Microbubble and nanobubble-based gas flotation for oily wastewater treatment: a review
Author(s) -
Wanhua Shen,
Debjani Mukherjee,
Narayan Koirala,
Guangji Hu,
Kenneth Lee,
Min Zhao,
Jianbing Li
Publication year - 2022
Publication title -
environmental reviews
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.283
H-Index - 68
eISSN - 1208-6053
pISSN - 1181-8700
DOI - 10.1139/er-2021-0127
Subject(s) - wastewater , dissolved air flotation , bubble , microbubbles , environmental science , froth flotation , fossil fuel , oil droplet , sewage treatment , materials science , waste management , petroleum engineering , chemical engineering , pulp and paper industry , environmental engineering , geology , metallurgy , emulsion , physics , parallel computing , computer science , acoustics , engineering , ultrasound
Gas flotation for oily wastewater treatment is based on the attachment of gas bubbles to oil droplets to produce lighter aggregates that rise to the wastewater surface. It is a feasible, promising, and effective method for oily wastewater treatment due to its high separation efficiency with no secondary contamination, cost-effectiveness, and simple operation. This review focuses on separating oil from emulsions by gas flotation using microbubbles and nanobubbles which offer the advantages of small bubble size, large specific surface area, and slow rising velocity. The properties of different types of gas bubbles and their generation methods were discussed. Different gas flotation system designs and operational parameters were summarized for dissolved gas flotation, induced gas flotation, and electrolytic flotation. The review illustrated that oil removal efficiency in microbubble and nanobubble-based gas flotation was affected by various factors including initial oil concentration, pH, temperature, flotation time, and oil droplet size.
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