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Investigations of Contaminated Fluvial Sediment Deposits: Merging of Statistical and Geomorphic Approaches

机译:污染的河流沉积物沉积物调查:统计和地貌方法的合并

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摘要

Concentrations of contaminants in sediment deposits can have large spatial variability resulting from geomorphic processes acting over long time periods. Thus, systematic (e.g., regularly spaced sample locations) or random sampling approaches might be inefficient and/or lead to highly biased results. We demonstrate the bias associated with systematic sampling and compare these results to those achieved by methods that merge a geomorphic approach to evaluating the physical system and stratified random sampling concepts. By combining these approaches, we achieve a more efficient and less biased characterization of sediment contamination in fluvial systems. These methods are applied using a phased sampling approach to characterize radiological contamination in sediment deposits in two semiarid canyons that have received historical releases from the Los Alamos National Laboratory. Uncertainty in contaminant inventory was used as a metric to evaluate the adequacy of sampling during these phased investigations. Simple, one-dimensional Monte Carlo simulations were used to estimate uncertainty in contaminant inventory. We also show how one can use stratified random sampling theory to help estimate uncertainty in mean contaminant concentrations.
机译:沉积物中污染物的浓度可能会因长时间的地貌作用而具有较大的空间变异性。因此,系统的(例如,规则间隔的样本位置)或随机采样方法可能是低效率的和/或导致高度偏差的结果。我们证明了与系统采样有关的偏差,并将这些结果与通过合并地貌方法评估物理系统和分层随机采样概念的方法所获得的结果进行比较。通过结合使用这些方法,我们实现了河流系统中沉积物污染的更有效且偏差更少的表征。这些方法采用分阶段采样方法来表征两个半干旱峡谷沉积物沉积物的放射性污染,这些沉积物已从洛斯阿拉莫斯国家实验室获得历史释放。在这些阶段性调查中,污染物清单的不确定性被用作评估抽样是否足够的指标。简单的一维蒙特卡洛模拟用于估算污染物清单中的不确定性。我们还展示了如何使用分层随机抽样理论来帮助估计平均污染物浓度的不确定性。

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