Selectivity and Mass Transfer Limitations in Pressure-Retarded Osmosis at High Concentrations and Increased Operating Pressures.
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Tzahi Y Cath | Menachem Elimelech | Anthony P Straub | Anthony P. Straub | Chinedum O Osuji | M. Elimelech | C. Osuji | T. Cath
[1] Young Kim,et al. Experimental investigation of a spiral-wound pressure-retarded osmosis membrane module for osmotic power generation. , 2013, Environmental science & technology.
[2] J. McCutcheon,et al. Influence of concentrative and dilutive internal concentration polarization on flux behavior in forward osmosis , 2006 .
[3] G. Wick,et al. Salt Domes: Is There More Energy Available from Their Salt than from Their Oil? , 1978, Science.
[4] Tai‐Shung Chung,et al. High performance thin film composite pressure retarded osmosis (PRO) membranes for renewable salinity-gradient energy generation , 2013 .
[5] B. Freeman,et al. Sodium chloride diffusion in sulfonated polymers for membrane applications , 2012 .
[6] Nhu-Ngoc Bui,et al. Hydrophilic nanofibers as new supports for thin film composite membranes for engineered osmosis. , 2013, Environmental science & technology.
[7] Eric Litwiller,et al. Solution-diffusion with defects model for pressure-assisted forward osmosis , 2014 .
[8] Thomas K. Sherwood,et al. Desalination by Reverse Osmosis , 1967 .
[9] Menachem Elimelech,et al. High performance thin-film composite forward osmosis membrane. , 2010, Environmental science & technology.
[10] Klaus-Viktor Peinemann,et al. Membranes for Power Generation by Pressure Retarded Osmosis , 2008 .
[11] Roberto Ziano,et al. Capacitive Mixing for Harvesting the Free Energy of Solutions at Different Concentrations , 2013, Entropy.
[12] Gang Han,et al. Highly robust thin-film composite pressure retarded osmosis (PRO) hollow fiber membranes with high power densities for renewable salinity-gradient energy generation. , 2013, Environmental science & technology.
[13] Xiaoxiao Song,et al. Energy recovery from concentrated seawater brine by thin-film nanofiber composite pressure retarded osmosis membranes with high power density , 2013 .
[14] Amy E. Childress,et al. Power generation with pressure retarded osmosis: An experimental and theoretical investigation , 2009 .
[15] Y. Marcus,et al. Ion pairing. , 2006, Chemical reviews.
[16] E. Nagy. A general, resistance-in-series, salt- and water flux models for forward osmosis and pressure-retarded osmosis for energy generation , 2014 .
[17] Joon Ha Kim,et al. Reverse osmosis (RO) and pressure retarded osmosis (PRO) hybrid processes: Model-based scenario study , 2013 .
[18] Menachem Elimelech,et al. Bidirectional diffusion of ammonium and sodium cations in forward osmosis: role of membrane active layer surface chemistry and charge. , 2014, Environmental science & technology.
[19] R. Baker. Membrane Technology and Applications , 1999 .
[20] Dc Kitty Nijmeijer,et al. Experimentally obtainable energy from mixing river water, seawater or brines with reverse electrodialysis , 2014 .
[21] Jeffrey R. McCutcheon,et al. Proper accounting of mass transfer resistances in forward osmosis: Improving the accuracy of model predictions of structural parameter , 2015 .
[22] R. S. Norman,et al. Osmotic power plants. , 1975, Science.
[23] Anthony P. Straub,et al. Thermodynamic limits of extractable energy by pressure retarded osmosis , 2014 .
[24] Pragasen Pillay,et al. Osmotic power potential in remote regions of Quebec , 2015 .
[25] J. Lienhard,et al. Limits of power production due to finite membrane area in pressure retarded osmosis , 2014 .
[26] Benny D. Freeman,et al. Fundamental water and salt transport properties of polymeric materials , 2014 .
[27] V. Afanas’ev. Solvation of electrolytes and nonelectrolytes in aqueous solutions. , 2011, The journal of physical chemistry. B.
[28] Ngai Yin Yip,et al. Hybrid pressure retarded osmosis-membrane distillation system for power generation from low-grade heat: thermodynamic analysis and energy efficiency. , 2014, Environmental science & technology.
[29] B. Freeman,et al. Sodium chloride sorption in sulfonated polymers for membrane applications , 2012 .
[30] Chuyang Y. Tang,et al. Effect of feed spacer induced membrane deformation on the performance of pressure retarded osmosis (PRO): Implications for PRO process operation , 2013 .
[31] Aatto Laaksonen,et al. Concentration Effects in Aqueous NaCl Solutions. A Molecular Dynamics Simulation , 1996 .
[32] Andrea Achilli,et al. Experimental results from RO-PRO: a next generation system for low-energy desalination. , 2014, Environmental science & technology.
[33] T. Holt,et al. The potential for power production from salinity gradients by pressure retarded osmosis , 2009 .
[34] V. Vitagliano,et al. Diffusion Coefficients for Aqueous Solutions of Sodium Chloride and Barium Chloride , 1956 .
[35] Bruce E Logan,et al. Energy recovery from solutions with different salinities based on swelling and shrinking of hydrogels. , 2014, Environmental science & technology.
[36] Atul K. Jain,et al. Stability: Energy for a Greenhouse Planet Advanced Technology Paths to Global Climate , 2008 .
[37] Menachem Elimelech,et al. Raising the Bar: Increased Hydraulic Pressure Allows Unprecedented High Power Densities in Pressure-Retarded Osmosis , 2014 .
[38] Guy Z. Ramon,et al. Membrane-based production of salinity-gradient power , 2011 .
[39] Menachem Elimelech,et al. A method for the simultaneous determination of transport and structural parameters of forward osmosis membranes , 2013 .
[40] Ngai Yin Yip,et al. Desalination by forward osmosis: Identifying performance limiting parameters through module-scale modeling , 2015 .
[41] Guy Z. Ramon,et al. Scale-up characteristics of membrane-based salinity-gradient power production , 2015 .
[42] Ngai Yin Yip,et al. Thin-film composite pressure retarded osmosis membranes for sustainable power generation from salinity gradients. , 2011, Environmental science & technology.
[43] J. G. Wijmans,et al. The solution-diffusion model: a review , 1995 .
[44] Menachem Elimelech,et al. Thermodynamic, energy efficiency, and power density analysis of reverse electrodialysis power generation with natural salinity gradients. , 2014, Environmental science & technology.
[45] Chuyang Y. Tang,et al. Thin-film composite hollow fiber membranes for Pressure Retarded Osmosis (PRO) process with high power density , 2012 .
[46] Ngai Yin Yip,et al. Comparison of energy efficiency and power density in pressure retarded osmosis and reverse electrodialysis. , 2014, Environmental science & technology.
[47] Nhu-Ngoc Bui,et al. Nanofiber supported thin-film composite membrane for pressure-retarded osmosis. , 2014, Environmental science & technology.
[48] Menachem Elimelech,et al. Relating performance of thin-film composite forward osmosis membranes to support layer formation and , 2011 .
[49] Adel O. Sharif,et al. Evaluation of FO-RO and PRO-RO designs for power generation and seawater desalination using impaired water feeds , 2015 .
[50] Menachem Elimelech,et al. Module-scale analysis of pressure retarded osmosis: performance limitations and implications for full-scale operation. , 2014, Environmental science & technology.
[51] M. Mellia,et al. Comparison of energy efficiency in PSTN and VoIP systems , 2012, 2012 Third International Conference on Future Systems: Where Energy, Computing and Communication Meet (e-Energy).
[52] Chuyang Y. Tang,et al. Computational fluid dynamics simulations of flow and concentration polarization in forward osmosis membrane systems , 2011 .
[53] Rong Wang,et al. Robust and High performance hollow fiber membranes for energy harvesting from salinity gradients by pressure retarded osmosis , 2013 .
[54] M. Elimelech,et al. Direct quantification of negatively charged functional groups on membrane surfaces , 2012 .
[55] M. Elimelech,et al. Membrane-based processes for sustainable power generation using water , 2012, Nature.
[56] Andrea Achilli,et al. Pressure retarded osmosis: From the vision of Sidney Loeb to the first prototype installation — Review , 2010 .
[57] Edvard Sivertsen,et al. Iso-watt diagrams for evaluation of membrane performance in pressure retarded osmosis , 2015 .
[58] R. E. Pattle. Production of Electric Power by mixing Fresh and Salt Water in the Hydroelectric Pile , 1954, Nature.
[59] S. Loeb. Energy production at the Dead Sea by pressure-retarded osmosis: challenge or chimera? , 1998 .
[60] Sui Zhang,et al. Minimizing the instant and accumulative effects of salt permeability to sustain ultrahigh osmotic power density. , 2013, Environmental science & technology.
[61] Menachem Elimelech,et al. Adverse impact of feed channel spacers on the performance of pressure retarded osmosis. , 2012, Environmental science & technology.
[62] Marta C. Hatzell,et al. Capacitive mixing power production from salinity gradient energy enhanced through exoelectrogen-generated ionic currents , 2014 .
[63] Stein Erik Skilhagen. Osmotic power — a new, renewable energy source , 2010 .
[64] Robert L McGinnis,et al. A novel ammonia–carbon dioxide osmotic heat engine for power generation , 2007 .
[65] Masaru Kurihara,et al. Mega-ton Water System: Japanese national research and development project on seawater desalination and wastewater reclamation , 2013 .
[66] Chuyang Y. Tang,et al. Osmotic power production from salinity gradient resource by pressure retarded osmosis: Effects of operating conditions and reverse solute diffusion , 2012 .
[67] Charles James Lemckert,et al. Osmotic power with Pressure Retarded Osmosis: Theory, performance and trends – A review , 2014 .
[68] V. Freger,et al. Ion transport in the polyamide layer of RO membranes: Composite membranes and free-standing films , 2011 .