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 
Ahmad A. L., Mat Yasin N. H., Derek C. J. C., Lim J. K., (2011), Optimization of Microalgae Coagulation Process using Chitosan, Chemical Engineering Journal, Ahmad, A. L., Mat Yasin, N. H., Derek, C. J. C., and Lim, J. K. (2011). Optimization of Microalgae Coagulation Process using Chitosan, Chemical Engineering Journal, 173, pp. 879­-882., Vol. 173, pp. 879-882DOI
2 
(2012), Standard Methods for the Examination of Water and Waste Water, American Public Health Association (APHA). (2012). Standard Methods for the Examination of Water and Waste Water, 22th ed., American Public Health Association Publication, Washington, D.C.Google Search
3 
Barros A. I., Gonçalves A. L., Simões M., Pires J. C. M., (2015), Harvesting Techniques Applied to Microalgae: A Re­view, Renewable and Sustainable Energy Reviews, Barros, A. I., Gonçalves, A. L., Simões, M., and Pires, J. C. M. (2015). Harvesting Techniques Applied to Microalgae: A Re­view, Renewable and Sustainable Energy Reviews, 41, pp. 1489-­1500., Vol. 41, pp. 1489-1500DOI
4 
Chen C. Y., Yeh K. L., Aisyah R., Lee D. J., Chang J. S., (2011), Cultivation, Photobioreactor Design and Harvesting of Microalgal for Biodiesel Production: A critical Review, Bioresource Technology, Chen, C. Y., Yeh, K. L., Aisyah, R., Lee, D. J., and Chang, J. S. (2011). Cultivation, Photobioreactor Design and Harvesting of Microalgal for Biodiesel Production: A critical Review, Bioresource Technology, 102, pp. 71-81., Vol. 102, pp. 71-81DOI
5 
Chisti Y., (2007), Biodiesel from Microalgae, Biotechnology Advances, Chisti, Y. (2007). Biodiesel from Microalgae, Biotechnology Advances, 25(3), pp. 294-306., Vol. 25, No. 3, pp. 294-306DOI
6 
Choi H. J., (2014), Comparison of Biomass and Oil Content of Chlorella sp., Nannochloris sp., and Botryococcus braunii in the Mixotrophic Conditions using Glycerol, Journal of Korean Society on Water Environment, Choi, H. J. (2014). Comparison of Biomass and Oil Content of Chlorella sp., Nannochloris sp., and Botryococcus braunii in the Mixotrophic Conditions using Glycerol, Journal of Korean Society on Water Environment, 30(5), pp. 469-476. [Korean Literature], Vol. 30, No. 5, pp. 469-476DOI
7 
Choi H. J., (2015), Optimization for Microalgae Harvesting using Mg-Sericite Flocculant, Journal of Korean Society on Water Environment, Choi, H. J. (2015). Optimization for Microalgae Harvesting using Mg-Sericite Flocculant, Journal of Korean Society on Water Environment, 31(3), pp. 328-333. [Korean Literature], Vol. 31, No. 3, pp. 328-333DOI
8 
Danquah M. K., Ang L., Uduman N., Moheimani N., Forde G. M., (2009), Dewatering of Microalgae Culture for Biodiesel Production: Exploring Polymer Flocculation and Tangential Flow Filtration, Journal of Chemical Technology and Biotechnology, Danquah, M. K., Ang, L., Uduman, N., Moheimani, N., and Forde, G. M. (2009). Dewatering of Microalgae Culture for Biodiesel Production: Exploring Polymer Flocculation and Tangential Flow Filtration, Journal of Chemical Technology and Biotechnology, 84, pp. 1078-1083., Vol. 84, pp. 1078-1083DOI
9 
Dassey A. J., Theegala C. S., (2013), Harvesting Economics and Strategies using Centrifugation for Cost Effective Sepa­ration of Microalgae Cells for Biodiesel Application, Biore­sources Technology, Dassey, A. J. and Theegala, C. S. (2013). Harvesting Economics and Strategies using Centrifugation for Cost Effective Sepa­ration of Microalgae Cells for Biodiesel Application, Biore­sources Technology, 128, pp. 214-215., Vol. 128, pp. 214-215Google Search
10 
Farooq W., Lee Y. C., Han J. I., Darpito C. H., Choi M., Yang J. W., (2013), Efficient Microalgae Harvesting by Organo-building Blocks of Nanoclays, Green Chemistry, Farooq, W., Lee, Y. C., Han, J. I., Darpito, C. H., Choi, M., and Yang, J. W. (2013). Efficient Microalgae Harvesting by Organo-building Blocks of Nanoclays, Green Chemistry, 15, pp. 749-755., Vol. 15, pp. 749-755DOI
11 
Gerde J. A., Yao L., Wen Z., Wang T., (2014), Microalgae Flocculation: Impact of Flocculant Type, Algae Species and Cell Concentration, Algal Research, Gerde, J. A., Yao, L., Wen, Z., and Wang, T. (2014). Microalgae Flocculation: Impact of Flocculant Type, Algae Species and Cell Concentration, Algal Research, 3, pp. 30-35., Vol. 3, pp. 30-35DOI
12 
Gouveia L., Oliveira A. C., (2009), Microalgae as a Raw Material for Biofuels Production, Journal of Industrial Microbiology and Biotechnolgy, Gouveia, L. and Oliveira, A. C. (2009). Microalgae as a Raw Material for Biofuels Production, Journal of Industrial Microbiology and Biotechnolgy, 36, pp. 269-274., Vol. 36, pp. 269-274DOI
13 
Habib M. A. B., Parvin M., (2008), FAO fisheries and aquaculture circular No. 1034, Habib, M. A. B. and Parvin, M. (2008). A Review on Culture, Production and Use of Spirulina as Food for Humans and Feeds for Domestic Animals and Fish, In: Huntington, T. C. and Hasan, M. R., editors, FAO fisheries and aquaculture circular No. 1034, Rome: Food and Agriculture Organization of the United Nations.Google Search
14 
Hansel P. A., Riefler R. G., Stuart B., (2014), Efficient Flocculant of Microalgae for Biodiesel Production using Cationic Starch, Algal Research, Hansel, P. A., Riefler, R. G., and Stuart, B. (2014). Efficient Flocculant of Microalgae for Biodiesel Production using Cationic Starch, Algal Research, 5, pp. 133-139., Vol. 5, pp. 133-139DOI
15 
Huang G. H., Chen F., Wei D., Zhang X. W., Chen G., (2010), Biodiesel Production by Microalgal Biotechnology, Applied Energy, Huang, G. H., Chen, F., Wei, D., Zhang, X. W., and Chen, G. (2010). Biodiesel Production by Microalgal Biotechnology, Applied Energy, 87, pp. 38-46., Vol. 87, pp. 38-46DOI
16 
(2014), World Energy Outlook 2014, Intional Energy Agency (IEA). (2014). World Energy Outlook 2014, IEA, London.Google Search
17 
Lee W. J., Han B. K., Park I. H., Park S. H., Oh H. I., Jo D. H., (1995), Effects of Reaction Temperature, Time and Particle Size on the Physicochemical Properties of Chitosans, Korean Journal of Food Science and Technology, Lee, W. J., Han, B. K., Park, I. H., Park, S. H., Oh, H. I., and Jo, D. H. (1995). Effects of Reaction Temperature, Time and Particle Size on the Physicochemical Properties of Chitosans, Korean Journal of Food Science and Technology, 27(6), pp. 997-1002. [Korean Literature], Vol. 27, No. 6, pp. 997-1002Google Search
18 
Lee A., Lewis D., Ashman P., (2009), Microbial Floccu­lation, a Potentially Low-cost Harvesting Technique for Marine Microalgae for Production of Biodiesel, Journal of Applied Phycology, Lee, A., Lewis, D., and Ashman, P. (2009). Microbial Floccu­lation, a Potentially Low-cost Harvesting Technique for Marine Microalgae for Production of Biodiesel, Journal of Applied Phycology, 21, pp. 559-567., Vol. 21, pp. 559-567DOI
19 
Lee Y. C., Kim B., Farooq W., Chung J., Han J. I., Shin H. J., Jeong S. H., Park J. Y., Lee J. S., Oh Y. K., (2013), Harvesting of oleaginous Chlorella sp. by organoclays, Bio­resource Technology, Lee, Y. C., Kim, B., Farooq, W., Chung, J., Han, J. I., Shin, H. J., Jeong, S. H., Park, J. Y., Lee, J. S., and Oh, Y. K. (2013) Harvesting of oleaginous Chlorella sp. by organoclays, Bio­resource Technology, 132, pp. 440-445., Vol. 132, pp. 440-445DOI
20 
Liu D., Wang P., Wei G., Dong W., Hui F., (2013), Removal of Algal Blooms from Freshwater by the Coagu­lation- Magnetic Separation Method, Environmental Science and Pollution Research International, Liu, D., Wang, P., Wei, G., Dong, W., and Hui, F. (2013). Removal of Algal Blooms from Freshwater by the Coagu­lation- Magnetic Separation Method, Environmental Science and Pollution Research International, 20, pp. 60-65., Vol. 20, pp. 60-65DOI
21 
Letelier-Gordo C. O., Holdt S. L., Francisci D. D., Karakashev D. B., Angelidaki I., (2014), Effective Harvesting of the Microalgae Chlorella protothecoides via Bioflocculation with Cationic Starch, Bioresource Technology, Letelier-Gordo, C. O., Holdt, S. L., Francisci, D. D., Karakashev, D. B., and Angelidaki, I. (2014). Effective Harvesting of the Microalgae Chlorella protothecoides via Bioflocculation with Cationic Starch, Bioresource Technology, 167, pp. 214-218., Vol. 167, pp. 214-218DOI
22 
Papazi A., Makridis P., Divanach P., (2010), Chlorella minutissima using cell coagulants, Journal of Applied Phycology, Papazi, A., Makridis, P., and Divanach, P. (2010). Chlorella minutissima using cell coagulants, Journal of Applied Phycology, 22, pp. 349-355., Vol. 22, pp. 349-355DOI
23 
Rashid N., Rehman S. U., Han J. I., (2013), Rapid Harves­ting of Freshwater Microalgae using Chitosan, Process Biochemistry, Rashid, N., Rehman, S. U., and Han, J. I. (2013). Rapid Harves­ting of Freshwater Microalgae using Chitosan, Process Biochemistry, 48, pp. 1107-1110., Vol. 48, pp. 1107-1110DOI
24 
Reddy D. H. K., Lee S. M., Kim J. O., (2013), A Review on Emerging Applications of Natural sericite and Its Compo­sites, World Applied Science Journal, Reddy, D. H. K., Lee, S. M., and Kim, J. O. (2013) A Review on Emerging Applications of Natural sericite and Its Compo­sites, World Applied Science Journal, 27(11), pp. 1514-1523., Vol. 27, No. 11, pp. 1514-1523Google Search
25 
Salim S., Bosma R., Vermue M. H., Wijffels R. H., (2011), Harvesting of Microalgae by Bioflocculation, Journal of Applied Phycology, Salim, S., Bosma, R., Vermue, M. H., and Wijffels, R. H. (2011). Harvesting of Microalgae by Bioflocculation, Journal of Applied Phycology, 23, pp. 849-855., Vol. 23, pp. 849-855DOI
26 
Semerjian L., Ayoub G. M., (2003), High-pH-Magnesium Coagulation-Flocculation in Wastewater Treatment, Advances in Environmental Research, Semerjian, L. and Ayoub, G. M. (2003). High-pH-Magnesium Coagulation-Flocculation in Wastewater Treatment, Advances in Environmental Research, 7(2), pp. 389-403., Vol. 7, No. 2, pp. 389-403DOI
27 
Show K. Y., Lee D. J., (2014), Biofuels from Algae, Burlington, Show, K. Y. and Lee, D. J. (2014). Algal Biomass Harvesting, In: pandey A., Lee, D. J., Chisti, Y., and Soccol, C. R., editors, Biofuels from Algae, Burlington, Elsevier, pp. 85-110., pp. 85-110Google Search
28 
Şirin S., Trobajo R., Ibanez C., and Salvado, J..irin S., Trobajo R., Ibanez C., Salvadó J., (2012), Har­vesting the Microalgae Phaeodactylum tricornutum with Polyaluminum Chloride, Aluminium sulphate, Chitosan and Alkalinity-induced Flocculation, Journal of Applied Phyco­logy, Şirin, S., Trobajo, R., Ibanez, C., and Salvado, J..irin, S., Trobajo, R., Ibanez, C., and Salvadó, J. (2012). Har­vesting the Microalgae Phaeodactylum tricornutum with Polyaluminum Chloride, Aluminium sulphate, Chitosan and Alkalinity-induced Flocculation, Journal of Applied Phyco­logy, 24, pp. 1067-1080., Vol. 24, pp. 1067-1080DOI
29 
Vandamme D., Foubert I., Muylaert K., (2013), Flocculation as a Low-cost Method for Harvesting Microalgae for Bulk Biomass Production, Trends Biotechnology, Vandamme, D., Foubert, I., and Muylaert, K. (2013). Flocculation as a Low-cost Method for Harvesting Microalgae for Bulk Biomass Production, Trends Biotechnology, 31, pp. 233-239., Vol. 31, pp. 233-239DOI
30 
Vandamme D., Foubert I., Fraeye I., Meesschaert B., Muylaert K., (2012), Flocculation of Chlorella vulgaris induces by High pH: Role of Magnesium and Calcium and Pracial Implications, Bioresources Technology, Vandamme, D., Foubert, I., Fraeye, I., Meesschaert, B., and Muylaert, K. (2012). Flocculation of Chlorella vulgaris induces by High pH: Role of Magnesium and Calcium and Pracial Implications, Bioresources Technology, 105, pp. 114-119., Vol. 105, pp. 105Google Search