← 返回
原位生长金/金纳米棒/石墨烯纳米片增强型相变材料具有优异的光热转换与除冰性能
In-situ gold/gold nanorods/graphene nanoplatelets-enhanced phase change materials with superior solar thermal conversion and deicing capability
| 作者 | Ruijin Fana · Heng Wanga · Cheng Tana · Yong Yua · Jianhang Hua |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 339 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Phase change composites with superior solar [thermal conversion](https://www.sciencedirect.com/topics/engineering/thermal-conversion "Learn more about thermal conversion from ScienceDirect's AI-generated Topic Pages") capabilities were fabricated. |
语言:
中文摘要
摘要 利用相变材料的太阳能光热转换与储存技术因其卓越的能量存储能力和可逆性,在满足未来能源需求和缓解能源供需不平衡方面展现出广阔前景。然而,如何有效提升光热转换性能并巧妙利用光热能量仍是当前面临的重要挑战。本文通过在石墨烯纳米片上原位生长金和金纳米棒,构建了复合光热填料,赋予相变材料优异的太阳能热转换特性,并提出了一种创新的家用供水系统光热除冰方法。形貌与结构分析证实了该杂化纳米填料的成功原位合成,其诱导产生双峰局域表面等离子体共振效应,拓宽了光谱吸收范围,使相变复合材料的光吸收能力提升了35.3%。此外,实验结果表明,该相变复合材料的太阳能热转换效率和储能效率分别达到82.8%和45.7%,这主要归因于杂化纳米填料提供了更多的光吸收中心,有效增强了太阳光的捕获与吸收,同时减少了热量散失和非辐射损耗。进一步地,数值模拟结果显示,涂覆相变复合材料的管道除冰时间比未涂层管道缩短了38.3%,而在3000 W/m²的聚光照射下,除冰时间可进一步显著缩短78.9%,表明所提出的相变复合材料具备优异的光热除冰性能及实际应用潜力。本研究为功能性光热相变复合材料以及新型太阳能热能利用系统的开发提供了新的思路与启示。
English Abstract
Abstract Solar thermal conversion and storage technologies utilizing phase change materials are promising for meeting future energy demands and imbalances because of their exceptional energy storage capability and reversibility. However, effectively improving photothermal conversion performance and skillfully harnessing photothermal energy remain considerable challenges. Herein, hybrid photothermal fillers were created by in-situ growth of gold and gold nanorods on graphene nanoplatelets to endow phase change materials with superior solar thermal conversion properties, and an innovative photothermal deicing method for domestic water systems was devised. Morphological and structural analyses confirmed the successful in-situ synthesis of the hybrid nanofillers, which induced a bimodal localized surface plasmon resonance effect and broadened the spectral absorption range, leading to a 35.3 % increase in the light absorption for phase change composites. Moreover, experiments indicate that the solar thermal conversion and storage efficiencies of the phase change composites reach 82.8 % and 45.7 %, respectively, which is because more light absorption centers provided by hybrid nanofillers effectively enhance solar capture and absorption while reducing heat dissipation and non-radiative losses. Furthermore, numerical simulations demonstrate that the deicing time of the phase change composite-coated pipe is 38.3 % shorter than that of the uncoated pipe, and the deicing time can be significantly reduced by 78.9 % with concentrated light at 3000 W/m 2 , indicating that the superior photothermal deicing performance and potential applications of the proposed phase change composites. The findings shed novel light on the development of functional photothermal phase change composites and innovative solar thermal utilization systems.
S
SunView 深度解读
该金纳米增强相变储能技术对阳光电源储能系统具有重要应用价值。其82.8%光热转换效率和45.7%储热效率可启发PowerTitan储能系统的热管理优化,特别是在极寒环境下的电池预热和除冰场景。混合纳米填料的宽光谱吸收特性可与ST系列PCS的温控系统协同,提升储能柜在低温工况下的充放电性能。该相变复合材料的快速除冰能力(缩短78.9%除冰时间)对户外充电站设备防护和iSolarCloud平台的智能热管理策略开发具有创新参考价值,可降低极端天气下的运维成本。