Review of foam fractionation as a water treatment technology

Foam fractionation is a well-developed technology used to separate surface-active compounds from solution by exploiting their affinity for the air-water interface. The technology was founded in the 1940s and has since evolved into a key technology for treatment of many different pollutants from a va...

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Published inSeparation science and technology Vol. 57; no. 6; pp. 929 - 958
Main Authors Buckley, Thomas, Xu, Xiaoyong, Rudolph, Victor, Firouzi, Mahshid, Shukla, Pradeep
Format Journal Article
LanguageEnglish
Published Abingdon Taylor & Francis 13.04.2022
Taylor & Francis Ltd
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Abstract Foam fractionation is a well-developed technology used to separate surface-active compounds from solution by exploiting their affinity for the air-water interface. The technology was founded in the 1940s and has since evolved into a key technology for treatment of many different pollutants from a variety of different industries such as textiles and dyes, heavy metals, proteins in food processing waste and even per- and poly-fluoroalkyl substances (PFAS). The technology has even progressed from a standard batch process to a continuous process with an applied reflux to being presently used as an in-situ groundwater remediation and soil remediation process. This review provides a snapshot of the historical evolution of foam fractionation, a discussion of the mechanism behind foam fractionation, the effect of key operating variables on the performance parameters, identification of the key transport processes that take place within a foam fractionation system, a review of the modeling of foam fractionation as a water treatment technology and a review of the applications of foam fractionation as a water treatment technology.
AbstractList Foam fractionation is a well-developed technology used to separate surface-active compounds from solution by exploiting their affinity for the air-water interface. The technology was founded in the 1940s and has since evolved into a key technology for treatment of many different pollutants from a variety of different industries such as textiles and dyes, heavy metals, proteins in food processing waste and even per- and poly-fluoroalkyl substances (PFAS). The technology has even progressed from a standard batch process to a continuous process with an applied reflux to being presently used as an in-situ groundwater remediation and soil remediation process. This review provides a snapshot of the historical evolution of foam fractionation, a discussion of the mechanism behind foam fractionation, the effect of key operating variables on the performance parameters, identification of the key transport processes that take place within a foam fractionation system, a review of the modeling of foam fractionation as a water treatment technology and a review of the applications of foam fractionation as a water treatment technology.
Author Buckley, Thomas
Xu, Xiaoyong
Firouzi, Mahshid
Rudolph, Victor
Shukla, Pradeep
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  givenname: Xiaoyong
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  fullname: Xu, Xiaoyong
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  surname: Rudolph
  fullname: Rudolph, Victor
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  surname: Firouzi
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  givenname: Pradeep
  surname: Shukla
  fullname: Shukla, Pradeep
  organization: The University of Queensland
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Snippet Foam fractionation is a well-developed technology used to separate surface-active compounds from solution by exploiting their affinity for the air-water...
Foam fractionation is a well-developed technology used to separate surface-active compounds from solution by exploiting their affinity for the air–water...
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SubjectTerms Air-water interface
Dyes
Evolution
Foam fractionation
Foam separation
Food processing
Food waste
Fractionation
Groundwater
Groundwater treatment
Heavy metals
Industry
Metals
Parameter identification
PFAS
Pollutants
Soil remediation
surface-active compounds
Technology
Textiles
Transport processes
wastewater
Water treatment
Title Review of foam fractionation as a water treatment technology
URI https://www.tandfonline.com/doi/abs/10.1080/01496395.2021.1946698
https://www.proquest.com/docview/2627033454
Volume 57
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