Removal of VOCs from aqueous solutions using pervaporation process

Paper Details

Research Paper 01/09/2012
Views (662)
current_issue_feature_image
publication_file

Removal of VOCs from aqueous solutions using pervaporation process

Majid Aliabadi, Mohsen Hajiabadi, Mohammad Ebadi
J. Biodiv. & Environ. Sci. 2(9), 33-38, September 2012.
Copyright Statement: Copyright 2012; The Author(s).
License: CC BY-NC 4.0

Abstract

The contamination of groundwater and surface water by Volatile organic compounds (VOCs) is a problem at many industrial sites. VOCs are present in effluents from industries such as petroleum refineries and chemical plants. Acrylonitrile, which is toxic to humans, is one of the VOCs used in large quantities as an important industrial material for production of synthetic polymers; consequently, it is present in many industrial effluents. More stringent requirements for the removal of VOCs from wastewater in recent years have increased the need to develop new technologies for removal of VOCs from dilute streams. Membrane pervaporation is an attractive and potentially cost-competitive alternative to traditional methods for removing low concentration of VOCs from wastewater. In this study, the batch removal of acrylonitrile, as a VOC, from aqueous solutions using pervavoration process under different experimental conditions was investigated. The influences of temperature, initial concentration, permeate pressure, feed flow rate and membrane thickness on the acrylonitrile removal efficiency was investigated. The results of experiments confirmed that pervaporation applied to the separation of organic compound from water and wastewater is very promising method. PDMS membrane showed very good properties in the separation of acrylonitrile, reaching 99.6% removal of that compound.

Collins JJ, Page LC, Caprossi JC, Utidjian HM, Saipher J. 1989. Mortality patterns among employees exposed to acrylonitrile. Journal of Occupational Medicine 31, 368-371.

Ghoreyshi A A, Jahanshahi M, Peyvandi K. 2008. Modeling of volatile organic compounds removal from water by pervaporation process, Desalination 222, 410-418.

Hilmioglu ND, Yildirim AE, Tulbentci S. 2010. A  pervaporation  application  for  treating  Methyle tert-Butyl Ether (MTBE)-contaminated water/wastewater. In: Dincer et al., eds. Global warming, Green Energy and technology. Springer, 555-563.

Kumar A, Prasad B, Mishra IM. 2008. Adsorptive removal of acrylonitrile by commercial grade activated carbon: Kinetics, equilibrium and thermodynamics. Journal of Hazardous Materials 152, 589-600.

Mackay D, WY Shiu, KC Ma. 2006, Handbook of Physical-Chemical Properties and Environmental Fate for Organic Chemicals, 2nd ed., CRC Press, 3210-3213.

Shakerkhatibi M, Ganjidoust H, Ayati B, Fatehifar E. 2010. Performance of aerated submerged fixed-film bioreactor for treatment of acrylonitrile-containing wastewater. Iranian Journal of Environmental Health Science and Engineering 7(4), 327-336.

Xu DX, Zhu QX, Zheng LK, Wang QN, Shen HM, Deng LX, Ong CN. 2003. Exposure to acrylonitrile induced DNA strand breakage and sex chromosome aneuploidy in human spermatozoa. Mutation Research: Genetic Toxicology and Environmental mutagenesis 537, 93-100.

Yahaya GO. 2008. Separation of volatile organic compounds (BTEX) from aqueous solutions by a composite organophilic hollow fiber membrane-based pervaporation process. Journal of Membrane Science 319 (1-2), 82-90.

Related Articles

Effect of different substrates on the domestication of Saba comorensis (Bojer) Pichon (Apocynaceae), a spontaneous plant used in agroforestry system

Claude Bernard Aké*1, Bi Irié Honoré Ta2, Adjo Annie Yvette Assalé1, Yao Sadaiou Sabas Barima1, J. Biodiv. & Environ. Sci. 27(1), 90-96, July 2025.

Determinants of tree resource consumption around Mont Sangbé national park in western Côte d’Ivoire

Kouamé Christophe Koffi, Serge Cherry Piba, Kouakou Hilaire Bohoussou, Naomie Ouffoue, Alex Beda, J. Biodiv. & Environ. Sci. 27(1), 71-81, July 2025.

Fishing ground and seasonal availability of diamondback squid (Thysanoteuthis rhombus) along southern Tañon Strait: Local fishermen’s insights

Robinson S. Amihan Jr., Hannah Abigail R. Daita, J. Biodiv. & Environ. Sci. 27(1), 61-70, July 2025.

Characteristics of the mycobiota of cultivated plants grown in the Kur-Araz valley according to ecolo-trophic relationships

Anakhanum Yusifova, Sanubar Aslanova, Basti Asadova, Irada Mammadova, Aytan Safarova, J. Biodiv. & Environ. Sci. 27(1), 55-60, July 2025.

Screening of an medicinal plant Crinum asiaticum L. bulb extracts for their proximate composition, phytochemical analysis and antioxidant activity

K. Gowthaman, P. Prakash, V. Ambikapathy, S. Babu, A. Panneerselvam, J. Biodiv. & Environ. Sci. 27(1), 41-54, July 2025.

Immunomodulatory effect of Panchagavya and Lactobacillus probiotics on Oreochromis mossambicus (W. K. H. Peters)

R. Keerthiga, M. Kannahi, J. Biodiv. & Environ. Sci. 27(1), 30-40, July 2025.

Evaluation of cashew nut (Anacardium occidentale L.) germplasm in North-Eastern Hilly region of Bangladesh

J. C. Sarker, F. Ahmed, S. Debnath, S. M. L. Rahman, M. H. M. B. Bhuyan, J. Biodiv. & Environ. Sci. 27(1), 21-29, July 2025.