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Application of adaptive time delay model in optimal control of a hydropower cascade

机译:自适应时间延迟模型在水电级联的最优控制中的应用

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Small hydropower plants (SHP) are increasingly constructed in recent years as a substitution of the use of conventional energy materials such as wood and fossil fuel in remote rural regions. Besides new constructed plants, upgrading operational strategies of existed systems for increasing electricity productivity is also significant. Motivated by this issue, a combination of two techniques, simulation and optimization based on models is frequently used to improve the operation regimes of coordinated reservoir cascades. However, the application of a complex hydraulic model consumes a huge computation time. Hence, this paper proposes a replacement for the complex hydraulic model by an adaptive time delay (ATD) model. The cutting- edge point is that the ATD model is able to quickly predict the system dynamics both in simulation and optimization. This ATD model consists of only two parameters: time constant and time delay which are functions of unsteady flow and can be easily derived from complex hydraulic models (HECRAS, MIKE 11), or from physical parameters of rivers (flow rate, roughness, bed slope, cross section). The integration of the ATD model into the simulation and optimization techniques will be demonstrated by a case study of a cascade of SHPs. In terms of optimization, a non-linear constrainted optimization algorithm is applied to improve electricity production to meet the scheduled demand.
机译:近年来,小水电站(SHP)越来越多地构建,作为遥远的农村地区的常规能源材料等常规能源材料的替代,越来越多地构建。除了新的建造植物外,升级现有系统的运营策略,用于增加电力生产率也是显着的。基于该问题的激励,基于模型的两种技术,仿真和优化的组合通常用于改善协调储层级联的操作制度。然而,复杂的液压模型的应用消耗了巨大的计算时间。因此,本文通过自适应时间延迟(ATD)模型提出了复杂液压模型的替代品。尖端点是ATD模型能够在仿真和优化中快速预测系统动态。该ATD模型仅由两个参数组成:时间常数和时间延迟,它是不稳定流量的功能,并且可以容易地从复杂的液压模型(HECRAS,MIKE 11)或来自河流的物理参数(流量,粗糙度,床斜率, 横截面)。将通过对SHPS级联的案例研究来证明ATD模型将ATD模型集成到模拟和优化技术中。在优化方面,应用非线性约束优化算法来改善电力生产以满足预定需求。

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