多功能柔性相变材料:从材料设计到可再生场景中的热能储存

IF 16.3 1区 工程技术 Q1 ENERGY & FUELS
Liu Yang , Shaoxi Zhang , Zhonghe Gao , Zifan Liu , Zian Zhao , Zhonghao Rao
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引用次数: 0

摘要

柔性相变材料(FPCMs)具有潜热储存和机械适应性等优点,在先进的热能储存应用中得到了广泛的认可。尽管如此,fpcm的实际应用仍然面临着热泄漏和运行条件下机械弹性不足带来的重大限制。本文综述了FPCMs结构设计和合成工程的最新进展,重点介绍了先进制造策略的发展,包括多孔吸附、纺丝、包封、分子工程和3D打印。比较分析了这些方法在提高导热系数、机械完整性和相变稳定性方面的有效性。此外,还讨论了fpcm在多功能集成方面的潜力,重点讨论了温度调节、医疗保健、能量转换、形状记忆和隐身技术等应用领域,强调了跨学科部署的机会。在对灵活和分布式能源解决方案需求不断增长的背景下,缓冲瞬态热波动和实现局部热管理的能力得到了进一步强调。通过确定尚未解决的技术瓶颈,并从材料导向和应用驱动的角度分析未来的研究重点,本综述旨在为基于柔性相变系统的多功能热能储存技术的发展提供前瞻性框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multifunctional flexible phase change materials: From material design to thermal energy storage in renewable scenarios
Flexible phase change materials (FPCMs) have been widely recognized for latent heat storage and mechanical adaptability in advanced thermal energy storage applications. Nevertheless, the practical implementation of FPCMs continues to face substantial limitations arising from thermal leakage, and insufficient mechanical resilience under operational conditions. In this review, recent progress in the structural design and synthetic engineering of FPCMs is systematically examined, with particular emphasis placed on the development of advanced fabrication strategies including porous adsorption, spinning, encapsulation, molecular engineering, and 3D printing. The effectiveness of these approaches in improving thermal conductivity, mechanical integrity, and phase transition stability is comparatively analyzed. Moreover, the potential of FPCMs for multifunctional integration is discussed, focusing on application domains such as temperature regulation, healthcare, energy conversion, shape memory, and stealth technologies, highlighting opportunities for cross-disciplinary deployment. In the context of growing demand for flexible and distributed energy solutions, the ability to buffer transient thermal fluctuations and enable localized thermal management is further emphasized. By identifying unresolved technical bottlenecks and analyzing future research priorities from both material-oriented and application-driven perspectives, this review is intended to offer a forward-looking framework for the advancement of multifunctional thermal energy storage technologies based on flexible phase change systems.
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来源期刊
Renewable and Sustainable Energy Reviews
Renewable and Sustainable Energy Reviews 工程技术-能源与燃料
CiteScore
31.20
自引率
5.70%
发文量
1055
审稿时长
62 days
期刊介绍: The mission of Renewable and Sustainable Energy Reviews is to disseminate the most compelling and pertinent critical insights in renewable and sustainable energy, fostering collaboration among the research community, private sector, and policy and decision makers. The journal aims to exchange challenges, solutions, innovative concepts, and technologies, contributing to sustainable development, the transition to a low-carbon future, and the attainment of emissions targets outlined by the United Nations Framework Convention on Climate Change. Renewable and Sustainable Energy Reviews publishes a diverse range of content, including review papers, original research, case studies, and analyses of new technologies, all featuring a substantial review component such as critique, comparison, or analysis. Introducing a distinctive paper type, Expert Insights, the journal presents commissioned mini-reviews authored by field leaders, addressing topics of significant interest. Case studies undergo consideration only if they showcase the work's applicability to other regions or contribute valuable insights to the broader field of renewable and sustainable energy. Notably, a bibliographic or literature review lacking critical analysis is deemed unsuitable for publication.
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