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基于容量密度优化的电站发电量模型评估双面太阳能光伏对未来电力系统的影响
Assessing the impact of bifacial solar photovoltaics on future power systems based on capacity-density-optimised power plant yield modelling
| 作者 | Dominik Keiner · Lukas Walter · Dmitrii Bogdanov · Ian Marius Peters · Christian Breyer |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 295 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Novel approach for capacity-density optimisation of solar [PV](https://www.sciencedirect.com/topics/engineering/photovoltaics "Learn more about PV from ScienceDirect's AI-generated Topic Pages") power plants presented. |
语言:
中文摘要
摘要 双面太阳能光伏发电(PV)技术目前正逐步主导太阳能光伏组件市场,预计在2025年市场份额将超过90%。这一重要技术必须被纳入能源系统建模中。本研究提出了一种方法,用于计算固定倾角、单轴跟踪以及东西朝向垂直安装等不同配置下单面和双面光伏电站的发电量。本文引入一种新方法,在无需详细土地成本数据的情况下,最大化太阳能光伏电站的容量密度,以实现对占用面积的最高效利用。结果表明,与固定倾角电站相比,单轴跟踪可带来15–20%的发电量增益,而全球大多数地区的双面增益有限,最高约为10%;在特定条件下,较高的双面增益虽可零星实现,但不具普遍性。固定倾角系统表现出更高的双面增益。通过优化倾角和排间距,当前可实现高达147 MW/km²的容量密度;而对于效率为20.2%的组件,平均容量密度可达70–110 MW/km²。在自由成本优化情景以及强制采用垂直双面光伏(意味着农光互补应用)的情景下,该技术对电力系统的影响并不显著:总太阳能光伏装机容量变化在±10%以内,风电装机容量平均减少10%,电池储能装机容量平均增加5%,全球平均平准化度电成本(LCOE)下降约2%。研究发现,双面太阳能光伏技术虽具效益,但并非未来电力系统的颠覆性技术;现有系统仍存在广泛的改进空间,凸显了该技术的重要作用。
English Abstract
Abstract Bifacial solar photovoltaic (PV) technology is currently taking over the solar PV module market, exceeding a 90% share in 2025. This important technology must be included in energy system modelling. This study provides a method for calculating the yield of monofacial and bifacial power plants in fixed-tilted, single-axis tracking, and east–west facing vertical setup. A novel method is introduced to maximise the capacity density of solar PV power plants without the need for detailed land cost for the most efficient use of the occupied area. The results indicate a 15–20% yield gain from single-axis tracking compared to fixed-tilted power plants, and a limited bifacial gain of up to 10% for most areas of the world. Higher bifacial gains are sporadically possible in specific conditions. Fixed-tilted systems show higher bifacial gains. Optimising tilt angles and row pitch would allow for 147 MW/km 2 capacity density today, though on average 70–110 MW/km 2 can be achieved for 20.2% module efficiency. The impact on the power system, studied in a free cost optimisation scenario and forcing vertical bifacial PV scenario, implying agrivoltaics, is not significant with a ± 10% change in total solar PV capacity, change in installed wind power of on average −10%, increase of installed battery capacity of on average 5%, and an on average changed levelised cost of electricity of −2% globally. Bifacial solar PV technology has been found to be beneficial but no game changer for future power systems; system improvements are widely possible underlining the important role of this technology.
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SunView 深度解读
双面组件技术对阳光电源SG系列逆变器和储能系统具有重要价值。研究显示双面组件可提升10%发电量,但需配套储能系统平抑出力波动。阳光电源可优化MPPT算法适配双面组件背面增益特性,ST系列储能系统需增配5%容量应对发电波动。单轴跟踪系统增益15-20%为大型地面电站提供技术路线,147MW/km²容量密度优化为iSolarCloud平台提供选址规划依据。垂直双面光伏农业应用场景可拓展阳光电源户用储能市场。