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Methodology and application of combined watershed and ground-water models in Kansas

机译:堪萨斯州的分水岭与地下水联合模型的方法学和应用

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Increased irrigation in Kansas and other regions during the last several decades has caused serious water depletion, making the development of comprehensive strategies and tools to resolve such problems increasingly important. This paper makes the case for an intermediate complexity quasi-distributed, comprehensive, large-watershed model, which falls between the fully distributed, physically based hydrological modeling system of the type of the SHE model and the lumped, conceptual rainfall-runoff modeling system of the type of the Stanford watershed model. This is achieved by integrating the quasi-distributed watershed model SWAT with the fully-distributed ground-water model MODFLOW. The advantage of this approach is the appreciably smaller input data requirements and the use of readily available data (compared to the fully distributed, physically based models), the statistical handling of watershed heterogeneities by employing the hydrologic-response-unit concept, and the significantly increased flexibility in handling stream-aquifer interactions, distributed well withdrawals, and multiple land uses. The mechanics of integrating the component watershed and ground-water models are outlined, and three real-world management applications of the integrated model from Kansas are briefly presented. Three different aspects of the integrated model are emphasized: (1) management applications of a Decision Support System for the integrated model (Rattlesnake Creek subbasin); (2) alternative conceptual models of spatial heterogeneity related to the presence or absence of an underlying aquifer with shallow or deep water table (Lower Republican River basin); and (3) the general nature of the integrated model linkage by employing a watershed simulator other than SWAT (Wet Walnut Creek basin). These applications demonstrate the practicality and versatility of this relatively simple and conceptually clear approach, making public acceptance of the integrated watershed modeling system much easier. This approach also enhances model calibration and thus the reliability of model results. (C) 2000 Elsevier Science B.V. All rights reserved. [References: 39]
机译:在过去的几十年中,堪萨斯州和其他地区灌溉的增加导致了严重的水资源枯竭,因此制定解决这些问题的综合战略和工具变得越来越重要。本文提出了一种中等复杂度的准分布式,综合的大流域模型,该模型介于完全分布式,基于物理的SHE模型水文建模系统与集总的概念性降雨径流建模系统之间。斯坦福分水岭模型的类型。这是通过将准分布的分水岭模型SWAT与完全分布的地下水模型MODFLOW集成而实现的。这种方法的优点是输入数据的需求小得多,并且使用了易于获得的数据(与基于物理的完全分布式模型相比),通过采用水文响应单元概念对流域异质性进行统计处理,并且显着在处理水流-水层相互作用,分布式井抽水以及多种土地利用方面增加了灵活性。概述了组成分水岭模型和地下水模型的集成机制,并简要介绍了堪萨斯州集成模型的三个实际管理应用程序。强调了集成模型的三个不同方面:(1)集成模型(Rattlesnake Creek子盆地)的决策支持系统的管理应用; (2)与地下水位浅或深的共渗层的存在与否有关的空间异质性替代概念模型(下共和河流域); (3)通过采用除SWAT(湿核桃溪盆地)以外的分水岭模拟器来进行集成模型链接的一般性质。这些应用证明了这种相对简单且概念清晰的方法的实用性和多功能性,从而使公众更容易接受集成分水岭建模系统。这种方法还可以增强模型校准,从而提高模型结果的可靠性。 (C)2000 Elsevier Science B.V.保留所有权利。 [参考:39]

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