Phase change materials in solar energy storage: Recent progress, environmental impact, challenges, and perspectives

IF 8.9 2区 工程技术 Q1 ENERGY & FUELS Journal of energy storage Pub Date : 2025-04-01 Epub Date: 2025-02-14 DOI:10.1016/j.est.2025.115762
Abdulhammed K. Hamzat , Adewale Hammed Pasanaje , Mayowa I. Omisanya , Ahmet Z. Sahin , Adesewa O. Maselugbo , Ibrahim A. Adediran , Lateef Owolabi Mudashiru , Eylem Asmatulu , Oluremilekun Ropo Oyetunji , Ramazan Asmatulu
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Abstract

The escalating global energy demand, coupled with the urgent need to combat climate change, underscores the necessity for effective and sustainable energy storage solutions. Phase change materials (PCMs) have emerged as a viable technology for thermal energy storage, particularly in solar energy applications, due to their ability to efficiently store and release thermal energy during phase transitions while maintaining a near-constant temperature. This paper addresses the limitations of traditional thermal energy storage systems and explores the advancements in PCM integration within various solar energy systems. We discuss innovative methods to enhance heat transfer rates and thermal conductivity, including modifications of extended surfaces, heat pipes, cascading PCMs, encapsulation techniques, and the incorporation of nanoparticles. These enhancements can improve system performance by up to 73 %, with nanoparticle dispersion identified as the most economically viable solution. Additionally, we provide a comprehensive overview of the implementation of the artificial intelligence approach in optimizing PCM-based thermal energy storage systems, emphasizing the effectiveness of ensemble learning frameworks for accurate modeling. The review also highlights the development of nano-PCMs, which demonstrate significant improvements—25.6 % in charging and 23.9 % in discharging rates—compared to conventional PCMs. Furthermore, we analyze the economic and environmental implications of PCM-based systems, focusing on critical issues such as carbon emissions, waste minimization, biodegradability, and alignment with circular economy principles. Finally, we discuss the major challenges and future research directions necessary for advancing PCM-based thermal energy storage systems. It is hoped that this article will update readers and experts working in this area on the recent advancements in PCM-based TES systems and provide an in-depth understanding of ML potentials in revolutionizing PCM-based solar energy storage systems.

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相变材料在太阳能储能中的应用:最新进展、环境影响、挑战和展望
全球能源需求不断上升,加上应对气候变化的迫切需要,凸显了有效和可持续的储能解决方案的必要性。相变材料(PCMs)已经成为一种可行的热能储存技术,特别是在太阳能应用中,因为它们能够在相变过程中有效地储存和释放热能,同时保持近乎恒定的温度。本文解决了传统热能储存系统的局限性,并探讨了各种太阳能系统中PCM集成的进展。我们讨论了提高传热率和导热性的创新方法,包括扩展表面的修改、热管、级联pcm、封装技术和纳米颗粒的结合。这些改进可以将系统性能提高73%,纳米颗粒分散被认为是最经济可行的解决方案。此外,我们还全面概述了人工智能方法在优化基于pcm的热能存储系统中的应用,强调了集成学习框架对精确建模的有效性。综述还重点介绍了纳米pcm的发展,与传统的pcm相比,纳米pcm的充电率提高了25.6%,放电率提高了23.9%。此外,我们分析了基于pcm系统的经济和环境影响,重点关注碳排放、废物最小化、生物降解性以及与循环经济原则的一致性等关键问题。最后,我们讨论了推进基于pcm的热能存储系统的主要挑战和未来的研究方向。希望本文能够更新读者和在该领域工作的专家关于基于pcm的TES系统的最新进展,并深入了解ML在革命性的基于pcm的太阳能储能系统中的潜力。
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来源期刊
Journal of energy storage
Journal of energy storage Energy-Renewable Energy, Sustainability and the Environment
CiteScore
11.80
自引率
24.50%
发文量
2262
审稿时长
69 days
期刊介绍: Journal of energy storage focusses on all aspects of energy storage, in particular systems integration, electric grid integration, modelling and analysis, novel energy storage technologies, sizing and management strategies, business models for operation of storage systems and energy storage developments worldwide.
期刊最新文献
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