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首页> 外文期刊>Agricultural Water Management >Analysis of AET and yield predictions under surface and buried drip irrigation systems using the Crop Model PILOTE and Hydrus-2D.
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Analysis of AET and yield predictions under surface and buried drip irrigation systems using the Crop Model PILOTE and Hydrus-2D.

机译:使用作物模型PILOTE和Hydrus-2D在地下和地下滴灌系统下分析AET和产量预测。

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摘要

Innovative irrigation solutions have to face water scarcity problems affecting the Mediterranean countries. Generally, surface (DI) or subsurface drip irrigation systems (SDI) have the ability to increase water productivity (WP). But the question about their possible utilisation for crops such as corn would merit to be analysed using an appropriate economic tool. The latter would be necessary based on the utilisation of a modelling approach to identify the optimal irrigation strategy associating a water amount with a crop yield (Yc). In this perspective, a possible utilisation of the operative 1D crop model PILOTE for simulating actual evapotranspiration (AET) and yield under a 2D soil water transfer process characterizing DI and SDI was analysed. In this study, limited to a loamy soil cultivated with corn, the pertinence of the root water uptake model used in the numerical code Hydrus-2D for AET estimations of actual evapotranspiration (AET) under water stress conditions is discussed throughout the Yc=F(AET) relationship established by PILOTE on the basis of validated simulations. The conclusions of this work are (i): with slight adaptations, PILOTE can provide reliable WP estimations associated to irrigation strategies under DI and SDI, (ii): the current Hydrus-2D version used in this study underestimates AET, compared with PILOTE, in a range varying from 7% under moderate water stress conditions to 14% under severe ones, (iii): A lateral spacing of 1.6 m for the irrigation of corn with a SDI system is an appropriate solution on a loamy soil under a Mediterranean climate. A local Yc=F(AET) relationship associated with a Hydrus-2D version taking into account the compensating root uptake process could result in an interesting tool to help identify the optimal irrigation system design under different soil conditions.
机译:创新的灌溉解决方案必须面对影响地中海国家的缺水问题。通常,地表(DI)或地下滴灌系统(SDI)具有提高水生产率(WP)的能力。但是,关于它们可能用于玉米等农作物的问题,值得使用适当的经济手段加以分析。基于建模方法的使用,后者将是必要的,以便确定将水量与作物产量(Yc)相关联的最佳灌溉策略。从这个角度出发,分析了可操作的一维作物模型PILOTE在模拟DI和SDI的二维土壤水分转移过程下模拟实际蒸散量(AET)和产量的可能用途。在这项研究中,仅限于玉米种植的壤土,在整个Yc = F()中讨论了数字代码Hydrus-2D中用于水分胁迫条件下AET估算实际蒸散量(AET)的根系吸水模型的相关性。由PILOTE根据经过验证的模拟建立的关系。这项工作的结论是:(i):通过稍微修改,PILOTE可以提供与DI和SDI下灌溉策略相关的可靠WP估算;(ii):与PILOTE相比,本研究中使用的当前Hydrus-2D版本低估了AET,在中等水分胁迫条件下的7%至严重胁迫条件下的14%的范围内,(iii):在地中海气候下的肥沃土壤上,使用SDI系统灌溉玉米的侧向间距为1.6 m是合适的解决方案。考虑到补偿根吸收过程,与Hydrus-2D版本相关的局部Yc = F(AET)关系可能会产生一个有趣的工具,以帮助确定不同土壤条件下的最佳灌溉系统设计。

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