Enhancement of border irrigation systems: Leveraging simulation–optimization techniques

IF 6.5 1区 农林科学 Q1 AGRONOMY
Mahmood Akbari , Saeed Farahani
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引用次数: 0

Abstract

Surface irrigation systems, while widespread due to their low operational costs, often suffer from significant inefficiencies driven by inappropriate design and management practices. To address this, the current study proposes a new simulation–optimization model aimed to the design of open-end border irrigation systems, seeking to enhance hydraulic performance under field constraints. The model integrates a modified hydro-empirical SCS simulation framework with the Grey Wolf Optimizer (GWO) algorithm, using border length, slope, inflow discharge, and deficit irrigation Factor as decision variables. Performance evaluation is based on five hydraulic indicators, embedded in a weighted single-objective function. The model was applied to three real case studies representing varying soil textures and irrigation requirements. Results demonstrate that the modified SCS model could simulate all four phases of irrigation as well as determine the subsurface infiltration curve across the field. Also optimization consistently reduced the advance time, aligning infiltration opportunity times across the field, and thereby improved distribution uniformity, and requirement efficiency, while substantially reducing total applied water. The findings also highlight the critical influence of decision variables—particularly inflow discharge and field length—on system performance, and emphasize that shortening the advance phase was the most effective strategy for performance enhancement. Ultimately, the proposed model offers a computationally efficient and hydraulically robust approach to designing border irrigation systems with improved resource efficiency and operational resilience.
加强边境灌溉系统:利用模拟优化技术
地面灌溉系统虽然由于其低操作成本而广泛使用,但由于设计和管理做法不当,往往存在严重的效率低下问题。为了解决这一问题,本研究提出了一种新的模拟优化模型,旨在设计开放式边界灌溉系统,以提高田间约束下的水力性能。该模型将改进的水文经验SCS模拟框架与灰狼优化器(GWO)算法集成在一起,以边界长度、坡度、入流流量和亏缺灌溉因子作为决策变量。性能评估基于五个液压指标,嵌入在一个加权的单目标函数中。该模型应用于代表不同土壤质地和灌溉要求的三个实际案例研究。结果表明,改进的SCS模型可以模拟灌溉的所有四个阶段,并确定整个农田的地下入渗曲线。此外,优化持续缩短了提前时间,调整了整个油田的入渗机会时间,从而提高了分布均匀性和需求效率,同时大幅减少了总施水量。研究结果还强调了决策变量(特别是流入流量和油田长度)对系统性能的关键影响,并强调缩短提前阶段是提高性能的最有效策略。最终,所提出的模型为设计具有提高资源效率和操作弹性的边界灌溉系统提供了一种计算效率和水力稳健的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Agricultural Water Management
Agricultural Water Management 农林科学-农艺学
CiteScore
12.10
自引率
14.90%
发文量
648
审稿时长
4.9 months
期刊介绍: Agricultural Water Management publishes papers of international significance relating to the science, economics, and policy of agricultural water management. In all cases, manuscripts must address implications and provide insight regarding agricultural water management.
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