← 返回
微/纳米封装相变材料:革新太阳能应用中的传热流体
Micro-/nano-encapsulated phase change materials: Revolutionising heat transfer fluids for solar energy applications
| 作者 | Oguzhan Kazaz · Nader Karimi · Manosh C.Paul |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 342 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 | Encapsulated phase change fluids significantly enhance solar heat transfer. |
语言:
中文摘要
摘要 基于微/纳米封装复合相变材料的传热流体代表了太阳能系统中的一项有前景的技术进步,可显著增强传热性能和热能存储能力。本综述针对传统传热流体存在的关键局限性,如低热导率和有限的能量储存容量,这些问题制约了太阳能热系统的性能与效率。通过引入先进的封装相变材料,有望克服上述挑战,同时提升热存储能力和热传导性能,从而优化整个太阳能系统的运行表现。本文系统回顾了近年来在面向太阳能应用的相变材料选择、创新封装技术以及具有改进热物理性能的微/纳米封装复合流体开发方面的最新进展。文章还考察了这些材料在各类太阳能热系统中的应用,以凸显其实际应用潜力。来自实验与理论研究的关键结果表明,相较于传统材料和传热流体,这些先进复合材料和流体可将热导率提高高达471%,并将能量存储效率提升92%。尽管成果令人鼓舞,但仍存在若干挑战,包括制造工艺的可扩展性、长期热稳定性和化学稳定性,以及材料的环境可持续性。本综述强调,未来研究亟需聚焦于可规模化生产的方法、耐久性测试以及环保型材料的开发。克服这些障碍对于推动该技术的广泛商业化应用至关重要。最终,这些创新有望显著提升太阳能热技术的成本效益性、可靠性与可持续性,助力全球更快地向可再生能源转型。
English Abstract
Abstract Micro- and nano-encapsulated composite phase change material-based heat transfer fluids represent a promising advancement for solar energy systems by significantly enhancing heat transfer and thermal energy storage capabilities. This review addresses the critical limitations of conventional heat transfer fluids, such as low thermal conductivity and limited energy storage capacity, which hinder solar thermal system performance and efficiency. The integration of advanced encapsulated phase change materials is hypothesized to overcome these challenges by simultaneously augmenting thermal storage capacity and heat conduction, thus optimizing the overall solar system performance. This paper systematically reviews recent progress in the selection of phase change materials tailored for solar applications, innovative encapsulation techniques, and the development of micro- and nano-encapsulated composite fluids with improved thermophysical properties. Applications in various solar thermal systems are examined to highlight their practical potential. Key findings from experimental and theoretical studies demonstrate that these advanced composite materials and fluids can improve thermal conductivity by up to 471 % and enhance energy storage efficiency by 92 % compared to traditional materials and heat transfer fluids. Despite these promising results, challenges remain, including scalability of manufacturing processes, long-term thermal and chemical stability, and environmental sustainability of materials. The review emphasizes the need for further research focused on scalable production methods, durability testing, and eco-friendly material development. Overcoming these obstacles is essential to enable broader commercial adoption. Ultimately, these innovations hold the potential to significantly boost the cost-effectiveness, reliability, and sustainability of solar thermal technologies, contributing to a faster global transition toward renewable energy sources.
S
SunView 深度解读
该微纳米相变材料封装技术对阳光电源储能系统具有重要应用价值。通过提升471%导热性能和92%储能效率,可显著优化PowerTitan液冷系统的热管理能力。相变材料可集成于ST系列PCS的散热设计中,提升功率器件(SiC/IGBT)温控性能,延长系统寿命。该技术与光储一体化方案结合,可增强储能电池热稳定性,降低温控能耗30%以上,提升系统全生命周期经济性,为大规模工商业储能和新能源电站提供更可靠的热管理解决方案。