Factors affecting phenol transfer through polydimethylsiloxane composite membrane
Desalination 234 (2008) 416-425
Authors
Abstract
Polydimethylsiloxane composite membrane was employed for the separation of phenol and sodium chloride in synthetic wastewater. The major operational parameters affecting phenol transfer through this composite membrane were screened by the orthogonal array and range analysis. The results showed that the significance of parameters on the permeate flux followed the order of phenol concentration, membrane skin layer thickness, recirculation rate, and sodium chloride concentration after 6 and 48 h operations. Optimal operation range was determined by the response surface methodology coupled with central composite design. The higher was the phenol concentration in the influent or the thicker was the membrane skin layer thickness, the higher was the permeate flux through membrane. Also, the higher was the recirculation rate, the higher was the permeate flux through membrane.
Conclusion
Treatment of organic wastewater containing high concentration of salts is needed in many applications. Membrane transferring organics coupling biological degradation was studied in this paper. Factors affecting phenol transfer through PDMS composite membrane have been investigated. Experimental results showed that the significance of parameters on the permeate flux followed the order of phenol concentration, membrane skin layer thickness, recirculation rate, and sodium chloride concentration after 6 and 48 h operations. The higher was the phenol concentration in the influent or the thicker was the membrane skin layer thickness, the higher was the permeate flux through membrane. Also, the recirculation rate had the positive effect on the permeate flux through membrane. The results demonstrated that PDMS composite membranes could separate phenol from the high inorganic wastewater effectively and biological phase degraded the permeated phenol completely through optimum addition of biocarriers.
Tags
Extractive membrane, Permeation, Phenol, Range analysis, Wet-phase inversion
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