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Advanced Monitoring and Management Systems for Improving Sustainability in Precision Irrigation

机译:提高精密灌溉可持续性的先进监控和管理系统

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Globally, the irrigation of crops is the largest consumptive user of fresh water. Water scarcity is increasing worldwide, resulting in tighter regulation of its use for agriculture. This necessitates the development of irrigation practices that are more efficient in the use of water but do not compromise crop quality and yield. Precision irrigation already achieves this goal, in part. The goal of precision irrigation is to accurately supply the crop water need in a timely manner and as spatially uniformly as possible. However, to maximize the benefits of precision irrigation, additional technologies need to be enabled and incorporated into agriculture. This paper discusses how incorporating adaptive decision support systems into precision irrigation management will enable significant advances in increasing the efficiency of current irrigation approaches. From the literature review, it is found that precision irrigation can be applied in achieving the environmental goals related to sustainability. The demonstrated economic benefits of precision irrigation in field-scale crop production is however minimal. It is argued that a proper combination of soil, plant and weather sensors providing real-time data to an adaptive decision support system provides an innovative platform for improving sustainability in irrigated agriculture. The review also shows that adaptive decision support systems based on model predictive control are able to adequately account for the time-varying nature of the soil–plant–atmosphere system while considering operational limitations and agronomic objectives in arriving at optimal irrigation decisions. It is concluded that significant improvements in crop yield and water savings can be achieved by incorporating model predictive control into precision irrigation decision support tools. Further improvements in water savings can also be realized by including deficit irrigation as part of the overall irrigation management strategy. Nevertheless, future research is needed for identifying crop response to regulated water deficits, developing improved soil moisture and plant sensors, and developing self-learning crop simulation frameworks that can be applied to evaluate adaptive decision support strategies related to irrigation.
机译:在全球范围内,作物的灌溉是淡水中最大的消耗药物。水资源稀缺在全世界正在增加,导致对农业使用的更严格调控。这需要开发灌溉实践,这些灌溉实践在使用水中更有效,但不会妥协作物质量和产量。部分灌溉已经实现了这一目标。精密灌溉的目的是尽可能地及时准确地提供作物水需求,并尽可能地空间均匀地提供。但是,为了最大限度地提高精确灌溉的好处,需要使额外的技术能够并入农业。本文讨论了将自适应决策支持系统结合到精密灌溉管理中,这将实现提高当前灌溉方法效率的显着进展。从文献综述中,发现精确灌溉可以应用于实现与可持续性相关的环境目标。然而,在现场规模的作物生产中的精确灌溉的经济效益很低。有人认为,为自适应决策支持系统提供实时数据的土壤,植物和天气传感器的适当组合为提高灌溉农业的可持续性提供了一种创新平台。审查还表明,基于模型预测控制的自适应决策支持系统能够充分考虑土壤 - 植物 - 大气系统的时变性质,同时考虑到到达最佳灌溉决策时的运营限制和农艺目标。得出结论,通过将模型预测控制纳入精密灌溉决策支持工具,可以实现作物产量和水资源的显着改善。还可以通过包括赤字灌溉,作为整体灌溉管理策略的一部分,也可以实现水资源的进一步改善。尽管如此,需要未来的研究来确定对受管制的水缺陷,开发改进的土壤水分和植物传感器,以及开发自学作物模拟框架,可以应用于评估与灌溉有关的自适应决策支持策略。

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