Validation of a simple method for predicting the disinfection performance in a flow-through contactor

被引:10
|
作者
Pfeiffer, Valentin [1 ]
Barbeau, Benoit [1 ]
机构
[1] Polytech Montreal, Civil Geol & Min Engn Dept, Ind NSERC Chair Drinking Water, Montreal, PQ H3C 3A7, Canada
关键词
Disinfection calculation method; Escherichia coli inactivation; Chlorine contactor; T10; method; N-CSTR model; Segregated Flow Analysis; SCALE OZONE CONTACTOR; INACTIVATION; KINETICS; SYSTEMS; DESIGN; MODEL;
D O I
10.1016/j.watres.2013.11.003
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Despite its shortcomings, the T10 method introduced by the United States Environmental Protection Agency (USEPA) in 1989 is currently the method most frequently used in North America to calculate disinfection performance. Other methods (e.g., the Integrated Disinfection Design Framework, IDDF) have been advanced as replacements, and more recently, the USEPA suggested the Extended T10 and Extended CSTR (Continuous Stirred-Tank Reactor) methods to improve the inactivation calculations within ozone contactors. To develop a method that fully considers the hydraulic behavior of the contactor, two models (Plug Flow with Dispersion and N-CSTR) were successfully fitted with five tracer tests results derived from four Water Treatment Plants and a pilot-scale contactor. A new method based on the N-CSTR model was defined as the Partially Segregated (Pseg) method. The predictions from all the methods mentioned were compared under conditions of poor and good hydraulic performance, low and high disinfectant decay, and different levels of inactivation. These methods were also compared with experimental results from a chlorine pilot-scale contactor used for Escherichia coli inactivation. The T10 and Extended T10 methods led to large over- and under-estimations. The Segregated Flow Analysis (used in the IDDF) also considerably overestimated the inactivation under high disinfectant decay. Only the Extended CSTR and Pseg methods produced realistic and conservative predictions in all cases. Finally, a simple implementation procedure of the Pseg method was suggested for calculation of disinfection performance. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:144 / 156
页数:13
相关论文
共 50 条
  • [1] A simple diluter for flow-through toxicity studies
    D. F. Pavlov
    Inland Water Biology, 2013, 6 : 253 - 257
  • [2] SIMPLE SCALE EXPANSION FOR FLOW-THROUGH HEMOPHOTOMETER
    HUNTER, DT
    WILLIAMS, LJ
    AMERICAN JOURNAL OF CLINICAL PATHOLOGY, 1967, 47 (03) : 410 - &
  • [3] A simple diluter for flow-through toxicity studies
    Pavlov, D. F.
    INLAND WATER BIOLOGY, 2013, 6 (03) : 253 - 257
  • [4] Wavelength synergistic effects in continuous flow-through water disinfection systems
    Uppinakudru, Adithya Pai
    Martin-Somar, Miguel
    Reynolds, Ken
    Stanley, Simon
    Bautista, Luis Fernando
    Pablos, Cristina
    Marugan, Javier
    WATER RESEARCH X, 2023, 21
  • [5] A Simple Flow-through System for Toxicity Testing with Daphnids
    Tatjana Tišler
    Jana Zagorc-končan
    Water, Air, and Soil Pollution, 1999, 111 : 327 - 336
  • [6] Reporting nanoparticle tracers: Validation of performance in flow-through experiments simulating reservoir conditions
    Berson, Jonathan
    Rudolph, Bastian
    Spitzmueller, Laura
    Kohl, Thomas
    Schimmel, Thomas
    JOURNAL OF HYDROLOGY, 2024, 637
  • [7] A simple flow-through system for toxicity testing with daphnids
    Tisler, T
    Zagorc-Koncan, J
    WATER AIR AND SOIL POLLUTION, 1999, 111 (1-4): : 327 - 336
  • [8] SIMPLE IMPROVISATION OF A FLOW-THROUGH ADAPTER FOR GEL CHROMATOGRAPHY
    PALYZA, V
    CHEMICKE LISTY, 1974, 68 (01): : 83 - 85
  • [9] Hydrogenation of nitrates in water using mesoporous membranes operated in a flow-through catalytic contactor
    Wehbe, Najah
    Guilhaume, Nolven
    Fiaty, Koffi
    Miachon, Sylvain
    Dalmon, Jean-Alain
    CATALYSIS TODAY, 2010, 156 (3-4) : 208 - 215
  • [10] Predicting disinfection performance in continuous flow systems from batch disinfection kinetics
    Haas, CN
    Joffe, J
    Heath, M
    Jacangelo, J
    Anmangandla, U
    WATER SCIENCE AND TECHNOLOGY, 1998, 38 (06) : 171 - 179