Research Progress on the Reduction and Utilization of RO Concentrated Brine from Desalination Plants

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Abstract:

Reverse Osmosis (RO) is an effective method to get fresh water from seawater or brackish water. The uncontrolled discharge of RO concentrated brine can contaminate water aquifers and damage marine ecosystems. The techniques to treat or utilize the rejected brine are the research focus in recent years. This paper tried to give an overview of latest development in this filed in order to provide references for its actual application in large-scale engineering.

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Advanced Materials Research (Volumes 821-822)

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1098-1101

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September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] S.B. Yang. China year book of seawater desalination (2010). Published by Ocean Press, Beijing(2012)in Chinese.

Google Scholar

[2] Brian C. McCool, Anditya Rahardianto, Jose I. Faria, Yoram Cohen. Desalination, 317 (2013) 116–126.

Google Scholar

[3] Toufic Mezher, Hassan Fath, Zeina Abbas, Arslan Khaled., Desalination, 266 (2011) 263–273.

DOI: 10.1016/j.desal.2010.08.035

Google Scholar

[4] Muftah H. El-Naas, Ali H. Al-Marzouqi, Omar Chaalal. Desalination, 251(2010) 70 –74.

Google Scholar

[5] Anh T.K. Tran, Yang Zhang, Nora Jullok, etal. Chemical Engineering Science, 79 (2012) 228–238.

Google Scholar

[6] Minghua Zhou, Liang Liu, Yongli Jiao, etal. Desalination, 277 (2011)201–206.

Google Scholar

[7] Christopher J. Gabelich, Mark D. Williams, Anditya Rahardianto, John C. Franklin, Yoram Cohen. Journal of Membrane Science, 301 (2007)131–141.

Google Scholar

[8] Yang Zhang, Karel Ghyselbrecht, Boudewijn Meesschaert, Luc Pinoy, Bart Vander Bruggen. Journal of Membrane Science, 378(2011)101–110.

DOI: 10.1016/j.memsci.2010.10.036

Google Scholar

[9] Robert Y. Ning, Thomas L. Troyer. Desalination, 237 (2009) 238–242.

Google Scholar

[10] Weiyi Li, William B. Krantz, Emile R. Cornelissen, Jan W. Post, Arne R.D. Verliefde, Chuyang Y. Tang. Applied Energy, 104 (2013) 592–602.

Google Scholar

[11] A.M. Assiry. Desalination, 280 (2011) 217–223.

Google Scholar

[12] Dan Qu, Jun Wang, Longlong Wang, Deyin Hou, Zhaokun Luan, Baoqiang Wang. Separation and Purification Technology, 67 (2009) 21–25.

Google Scholar

[13] Xiaosheng Ji, Efrem Curcio, Sulaiman Al Obaidani, Gianluca Di Profio, Enrica Fontananova, Enrico Drioli. Separation and Purification Technology, 71 (2010) 76–82.

DOI: 10.1016/j.seppur.2009.11.004

Google Scholar

[14] Michaela Petersková, César Valderrama, Oriol Gibert, José Luis Cortina. Desalination, 286 (2012) 316–323.

DOI: 10.1016/j.desal.2011.11.042

Google Scholar

[15] Seichang Oh, Wonsik Nam, Hyunku Joo, Sarper Sarp, Jaeweon Cho, Chang-Ha Lee, Jaekyung Yoon. Solar Energy, 85 (2011) 2256–2263.

DOI: 10.1016/j.solener.2011.06.013

Google Scholar

[16] R. Ibáñez, A. Pérez-González, P. Gómez, A.M. Urtiaga, I. Ortiz. Desalination, 309 (2013) 165–170.

DOI: 10.1016/j.desal.2012.10.006

Google Scholar

[17] Mohammad Badruzzaman, Joan Oppenheimer, Samer Adham, Manish Kumar. Journal of Membrane Science, 326 (2009) 392–399.

Google Scholar

[18] Dae Hyun Kim. Desalination, 270 (2011) 1–8.

Google Scholar