首页> 外文OA文献 >On the efficiency of the hybrid and the exact second-order sampling formulations of the EnKF: a reality-inspired 3-D test case for estimating biodegradation rates of chlorinated hydrocarbons at the port of Rotterdam
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On the efficiency of the hybrid and the exact second-order sampling formulations of the EnKF: a reality-inspired 3-D test case for estimating biodegradation rates of chlorinated hydrocarbons at the port of Rotterdam

机译:关于EnKF的混合采样和精确的二阶采样公式的效率:基于现实的3-D测试案例,用于估算鹿特丹港口的氯代烃生物降解率

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摘要

This study considers the assimilation problem of subsurface contaminants at the port of Rotterdam in the Netherlands. It involves the estimation of solute concentrations and biodegradation rates of four different chlorinated solvents. We focus on assessing the efficiency of an adaptive hybrid ensemble Kalman filter and optimal interpolation (EnKF-OI) and the exact second-order sampling formulation (EnKFESOS) for mitigating the undersampling of the estimation and observation errors covariances, respectively. A multi-dimensional and multi-species reactive transport model is coupled to simulate the migration of contaminants within a Pleistocene aquifer layer located around 25 m below mean sea level. The biodegradation chain of chlorinated hydrocarbons starting from tetrachloroethene and ending with vinyl chloride is modeled under anaerobic environmental conditions for 5 decades. Yearly pseudo-concentration data are used to condition the forecast concentration and degradation rates in the presence of model and observational errors. Assimilation results demonstrate the robustness of the hybrid EnKF-OI, for accurately calibrating the uncertain biodegradation rates. When implemented serially, the adaptive hybrid EnKF-OI scheme efficiently adjusts the weights of the involved covariances for each individual measurement. The EnKFESOS is shown to maintain the parameter ensemble spread much better leading to more robust estimates of the states and parameters. On average, a well tuned hybrid EnKF-OI and the EnKFESOS respectively suggest around 48 and 21 % improved concentration estimates, as well as around 70 and 23 % improved anaerobic degradation rates, over the standard EnKF. Incorporating large uncertainties in the flow model degrades the accuracy of the estimates of all schemes. Given that the performance of the hybrid EnKF-OI depends on the quality of the background statistics, satisfactory results were obtained only when the uncertainty imposed on the background information is relatively moderate. © Author(s) 2016.
机译:这项研究考虑了荷兰鹿特丹港地下污染物的同化问题。它涉及四种不同氯化溶剂的溶质浓度和生物降解速率的估算。我们专注于评估自适应混合集成卡尔曼滤波器和最优插值(EnKF-OI)的效率,以及精确的二阶采样公式(EnKFESOS)来分别缓解估计误差和观测误差协方差的不足。耦合多维和多物种反应性运输模型来模拟污染物在平均海平面以下约25 m的更新世含水层中的迁移。在厌氧环境条件下模拟了从四氯乙烯到氯乙烯的氯代烃的生物降解链长达5年。在存在模型和观测误差的情况下,每年使用伪浓度数据来调节预测浓度和降解率。吸收结果证明了混合EnKF-OI的鲁棒性,可准确校准不确定的生物降解率。当串行实施时,自适应混合EnKF-OI方案可针对每个单独的测量有效地调整所涉及协方差的权重。已显示EnKFESOS可以更好地保持参数集成散布,从而更可靠地估计状态和参数。平均而言,调优的混合EnKF-OI和EnKFESOS分别比标准EnKF提示浓度估计值提高约48%和21%,厌氧降解率提高约70%和23%。在流模型中纳入较大的不确定性会降低所有方案的估计准确性。鉴于混合EnKF-OI的性能取决于背景统计数据的质量,只有在对背景信息施加的不确定性相对适中时才能获得令人满意的结果。 ©作者2016。

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