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Operational Electricity Dispatch Based on Direct Normal Irradiance (DNI) and Load Forecasting: Case Study: STTP with TES system

机译:基于直接正常辐射(DNI)和负荷预测的运营用电调度:案例研究:带TES系统的STTP

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The rise in the use of concentrated solar power (CSP) systems has drawn attention to the fluctuations that affect the grid due to the variability nature of solar resources especially Direct Normal Irradiance (DNI), the main component of these systems. These variations can cause serious damages to the grid causing sometimes black-outs. In terms of technical operations, the chaotic behavior of DNI makes the dispatch in many cases impossible to provide electricity for the right place at the right time when the need is there. This study proposes an operational method to dispatch electricity based on DNI and load forecasting using statistical and machine learning techniques combined with the dispatch tool provided in SAM (System Advisor Model) software. The case study explored is the Solar Tower with the molten salt combined with Thermal Energy Storage (TES) system used in NOOR 3 Ouarzazate, Morocco. The aim of the proposed method is to reduce the effect of fluctuations on the electrical grid by anticipating them and providing an easier and more accurate operational way of scheduling and making dispatch decisions. The results show a considerable increase in the performance of the simulated grid due to the new proposed dispatch method and the machine learning techniques used.
机译:集中式太阳能(CSP)系统的使用的增加引起了人们对影响电网的波动的关注,这些波动是由于太阳能资源的可变性而引起的,尤其是这些系统的主要组成部分直接法向辐照度(DNI)。这些变化可能会对电网造成严重损害,有时会导致停电。在技​​术操作方面,DNI的混乱行为使调度在许多情况下无法在需要的时候在正确的时间为正确的位置供电。这项研究提出了一种操作方法,该方法基于DNI和负荷预测,使用统计和机器学习技术结合SAM(系统顾问模型)软件中提供的调度工具进行调度。探索的案例研究是摩洛哥摩洛哥瓦尔扎扎特NOOR 3所用的带有熔融盐和热能存储(TES)系统的太阳能塔。所提出的方法的目的是通过预测波动来减少波动对电网的影响,并提供一种更轻松,更准确的调度和做出调度决策的操作方式。结果表明,由于提出了新的调度方法和所使用的机器学习技术,模拟网格的性能有了显着提高。

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