Flue gas treatment with ozone oxidation: An overview on NOx, organic pollutants, and mercury

[Display omitted] •Ozone oxidation coupled with post-absorption is firstly reviewed for flue gas treatment.•Simultaneous removal of NOx, SO2, VOCs, and mercury can be achieved by this technology.•Solubility increase and bond breaking are basic principles for pollutants removal by ozone.•This technol...

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Published inChemical engineering journal (Lausanne, Switzerland : 1996) Vol. 382
Main Authors Lin, Fawei, Wang, Zhihua, Zhang, Zhiman, He, Yong, Zhu, Yanqun, Shao, Jiaming, Yuan, Dingkun, Chen, Guanyi, Cen, Kefa
Format Journal Article
LanguageEnglish
Published Elsevier B.V 15.02.2020
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Abstract [Display omitted] •Ozone oxidation coupled with post-absorption is firstly reviewed for flue gas treatment.•Simultaneous removal of NOx, SO2, VOCs, and mercury can be achieved by this technology.•Solubility increase and bond breaking are basic principles for pollutants removal by ozone.•This technology is potential to attain ultra-low emission for industrial boiler and furnaces. Traditional flue gas pollutants treatment technologies are installed with their individual function. Industries usually make simple combination and increase operation load of equipment to face with the increasing stringent environmental stress and emission standard. Especially, these technique routes are not available to industrial boilers and furnaces because of specific conditions, such as unsuitable temperature window, complicated components in flue gas, and flexible operation. Simultaneous removal of multi-pollutants within one or two devices is a prospective direction that can save space occupation and cost. Interestingly, the solubility of NOx and mercury increases with its valance state, and organic pollutants can be degraded into nontoxic small molecules by oxidation. Ozone is a strong gas phase oxidant that can achieve pre-oxidation at low temperature, following by post-absorption to completely remove oxidized products. This review focuses on research progress involved in homogeneous and heterogeneous catalytic oxidation of NOx, organic pollutants, and mercury by ozone, as well as NOx absorption regarding of its full path removal. The reaction mechanism, kinetics, operation parameters, conversion efficiency and ozone residual are all summarized in detail. This paper also systematically reviews various approaches in catalytic ozonation towards improving catalytic activity, selectivity, and stability, as well as lowering temperature, such as active metals, metal loading contents, supports, precursors, and other modification. Finally, the overall technique route of simultaneous removal of multi-pollutants by ozone is analyzed. In conclusion, the ozone oxidation technology is advantaged in flue gas pollutants treatment, including low temperature, no massive adjustment in operation and original devices, saving space, no secondary pollution, N/S sources recovery, and potential to ultra-low emission.
AbstractList [Display omitted] •Ozone oxidation coupled with post-absorption is firstly reviewed for flue gas treatment.•Simultaneous removal of NOx, SO2, VOCs, and mercury can be achieved by this technology.•Solubility increase and bond breaking are basic principles for pollutants removal by ozone.•This technology is potential to attain ultra-low emission for industrial boiler and furnaces. Traditional flue gas pollutants treatment technologies are installed with their individual function. Industries usually make simple combination and increase operation load of equipment to face with the increasing stringent environmental stress and emission standard. Especially, these technique routes are not available to industrial boilers and furnaces because of specific conditions, such as unsuitable temperature window, complicated components in flue gas, and flexible operation. Simultaneous removal of multi-pollutants within one or two devices is a prospective direction that can save space occupation and cost. Interestingly, the solubility of NOx and mercury increases with its valance state, and organic pollutants can be degraded into nontoxic small molecules by oxidation. Ozone is a strong gas phase oxidant that can achieve pre-oxidation at low temperature, following by post-absorption to completely remove oxidized products. This review focuses on research progress involved in homogeneous and heterogeneous catalytic oxidation of NOx, organic pollutants, and mercury by ozone, as well as NOx absorption regarding of its full path removal. The reaction mechanism, kinetics, operation parameters, conversion efficiency and ozone residual are all summarized in detail. This paper also systematically reviews various approaches in catalytic ozonation towards improving catalytic activity, selectivity, and stability, as well as lowering temperature, such as active metals, metal loading contents, supports, precursors, and other modification. Finally, the overall technique route of simultaneous removal of multi-pollutants by ozone is analyzed. In conclusion, the ozone oxidation technology is advantaged in flue gas pollutants treatment, including low temperature, no massive adjustment in operation and original devices, saving space, no secondary pollution, N/S sources recovery, and potential to ultra-low emission.
ArticleNumber 123030
Author Shao, Jiaming
Chen, Guanyi
Zhu, Yanqun
Wang, Zhihua
Yuan, Dingkun
Zhang, Zhiman
He, Yong
Cen, Kefa
Lin, Fawei
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Keywords Simultaneous removal
Ozone oxidation
Organic pollutants
Flue gas
NOx
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Snippet [Display omitted] •Ozone oxidation coupled with post-absorption is firstly reviewed for flue gas treatment.•Simultaneous removal of NOx, SO2, VOCs, and mercury...
SourceID elsevier
SourceType Publisher
SubjectTerms Flue gas
NOx
Organic pollutants
Ozone oxidation
Simultaneous removal
Title Flue gas treatment with ozone oxidation: An overview on NOx, organic pollutants, and mercury
URI https://dx.doi.org/10.1016/j.cej.2019.123030
Volume 382
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