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臭氧混凝耦合体系中 H2O2 对溴酸盐生成的抑制效果及相关机理

Translated title of the contribution: Inhibitory effect and mechanism of bromate formation by H2O2 in the hybrid ozonation-coagulation process
  • Mengwen Liu
  • , Jiaxin Xi
  • , Ziqiang Xu
  • , Huiwen Zuo
  • , Jina Song
  • , Xin Jin
  • , Pengkang Jin
  • , Xiaochang Wang
  • Xi'an University of Architecture and Technology
  • Natl. Engineering Laboratory for Exploration and Development of Low-Permeability Oil and Gas Fields
  • Oil and Gas Technology Research Institute of Petrochina Changqing Oilfield Company
  • Hebei University of Engineering

Research output: Contribution to journalArticlepeer-review

Abstract

In this study, the inhibitory effect of H2O2 on bromate disinfection byproducts (BrO3) formation in the hybrid ozonation-coagulation (HOC) process was investigated, and the main generation pathway of BrO3 and the inhibitory mechanism of BrO3 generation by H2O2 addition were clarified. The results showed that when n(H2O2):n(O3)>0.5, BrO3 formation could be effectively mitigated. When the ozone dosage was 4.5 mg·L−1 and n(H2O2):n(O3)=2, BrO3 production could be effectively controlled below 0.01 mg·L−1. Through the analysis of BrO3 generation contribution rate and Br consumption kinetics, direct ozone oxidation was the main pathway of BrO3 generation in the HOC process, and the contribution rate maintained above than 80%. With the addition of H2O2, the contribution rate of •OH indirect oxidation increased, while ozone direct oxidation was still the main pathway for BrO3 generation with the contribution rate above 60%. With the addition of H2O2, the consumption reaction of Br was slow at first and then became fast.

Translated title of the contributionInhibitory effect and mechanism of bromate formation by H2O2 in the hybrid ozonation-coagulation process
Original languageChinese (Traditional)
Pages (from-to)1225-1233
Number of pages9
JournalChinese Journal of Environmental Engineering
Volume17
Issue number4
DOIs
StatePublished - May 2023

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