[3] Nikazar M., Jamshidi M.,
Reuse of Refinery Treated Wastewater in Cooling Towers.
Iranian Journal of Chemistry and Chemical Engineering (IJCCE),
27(4): 1–7 (2008).
[4] Garcia-Castello E.M., McCutcheon J.R., Elimelech M.,
Performance Evaluation of Sucrose Concentration Using Forward Osmosis.
Journal of Membrane Science,
338(1–2): 61–66 (2009).
[8] McGinnis R.L., Elimelech M.,
Global Challenges in Energy and Water Supply: The Promise of Engineered Osmosis. Environmental Science and Technology,
42(23): 8625–8629 (2008).
[9] Achilli A., Cath T.Y., Childress A.E.,
Power Generation with Pressure Retarded Osmosis: An Experimental and Theoretical Investigation. Journal of Membrane Science,
343(1–2): 42–52 (2009).
[10] باهوش م., شکرالله زاده س., کاشی ا.,
مروری بر کاربردهای فرآیند غشایی اسمز مستقیم.
نشریه مهندسی شیمی ایران,
15(89): 18–34 (1395)
[11] باهوش م., شکرالله زاده س., کاشی ا.,
اثر پلاریزاسیون غلظتی در فرآیند شیرینسازی آب به روش اسمز مستقیم (مروری).
علوم و تکنولوژی محیط زیست, (1395)
[12] Mehdizadeh H.,
Modeling of Transport Phenomena in Reverse Osmosis Membranes.
Ph.D thesis in Chemical Engineering.McMaster University, CANADA, (1990).
[13] Wijmans J.G., Baker R.W.,
The Solution-Diffusion Model: A Review. Journal of Membrane Science,
107(1–2): 1–21 (1995).
[14] Bahoosh M., Kashi E., Shokrollahzadeh S., Rostami K.,
Comparison the Performance of Different Reverse Osmosis Membrane Modules by CFD Modeling.
Iranian Journal of Chemical Engineering(IJChE),
16(1): 101–116 (2019).
[15] Gruber M.F., Aslak U., Hélix-Nielsen C.,
Open-Source CFD Model for Optimization of Forward Osmosis and Reverse Osmosis Membrane Modules.
Separation and Purification Technology,
158: 183–192 (2016).
[18] Wang J., Dlamini D.S., Mishra A.K., Pendergast M.T.M., Wong M.C.Y.Y., Mamba B.B., Freger V., Verliefde A.R.D., Hoek E.M.V.,
A critical review of transport through osmotic membranes.
Journal of Membrane Science,
454: 516–537 (2014).
[19] Vaidya S.Y., Simaria A.V., Murthy Z.V.P.,
Reverse Osmosis Transport Models Evaluation: A New Approach.
Indian Journal of Chemical Technology,
8(5): 335–343 (2001).
[21] Taherian M., Mousavi S.M.,
Modeling and Simulation of Forward Osmosis Process Using Agent-Based Model System.
Computers & Chemical Engineering,
100: 104–118 (2017).
[22] Gruber M.F., Johnson C.J., Tang C.Y., Jensen M.H., Yde L., Hélix-Nielsen C.,
Computational Fluid Dynamics Simulations of Flow and Concentration Polarization in Forward Osmosis Membrane Systems.
Journal of Membrane Science,
379(1–2): 488–495 (2011).
[23] Fletcher D.F., Wiley D.E.,
A Computational Fluids Dynamics Study of Buoyancy Effects in Reverse Osmosis.
Journal of Membrane Science,
245(1–2): 175–181 (2004).
[27] Baker R.W., "
Membrane Technology and Applications". Chichester, UK: John Wiley & Sons, Ltd, (2004).
[28] Marchetti P., Solomon M.F.J., Szekely G., Livingston A.G.,
Molecular Separation with Organic Solvent Nano filtration : A Critical Review.
Chemical Review,
114: 10735–10806 (2014).
[29] Lee K.L., Baker R.W., Lonsdale H.K.,
Membranes for Power Generation by Pressure-Retarded Osmosis.
Journal of Membrane Science,
8(2): 141–171 (1981).
[30] Loeb S., Titelman L., Korngold E., Freiman J.,
Effect of Porous Support Fabric on Osmosis Through a Loeb-Sourirajan Type Asymmetric Membrane. Journal of Membrane Science,
129(2): 243–249 (1997).
[38] Gruber M.F., Johnson C.J., Tang C., Jensen M.H., Yde L., Helix-Nielsen C.,
Validation and Analysis of Forward Osmosis CFD Model in Complex 3D Geometries.
Membranes,
2(4): 764–782 (2012).
[39] McCutcheon J.R., McGinnis R.L., Elimelech M.,
A Novel Ammonia—Carbon Dioxide Forward (Direct) Osmosis Desalination Process.
Desalination,
174(1): 1–11 (2005).
[40] Geraldes V.V., Semião V., De Pinho M.N.,
Flow and Mass Transfer Modelling of Nanofiltration.
Journal of Membrane Science,
191(1–2): 109–128 (2001).
[41] Tiraferri A., Yip N.Y., Straub A.P., Romero-Vargas Castrillon S., Elimelech M.,
A Method for the Simultaneous Determination of Transport and Structural Parameters of Forward Osmosis Membranes.
Journal of Membrane Science,
444: 523–538 (2013).