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光伏发电技术 储能系统 ★ 5.0

氧化铜纳米流体作为聚光光伏/热系统光谱分束器的研究

Investigation of CuO nanofluid as spectral splitters for concentrated Photovoltaic/Thermal systems

作者 Yiming Wang1 · Xinyue Liu1 · Wanrong Yang · Ruizhe Kou · Yizhan Huang · Binghong Chen
期刊 Solar Energy
出版日期 2025年1月
卷/期 第 301 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 Water-based CuOnanofluidswere proposed asspectral splitterfor spectral-splitting CPV/T system.
语言:

中文摘要

摘要 聚光光伏/热(CPV/T)系统通过光谱分束技术和高通量太阳辐射的集成能量收集,为太阳能利用提供了一种协同高效的途径。为应对CPV/T系统在高温工况下的运行需求,本研究采用具有优异化学稳定性的氧化铜(CuO)纳米流体作为光谱分束介质。基于朗伯-比尔定律构建光学模型,计算了CuO纳米流体的光学透射率,结果表明其在700 nm以下波长范围内具有强吸收特性,而在700–1100 nm波段具有高透射率,该光学特性与单晶硅电池的响应光谱相匹配,适合作为光谱分束器。本研究建立了综合性的实验框架,通过㶲效率和性能综合指标(MF)等关键参数对系统性能进行评估。在非聚光条件下,实验结果表明CuO纳米颗粒浓度为300 ppm时系统性能最优,此时MF值达到2.174,对应的热功率密度和电功率密度分别为662.77 W/m²和66.50 W/m²。引入光学聚光技术后,系统性能显著提升。当聚光比为4时,MF值达到1.878,系统㶲效率较非聚光工况提高了44.3%,同时热功率密度和电功率密度分别升高至1,859.11 W/m²和185.70 W/m²,能够同步输出电能和热能,满足中高温热能应用需求。

English Abstract

Abstract Concentrated Photovoltaic/Thermal (CPV/T) systems offer a synergistic approach to solar energy utilization through spectral splitting technology and integrated energy harvesting of high-flux solar radiation. To address the high-temperature operational demands of CPV/T systems, this study employs copper oxide (CuO) nanofluids with superior chemical stability as the spectral splitter. The optical transmittance of CuO was calculated with an optical model governed by the Lambert-Beer law, showing CuO nanofluids exhibited strong absorption capabilities below 700 nm and high transmittance in the 700–1100 nm wavelength range, which matches with monocrystalline silicon cells to serve as the spectral splitters. A comprehensive experimental framework was developed to evaluate system performance through critical parameters including exergy efficiency and merit function (MF). Experimental results under non-concentrated conditions revealed optimal performance at 300 ppm concentration for CuO nanoparticles, yielding a MF of 2.174 with thermal and electric power densities of 662.77 W/m 2 and 66.50 W/m 2 respectively. The integration of optical concentration technology demonstrated substantial performance enhancements. At a concentration ratio of 4, a high MF value of 1.878 was achieved and the system exergy efficiency was increased by 44.3 % compared to non-concentrated operation, accompanied by elevated thermal and electrical power densities of 1,859.11 W/m 2 and 185.70 W/m 2 , which can provide simultaneous electricity and thermal output to satisfy medium-to-high temperature heating demands.
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SunView 深度解读

该CPV/T光谱分离技术对阳光电源SG系列光伏逆变器和储能系统具有重要启示。CuO纳米流体实现光谱分离与热电联供,在4倍聚光比下系统㶲效率提升44.3%,热功率密度达1859 W/m²。这为我司1500V高压系统和MPPT优化算法提供新思路:可开发适配光谱分离型CPV/T的专用逆变器,结合ST系列储能PCS实现电热协同调度,通过iSolarCloud平台智能管理热电输出,满足工商业中高温热需求场景,提升综合能源利用效率和系统经济性。