Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.

The present study implements a stochastic optimization technique to optimally manage freshwater pumping from coastal aquifers. Our simulations utilize the well-known sharp interface model for saltwater intrusion in coastal aquifers together with its known analytical solution. The objective is to max...

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Main Authors: Paris N Stratis, George P Karatzas, Elena P Papadopoulou, Maria S Zakynthinaki, Yiannis G Saridakis
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5045197?pdf=render
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spelling doaj-5ca832ebe3ce4fffa95dddb321413c8e2020-11-25T02:33:54ZengPublic Library of Science (PLoS)PLoS ONE1932-62032016-01-01119e016278310.1371/journal.pone.0162783Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.Paris N StratisGeorge P KaratzasElena P PapadopoulouMaria S ZakynthinakiYiannis G SaridakisThe present study implements a stochastic optimization technique to optimally manage freshwater pumping from coastal aquifers. Our simulations utilize the well-known sharp interface model for saltwater intrusion in coastal aquifers together with its known analytical solution. The objective is to maximize the total volume of freshwater pumped by the wells from the aquifer while, at the same time, protecting the aquifer from saltwater intrusion. In the direction of dealing with this problem in real time, the ALOPEX stochastic optimization method is used, to optimize the pumping rates of the wells, coupled with a penalty-based strategy that keeps the saltwater front at a safe distance from the wells. Several numerical optimization results, that simulate a known real aquifer case, are presented. The results explore the computational performance of the chosen stochastic optimization method as well as its abilities to manage freshwater pumping in real aquifer environments.http://europepmc.org/articles/PMC5045197?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Paris N Stratis
George P Karatzas
Elena P Papadopoulou
Maria S Zakynthinaki
Yiannis G Saridakis
spellingShingle Paris N Stratis
George P Karatzas
Elena P Papadopoulou
Maria S Zakynthinaki
Yiannis G Saridakis
Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
PLoS ONE
author_facet Paris N Stratis
George P Karatzas
Elena P Papadopoulou
Maria S Zakynthinaki
Yiannis G Saridakis
author_sort Paris N Stratis
title Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
title_short Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
title_full Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
title_fullStr Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
title_full_unstemmed Stochastic Optimization for an Analytical Model of Saltwater Intrusion in Coastal Aquifers.
title_sort stochastic optimization for an analytical model of saltwater intrusion in coastal aquifers.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2016-01-01
description The present study implements a stochastic optimization technique to optimally manage freshwater pumping from coastal aquifers. Our simulations utilize the well-known sharp interface model for saltwater intrusion in coastal aquifers together with its known analytical solution. The objective is to maximize the total volume of freshwater pumped by the wells from the aquifer while, at the same time, protecting the aquifer from saltwater intrusion. In the direction of dealing with this problem in real time, the ALOPEX stochastic optimization method is used, to optimize the pumping rates of the wells, coupled with a penalty-based strategy that keeps the saltwater front at a safe distance from the wells. Several numerical optimization results, that simulate a known real aquifer case, are presented. The results explore the computational performance of the chosen stochastic optimization method as well as its abilities to manage freshwater pumping in real aquifer environments.
url http://europepmc.org/articles/PMC5045197?pdf=render
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