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A bottom-up approach to identifying the maximum operational adaptive capacity of water resource systems to a changing climate

机译:自下而上的方法来确定水资源系统对气候变化的最大适应能力

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Many water resource systems have been designed assuming that the statistical characteristics of future inflows are similar to those of the historical record. This assumption is no longer valid due to large-scale changes in the global climate, potentially causing declines in water resource system performance, or even complete system failure. Upgrading system infrastructure to cope with climate change can require substantial financial outlay, so it might be preferable to optimize existing system performance when possible. This paper builds on decision scaling theory by proposing a bottom-up approach to designing optimal feedback control policies for a water system exposed to a changing climate. This approach not only describes optimal operational policies for a range of potential climatic changes but also enables an assessment of a system's upper limit of its operational adaptive capacity, beyond which upgrades to infrastructure become unavoidable. The approach is illustrated using the Lake Como system in Northern Italya regulated system with a complex relationship between climate and system performance. By optimizing system operation under different hydrometeorological states, it is shown that the system can continue to meet its minimum performance requirements for more than three times as many states as it can under current operations. Importantly, a single management policy, no matter how robust, cannot fully utilize existing infrastructure as effectively as an ensemble of flexible management policies that are updated as the climate changes.
机译:在设计许多水资源系统时,都假定未来流入量的统计特征与历史记录相似。由于全球气候的大规模变化,该假设不再有效,从而可能导致水资源系统性能下降,甚至导致整个系统故障。升级系统基础架构以应对气候变化可能需要大量的财务支出,因此,在可能的情况下优化现有系统性能可能是更可取的。本文基于决策缩放理论,通过提出一种自下而上的方法来设计暴露于气候变化的水系统的最佳反馈控制策略。这种方法不仅描述了针对一系列潜在气候变化的最佳运行策略,而且还可以评估系统的运行适应能力的上限,否则系统升级不可避免。使用意大利北部受管制系统的科莫湖系统对这种方法进行了说明,该系统具有气候与系统性能之间的复杂关系。通过优化系统在不同水文气象状态下的运行情况,可以证明该系统可以继续满足其最低性能要求的状态是当前运行状态下的三倍以上。重要的是,一个单一的管理策略,无论多么强大,都无法像气候变化时不断更新的灵活管理策略一样有效地充分利用现有基础架构。

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