Chang approximation for the osmotic pressure of dilute to concentrated solutions

As many regions around the world are facing water scarcity, reverse osmosis (RO) has attracted attention to supply fresh water to such areas. To design and develop energy-efficient RO processes, accurate osmotic pressure values of salt water are critical, yet conventional models of osmotic pressure...

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Veröffentlicht in:The Korean journal of chemical engineering 2020, 37(4), 241, pp.583-587
Hauptverfasser: Chang, Ho Nam, Choi, Kyeong Rok, Lee, Sang Yup, Seon, Mi-Hyang, Chang, Yoon-Seok
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Sprache:eng
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Zusammenfassung:As many regions around the world are facing water scarcity, reverse osmosis (RO) has attracted attention to supply fresh water to such areas. To design and develop energy-efficient RO processes, accurate osmotic pressure values of salt water are critical, yet conventional models of osmotic pressure have significant deviations from the actual values. In addition, absence or high charge of authentic osmotic pressure databases prevents accessing authentic data. Here, we propose combining the Chang correction factor, a polynomial in solution concentration, with traditional osmotic pressure models to approximate the osmotic pressure of dilute to concentrated solutions with high accuracy. The Chang correction factor is determined by regressing a handful of authentic osmotic pressure data divided by theo- retical values calculated using traditional models. Multiplication of resulting polynomials back to corresponding tradi- tional models enables accurate approximation of the authentic osmotic pressure of dilute to concentrated solutions with R 2 approaching 1. In addition, generality of the strategy over aqueous and organic solutions is demonstrated by approx- imating osmotic pressure of NaCl and sucrose aqueous solutions and C 2 H 4 Cl 2 -C 6 H 6 and C 3 H 6 Br 2 -C 2 H 4 Br 2 organic solutions. The approximation strategy proposed and assessed here will be useful to simulate and develop processes for seawater desalination and various industries with high importance.
ISSN:0256-1115
1975-7220
DOI:10.1007/s11814-019-0460-2