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太阳能驱动相变材料-热电耦合系统传热强化研究
Research on heat transfer enhancement of solar-driven phase change materials-thermoelectric coupling systems
| 作者 | Xiaoxiao Yua1 · Jiawei Wanga1 · Zihua Wu · Lan Dong · Yihuai Li · Yongjie Cui · Huaqing Xi |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 287 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 多物理场耦合 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 相变材料 - 热电发电机耦合系统 传热性能 铜网 蓄热 发电 |
语言:
中文摘要
摘要 相变材料-热电发电机(PCMs-TEG)耦合系统是一种实现稳定且高效发电的有效技术。然而,PCMs-TEG系统的低传热性能限制了其热能存储与发电能力。本研究通过嵌入铜网来提升相变材料(PCMs)的传热能力。实验结果表明,增加铜网能够减小PCMs两端的温度差,并缩短温度平衡时间。有趣的是,热能存储能力与传热性能之间存在一种竞争关系,这种关系实际上对PCMs-TEG耦合系统的发电性能产生不利影响。此外,降低PCMs与TEG之间的界面热阻可使发电性能提高41.4%。在铜网与导热界面材料的协同作用下,PCMs-TEG耦合系统的发电量比纯TEG系统高出656.6%,在每日6小时的聚光照射条件下,可产生高达710178.9元/(hm²)的环境效益。该PCMs-TEG耦合系统的性能改进有助于加速太阳能高效转换技术的发展。
English Abstract
Abstract Phase change materials-thermoelectric generator (PCMs-TEG) coupling system is an effective technology of stable and great power generation. However, the low heat transfer performance of PCMs-TEG limits the thermal energy storage and power generation captivity. In this work, the heat transfer capability of PCMs is improved by embedding copper meshes. The experimental results ensure that the increase of copper meshes can decrease the temperature difference at the two ends of PCMs, and also shortens the temperature equilibrium time. Interestingly, there is a competitive relationship between thermal energy storage and the heat transfer performance, which is actually detrimental to the power generation performance of the PCMs-TEG coupling system. In addition, the reduction of the interface thermal resistance between PCMs and TEG make the power generation performance increase by 41.4 %. Under the cooperation of copper meshes and thermal interface materials, PCMs-TEG coupling systems have 656.6 % more electricity than that of the pure TEG system, and generate great environmental benefits by 710178.9 ¥/(hm 2 ) under concentrated illumination per day (6 h). The improvement of PCMs-TEG coupling systems is beneficial for accelerating the development of solar-to-efficiency technology.
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SunView 深度解读
该PCMs-TEG耦合系统研究对阳光电源储能产品线具有重要价值。铜网强化传热技术可应用于ST系列PCS及PowerTitan储能系统的热管理优化,降低界面热阻提升41.4%发电性能的方案,可借鉴于SiC/GaN功率器件散热设计。多物理场耦合分析方法对三电平拓扑热-电协同优化有启发意义。相变储能与光伏逆变器集成可提升系统全天候发电能力,配合iSolarCloud平台实现热电协同智能管控,推动光储一体化系统效率提升。