Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia

An artificial wetland was computationally modelled using STELLA®, a graphical programming tool for an Au-Cu mine site in Central-west NSW, the aim of which was to offer a predictive analysis of a proposed wetland for Cu, Zn and Mn removal using Typha domingensis as the agent. The model considers the...

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Main Authors: Subrahmanyam Sreenath, Adams Allan, Raman Anantanarayanan, Hodgkins Dennis, Heffernan Mark
Format: Article
Language:English
Published: Sciendo 2017-12-01
Series:European Journal of Ecology
Subjects:
Online Access:http://www.degruyter.com/view/j/eje.2017.3.issue-2/eje-2017-0016/eje-2017-0016.xml?format=INT
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spelling doaj-020802f7dbb441e1846361f3d0ecbc0d2020-11-25T00:18:45ZengSciendoEuropean Journal of Ecology1339-84742017-12-0132779110.1515/eje-2017-0016eje-2017-0016Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, AustraliaSubrahmanyam Sreenath0Adams Allan1Raman Anantanarayanan2Hodgkins Dennis3Heffernan Mark4Soil Research Group, Charles Sturt University, PO Box 883, Orange, NSW 2800, AustraliaSoil Research Group, Charles Sturt University, PO Box 883, Orange, NSW 2800, AustraliaSoil Research Group, Charles Sturt University, PO Box 883, Orange, NSW 2800, AustraliaSoil Research Group, Charles Sturt University, PO Box 883, Orange, NSW 2800, AustraliaDynamic Operations, Mona Vale, NSW 2103, AustraliaAn artificial wetland was computationally modelled using STELLA®, a graphical programming tool for an Au-Cu mine site in Central-west NSW, the aim of which was to offer a predictive analysis of a proposed wetland for Cu, Zn and Mn removal using Typha domingensis as the agent. The model considers the important factors that impact phytoremediation of Cu, Zn and Mn. Simulations were performed to optimise the area of the wetland; concentration of Cu, Zn and Mn released from mine (AMD); and flow rates of water for maximum absorption of the metals. A scenario analysis indicates that at AMD = 0.75mg/L for Cu, Zn and Mn, 12.5, 8.6, and 357.9 kg of Cu, Zn and Mn, respectively, will be assimilated by the wetland in 35 years, which would be equivalent to 61 mg of Cu/kg, 70 mg of Zn/kg and 2,886 mg of Mn/kg of T. domingensis, respectively. However, should Cu, Zn and Mn in AMD increase to 3 mg/L, then 18.6 kg of Cu and 11.8 kg of Zn, respectively, will be assimilated in 35 years, whereas no substantial increase in absorption for Mn would occur. This indicates that 91 mg of Cu, 96 mg of Zn and 2917 mg of Mn will be assimilated for every kg of T. domingensis in the wetland. The best option for Cu storage would be to construct a wetland of 50,000 m2 area (AMD = 0.367 mg/L of Cu), which would capture 14.1 kg of Cu in 43 years, eventually releasing only 3.9 kg of Cu downstream. Simulations performed for a WA of 30,000 m2 indicate that for AMD = 0.367 mg/L of Zn, the wetland captures 6.2 kg, releasing only 3.5 kg downstream after 43 years; the concentration of Zn in the leachate would be 10.2 kg, making this the most efficient wetland amongst the options considered for phytoremediating Zn. This work will help mine managers and environmental researchers in developing an effective environmental management plan by focusing on phytoremediation, with a view at extracting Cu, Zn and Mn from the contaminated sites.http://www.degruyter.com/view/j/eje.2017.3.issue-2/eje-2017-0016/eje-2017-0016.xml?format=INTecological modellingheavy-metal removalrestoration ecologyphytoremediationsustainable developmentTypha domingensis
collection DOAJ
language English
format Article
sources DOAJ
author Subrahmanyam Sreenath
Adams Allan
Raman Anantanarayanan
Hodgkins Dennis
Heffernan Mark
spellingShingle Subrahmanyam Sreenath
Adams Allan
Raman Anantanarayanan
Hodgkins Dennis
Heffernan Mark
Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
European Journal of Ecology
ecological modelling
heavy-metal removal
restoration ecology
phytoremediation
sustainable development
Typha domingensis
author_facet Subrahmanyam Sreenath
Adams Allan
Raman Anantanarayanan
Hodgkins Dennis
Heffernan Mark
author_sort Subrahmanyam Sreenath
title Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
title_short Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
title_full Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
title_fullStr Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
title_full_unstemmed Ecological modelling of a wetland for phytoremediating Cu, Zn and Mn in a gold–copper mine site using Typha domingensis (Poales: Typhaceae) near Orange, NSW, Australia
title_sort ecological modelling of a wetland for phytoremediating cu, zn and mn in a gold–copper mine site using typha domingensis (poales: typhaceae) near orange, nsw, australia
publisher Sciendo
series European Journal of Ecology
issn 1339-8474
publishDate 2017-12-01
description An artificial wetland was computationally modelled using STELLA®, a graphical programming tool for an Au-Cu mine site in Central-west NSW, the aim of which was to offer a predictive analysis of a proposed wetland for Cu, Zn and Mn removal using Typha domingensis as the agent. The model considers the important factors that impact phytoremediation of Cu, Zn and Mn. Simulations were performed to optimise the area of the wetland; concentration of Cu, Zn and Mn released from mine (AMD); and flow rates of water for maximum absorption of the metals. A scenario analysis indicates that at AMD = 0.75mg/L for Cu, Zn and Mn, 12.5, 8.6, and 357.9 kg of Cu, Zn and Mn, respectively, will be assimilated by the wetland in 35 years, which would be equivalent to 61 mg of Cu/kg, 70 mg of Zn/kg and 2,886 mg of Mn/kg of T. domingensis, respectively. However, should Cu, Zn and Mn in AMD increase to 3 mg/L, then 18.6 kg of Cu and 11.8 kg of Zn, respectively, will be assimilated in 35 years, whereas no substantial increase in absorption for Mn would occur. This indicates that 91 mg of Cu, 96 mg of Zn and 2917 mg of Mn will be assimilated for every kg of T. domingensis in the wetland. The best option for Cu storage would be to construct a wetland of 50,000 m2 area (AMD = 0.367 mg/L of Cu), which would capture 14.1 kg of Cu in 43 years, eventually releasing only 3.9 kg of Cu downstream. Simulations performed for a WA of 30,000 m2 indicate that for AMD = 0.367 mg/L of Zn, the wetland captures 6.2 kg, releasing only 3.5 kg downstream after 43 years; the concentration of Zn in the leachate would be 10.2 kg, making this the most efficient wetland amongst the options considered for phytoremediating Zn. This work will help mine managers and environmental researchers in developing an effective environmental management plan by focusing on phytoremediation, with a view at extracting Cu, Zn and Mn from the contaminated sites.
topic ecological modelling
heavy-metal removal
restoration ecology
phytoremediation
sustainable development
Typha domingensis
url http://www.degruyter.com/view/j/eje.2017.3.issue-2/eje-2017-0016/eje-2017-0016.xml?format=INT
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