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光伏发电技术 多物理场耦合 可靠性分析 ★ 5.0

基于光热电全耦合的纳米流体分光光伏/热

PV/T)系统热电性能分析

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中文摘要

摘要 优化系统结构并引入分光技术是提升聚光太阳能光伏/热(PV/T)系统运行性能的有效策略。本研究提出了一种基于分光技术的两级聚光PV/T系统,并采用光-热-电全耦合的方法对系统进行分析。首先,利用蒙特卡洛光线追踪(MCRT)方法验证所建立的离散坐标(DO)辐射模型的可靠性。随后,将获得的定量结果作为体热源应用于三维流动传热模型中。最后,对两级聚光纳米流体PV/T系统在不同运行条件下的运行特性进行了参数化研究。结果表明,由二维DO辐射模型获得的辐射通量与MCRT方法所得结果具有良好的一致性。在三维流动传热模型的串联运行条件下,当纳米流体入口温度为25°C、入口质量流量为0.03 kg/s时,光伏子系统的发电效率为22.13%,集成系统的热效率为71.85%,㶲效率为20.77%。本研究还评估了系统在串联与并联配置下的运行效率,结果显示串联配置可实现更高的㶲效率,而并联配置则有助于提高系统的热效率。

English Abstract

Abstract Optimizing the system structure and introducing beam splitting technology are effective strategies for enhancing the operational performance of concentrating solar photovoltaic/thermal (PV/T) systems. In this study, a two-stage concentrating PV/T system based on beam splitting is proposed, and the system is analyzed using a fully coupled optical-thermal-electrical method. First, the reliability of the established discrete ordinates (DO) radiation model is verified using the Monte Carlo Ray Tracing (MCRT) method. Next, the obtained quantitative results are applied as a volumetric heat source in a 3D flow heat transfer model. Finally, the operational characteristics of the two-stage concentrating nanofluid PV/T system under various operating conditions are investigated parametrically. The results demonstrate that the radiative fluxes obtained from the 2D DO radiation model are in good agreement with those derived from the MCRT method. Under the series operating condition of the 3D flow heat transfer model, the electrical efficiency of the PV subsystem is 22.13 %, the thermal efficiency of the integrated system is 71.85 %, and the exergy efficiency is 20.77 %, with a nanofluid inlet temperature of 25 °C and an inlet mass flow rate of 0.03 kg/s. This study also evaluates the system’s operating efficiency under series and parallel configurations, showing that the series configuration achieves higher exergy efficiency, while the parallel configuration enhances the thermal efficiency of the system.
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SunView 深度解读

该光热电全耦合分光PV/T技术对阳光电源SG系列光伏逆变器及智能运维系统具有重要价值。研究中的多物理场耦合建模方法可应用于逆变器热管理优化,提升MPPT算法在复杂光热条件下的追踪精度。串并联运行模式对比分析为储能系统ST系列PCS的拓扑优化提供参考,特别是在光储一体化场景中平衡电效率(22.13%)与热效率(71.85%)。纳米流体冷却技术可借鉴至SiC/GaN功率器件散热设计,DO辐射模型的可靠性验证方法适用于iSolarCloud平台的预测性维护算法开发,提升系统全生命周期效率。