Mathematical modeling of subsurface flow constructed wetlands performance for arsenic removal: Review and perspectives

被引:0
作者
Bravo-Riquelme, Diego [1 ]
Lizama-Allende, Katherine [1 ]
机构
[1] Univ Chile, Dept Ingn Civil, Ave Blanco Encalada 2002, Santiago 8370449, Chile
关键词
Constructed wetlands; Subsurface flow; Arsenic reactivity; Mathematical model; Mechanistic model; Water treatment; RETENTION; REMEDIATION; WATER; SIMULATION; DYNAMICS; SORPTION; METAL;
D O I
10.1016/j.scitotenv.2024.175061
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Constructed wetlands are nature-based solutions able to remove different pollutants from water, including arsenic. Arsenic is a pollutant of concern given its toxicity and its presence in water sources worldwide. Despite the increased interest in investigating the performance of constructed wetlands in the treatment of arseniccontaminated water at the laboratory scale, the application of these solutions at the pilot and full scale is still limited. To understand and predict the removal of arsenic in constructed wetlands, some numerical models have been developed. Among black box models, only first-order models have been proposed, with unsuccessful results. The model that best describes arsenic retention processes in constructed wetlands is RCB-ARSENIC, a mechanistic model adapted from Retraso-CodeBright that simulates arsenic reactive transport. This model includes arsenic precipitation, arsenic sorption on supporting media, arsenic sorption on plants roots and arsenic uptake by plants; represented in the reactive term of the reactive transport equation. Thus, it includes two of the three main processes that remove arsenic in constructed wetlands: precipitation, sorption, and coprecipitation. Despite this, and what is known about arsenic geochemistry, the formulation of these reactive rates requires improvement. In addition, this model was calibrated and validated using data from a single horizontal subsurface flow constructed wetland system, which treated one type of synthetic water. Therefore, it cannot be applied to other types of arsenic-contaminated water or other constructed wetland systems. Moreover, the reactive transport of relevant species -especially iron- and their role in arsenic removal, along with relevant redox reactions associated to the presence of organic matter, oxides or bacteria-, must be included. A comprehensive mechanistic model
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页数:12
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共 79 条
  • [1] Applications of biological sulfate reduction for remediation of arsenic
    Alam, Raquibul
    McPhedran, Kerry
    [J]. CHEMOSPHERE, 2019, 222 : 932 - 944
  • [2] Alarcon-Herrera M.T., 2012, Eur. Chem. Bull., V2, P121
  • [3] Performance of Eleocharis macrostachya and its importance for arsenic retention in constructed wetlands
    Alberto Olmos-Marquez, Mario
    Teresa Alarcon-Herrera, Maria
    Ramiro Martin-Dominguez, Ignacio
    [J]. ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2012, 19 (03) : 763 - 771
  • [4] Ali A., 2023, Global Arsenic Hazard: Ecotoxicology and Remediation, P223
  • [5] The influence of media type on removal of arsenic, iron and boron from acidic wastewater in horizontal flow wetland microcosms planted with Phragmites australis
    Allende, K. Lizama
    McCarthy, D. T.
    Fletcher, T. D.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2014, 246 : 217 - 228
  • [6] The effect of substrate media on the removal of arsenic, boron and iron from an acidic wastewater in planted column reactors
    Allende, K. Lizama
    Fletcher, T. D.
    Sun, G.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2012, 179 : 119 - 130
  • [7] Removal of arsenic and zinc using different laboratory model wetland systems
    Buddhawong, S
    Kuschk, P
    Mattusch, J
    Wiessner, A
    Stottmeister, U
    [J]. ENGINEERING IN LIFE SCIENCES, 2005, 5 (03): : 247 - 252
  • [8] Arsenic in Latin America: New findings on source, mobilization and mobility in human environments in 20 countries based on decadal research 2010-2020
    Bundschuh, Jochen
    Armienta, Maria Aurora
    Morales-Simfors, Nury
    Alam, Mohammad Ayaz
    Lopez, Dina L.
    Delgado Quezada, Valeria
    Dietrich, Sebastian
    Schneider, Jerusa
    Tapia, Joseline
    Sracek, Ondra
    Castillo, Elianna
    Marco Parra, Lue-Meru
    Altamirano Espinoza, Maximina
    Guimaraes Guilherme, Luiz Roberto
    Sosa, Numa Nahuel
    Niazi, Nabeel Khan
    Tomaszewska, Barbara
    Lizama Allende, Katherine
    Bieger, Klaus
    Alonso, David L.
    Brandao, Pedro F. B.
    Bhattacharya, Prosun
    Litter, Marta I.
    Ahmad, Arslan
    [J]. CRITICAL REVIEWS IN ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2021, 51 (16) : 1727 - 1865
  • [9] Reactive Transport: A Review of Basic Concepts with Emphasis on Biochemical Processes
    Carrera, Jesus
    Saaltink, Maarten W.
    Soler-Sagarra, Joaquim
    Wang, Jingjing
    Valhondo, Cristina
    [J]. ENERGIES, 2022, 15 (03)
  • [10] Chowdhury R., 2008, Groundwater: Modelling, Management and Contamination, P151