A novel low temperature crystallization process called eutectic freeze crystallization (EFC) can produce both salt(s) and ice from a reverse osmosis (RO) stream by operating at the eutectic temperature of a solution. The EFC reject stream, which is de-supersaturated with respect to the scaling component, can subsequently be recycled back to the RO process for increased water recovery. This paper looks at the feasibility of using EFC to remove calcium sulfate from an RO retentate stream and compares the results to recovery rates at 0 and 20 °C. The results showed that there was a greater yield of calcium sulfate obtained at 0 °C as compared with 20 °C. Operation under eutectic conditions, with only a 20% ice recovery, resulted in an even greater yield of calcium sulfate (48%) when compared with yields obtained at operating temperatures of 0 and 20 °C (15% at 0 °C and 13% at 20 °C). The theoretical calcium recoveries were found to be 75 and 70% at 0 and 20 °C respectively which was higher than the experimentally determined values. The EFC process has the added advantage of producing water along with a salt.
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Research Article|
January 01 2013
Improved calcium sulfate recovery from a reverse osmosis retentate using eutectic freeze crystallization Available to Purchase
D. G. Randall;
1Department of Chemical Engineering, University of Cape Town, Cape Town, South Africa
E-mail: [email protected]
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R. Mohamed;
R. Mohamed
2Unilever, Johannesburg, South Africa
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J. Nathoo;
J. Nathoo
3Research and Development, NuWater, Cape Town, South Africa
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H. Rossenrode;
H. Rossenrode
1Department of Chemical Engineering, University of Cape Town, Cape Town, South Africa
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A. E. Lewis
A. E. Lewis
1Department of Chemical Engineering, University of Cape Town, Cape Town, South Africa
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Water Sci Technol (2013) 67 (1): 139–146.
Article history
Received:
June 11 2012
Accepted:
August 03 2012
Citation
D. G. Randall, R. Mohamed, J. Nathoo, H. Rossenrode, A. E. Lewis; Improved calcium sulfate recovery from a reverse osmosis retentate using eutectic freeze crystallization. Water Sci Technol 1 January 2013; 67 (1): 139–146. doi: https://doi.org/10.2166/wst.2012.540
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