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首页> 外文期刊>Journal of irrigation and drainage engineering >Integrated Modeling of Conjunctive Water Use in a Canal-Well Irrigation District in the Lower Yellow River Basin, China
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Integrated Modeling of Conjunctive Water Use in a Canal-Well Irrigation District in the Lower Yellow River Basin, China

机译:黄河下游水道井灌区结水综合模型

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摘要

The Yellow River Basin is a closed basin under serious stress with dense population, intensive agriculture, and excess water withdrawals. Low water use efficiency and groundwater overexploitation are threatening the sustainable development of the basin. This paper describes a coupled modeling approach to analyze sustainable management strategies in surface-groundwater conjunctive use irrigation districts in the lower Yellow River Basin. An appropriate irrigation schedule and an optimal range of groundwater levels are first established using the soil water atmosphere plant (SWAP) model with data from an irrigation experiment station. The integrated surface water and groundwater model was then set up using modified soil and water assessment tool (SWAT2000) and modular three-dimensional groundwater flow model (MODFLOW) models. The two models were connected through standardized simulation grids and calibrated using field measurements. Five scenarios that were designed according to different well-canal irrigation supply ratios and the irrigation schedule determined by SWAP were tested using the integrated modeling approach. It is proved that conjunctive management strategies of canal diversions and tube-well pumps can effectively reduce phreatic evaporation losses, increase water use efficiency, and sustain groundwater levels while maintaining crop yields at current levels.
机译:黄河流域是一个封闭的流域,人口密集,农业集约化和取水量过多,承受着巨大的压力。低水利用效率和过度开采地下水正在威胁流域的可持续发展。本文介绍了一种耦合建模方法,用于分析黄河下游地区地表水-地下水联合使用灌溉区的可持续管理策略。首先使用土壤水气植物(SWAP)模型以及灌溉实验站的数据来确定适当的灌溉时间表和地下水位的最佳范围。然后使用改进的土壤和水评估工具(SWAT2000)和模块化的三维地下水流模型(MODFLOW)模型来建立地表水和地下水的综合模型。这两个模型通过标准化的仿真网格连接,并使用现场测量进行了校准。使用集成建模方法测试了根据不同的井渠灌溉供应比例和SWAP确定的灌溉计划设计的五个方案。事实证明,渠道改道和管井泵的联合管理策略可以有效地减少潜水蒸发损失,提高水利用效率并维持地下水位,同时将作物产量保持在当前水平。

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