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dc.rights.licenseCC-BY-NC-ND
dc.contributor.advisorSchotting, prof. dr. R.
dc.contributor.authorBroekaart, T.C.E.
dc.date.accessioned2015-08-24T17:00:48Z
dc.date.available2015-08-24T17:00:48Z
dc.date.issued2015
dc.identifier.urihttps://studenttheses.uu.nl/handle/20.500.12932/21192
dc.description.abstractAlthough chlorinated ethene contamination is one of the most ubiquitous and researched types of groundwater and subsurface contamination, in situ site specific remediation has proven rather difficult due to the nature and the propensity of these contaminants. This thesis addresses the problem through the analysis and quantification of the underlying governing processes, the effect of heterogeneity of the subsurface and the general uncertainty related to groundwater sciences. Based on seminal work, an internship conducted at the municipality Utrecht and groundwater modelling, the limitations of the most often used numerical simulations are identified and adapted in order to properly incorporate the governing processes. The use of degradation rates less sensitive to heterogeneity and uncertainty, such as Michaelis-Menten kinetics, resulted in a more correct approximation of subsurface processes and conditions. Supplementing the numerical outcomes, this thesis proposes a technical guideline and tool to screen and assess chlorinated ethene contaminated sites.
dc.description.sponsorshipUtrecht University
dc.format.extent3343039
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.titleA multifaceted approach to identify and quantify the processes contributing to chlorinated aliphatic compound attenuation.
dc.type.contentMaster Thesis
dc.rights.accessrightsOpen Access
dc.subject.keywordsChlorinated ethenes; natural attenuation; Utrecht; identifying analyzing contributing processes
dc.subject.courseuuEarth Surface and Water


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