光伏帆:利用垂直双面光伏组件在浮动光伏系统中的创新应用

IF 8 2区 材料科学 Q1 ENERGY & FUELS Progress in Photovoltaics Pub Date : 2024-08-19 DOI:10.1002/pip.3841
Giuseppe Marco Tina, Amr Osama, Raniero Cazzaniga, Monica Cicu, Jon Hancock, Eamon Howlin, Marco Rosa-Clot, Paolo Rosa-Clot
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摘要

在海上浮动光伏系统(FPV)方面,本文探讨了垂直安装双面光伏组件的使用。从垂直配置的双面光伏组件后端面采集的能量弥补了组件前端面减少的产量,这证明了双面技术在近海应用中的潜力。相比之下,现有的大多数水平倾斜双面 FPV 系统只能从组件后端面获得很小的收益,这是因为接收到的辐射量最小,而且还必须考虑到由于光伏组件倾斜角度小而产生的严重污垢的负面影响。因此,为了克服这些缺点,我们开发了创新的 "PVSail "概念,探索在浮筒、浮标或电线杆/桩上部署垂直 FPV 系统。浮动垂直双面光伏系统(VBPV)在利用反射光(尤其是北方地区积雪表面的反射光)提高发电能力方面潜力巨大。我们的分析考虑了一种获得专利的系泊和垂直光伏系统,该系统可使 VBPV 结构与盛行风向保持一致,从而减小风载荷,我们的数值分析探索了 VBPV 在意大利卡塔尼亚和英国尼格湾的应用潜力。我们的分析研究表明,在方位角范围(0°-180°)内,垂直双面组件在卡塔尼亚的发电量大约会减少 9%,而在尼格湾等纬度较高的地区,发电量则会增加 5%。此外,增加垂直双面光伏安装位置的纬度可降低能量产出对方位(即方位角)的敏感性。PVSail 概念为海上可再生能源项目的新型部署打开了大门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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PVSails: Harnessing Innovation With Vertical Bifacial PV Modules in Floating Photovoltaic Systems

In the context of offshore floating photovoltaic systems (FPVs), this paper explores the use of bifacial photovoltaic modules installed in the vertical position. The energy harvested from the rear face of vertically configured bifacial PV modules compensates for the reduced production at the front face of the module, and this demonstrates the potential of bifacial technology for offshore applications. By comparison, most existing horizontally tilted bifacial FPV systems gain only a small benefit in production from the rear face of the module due to the minimum radiation received, and what also must be taken into consideration is the negative effect of significant soiling owing to the low tilt angle of the PV modules. Hence, to overcome these drawbacks, we have developed the innovative “PVSail” concept, which explores the deployment of vertical FPV systems on floats, buoys, or poles/minipiles. Floating vertical bifacial PV systems (VBPVs) have huge potential to harness all the energy generation capabilities enhance by reflected light, especially from snow-covered surfaces in northern regions. Our analysis considers a patented mooring and vertical PV system that allows the VBPV structure to align with the prevailing wind direction to shed wind loads, and our numerical analysis explores the potential of VBPV applied to Catania in Italy and Nigg Bay in the United Kingdom. Our analysis study has revealed that across an azimuth angle range (0°–180°), vertical bifacial modules experience roughly a 9% decrease in energy yield at Catania and about a 5% energy yield gain in higher latitude regions like Nigg Bay. Additionally, increasing the latitude of the installation location of VBPV reduces the energy yield sensitivity to the orientation, that is, azimuth angle. The PVSail concept opens the door to novel deployment possibilities in offshore renewable energy projects.

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来源期刊
Progress in Photovoltaics
Progress in Photovoltaics 工程技术-能源与燃料
CiteScore
18.10
自引率
7.50%
发文量
130
审稿时长
5.4 months
期刊介绍: Progress in Photovoltaics offers a prestigious forum for reporting advances in this rapidly developing technology, aiming to reach all interested professionals, researchers and energy policy-makers. The key criterion is that all papers submitted should report substantial “progress” in photovoltaics. Papers are encouraged that report substantial “progress” such as gains in independently certified solar cell efficiency, eligible for a new entry in the journal''s widely referenced Solar Cell Efficiency Tables. Examples of papers that will not be considered for publication are those that report development in materials without relation to data on cell performance, routine analysis, characterisation or modelling of cells or processing sequences, routine reports of system performance, improvements in electronic hardware design, or country programs, although invited papers may occasionally be solicited in these areas to capture accumulated “progress”.
期刊最新文献
Issue Information Photovoltaics Literature Survey (No. 194) Issue Information Investigation of Potential-Induced Degradation and Recovery in Perovskite Minimodules Role of Ag Addition on the Microscopic Material Properties of (Ag,Cu)(In,Ga)Se2 Absorbers and Their Effects on Losses in the Open-Circuit Voltage of Corresponding Devices
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