Application of progressive freezing on forward osmosis draw solute recovery

被引:0
作者
Huy Quang Le
Thi Xuan Quynh Nguyen
Shiao-Shing Chen
Chinh Cong Duong
Thanh Ngoc-Dan Cao
Hau-Ming Chang
Saikat Sinha Ray
Nguyen Cong Nguyen
机构
[1] National Taipei University of Technology,Institute of Environmental Engineering and Management
[2] Dalat University,Faculty of Environment and Natural Resources
[3] Southern Institute of Water Resources Research,undefined
[4] Nguyen Tat Thanh University,undefined
来源
Environmental Science and Pollution Research | 2020年 / 27卷
关键词
Forward osmosis; Draw solution recovery; Progressive freeze concentration; Partition constant;
D O I
暂无
中图分类号
学科分类号
摘要
Progressive freezing is a solvent purification technology with low energy requirements and high concentration efficiency. Although these advantages make it a promising technology, the technique has never been explored for draw solution recovery for forward osmosis (FO). Hence, in this study, the progressive freezing process was used to concentrate three common diluted draw solutions: NaCl, MgCl2, and EDTA-2Na with different ice front speeds, stirring rates, and initial draw solution concentrations. Effective partition and intrinsic partition constants were also evaluated. The results reveal that the freezing process can achieve a draw solution recovery rate of 99.73%, 99.06%, and 98.65% with NaCl, MgCl2, and EDTA-2Na, respectively, using an ice front speed of 0.5 cm/h, a stirring rate of 2.62 m/s, and 30% of percentage of ice phase. Higher concentration efficiency for NaCl and MgCl2 was achieved due to the high solubility of NaCl and MgCl2 increased solute diffusion into the liquid phase solutions. The concentration factors for all three draw solutions exceeded 1.9, indicating that the draw solutes could be reused for the FO process. In addition, the two mass transfer coefficients depended on the ice front speed and the stirring rates were also obtained for scaling up the experiment in the future.
引用
收藏
页码:34664 / 34674
页数:10
相关论文
共 241 条
[1]  
Achilli A(2009)Power generation with pressure retarded osmosis: an experimental and theoretical investigation J Membr Sci 343 42-52
[2]  
Cath TY(2010)Selection of inorganic-based draw solutions for forward osmosis applications J Membr Sci 364 233-241
[3]  
Childress AE(2009)The forward osmosis membrane bioreactor: a low fouling alternative to MBR processes Desalination 239 10-21
[4]  
Achilli A(2013)Draw solute recovery by metathesis precipitation in forward osmosis desalination Desalin Water Treat 51 5516-5525
[5]  
Cath TY(2010)New proposed system for freeze water desalination using auto reversed R-22 vapor compression heat pump Desalination 254 179-184
[6]  
Childress AE(2011)Estimation of the freezing point of concentrated fruit juices for application in freeze concentration J Food Eng 105 289-294
[7]  
Achilli A(2011)Highly water soluble and recovered dextran coated Fe3O4 magnetic nanoparticles for brackish water desalination Sep Purif Technol 81 392-399
[8]  
Cath TY(2016)Highly porous cellulosic nanocomposite membranes with enhanced performance for forward osmosis desalination Desalination 381 117-125
[9]  
Marchand EA(2017)Investigation of the depletion of ions through freeze desalination Desalination 407 93-102
[10]  
Childress AE(2015)Effect of coolant temperature on desalination process via progressive freeze concentration Appl Mech Mater 695 443-446