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Biostability in distribution systems in one city in southern China: Characteristics, modeling and control strategy 被引量:7

Biostability in distribution systems in one city in southern China: Characteristics, modeling and control strategy
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摘要 This study investigated the bacterial regrowth in drinking water distribution systems receiving finished water from an advanced drinking water treatment plant in one city in southem China. Thirteen nodes in two water supply zones with different aged pipelines were selected to monitor water temperature, dissolved oxygen (DO), chloramine residual, assimilable organic carbon (AOC), and heterotrophic plate counts (HPC). Regression and principal component analyses indicated that HPC had a strong correlation with chloramine residual. Based on Chick-Watson's Law and the Monod equation, biostability curves under different conditions were developed to achieve the goal of HPC 100 CFU/mL. The biostability curves could interpret the scenario under various AOC concentrations and predict the required chloramine residual concentration under the condition of high AOC level. The simulation was also carded out to predict the scenario with a stricter HPC goal (≤50 CFU/mL) and determine the required chloramine residual. The biological regrowth control strategy was assessed using biostability curve analysis. The results indicated that maintaining high chloramine residual concentration was the most practical way to achieve the goal of HPC ≤ 100 CFU/mL. Biostability curves could be a very useful tool for biostability control in distribution systems. This work could provide some new insights towards biostability control in real distribution systems. This study investigated the bacterial regrowth in drinking water distribution systems receiving finished water from an advanced drinking water treatment plant in one city in southem China. Thirteen nodes in two water supply zones with different aged pipelines were selected to monitor water temperature, dissolved oxygen (DO), chloramine residual, assimilable organic carbon (AOC), and heterotrophic plate counts (HPC). Regression and principal component analyses indicated that HPC had a strong correlation with chloramine residual. Based on Chick-Watson's Law and the Monod equation, biostability curves under different conditions were developed to achieve the goal of HPC 100 CFU/mL. The biostability curves could interpret the scenario under various AOC concentrations and predict the required chloramine residual concentration under the condition of high AOC level. The simulation was also carded out to predict the scenario with a stricter HPC goal (≤50 CFU/mL) and determine the required chloramine residual. The biological regrowth control strategy was assessed using biostability curve analysis. The results indicated that maintaining high chloramine residual concentration was the most practical way to achieve the goal of HPC ≤ 100 CFU/mL. Biostability curves could be a very useful tool for biostability control in distribution systems. This work could provide some new insights towards biostability control in real distribution systems.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2014年第2期323-331,共9页 环境科学学报(英文版)
基金 supported by the National Water Special Program of China (No. 2009ZX07423-004) the High Technology Research and Development Program (863) of China (No. 2009AA06Z308) the International Science & Technology Cooperation Program of China (No. 2010DFA91830)
关键词 bacterial regrowth distribution system biostability AOC chloramine residual bacterial regrowth distribution system biostability AOC chloramine residual
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  • 1张晓健,陈超,何文杰,韩宏大,胡建坤,朱玲侠,刘静.安全氯化消毒工艺的消毒副产物控制[J].中国给水排水,2004,20(9):13-16. 被引量:28
  • 2Adav S S, Lee D J, Lai J Y, 2010. Microbial community of acetate utilizing denitrifiers in aerobic granules. Applied Microbiology and Biotechnology, 85(3): 753-762.
  • 3Andersson A, Laurent P, Kihn A, Prevost M, Servais P, 2001. Impact of temperature on nitrification in biological activat- ed carbon (BAC) filters used for drinking water treatment. Water Research, 35(12): 2923-2934.
  • 4Bock E, Schmidt I, Striven R, Zart D, 1995. Nitrogen loss caused by denitrifying Nitrosomonas cells using ammonium or hydrogen as electron donors and nitrite as electron acceptor. Archives of Microbiology, 163(1): 16-20.
  • 5Brenner D J, Krieg N R, Garrity G M, Staley J T, 2005. Bergey's Manual of Systematic Bacteriology, Vol. 2. The Proteobacteria. East Lansing, USA. 183.
  • 6De Vet W W J M, Dinkla I J T, Muyzer G, Rietveld L C, Van Loosdrecht M C M, 2009. Molecular characterization of microbial populations in groundwater sources and sand filters for drinking water production. Water Research, 43 (1): 182-194.
  • 7Gao D W, Yuan X J, Liang H, Wu W M, 2011. Comparison of biological removal via nitrite with real-time control using aerobic granular sludge and flocculent activated sludge. Applied Microbiology and Biotechnology, 89(5): 1645- 1652.
  • 8Ginige M P, Keller J, Blackall L L, 2005. Investigation of an acetate-fed denitrifying microbial community by stable isotope probing, full-cycle rRNA analysis, and fluorescent in situ hybridization-microautoradiography. Applied and Environmental Microbiology, 71(12): 8683-8691.
  • 9Gomez M A, Hontoria E, Gonzalez-Lopez J, 2002. Effect of dissolved oxygen concentration on nitrate removal from groundwater using a denitrifying submerged filter. Journal of Hazardous Materials, 90(3): 267-278.
  • 10He S B, Xue G, Wang B Z, 2009. Factors affecting simultaneous nitrification and de-nilrification (SND) and its kinetics mod- el in membrane bioreactor. Journal of Hazardous Materials, 168(2-3): 704-710.

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