用于低温潜热热能储存的超级憎液薄膜材料:浸涂材料综述

Energy Storage Pub Date : 2024-05-20 DOI:10.1002/est2.641
Ronald Muhumuza, Philip C. Eames
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引用次数: 0

摘要

在放电潜热热能储存(LHTES)系统时,相变材料(PCM)固态层在热交换(HX)表面的形成和附着会影响系统性能。超级憎液薄膜 (STF) 可以在放电过程中减少 PCM 在热交换器表面的凝固附着,将 PCM 的凝固延迟到较低的温度,并通过改变成核位置实现长期的季节性热存储。以前用于制造烧结聚合物 STF 涂层的技术包括化学气相沉积、浸涂、喷涂、旋涂、逐层装配 (LbL)、溶胶-凝胶、阳极氧化、电沉积、电纺丝等。浸涂法因其工艺成熟、可扩展性、灵活性和成本效益高,被认为是在简单和复杂的表面几何形状上制造薄膜的理想方法。为了确定使用浸涂工艺在金属 HX 表面制备 STF 的合适材料,我们查阅了 2010 年至 2022 年期间发表的 200 多篇英文期刊文章,并评估了 STF 在 LHTES 应用中的潜在作用。审查确定了刺激 STF 材料开发和配方的关键领域和应用。潜在 STF 材料的浸涂被归类为推动当前研发(R&D)活动的三大主题,即高性能薄膜、生态友好型薄膜和基础研究配方。本综述为开发涂层和热交换系统提供了一个平台,以便在未来的移动式/固定式 LHTES 系统中以具有成本效益的方式实施 STF,从而改善传热效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Super-liquid-repellent thin film materials for low temperature latent heat thermal energy storage: A comprehensive review of materials for dip-coating

Super-liquid-repellent thin film materials for low temperature latent heat thermal energy storage: A comprehensive review of materials for dip-coating

When discharging latent heat thermal energy storage (LHTES) systems, performance is influenced by the formation and adherence of a solid layer of phase change material (PCM) on heat eXchange (HX) surfaces. Super-liquid-repellent thin films (STFs) may be able to reduce solidifying PCM adhesion on HX surfaces during discharging, delay PCM solidification to lower temperatures, and by modifying nucleation sites potentially enable long-term seasonal thermal storage. Techniques employed previously to fabricate sintered polymeric STF coatings include chemical vapour deposition, dip-coating, spray-coating, spin-coating, layer-by-layer (LbL) assembly, sol-gel, anodizing, electrodeposition, electrospinning, so on. Dip-coating is considered attractive for fabricating thin films on simple and complex surface geometries due to process maturity, scalability, flexibility and cost-effectiveness. To identify suitable materials for preparing STFs on metal HX surfaces using the dip-coating process, more than 200 journal articles published in English during the period 2010 to 2022 were reviewed and the potential role of STFs in LHTES applications was assessed. The review identified key areas and applications stimulating STF material developments and formulations. The dip-coating of potential STF materials was classified under three major themes driving current research and development (R&D) activities, that is, high performance thin films, eco-friendly thin films and fundamental research formulations. This review provides a platform from which to develop coatings and HX systems to enable the cost-effective implementation of STFs for improved heat transfer in future mobile/stationery LHTES systems.

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