Investigations on the impact of projected sea level rise on the groundwater regime in a coastal aquifer
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Abstract
Global warming caused by anthropogenic activities and the resulting climate change is
newlinea major concern of contemporary society. Projections from various climate models
newlineindicate that global temperatures are on continuous ascent. The Intergovernmental
newlinePanel on Climate Change (IPCC) and several other scientific bodies have concluded
newlinethat this will result in a rise in water levels in the oceans, with consequent impacts on
newlinecoastal ecosystems, including aquifers. Sea level rise (SLR) impacts coastal regions
newlineadversely, triggering inundation and coastal erosion; it also changes the location of the
newlineseawater-freshwater interface. Worldwide, coastal aquifers are under tremendous
newlinepressure, critically impairing the quality and adversely affecting the quantity of
newlinegroundwater. In this context, it is extremely important to investigate the climate change
newlinedriven impacts on coastal aquifers. Precise estimates of projected sea levels in the future
newlinemust be achieved to assess these impacts so that appropriate and sustainable
newlinemanagement strategies can be devised and implemented to tackle and mitigate the
newlineadverse impacts.
newlineTo achieve accurate estimates of future sea level, the climatic variables that
newlinesignificantly influence sea level have to be identified. In this research, the climatic
newlinevariables substantially influencing regional sea level, the so-called predictors, were
newlineidentified, and these variables were utilized to develop statistical downscaling models
newlinefor downscaling sea level projections from GCMs employing three machine learning
newlineapproaches. In this study, projections of predictors for the future extracted from seven
newlinePhase V Coupled Model Inter-comparison Project (CMIP5) Global Climate Models
newline(GCMs), viz., GISS-E2-H, CanESM2, MIROC-ESM, ACCESS1-0, CNRM-CM5,
newlineGFDL-CM3, and CMCC-CM were used for downscaling sea level projections up to the
newlineyear 2050, employing the machine learning approach that performed the best.
newline