TY - JOUR
T1 - Pressure assisted fertiliser drawn osmosis process to enhance final dilution of the fertiliser draw solution beyond osmotic equilibrium
AU - Sahebi, Soleyman
AU - Phuntsho, Sherub
AU - Eun Kim, Jung
AU - Hong, Seungkwan
AU - Kyong Shon, Ho
N1 - Funding Information:
This study was supported by the Australian postgraduate award (APA) and National Centre of Excellence in Desalination Australia (NCEDA), which is funded by the Australian Government through the Water for the Future initiative. The authors appreciate an ARC Future Fellowship (FT140101208), UTS Chancellor׳s Postdoctoral research fellowship and Hydration Technology Inc., USA for supporting with CTA membrane.
Publisher Copyright:
© 2015 Elsevier B.V.
PY - 2015/5/1
Y1 - 2015/5/1
N2 - Adequate dilution of fertiliser draw solution (DS) during fertiliser drawn forward osmosis (FDFO) desalination is important to meet nutrient concentration level for direct fertigation. The maximum DS dilution, however, occurs until the point of osmotic equilibrium between DS and feed solution (FS) thereby limiting the extent of DS dilution. Post-treatment such as nanofiltration (NF) process is required to reduce the fertiliser concentration. In this study however, pressure assisted fertiliser drawn osmosis (PAFDO) process was investigated to enhance DS dilution beyond the point of osmotic equilibrium and potentially eliminate NF post-treatment. The hydraulic pressure applied enhanced water flux significantly depending on the pressure. The applied pressure was found more effective at lower DS concentrations than at higher DS concentrations. For example, when a pressure of 10bar was applied to 10g/L NaCl FS with 0.1M (NH4)2SO4 DS, the water flux increased by 1928% against 38% with 3.0M (NH4)2SO4 DS. This additional water flux could dilute the fertiliser DS beyond the osmotic equilibrium concentrations thereby meeting the fertigation standard. PAFDO could potentially eliminate NF post-treatment significantly helping reduce the footprint and capital cost. However, the effective gain in water flux due to applied pressure at osmotic equilibrium decreased with the increase in the FS concentrations.
AB - Adequate dilution of fertiliser draw solution (DS) during fertiliser drawn forward osmosis (FDFO) desalination is important to meet nutrient concentration level for direct fertigation. The maximum DS dilution, however, occurs until the point of osmotic equilibrium between DS and feed solution (FS) thereby limiting the extent of DS dilution. Post-treatment such as nanofiltration (NF) process is required to reduce the fertiliser concentration. In this study however, pressure assisted fertiliser drawn osmosis (PAFDO) process was investigated to enhance DS dilution beyond the point of osmotic equilibrium and potentially eliminate NF post-treatment. The hydraulic pressure applied enhanced water flux significantly depending on the pressure. The applied pressure was found more effective at lower DS concentrations than at higher DS concentrations. For example, when a pressure of 10bar was applied to 10g/L NaCl FS with 0.1M (NH4)2SO4 DS, the water flux increased by 1928% against 38% with 3.0M (NH4)2SO4 DS. This additional water flux could dilute the fertiliser DS beyond the osmotic equilibrium concentrations thereby meeting the fertigation standard. PAFDO could potentially eliminate NF post-treatment significantly helping reduce the footprint and capital cost. However, the effective gain in water flux due to applied pressure at osmotic equilibrium decreased with the increase in the FS concentrations.
KW - Desalination
KW - Fertilizer drawn forward osmosis
KW - Forward osmosis
KW - Osmotic equilibrium
KW - Pressure assisted osmosis
UR - http://www.scopus.com/inward/record.url?scp=84923291999&partnerID=8YFLogxK
U2 - 10.1016/j.memsci.2015.01.055
DO - 10.1016/j.memsci.2015.01.055
M3 - Article
AN - SCOPUS:84923291999
SN - 0376-7388
VL - 481
SP - 63
EP - 72
JO - Jornal of Membrane Science
JF - Jornal of Membrane Science
ER -