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光伏发电技术
★ 5.0
抽水蓄能电站与漂浮式光伏发电集成的经济技术优化
Techno-economic optimization of pumped hydro storage plants integrated with floating photovoltaic
| 作者 | Abdullah Bamoshmoos · Matteo Catani · Vincenzo Dipierr · Marco Ficil · Andrea Fusco · Domenico Gioffr · Federico Paroli · Lorenzo Pilott · Andrea Zelasch · Ferdinando Vincent |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 382 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | MILP optimization to assess floating PV and pumped hydro storage plants integration. |
语言:
中文摘要
摘要 抽水蓄能电站(PHS)与集成式漂浮式光伏电站(FPV)相结合,为应对能源转型中的挑战提供了一种有前景的解决方案。这两种技术的结合具有显著的协同效应,有望优化空间利用、减少因蒸发造成的水资源损失,并通过水体的自然冷却作用提高光伏组件的效率。本文研究了将FPV与现有PHS系统集成的潜力,旨在评估该混合系统相较于独立运行的PHS在技术和经济方面的潜在优势。为此构建了一个优化问题,并以混合整数线性规划(MILP)模型进行表述,其中FPV光伏板直接连接至电网和水泵,既可将电力出售至电网,也可用于驱动水泵运行。该模型揭示了两种技术之间的重要关联,特别建立了水体蒸发量与变动的电力购售价格之间的具体相关性。所建立的模型应用于意大利现有的三个PHS系统,这些系统具有不同的集成潜力参数(IPP)。该参数由本研究提出,用于评估PHS-FPV系统的集成潜力。针对每个电站,考虑了四种不同集成程度的情形进行分析。此外,还开展了敏感性分析,以评估可用安装表面积的影响。结果表明,在PHS系统中集成FPV能够显著提升其经济性和运行性能。所研究的三个电站的净现值(NPV)均有所增加,最高可达基准PHS运行情况下的六倍。集成方案还促使PHS等效运行小时数增加,这得益于电价波动带来的运行优化;同时,由于FPV面板的覆盖,减少了水库的水分蒸发。而可用于安装的水面面积则成为制约FPV技术应用的主要限制因素。
English Abstract
Abstract Pumped hydroelectric storage plants (PHS) with integrated floating photovoltaic power plants (FPV) represent a promising solution to the challenges of the energy transition. The combination of these two technologies offers a compelling synergy, with the potential to optimize the utilization of space, reduce water loss due to evaporation, and enhance the efficiency of PV modules through natural water cooling. This paper examines the potential for integrating FPV with existing PHS. The objective is to assess the possible techno-economic benefits of hybridization of the two systems with respect to standalone PHS. An optimization problem has been developed, formulated as a mixed-integer linear programming (MILP) model, in which the FPV panels are directly connected to both the electrical grid and the pumps, enabling either the sale of electricity or the powering of the pumps. The model highlights important relations between the two technologies, providing a specific correlation between water evaporation and variable purchase and selling electricity prices. The developed model has been applied to three existing PHS systems in Italy, which present different integrated potential parameters (IPP). This parameter, introduced in this work, is used to assess the potential of PHS-FPV integration. For each plant four cases were considered for investigation, distinguished by different integration levels. Moreover, a sensitivity analysis is conducted to assess the impact of available surface area. The outcomes demonstrate that the integration of FPV in a PHS system enhances its economic and operational performance. The NPV of the three plants investigated exhibited an increase, with a maximum of a six-fold increase compared to the baseline PHS operation. The integration also results in an increase in the equivalent hours of PHS operation promoted by the variability in electricity prices and in a reduction of the water evaporation due to the presence of FPV panel while the available surface for installation emerges as the main limiting factor for the adoption of FPV technology.
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SunView 深度解读
该抽水蓄能-漂浮光伏混合系统研究对阳光电源具有重要战略价值。SG系列1500V光伏逆变器可优化漂浮电站发电效率,ST系列PCS与PowerTitan储能系统可实现抽水蓄能与电化学储能的协同调度。论文提出的MILP优化模型可集成至iSolarCloud平台,通过电价套利策略优化水泵直驱与并网售电切换逻辑。三电平拓扑技术可提升泵站变频驱动效率,GFM控制策略可增强混合系统电网支撑能力,为水光储一体化项目提供完整解决方案。