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首页> 外文期刊>Journal of Hydrology >Optimization of groundwater sampling approach under various hydrogeological conditions using a numerical simulation model
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Optimization of groundwater sampling approach under various hydrogeological conditions using a numerical simulation model

机译:数值模拟模型在各种水文地质条件下的地下水采样方法优化

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Highlights ? Developed a model to simulate groundwater flow in both aquifer and well. ? Found dissolved oxygen to be the best water quality indicator during purging. ? Demonstrated how site characteristics affect sample representativeness. ? Identified strategies to optimize the groundwater sampling process. Abstract This study presents a numerical model based on field data to simulate groundwater flow in both the aquifer and the well-bore for the low-flow sampling method and the well-volume sampling method. The numerical model was calibrated to match well with field drawdown, and calculated flow regime in the well was used to predict the variation of dissolved oxygen (DO) concentration during the purging period. The model was then used to analyze sampling representativeness and sampling time. Site characteristics, such as aquifer hydraulic conductivity, and sampling choices, such as purging rate and screen length, were found to be significant determinants of sampling representativeness and required sampling time. Results demonstrated that: (1) DO was the most useful water quality indicator in ensuring groundwater sampling representativeness in comparison with turbidity, pH, specific conductance, oxidation reduction potential (ORP) and temperature; (2) it is not necessary to maintain a drawdown of less than 0.1m when conducting low flow purging. However, a high purging rate in a low permeability aquifer may result in a dramatic decrease in sampling representativeness after an initial peak; (3) the presence of a short screen length may result in greater drawdown and a longer sampling time for low-flow purging. Overall, the present study suggests that this new numerical model is suitable for describing groundwater flow during the sampling process, and can be used to optimize sampling strategies under various hydrogeological conditions. ]]>
机译:<![cdata [ 亮点 开发了一种模拟含水层和良好的地下水流量的模型。 发现溶解的氧气是溶解的氧气清洗期间的最佳水质指示器。 演示网站特征如何影响样本代表性。 识别的策略,以优化gro undwate采样过程。 抽象 本研究提出了一种基于现场数据的数值模型,以模拟含水层和孔的井孔中的地下水流动的地下水流量和钻孔体积井采样方法。数值模型被校准以匹配良好的野外缩编,并且使用井中的计算流量来预测吹扫周期期间溶解氧(DO)浓度的变化。然后使用该模型来分析采样代表性和采样时间。发现现场特性,例如含水层液压导电性和采样选择,例如吹扫速率和筛网长度,是采样代表性和所需采样时间的重要决定因素。结果表明:(1)确保与浊度,pH,特定电导,氧化降低电位(ORP)和温度相比,确保地下水采样代表性是最有用的水质指标。 (2)在进行低流量吹扫时,不必保持小于0.1 M的缩减。然而,低渗透含水层中的高吹扫速率可能导致初始峰后的采样代表性的显着降低; (3)短屏长的存在可能导致更大的缩进和更长的用于低流量吹扫的采样时间。总的来说,本研究表明,这种新的数值模型适用于描述采样过程中的地下水流动,可用于优化各种水文地质条件下的采样策略。 ]]>

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