<p>The sustainable exploitation of a riverside well field is critical for securing regional water supply. Optimizing its layout is a complex, multi-objective engineering challenge aimed at balancing yield, stability, and quality. This study adopted an analytical-numerical workflow to optimize the layout of the riverside well field of Luan River in Chengde City. The analysis first determined an optimal basic scenario with a river-well distance of 25&#xa0;m and an inter-well spacing of 150&#xa0;m, yielding a maximum allowable extraction capacity of 5.31 × 10<sup>4</sup> m<sup>3</sup>/d. Subsequently, three detailed engineering scenarios incorporating diverse intake structures and interventions were designed and compared. The results demonstrate that Scenario 3 represents the optimal layout, which includes 14 extraction wells, 2 infiltration galleries, 1 radial collector well, and riverbed modification. This scenario not only meets the target extraction rate of 8 × 10<sup>4</sup> m<sup>3</sup>/d, but also performs well under the particularly dry and extremely dry year/month conditions defined from the historical runoff record of the Luan River. Furthermore, backward particle-tracking analysis indicates that Scenario 3 reduces the risk of direct groundwater capture from the nearby land-based potential pollution-source areas. Consequently, Scenario 3 represents the optimal choice based on yield, reliability, and risk. In conclusion, this study demonstrates the effectiveness of the analytical-numerical workflow for optimizing riverside well field layouts. The findings provide decision support for the Luan River project and offer a practical reference for similar systems under comparable hydrogeological conditions.</p>

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An analytical-numerical method for optimizing the extraction layout of riverside well field: a case study of the Luan River, China

  • Xiaoyuan Li,
  • Wenzhong Wang,
  • Shenghua Song

摘要

The sustainable exploitation of a riverside well field is critical for securing regional water supply. Optimizing its layout is a complex, multi-objective engineering challenge aimed at balancing yield, stability, and quality. This study adopted an analytical-numerical workflow to optimize the layout of the riverside well field of Luan River in Chengde City. The analysis first determined an optimal basic scenario with a river-well distance of 25 m and an inter-well spacing of 150 m, yielding a maximum allowable extraction capacity of 5.31 × 104 m3/d. Subsequently, three detailed engineering scenarios incorporating diverse intake structures and interventions were designed and compared. The results demonstrate that Scenario 3 represents the optimal layout, which includes 14 extraction wells, 2 infiltration galleries, 1 radial collector well, and riverbed modification. This scenario not only meets the target extraction rate of 8 × 104 m3/d, but also performs well under the particularly dry and extremely dry year/month conditions defined from the historical runoff record of the Luan River. Furthermore, backward particle-tracking analysis indicates that Scenario 3 reduces the risk of direct groundwater capture from the nearby land-based potential pollution-source areas. Consequently, Scenario 3 represents the optimal choice based on yield, reliability, and risk. In conclusion, this study demonstrates the effectiveness of the analytical-numerical workflow for optimizing riverside well field layouts. The findings provide decision support for the Luan River project and offer a practical reference for similar systems under comparable hydrogeological conditions.