduced Excess Sludge Production in the Activated Sludge Process, Chemosphere, Liu, Y. (2003). Chemically Reduced Excess Sludge Production in the Activated Sludge Process, Chemosphere, 50(1), pp. 1-7., Vol. 50, No. 1, pp. 1-7DOI
20 
Ødegaard H., (2004), Sludge Minimization Technologies-an Overview, Water Science and Technology, Ødegaard, H. (2004). Sludge Minimization Technologies-an Overview, Water Science and Technology, 49(10), pp. 31-40., Vol. 49, No. 10, pp. 31-40Google Search
21 
Pelkonen M., Tenno R., (1993), New Control Parameters and Measurement Techniques for the Activated Sludge Process, Water Science and Technology, Pelkonen, M. and Tenno, R. (1993). New Control Parameters and Measurement Techniques for the Activated Sludge Process, Water Science and Technology, 27(5-6), pp. 287-295., Vol. 27, No. 5-6, pp. 287-295Google Search
22 
Stephanopoulos G., Aristidou A. A., Nielsen J., (1998), Metabolic Engineering: Principles and Methodologies, Stephanopoulos, G., Aristidou, A. A., and Nielsen, J. (1998). Metabolic Engineering: Principles and Methodologies, Academic Press, San Diego, California, USA.Google Search
23 
Takamatsu Y., Nishimura O., Inamori Y., Sudo R., Matsu­mura M., (1996), Effect of Temperature on Biodegradability of Surfactants in Aquatic Microcosm System, Water Science and Technology, Takamatsu, Y., Nishimura, O., Inamori, Y., Sudo, R., and Matsu­mura, M. (1996). Effect of Temperature on Biodegradability of Surfactants in Aquatic Microcosm System, Water Science and Technology, 34(7), pp. 61-68., Vol. 34, No. 7, pp. 61-68DOI
24 
Vassos T. D., (1993), Future Directions in Instrumentation, Control and Automation in the Water and Wastewater Industry, Water Science and Technology, Vassos, T. D. (1993). Future Directions in Instrumentation, Control and Automation in the Water and Wastewater Industry, Water Science and Technology, 28(11-12), pp. 11-12., Vol. 28, No. 11-12, pp. 11-12Google Search
25 
Wei Y., van Houten R. T., Borger A. R., Eikelnoom D. H., Fan Y., (2003), Minimization of Excess Sludge Pro­duction for Biological Wastewater Treatment, Water Research, Wei, Y., van Houten, R. T., Borger, A. R., Eikelnoom, D. H., and Fan, Y. (2003). Minimization of Excess Sludge Pro­duction for Biological Wastewater Treatment, Water Research, 37(18), pp. 4453-4467., Vol. 37, No. 18, pp. 4453-4467DOI
26 
Wos M., Pollard P., (2006), Sensitive and Meaningful Measures of Bacterial Metabolic Activity Using NADH Fluorescence, Water Research, Wos, M. and Pollard, P. (2006). Sensitive and Meaningful Measures of Bacterial Metabolic Activity Using NADH Fluorescence, Water Research, 40(10), pp. 2084-2092., Vol. 40, No. 10, pp. 2084-2092DOI
27 
Whalen P. A., Whalen P. J., Tracey D. R., (2006), Cellular ATP -A Superior Measure of Active Biomass for Biological Wastewater Treatment Process, Whalen, P. A., Whalen, P. J., and Tracey, D. R. (2006). Cellular ATP - A Superior Measure of Active Biomass for Biological Wastewater Treatment Process, Water Environment Founda­tion (WEFTEC), pp. 3005-3037., pp. 3005-3037Google Search
28 
Zhang B., Yamamoto K., (1996), Seasonal Change of Micro­bial Population and Activities in a Building Wastewater Reuse System Using a Membrane Separation Activated Sludge Process, Water Science and Technology, Zhang, B. and Yamamoto, K. (1996). Seasonal Change of Micro­bial Population and Activities in a Building Wastewater Reuse System Using a Membrane Separation Activated Sludge Process, Water Science and Technology, 34(5), pp. 295-302., Vol. 34, No. 5, pp. 295-302DOI