Investigating the performance of ammonium sulphate draw solution in fertilizer drawn forward osmosis process

被引:0
作者
Peter Nasr
Hani Sewilam
机构
[1] The American University in Cairo,Environmental Engineering Program, Department of Construction and Architectural Engineering
[2] The American University in Cairo,Center of Sustainable Development
来源
Clean Technologies and Environmental Policy | 2016年 / 18卷
关键词
Ammonium sulphate; Draw solution; Fertigation; Fertilizer drawn forward osmosis; Forward osmosis; Reverse solute flux;
D O I
暂无
中图分类号
学科分类号
摘要
This work investigated the performance of ammonium sulphate as a draw solution in a fertilizer drawn forward osmosis (FDFO) desalination process using thin-film composite (TFC) membrane. Performance has been assessed by the water flux, reverse permeation and the forward rejection of the feed solutes. A logarithmic relation has been determined between flux and ammonium sulphate concentration. As water flux increased, the specific reverse solute flux (SRSF) of NH4+ and SO42− ions dropped, which is a favourable condition. Reverse permeation values obtained at flux less than 10 L/m2/h are significantly higher than that for flux more than 10 L/m2/h. Thus, it is recommended to operate the process at a flux higher than 10 L/m2/h to avoid loss of draw solute by reverse permeation. SRSF was almost constant irrespective of ammonium sulphate concentration. TFC membrane used in this study exhibited high rejection of feed solution ions for almost all draw solution concentrations except when operated at low ammonium sulphate concentration and high feed solution concentration. In conclusion, ammonium sulphate is an efficient draw solution for FDFO process when run at water flux more than 10 L/m2/h exhibiting high osmotic pressure, low reverse solute permeation and high rejection of feed solute.
引用
收藏
页码:717 / 727
页数:10
相关论文
共 104 条
[1]  
Achilli A(2010)Selection of inorganic-based draw solutions for forward osmosis applications J Membr Sci 364 233-241
[2]  
Cath TY(2013)Pressure retarded osmosis and forward osmosis membranes: materials and methods Polymers 5 303-327
[3]  
Childress AE(2006)Forward osmosis: principles, applications, and recent developments J Membr Sci 281 70-87
[4]  
Alsvik I(2012)Forward osmosis processes: yesterday, today and tomorrow Desalination 287 78-81
[5]  
Hägg M-B(2014)The sweet spot of forward osmosis: treatment of produced water, drilling wastewater, and other complex and difficult liquid streams Desalination 333 23-35
[6]  
Cath T(2006)Internal concentration polarization in forward osmosis: role of membrane orientation Desalination 197 1-8
[7]  
Childress A(2009)Solute coupled diffusion in osmotically driven membrane processes Environ Sci Technol 43 6769-6775
[8]  
Elimelech M(2015)Investigation of pilot-scale 8040 FO membrane module under different operating conditions for brackish water desalination Desalination Water Treat 53 2782-2791
[9]  
Chung T-S(2010)Fouling propensity of forward osmosis: investigation of the slower flux decline phenomenon Water Sci Technol 61 927-39
[10]  
Zhang S(2010)Comparison of fouling behavior in forward osmosis (FO) and reverse osmosis (RO) J Membr Sci 365 34-2759