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

References

1 
Alhashimi H. A., Aktas C. B., 2017, Life cycle environmental and economic performance of biochar compared with activated carbon: A meta-analysis, Resources, Conservation and Recycling, Vol. 118, pp. 13-26DOI
2 
Alvarino T., García-Sandá E., Gutiérrez-Prada I., Lema J., Omil F., Suárez S., 2020, A new decentralized biological treatment process based on activated carbon targeting organic micropollutant removal from hospital wastewaters, Environmental Science and Pollution Research, Vol. 27, No. 2, pp. 1214-1223DOI
3 
Barazesh J. M., Hennebel T., Jasper J. T., Sedlak D. L., 2015, Modular advanced oxidation process enabled by cathodic hydrogen peroxide production, Environmental Science & Technology, Vol. 49, No. 12, pp. 7391-7399DOI
4 
Bischel H. N., Caduff L., Schindelholz S., Kohn T., Julian T. R., 2019, Health risks for sanitation service workers along a container-based urine collection system and resource recovery value chain, Environmental Science & Technology, Vol. 53, No. 12, pp. 7055-7067DOI
5 
Bunce J. T., Ndam E., Ofiteru I. D., Moore A., Graham D. W., 2018, A review of phosphorus removal technologies and their applicability to small-scale domestic wastewater treatment systems, Frontiers in Environmental Science, Vol. 6, pp. 8DOI
6 
Cho K., Kwon D., Hoffmann M. R., 2014, Electrochemical treatment of human waste coupled with molecular hydrogen production, RSC Advances, Vol. 4, No. 9, pp. 4596-4608DOI
7 
Choe J. K., Bergquist A. M., Jeong S., Guest J. S., Werth C. J., Strathmann T. J., 2015, Performance and life cycle environmental benefits of recycling spent ion exchange brines by catalytic treatment of nitrate, Water Research, Vol. 80, pp. 267-280DOI
8 
Choi Y., Thompson J. M., Cho Y. M., Ismail N. S., Hsieh C. H., Luthy R. G., 2016, Secondary environmental impacts of remedial alternatives for sediment contaminated with hydrophobic organic contaminants, Journal of Hazardous Materials, Vol. 304, pp. 352-359DOI
9 
Dong H., Laguna C. M., Liu M. J., Guo J., Tarpeh W. A., 2022, Electrified Ion exchange enabled by water dissociation in bipolar membranes for nitrogen recovery from source-separated urine, Environmental Science & Technology, Vol. 56, No. 22, pp. 16134-16143DOI
10 
Ebie Y., Kondo T., Kadoya N., Mouri M., Maruyama O., Noritake S., Inamori Y., Xu K., 2008, Recovery oriented phosphorus adsorption process in decentralized advanced Johkasou, Water Science and Technology, Vol. 57, No. 12, pp. 1977-1981DOI
11 
Eggimann S., Mutzner L., Wani O., Schneider M. Y., Spuhler D., Moy de Vitry M., Beutler P., Maurer M., 2017, The potential of knowing more: A review of data-driven urban water management, Environmental Science & Technology, Vol. 51, No. 5, pp. 2538-2553DOI
12 
Ferrari F., Balcazar J. L., Rodriguez-Roda I., Pijuan M., 2019, Anaerobic membrane bioreactor for biogas production from concentrated sewage produced during sewer mining, Science of the Total Environment, Vol. 670, pp. 993-1000DOI
13 
Hedin N., Andersson L., Bergström L., Yan J., 2013, Adsorbents for the post-combustion capture of CO2 using rapid temperature swing or vacuum swing adsorption, Applied Energy, Vol. 104, pp. 418-433DOI
14 
Hodges B. C., Cates E. L., Kim J. H., 2018, Challenges and prospects of advanced oxidation water treatment processes using catalytic nanomaterials, Nature Nanotechnology, Vol. 13, pp. 642-650DOI
15 
Hou D., Jassby D., Nerenberg R., Ren Z. J., 2019, Hydrophobic gas transfer membranes for wastewater treatment and resource recovery, Environmental Science & Technology, Vol. 53, pp. 11618-11635DOI
16 
Housh M., Ostfeld A., 2015, An integrated logit model for contamination event detection in water distribution systems, Water Research, Vol. 75, pp. 210-223DOI
17 
Jang Y., Lee W., Park J., Choi Y., 2022, Recovery of ammonia from wastwater by liquid-liquid membrane contactor: A review, Membrane and Water Treatment, Vol. 13, No. 3, pp. 147-166Google Search
18 
Kavvada O., Tarpeh W. A., Horvath A., Nelson K. L., 2017, Life-cycle cost and environmental assessment of decentralized nitrogen recovery using ion exchange from source-separated urine through spatial modeling, Environmental Science & Technology, Vol. 51, pp. 12061-12071DOI
19 
Lambrou T. P., Panayiotou C. G., Anastasiou C. C., 2012, IEEE Sensors, Institute of Electrical and Electronics EngineersDOI
20 
Larsen T. A., Gujer W., 2013, Implementation of source separation and decentralization in cities, Source Separation and Decentralization for Wastewater Management, IWA Publishing, pp. 135-150
21 
Larsen T. A., Hoffmann S., Lüthi C., Truffer B., Maurer M., 2016, Emerging solutions to the water challenges of an urbanizing world, Science, Vol. 352, No. 6288, pp. 928-933DOI
22 
Lee M. H., Kim D. U., Nam B. H., 2010, Lessons from the september 21st heavy rain in Seoul area: Focusing on damage cases in Jung-gu, Seoul, [Korean Literature], Water for Future, Vol. 43, No. 12, pp. 38-47Google Search
23 
Lee W., Choi Y., 2022, Facile preparation of robust anti-wetting membrane by simple two-step FeOOH and fluorosilane membrane modification, Chemical Engineering Journal, Vol. 442, pp. 136112DOI
24 
Lee W., An S., Choi Y., 2021, Ammonia harvesting via membrane gas extraction at moderately alkaline pH: A step toward net-profitable nitrogen recovery from domestic wastewater, Chemical Engineering Journal, Vol. 405, pp. 126662DOI
25 
Li F., Behrendt J., Wichmann K., Otterpohl R., 2008, Resources and nutrients oriented greywater treatment for non-potable reuses, Water Science and Technology, Vol. 57, No. 12, pp. 1901-1907DOI
26 
Libralato G., Ghirardini A. V., Avezzu F., 2012, To centralise or decentralise: An overview of the most recent trends in wasterwater treatment management, Journal of Environmental Management, Vol. 94, No. 1, pp. 61-68DOI
27 
Loeb S. K., Alvarez P. J. J., Brame J. A., Cates E. L., Choi W., Crittenden . J., Dionysiou D. D., Li Q., Li-Puma G., Quan X., Sedlak D. L., Waite T. D., Westerhoff P., Kim J. H., 2019, The technology horizon for photocatalytic water treatment: Sunrise or sunset?, Environmental Science & Technology, Vol. 53, No. 6, pp. 2937-2947DOI
28 
Lykins B. W., Clark R. M., Goodrich J. A., 1992, Types of POU/POE devices, point-of-use/point-of-entry for drinking water treatment, CRC Press
29 
Mobile Area Water and Sewer System, 2015, Integration of decentralized wastewater management concepts Into an urban “Centralized” infrastructure in mobile, Alabama (USEPA National Decentralized Wastewater Demonstration Project), https://www.epa.gov/septic/integration-decentralized-wastewater-management-concepts-urban-centralized-infrastructureGoogle Search
30 
Newman J. P., Dandy G. C., Maier H. R., 2014, Multiobjective optimization of cluster-scale urban water systems investigating alternative water sources and level of decentralization, Water Resources Research, Vol. 50, pp. 7915-7938DOI
31 
Polshettiwar V., Varma R. S., 2010, Green chemistry by nano-catalysis, Green Chemistry, Vol. 12, pp. 743-754DOI
32 
Ray H., Perreault F., Boyer T. H., 2020, Ammonia recovery from hydrolyzed human urine by forward osmosis with acidified draw solution, Environmental Science & Technology, Vol. 54, No. 18, pp. 11556-11565DOI
33 
Storey M. V., van der Gaag B., Burns B. P., 2011, Advances in on-line drinking water quality monitoring and early warning systems, Water Research, Vol. 45, pp. 741-747DOI
34 
Tarpeh W. A., Udert K. M., Nelson K. L., 2017, Comparing ion exchange adsorbents for nitrogen recovery from source-separated urine, Environmental Science & Technology, Vol. 51, No. 4, pp. 2373-2381DOI
35 
Tchobanoglous G., Leverenz H., 2013, The rationale for decentralization of wastewater infrastructure, source separation and decentralization for wastewater management, IWA Publishing, pp. 101-115
36 
Tchobanoglous G., Ruppe L., Leverenz H., Darby J., 2004, Decentralized wastewater management: Challenges and opportunities for the twenty-first century, Water Science and Technology: Water Supply, Vol. 4, No. 1, pp. 95-102DOI
37 
Tran S. H., Dang H. T. T., Dao D. A., Nguyen V. A., Nguyen L. T., Han M., 2021, On-site rainwater harvesting and treatment for drinking water supply: Assessment of cost and technical issues, Environmental and Energy Management, Vol. 28, pp. 11928-11941DOI
38 
Tsegaye S., Missimer T. M., Kim J. Y., Hock J., 2020, A clustered, decentralized approach to urban water management, Water, Vol. 12, No. 1, pp. 185DOI
39 
Udert K. M., Larsen T. A., Gujer W., 2003, Biologically induced precipitation in urine-collecting systems, Water Science and Technology: Water Supply, Vol. 3, No. 3, pp. 71-78DOI
40 
Wu J., Cao M., Tong D., Finkelstein Z., Hoek E. M. V., 2021, A critical review of point-of-use drinking water treatment in the United States, npj Clean Water, Vol. 4, pp. 40DOI
41 
Yang L., He L., Xue J., Ma Y., Shi Y., Wu L., Zhang Z., 2020, UV/SO32- based advanced reduction processes of aqueous contaminants: Current status and prospects, Chemical Engineering Journal, Vol. 397, pp. 125412DOI
42 
Zhang J., Xie M., Tong X., Liu S., Qu D., Xiao S., 2020, Recovery of ammonium nitrogen from human urine by an open-loop hollow fiber membrane contactor, Separation and Purification Technology, Vol. 239, pp. 116579DOI
43 
Zhang Y., Wang H., Li Y., Wang B., Huang J., Deng S., Yu G., Wang Y., 2020, Removal of micropollutants by an electrochemically driven UV/chlorine process for decentralized water treatment, Water Research, Vol. 183, pp. 116115DOI
44 
Zodrow K. R., Li Q., Buono R. M., Chen W., Daigger G., Duenas-Osorio L., Elimelech M., Huang X., Jiang G., Kim K. H., Logan B. E., Sedlak D. L., Westerhoff P., Alvarez P. J. J., 2017, Advanced materials, technologies, and complex systems analyses: Emerging opportunities to enhance urban water security, Environmental Science & Technology, Vol. 51, No. 18, pp. 10274-10281DOI