AccScience Publishing / AJWEP / Volume 19 / Issue 5 / DOI: 10.3233/AJW220070
RESEARCH ARTICLE

Experimental Study for Benzene/Water Removal by Air Gap Membrane Distillation

Divya Gaur Kailash Singh1 Sushant Upadhyaya1* Shiv Om Meena1
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1 Department of Chemical Engineering, Malaviya National Institute of Technology, Jaipur – 302017, India
AJWEP 2022, 19(5), 43–51; https://doi.org/10.3233/AJW220070
Submitted: 4 June 2022 | Revised: 15 June 2022 | Accepted: 15 June 2022 | Published: 16 September 2022
© 2022 by the Author(s). This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution -Noncommercial 4.0 International License (CC-by the license) ( https://creativecommons.org/licenses/by-nc/4.0/ )
Abstract

Benzene, a hazardous chemical, is one of the effluents which are eliminated by various industries as  waste products into the water bodies. Various techniques are used for the separation of benzene from waste water  such as liquid-liquid extraction, adsorption, absorption and pervaporation, and membrane distillation (MD). In this  work, the air gap membrane distillation technique is used for the removal of benzene from benzene-water solution.  Microporous hydrophobic polytetrafluoroethylene (PTFE) membrane was used in the membrane module in the  AGMD setup. The effect of various parameters, such as feed bulk temperature and air gap width, were studied  on permeate flux and membrane selectivity. It was observed that on increasing the feed bulk temperature from  40°C to 60°C, the permeate flux increases exponentially from 2.95 kg/m2 ·h to 4.63 kg/m2 ·h at an air gap of 3  mm. However, on increasing the air gap width from 3 mm to 11 mm, the permeate flux decreased tremendously  from 4.63 kg/m2 ·h to 0.93 kg/m2 ·h at 2 lpm of feed flow rate under a constant feed temperature of 60°C. It was  also found that the selectivity of benzene in permeate increases from 40.57 to 63.74, on increasing the feed bulk  temperature from 40°C to 60°C, which clearly indicates the separation of benzene by using air gap membrane  distillation. The UV-Vis spectrophotometer is used for determining the concentration of benzene in permeate at  the wavelength of 255 nm. The membrane morphology of the hydrophobic PTFE membrane was studied using  FE-SEM, prior and after the experimental runs for continuous 200 hours.

Keywords
Benzene
air gap membrane distillation
selectivity
PTFE
UV-Vis spectrophotometer
FE-SEM
Conflict of interest
The authors declare they have no competing interests.
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Asian Journal of Water, Environment and Pollution, Electronic ISSN: 1875-8568 Print ISSN: 0972-9860, Published by AccScience Publishing