Nano-enhanced phase change materials: Fundamentals and applications

IF 32 1区 工程技术 Q1 ENERGY & FUELS Progress in Energy and Combustion Science Pub Date : 2024-06-17 DOI:10.1016/j.pecs.2024.101162
Zafar Said , A.K. Pandey , Arun Kumar Tiwari , B. Kalidasan , Furqan Jamil , Amrit Kumar Thakur , V.V. Tyagi , Ahmet Sarı , Hafiz Muhammad Ali
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Abstract

Phase Change Materials (PCMs) enable thermal energy storage in the form of latent heat during phase transition. PCMs significantly improve the efficiency of solar power systems by storing excess energy, which can be used during peak demand. Likewise, they also contribute to reduced overall energy demand through passive thermal regulation. Nonetheless, thermal energy charging and discharging are restricted due to the low conducting nature of the energy storage medium. Various research investigations are being carried out to improve the thermal characteristics of PCMs through techniques such as a) dispersion of nanoparticles, b) inserting fins, and c) cascading PCMs. Among the techniques mentioned above, the dispersion of nanoparticles is reliable and economically viable. These materials are so-called nano-enhanced PCMs (NePCMs) that facilitate the charging and discharging processes of the thermal energy storage (TES) units owing to their improved thermo physical properties and long term stability. This paper presents a comprehensive review with implications and inferences on research conducted using nano-enhanced phase change materials (NePCMs) in recent years. Initially, the article discusses the highly preferred synthesis methods of NePCMs in addition to its morphological and thermophysical characterization techniques. Then, an acute focus on the impact of distinct dimensional nano additives like zero-dimensional (0D), one-dimensional (1D), two-dimensional (2D), and three-dimensional (3D) on inclusion with PCMs are elaborately discussed. A deep discussion on emerging and hybrid nanoparticles dispersed PCMs with emphasis on a) the interaction mechanism of nanoparticle & phase change material (PCM) and b) influences on enhancing the thermophysical properties (melting point, thermal conductivity, latent heat capacity, thermal diffusivity, and thermal stability) of NePCMs are discussed. Indeed, including nanomaterials within the PCM matrix resulted in variations in thermal conductivity and heat storage enthalpy. With nanomaterial NePCM displayed 80–150 % increment in organic PCM as their proportion of nanomaterial inclusion is about 1–2 %, whereas for form and shape stable PCM enhancement of 700–900 % in thermal conductivity is noticed; however, there was a drop in heat storage enthalpy owing to the inclusion of nanomaterial in weight fraction of 5–20 %. Furthermore included in this review article are insights on significant advances, challenges, and outlooks for enhancing NePCMs in the field of advanced thermal applications. This review article is expected to have a particular reference value that would provide notable insight to readers to explore the fundamental properties of NePCM further. Additionally, as there is alarming interest in the field of TES late after the framework of sustainable development goals (SDG)s by the United Nations in 2015, this review article is anticipated to make a remarkable impact towards SDG 7-Affordable and Clean Energy, by providing technical insights towards enhancing the renewable energy sources assisted with TES.

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纳米增强相变材料:基本原理与应用
相变材料(PCM)能够在相变过程中以潜热的形式储存热能。PCM 通过储存多余的能量,可在需求高峰期使用,从而大大提高太阳能发电系统的效率。同样,通过被动热调节,它们还有助于降低总体能源需求。然而,由于储能介质的低导电性,热能充放电受到限制。目前正在开展各种研究调查,通过 a) 纳米颗粒分散、b) 插入鳍片和 c) 级联 PCM 等技术来改善 PCM 的热特性。在上述技术中,纳米粒子的分散技术既可靠又经济可行。这些材料被称为纳米增强型 PCM(NePCM),由于其改善的热物理性质和长期稳定性,可促进热能储存(TES)装置的充放电过程。本文对近年来利用纳米增强相变材料(NePCMs)开展的研究进行了全面回顾,并提出了相关影响和推论。文章首先讨论了备受青睐的 NePCMs 合成方法及其形态和热物理性质表征技术。然后,详细讨论了不同维度的纳米添加剂(如零维 (0D)、一维 (1D)、二维 (2D) 和三维 (3D) 纳米添加剂)对 PCM 的影响。深入讨论了新出现的混合纳米粒子分散 PCM,重点是 a) 纳米粒子与amp、相变材料(PCM)的相互作用机制,以及 b) 对提高 NePCM 热物理性质(熔点、热导率、潜热容量、热扩散率和热稳定性)的影响。事实上,在 PCM 基质中加入纳米材料会导致热导率和储热焓的变化。加入纳米材料的 NePCM 在有机 PCM 中显示出 80-150% 的增量,因为其纳米材料的加入比例约为 1-2%,而对于形状稳定的 PCM,热导率则提高了 700-900%;不过,由于加入的纳米材料重量分数为 5-20%,热存储焓有所下降。此外,这篇综述文章还介绍了在先进热应用领域增强 NePCM 的重大进展、挑战和前景。预计这篇综述文章将具有特殊的参考价值,为读者进一步探索 NePCM 的基本特性提供重要启示。此外,在 2015 年联合国制定可持续发展目标(SDG)框架之后,人们对 TES 领域的兴趣日渐浓厚,本综述文章有望通过提供技术见解,在 TES 的协助下增强可再生能源,从而对可持续发展目标 7--负担得起的清洁能源产生显著影响。
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来源期刊
Progress in Energy and Combustion Science
Progress in Energy and Combustion Science 工程技术-工程:化工
CiteScore
59.30
自引率
0.70%
发文量
44
审稿时长
3 months
期刊介绍: Progress in Energy and Combustion Science (PECS) publishes review articles covering all aspects of energy and combustion science. These articles offer a comprehensive, in-depth overview, evaluation, and discussion of specific topics. Given the importance of climate change and energy conservation, efficient combustion of fossil fuels and the development of sustainable energy systems are emphasized. Environmental protection requires limiting pollutants, including greenhouse gases, emitted from combustion and other energy-intensive systems. Additionally, combustion plays a vital role in process technology and materials science. PECS features articles authored by internationally recognized experts in combustion, flames, fuel science and technology, and sustainable energy solutions. Each volume includes specially commissioned review articles providing orderly and concise surveys and scientific discussions on various aspects of combustion and energy. While not overly lengthy, these articles allow authors to thoroughly and comprehensively explore their subjects. They serve as valuable resources for researchers seeking knowledge beyond their own fields and for students and engineers in government and industrial research seeking comprehensive reviews and practical solutions.
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