Investigation of Hydrate-induced Ice Desalination (HIID) and its application to a pretreatment of reverse osmosis (RO) process

被引:25
作者
Han, Sang-woo [1 ]
Kim, Woojeong [1 ]
Lee, Yohan [1 ]
Jun, Byung-Moon [1 ]
Kwon, Young-Nam [1 ]
机构
[1] UNIST, Sch Urban & Environm Engn, 100 Banyeon Ri, Ulsan 689798, South Korea
基金
新加坡国家研究基金会;
关键词
Desalination; Hydrate; Reverse osmosis; Membrane; Hydrate-induced Ice Desalination (HIID); FREEZE-CONCENTRATION; WATER DESALINATION; REMOVAL; TEMPERATURE; EFFLUENTS;
D O I
10.1016/j.desal.2016.05.023
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In this study, freeze desalination which utilizes CO2 gas hydrate itself as a refrigerant (referred to as Hydrate-induced Ice Desalination, HIID) was systematically investigated and evaluated as a pretreatment method for seawater reverse osmosis (RO) process. To the best of the authors' knowledge, the HIID is the first approach to use the hydrate dissociation energy to freeze seawater in an instant for desalination. The endothermic energy related to hydrate dissociation was the most dominant factor in the freezing of seawater. Using the HIID technique, the rejection of ions with 3.5 wt NaCl was about 67%. Increasing the concentration of salts enhanced rejection of component ions. However, humic acid organic rejection decreased, due to agglomeration of organics in presence of salts. The HIID process showed similar levels of cation rejections-approximately 65% of seawater, except boron and potassium. The rejection of cations might be determined by the solubility of salts at various brine concentration. Using HIID as a pretreatment of seawater at 225.psi, the RO process showed similar to 14 LMH and about 99% cation rejections except boron. This study shows that HIID can be utilized as a pretreatment of seawater desalination and further development might make HBID technology run on its own. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:8 / 16
页数:9
相关论文
共 33 条
[1]  
[Anonymous], SEA ICE
[2]   Concentration of brines from RO desalination plants by natural evaporation [J].
Arnal, JM ;
Sancho, M ;
Iborra, I ;
Gozálvez, JM ;
Santafé, A ;
Lora, J .
DESALINATION, 2005, 182 (1-3) :435-439
[3]   Increasing Gas Hydrate Formation Temperature for Desalination of High Salinity Produced Water with Secondary Guests [J].
Cha, Jong-Ho ;
Seol, Yongkoo .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2013, 1 (10) :1218-1224
[4]   Effect of subcooling and amount of hydrate former on formation of cyclopentane hydrates in brine [J].
Corak, Djurdjica ;
Barth, Tanja ;
Hoiland, Sylvi ;
Skodvin, Tore ;
Larsen, Roar ;
Skjetne, Tore .
DESALINATION, 2011, 278 (1-3) :268-274
[5]   Application of progressive freeze-concentration for desalination [J].
Fujioka, Ryosuke ;
Wang, Li Pang ;
Dodbiba, Gjergj ;
Fujita, Toyohisa .
DESALINATION, 2013, 319 :33-37
[6]   Removal of organic contaminants and toxiciy from industrial effluents using freezing processes [J].
Gao, W. ;
Habib, M. ;
Smith, D. W. .
DESALINATION, 2009, 245 (1-3) :108-119
[7]   Wastewater treatment by radial freezing with stirring effects [J].
Gay, G ;
Lorain, O ;
Azouni, A ;
Aurelle, Y .
WATER RESEARCH, 2003, 37 (10) :2520-2524
[8]   Technical review and evaluation of the economics of water desalination: Current and future challenges for better water supply sustainability [J].
Ghaffour, Noreddine ;
Missimer, Thomas M. ;
Amy, Gary L. .
DESALINATION, 2013, 309 :197-207
[9]   Sea ice desalination under the force of gravity in low temperature environments [J].
Gu, Wei ;
Lin, Yebin ;
Xu, Yingjun ;
Yuan, Shuai ;
Tao, Jun ;
Li, Lantao ;
Liu, Chengyu .
DESALINATION, 2012, 295 :11-15
[10]   An apparatus for partial ice-melting to improve yield in progressive freeze-concentration [J].
Gunathilake, Mihiri ;
Dozen, Michiko ;
Shimmura, Kiyomi ;
Miyawaki, Osato .
JOURNAL OF FOOD ENGINEERING, 2014, 142 :64-69