首页> 外文会议>World environmental and water resources congress >HISTORICAL RECONSTRUCTION OF PCE-CONTAMINATED DRINKING WATER USING PROBABILSITIC ANALYSIS AT U.S. MARINE CORPS BASE CAMP LEJEUNE, NORTH CAROLINA
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HISTORICAL RECONSTRUCTION OF PCE-CONTAMINATED DRINKING WATER USING PROBABILSITIC ANALYSIS AT U.S. MARINE CORPS BASE CAMP LEJEUNE, NORTH CAROLINA

机译:北卡罗来纳州美国海洋武装群落CAMP CAMP MACABILSITION分析PCE污染饮用水的历史重建

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The historical reconstruction process is used to derive contaminant concentrations and exposure levels needed as input by health scientists conducting retrospective epidemiological studies-models are an integral part of this process. However, the models and associated calibrated parameters are inherently uncertain because they are based on limited historical data and information. This gives rise to the question, what is the reliability of the historically reconstructed estimates of contaminant concentrations determined using calibrated models? To answer this question and address the overarching issues of model and parameter variability and uncertainty, a probabilistic analysis is used to generate uncertainties of model inputs (e.g., hydraulic conductivity or contaminant source mass loading rate) so that estimates of uncertainties in model outputs (e.g., water level or contaminant concentrations in groundwater) can be made. In this paper, the authors describe the application of a probabilistic analysis using Monte Carlo simulations to assess model uncertainty and parameter variability. The probabilistic analysis is applied to groundwater-flow and contaminant fate and transport models (MODLFOW and MT3DMS, respectively) as
机译:历史重建过程用于衍生污染物浓度和作为卫生科学家投入所需的污染水平,进行回顾性流行病学研究 - 模型是该过程的一个组成部分。然而,模型和相关的校准参数本质上是不确定的,因为它们基于有限的历史数据和信息。这引起了问题,历史重建的污染浓度估计的可靠性是什么,使用校准模型确定的污染浓度?为了回答这个问题并解决模型和参数变异性和不确定性的总体问题,概率分析用于产生模型输入的不确定性(例如,液压导电性或污染源批量加载率),从而估计模型输出中的不确定性(例如,可以制造地下水中的水位或污染物浓度。在本文中,作者描述了使用蒙特卡罗模拟来评估模型不确定性和参数变异性的概率分析。概率分析适用于地下水流动和污染物命运和运输模型(分别为MODLFOW和MT3DMS)

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