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活性炭催化臭氧氧化扑热息痛的机制研究 被引量:20

Mechanism of Catalytic Ozonation for the Degradation of Paracetamol by Activated Carbon
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摘要 采用活性炭催化臭氧处理典型解热镇痛药扑热息痛,研究了活性炭/臭氧体系的协同效应,优化了工艺参数,分析了降解产物并探讨了降解机制.结果表明:在臭氧活性炭体系下,反应60 min后,TOC的去除率为55.11%,效果明显优于臭氧体系的20.22%和活性炭体系的27.39%之和,具有明显的协同作用,并且BOD5/COD比值从反应前的0.086提高到反应后的0.543,可生化性显著提高.研究了pH、臭氧投加量、污染物初始浓度和活性炭投加量等操作参数的作用规律.在此基础上,探讨了臭氧活性炭体系在不同pH下的催化反应机制,发现在酸性条件下是吸附和臭氧直接氧化共同作用,在碱性条件下以活性炭催化臭氧氧化为主. The degradation of paracetamol(APAP) in aqueous solution was studied with ozonation integrated with activated carbon(AC).The synergistic effect of ozonation/AC process was explored by comparing the degradation efficiency of APAP in three processes(ozonation alone,activated carbon alone and ozonation integrated with activated carbon).The operational parameters that affected the reaction rate were carefully optimized.Based on the intermediates detected,the possible pathway for catalytic degradation was discussed and the reaction mechanism was also investigated.The results showed that the TOC removal reached 55.11% at 60 min in the AC/O3 system,and was significantly better than the sum of ozonation alone(20.22%) and activated carbon alone(27.39%),showing the great synergistic effect.And the BOD5/COD ratio increased from 0.086(before reaction) to 0.543(after reaction),indicating that the biodegradability was also greatly improved.The effects of the initial concentration of APAP,pH value,ozone dosage and AC dosage on the variation of reaction rate were carefully discussed.The catalytic reaction mechanism was different at different pH values: the organic pollutions were removed by adsorption and direct ozone oxidation at acidic pH,and mainly by catalytic ozonation at alkaline pH.
出处 《环境科学》 EI CAS CSCD 北大核心 2013年第4期1402-1410,共9页 Environmental Science
基金 浙江省重大科技专项(2008C13014-6) 浙江省重点科技创新团队项目(2011R09048-04)
关键词 催化臭氧化 活性炭 扑热息痛 降解机制 catalytic ozonation activated carbon paracetamol degradation mechanism
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  • 1Joss A, Keller E, Alder A C, et al. Removal of pharmaceuticals and fragrances in biological wastewater treatment [ J ]. Water Research, 2005, 39( 14): 3139-3152. 被引量:1
  • 2Sirtori C, Zapata A, Oiler I, et al. Decontamination industrial pharmaceutical wastewater by combining solar photo-Fenton and biological treatment [ J ]. Water Research, 2009, 43 ( 3 ) : 661- 668. 被引量:1
  • 3Clara M, Strenn B, Gans O, et al. Removal of selected pharmaceuticals, fragrances and endocrine disrupting compounds in a membrane bioreactor and conventional wastewater treatment plants[ J ]. Water Research, 2005, 39 (19): 4797-4807. 被引量:1
  • 4Halling-Scrensen B, Nielsen S N, Lanzky P F, et al. Occurrence, fate and effects of pharmaceutical substances in the environment-a review [ J]. Chemosphere, 1998, 36 ( 2 ) : 357- 393. 被引量:1
  • 5Ternes T A, Meisenheimer M, Mcdowell D, et al. Removal of pharmaceuticals during drinking water treatment [ J ]. Environmental Science and Technology, 2002, 36 (17) : 3855- 3863. 被引量:1
  • 6Peng X Z, Yu Y Y, Tang C M, et al. Occurrence of steroid estrogens, endocrine-disrupting phenols, and acid pharmaceutical residues in urban riverine water of the Pearl River Delta, South China[ J]. Science of the Total Environment, 2008, 397( 1-3 ) : 158-166. 被引量:1
  • 7Richardson B J, Lam P K S, Martin M. Emerging chemicals of concern: Pharmaceuticals and personal care products (PPCPs) in Asia, with particular reference to Southern China[ J]. Marine Pollution Bulletin, 2005, 511(9): 913-920. 被引量:1
  • 8刘钰,杨曦,高颖.扑热息痛在硝酸根溶液中的光解研究[J].环境科学,2007,28(6):1274-1279. 被引量:19
  • 9Sun Q, Huang J, Deng S B, et al. Occurrence and removal of pharmaceuticals, caffeine and DEET in wastewater treatment plants of Beijing, China[J]. Water Research, 2010, 44(2): 417-426. 被引量:1
  • 10高颖,杨曦,刘钰.含碳酸盐水溶液中扑热息痛的光解研究[J].环境科学,2008,29(3):643-649. 被引量:5

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