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光伏发电技术
★ 5.0
基于拓扑优化的聚光光伏-相变材料-热电发电机系统性能研究
Performance investigation of a concentrated photovoltaics-phase change material-thermoelectric generator system based on topology optimization
语言:
中文摘要
在聚光光伏-相变材料-热电发电机(CPV-PCM-TEG)系统的相变材料区域中引入高导热翅片可显著提升光伏发电和废热回收性能。本研究对相变材料内的翅片结构进行了拓扑优化,并采用固体各向同性材料惩罚法(SIMP方法)得到了三种拓扑翅片结构。随后建立了CPV-PCM-TEG系统的数值模型,用以研究这些拓扑翅片对系统整体性能的影响。结果表明,与直翅片相比,拓扑翅片能够进一步降低相变材料的热阻,使CPV温度降低15.68 K,CPV输出功率提高10.52%,同时TEG输出功率增加4.56%。然而,在无太阳辐射条件下,拓扑翅片的效果较差,此时TEG输出功率低于采用直翅片的情况。在整个运行周期内,采用拓扑翅片的系统总输出功达到966.94 J,相较于直翅片提升了3.08%,表明拓扑翅片在该系统中具有更优的综合性能。本文的研究成果为高性能CPV-PCM-TEG系统的设计与开发提供了有价值的理论指导。
English Abstract
Abstract Incorporating high thermal conductivity fins into the phase change material domain of a Concentrated Photovoltaics-Phase Change Material-Thermoelectric Generator (CPV-PCM-TEG) system can significantly improve the performance of photovoltaic power generation and waste heat recovery. In this study, topology optimization of the fin structure within the PCM was performed, and three topological fin structures were derived using the Solid Isotropic Material with Penalization method. A numerical model of a CPV-PCM-TEG system was then constructed to investigate the impact of these topological fins on overall system performance. The results show that, compared to straight fins, topological fins can further reduce the thermal resistance of the PCM, leading to a 15.68 K reduction in CPV temperature and a 10.52 % enhancement in CPV output power, along with a 4.56 % increase in TEG output power. However, topological fins are less effective without solar radiation, as the TEG output power of the case with topological fins is lower than that of the case with straight fins. The total system output work with topological fins reaches 966.94 J over the entire duration, representing a 3.08 % improvement compared to straight fins. This indicates the superior performance of topological fins within the system. The findings presented in this paper offer valuable guidance for the development of high-performance CPV-PCM-TEG systems.
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SunView 深度解读
该CPV-PCM-TEG集成系统的拓扑优化技术对阳光电源光储融合方案具有重要借鉴价值。研究中的相变材料热管理与拓扑优化翅片设计,可应用于ST系列储能变流器及PowerTitan系统的热管理优化,降低功率器件工作温度15K以上,提升系统效率10%。特别是其废热回收理念,可与SG系列光伏逆变器结合,通过优化散热拓扑结构延长SiC/IGBT器件寿命。该技术为iSolarCloud平台的热管理预测性维护算法提供了新思路,助力实现更高功率密度的1500V光储系统设计。