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Improving SWAT auto-irrigation functions for simulating agricultural irrigation management using long-term lysimeter field data

机译:改进SWAT自动灌溉功能,使用长期溶渗仪田间数据模拟农业灌溉管理

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Decreasing groundwater availability in the Texas High Plains has resulted in the widespread adoption of management allowed depletion (MAD) irrigation scheduling. Modeling of such practices and their effects on water balance components can be a cost-effective and time-saving alternative to field-based research. However, studies have identified deficiencies in the auto-irrigation algorithms in the Soil and Water Assessment Tool (SWAT) including the continuation of irrigation during the non-growing season and an inability to simulate growth stage-specific irrigation. Consequently, new and representative auto-irrigation algorithms were developed using 1) a uniform, single season MAD and 2) a growth stage-specific MAD with options for seasonal growth stage partitioning based on scheduled date and accumulated heat units. Comparisons with observed data from an irrigated lysimeter field showed improved model performance for simulations of irrigation amount and frequency and actual evapotranspiration. Minimal differences in leaf area index and yield were observed with the non-water stressed management. (C) 2017 Elsevier Ltd. All rights reserved.
机译:得克萨斯州高平原地区地下水供应的减少导致广泛采用管理允许消耗(MAD)灌溉计划。对此类做法进行建模及其对水平衡要素的影响可能是基于实地研究的一种经济高效且省时的选择。但是,研究发现土壤和水评估工具(SWAT)中的自动灌溉算法存在缺陷,包括在非生长季节持续灌溉以及无法模拟生长阶段特定的灌溉。因此,使用1)统一的单季MAD和2)特定于生长阶段的MAD,并根据计划日期和累积热量单位选择季节性生长阶段,开发了新的代表性自动灌溉算法。与来自灌溉测渗仪领域的观测数据的比较表明,在模拟灌溉量和频率以及实际蒸散量方面,模型性能有所提高。在非水分胁迫下,叶面积指数和单产差异最小。 (C)2017 Elsevier Ltd.保留所有权利。

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