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Quantifying the effects of temperature and concentration on variable-density flow in numerical modeling of groundwater systems : implications for predictive uncertainty and data collection

机译:在地下水系统数值模拟中量化温度和浓度对变密度流动的影响:对预测不确定性和数据收集的影响

摘要

Groundwater systems of different densities are often mathematically modeled to understand and predict environmental behavior such as seawater intrusion or submarine groundwater discharge. Additional data collection may be justified if it will cost-effectively aid in reducing the uncertainty of a modelu27s prediction. The collection of salinity, as well as, temperature data could aid in reducing predictive uncertainty in a variable-density model. However, before numerical models can be created, rigorous testing of the modeling code needs to be completed. This research documents the benchmark testing of a new modeling code, SEAWAT Version 4. The benchmark problems include various combinations of density-dependent flow resulting from variations in concentration and temperature. The verified code, SEAWAT, was then applied to two different hydrological analyses to explore the capacity of a variable-density model to guide data collection.The first analysis tested a linear method to guide data collection by quantifying the contribution of different data types and locations toward reducing predictive uncertainty in a nonlinear variable-density flow and transport model. The relative contributions of temperature and concentration measurements, at different locations within a simulated carbonate platform, for predicting movement of the saltwater interface were assessed. Results from the method showed that concentration data had greater worth than temperature data in reducing predictive uncertainty in this case. Results also indicated that a linear method could be used to quantify data worth in a nonlinear model.The second hydrological analysis utilized a model to identify the transient response of the salinity, temperature, age, and amount of submarine groundwater discharge to changes in tidal ocean stage, seasonal temperature variations, and different types of geology. The model was compared to multiple kinds of data to (1) calibrate and verify the model, and (2) explore the potential for the model to be used to guide the collection of data using techniques such as electromagnetic resistivity, thermal imagery, and seepage meters. Results indicated that the model can be used to give insight to submarine groundwater discharge and be used to guide data collection.
机译:通常对不同密度的地下水系统进行数学建模,以理解和预测环境行为,例如海水入侵或海底地下水排放。如果可以经济有效地帮助减少模型预测的不确定性,则可以进行其他数据收集。盐度以及温度数据的收集可以帮助减少可变密度模型中的预测不确定性。但是,在创建数值模型之前,需要完成对建模代码的严格测试。这项研究记录了新建模代码SEAWAT版本4的基准测试。基准问题包括浓度和温度变化导致的密度相关流量的各种组合。然后将经过验证的代码SEAWAT应用于两种不同的水文分析,以探索可变密度模型指导数据收集的能力。第一次分析测试了通过量化不同数据类型和位置的贡献来指导数据收集的线性方法降低非线性可变密度流动和运输模型中的预测不确定性。评估了温度和浓度测量值在模拟碳酸盐平台内不同位置处的相对贡献,以预测盐水界面的运动。该方法的结果表明,在这种情况下,浓度数据比温度数据具有更大的价值,可减少预测的不确定性。结果还表明,可以使用线性方法对非线性模型中的数据进行量化。第二次水文分析使用模型来识别盐度,温度,年龄和海底地下水排放量对潮汐海洋变化的瞬态响应。阶段,季节性温度变化和不同类型的地质。将模型与多种数据进行比较,以(1)校准和验证模型,以及(2)利用电磁电阻率,热成像和渗漏等技术探索该模型用于指导数据收集的潜力米。结果表明,该模型可用于深入了解海底地下水排放,并可用于指导数据收集。

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    Dausman Alyssa Marie;

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  • 年度 2008
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