Process Intensification Strategies of Foam Fractionation and Its Applications in Food Industry

被引:0
作者
Cheng, Xiaodong [1 ]
Liu, Wei [1 ]
Yang, Chunyan [1 ]
Yin, Hao [1 ]
Lu, Ke [1 ]
机构
[1] School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin
关键词
foam drainage; foam fractionation; interfacial adsorption; process intensification; surfactant;
D O I
10.13386/j.issn1002-0306.2023100241
中图分类号
学科分类号
摘要
Foam fractionation is a green and economical primary separation technique and it has excellent application prospect in the field of food industry. However, it is difficult to simultaneously obtain the high values of enrichment ratio and recovery percentage in a batch operation of foam fractionation due to the opposite effects of operating parameters on interfacial adsorption and foam drainage. In order to solve this problem, multiple process intensification strategies of foam fractionation are developed. In this work, the current studies on the intensification methods of interfacial adsorption and foam drainage were firstly reviewed. The advantages and disadvantages of these methods are analyzed. Subsequently, the research progress of foam fractionation in the separation of proteins, enzymes, saponins, polyphenols and biological preservatives are summarized. Based on the literature review and problem analysis, three future research respects are proposed to promote the industrial application of foam fractionation: Developing new methods which would simultaneously improve interfacial adsorption and foam drainage, designing new collectors with strong binding specificity for non-surface-active materials and good reusability, and inhibiting protein denaturation during desorption process. © The Author(s) 2024.
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页码:384 / 393
页数:9
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共 81 条
[1]  
BUCKLEY T, KARANAM K, XU X, Et al., Effect of mono- and di-valent cations on PFAS removal from water using foam fractionation-A modelling and experimental study[J], Separation and Purification Technology, 286, (2022)
[2]  
KESHAVARZI B, KRAUSE T, SIKANDAR S, Et al., Protein enrichment by foam fractionation:Experiment and modeling[J], Chemical Engineering Science, 256, (2022)
[3]  
KUMAR A K, GHOSH P., Removal and recovery of an anionic surfactant in the presence of alcohol by foam fractionation[J], Industrial & Engineering Chemistry Research, 61, 21, pp. 7349-7360, (2022)
[4]  
GHOSH R, SAHU A, PUSHPAVANAM S., Removal of trace hexavalent chromium from aqueous solutions by ion foam fractionation[J], Journal of Hazardous Materials, 367, pp. 589-598, (2019)
[5]  
AMBREEN R, SARFRAZ S, QAMAR F, Et al., The use of surface active agents for effective removal of dyes/pigments:A perspective review on solubilization and foam fractionation[J], Journal of Innovative Sciences, 7, 2, pp. 222-228, (2021)
[6]  
GHOSH R, HAREENDRAN H, SUBRAMANIAM P., Adsorption of fluoroquinolone antibiotics at the gas-liquid interface using ionic surfactants[J], Langmuir, 35, 39, pp. 12839-12850, (2019)
[7]  
SMITH S J, WIBERG K, MCCLEAF P, Et al., pilot-scale continuous foam fractionation for the removal of per-and polyfluoroalkyl substances (PFAS) from landfill leachate[J], ACS Es&t Water, 2, 5, pp. 841-851, (2022)
[8]  
LIU D Y, ZHANG Y, LIU W, Et al., Recovery of bovine serum albumin from its aqueous solution by ultrasonic assisted foam separation[J], Science and Technology of Food Industry, 42, 6, (2021)
[9]  
SRINET S S, BASAK A, GHOSH P, Et al., Separation of anionic surfactant in paste form from its aqueous solutions using foam fractionation[J], Journal of Environmental Chemical Engineering, 5, 2, pp. 1586-1598, (2017)
[10]  
Mingdong JI, Haijun LI, Jianping LI, Et al., Effect of mesh size on microscreen filtration combined with foam fractionation for solids removal in recirculating aquacultural seawater[J], North American Journal of Aquaculture, 82, 2, pp. 215-223, (2020)