Different enhancement mechanisms of heat conduction for paraffin phase change materials by adding CuO and CNT nanoparticles

IF 5.8 2区 工程技术 Q1 ENGINEERING, MECHANICAL International Journal of Heat and Mass Transfer Pub Date : 2025-06-01 Epub Date: 2025-02-10 DOI:10.1016/j.ijheatmasstransfer.2025.126792
Wenning Zhou , Ruotong Li , Lin Lin , Yanhui Feng
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Abstract

Paraffin is a stable organic phase change material (PCM); however, its broad application is constrained by its inherently low thermal conductivity. Incorporation high thermal conductivity nano-additives has proven to be an effective strategy for enhancing the thermal performances of paraffin. In this study, the thermal properties of pure octadecane paraffin, octadecane/copper oxide (CuO), and octadecane/carbon nanotube (CNT) composite PCMs are investigated using molecular dynamics simulations. Furthermore, the mechanisms underlying the thermal conductivity enhancements achieved with these nano-additives are explored. The results indicate that both CuO and CNT nano-additives substantially increase the thermal conductivity across a range of temperatures but decrease its self-diffusion coefficient of pure paraffin. Specifically at 323 K, the thermal conductivities have been increased by 22.6 % and 52.0 % by adding CuO and CNT into pure octadecane, respectively. Notably, distinct mechanisms of the thermal conductivity enhancements induced by CuO and CNT have been observed. The presence of CuO nanoparticles changes the conformation of octadecane molecules from linear to curved state but exhibits minimal influence on the molecular arrangement. In contrast, the incorporation of CNT not only makes the molecular conformation of octadecane more stretched but also facilitates a hierarchical crystal-like arrangement. Both CuO and CNT nano-additives contribute to the formation of a dense interfacial layer, with the layer showing a more ordered structure for CNT. It is concluded that, for paraffin/CuO composites, the increased collision frequency of particles within the dense layer is likely the main reason for the enhancement in thermal conductivity. Whereas for paraffin/CNT composites, the formation of an ordered crystal-like arrangement of octadecane molecules near the interface might be responsible for the thermal conductivity improvement.
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纳米CuO和纳米碳纳米管对石蜡相变材料导热增强机理的影响
石蜡是一种稳定的有机相变材料;然而,它的广泛应用受到其固有的低导热性的限制。加入高导热纳米添加剂是提高石蜡热性能的有效方法。本研究利用分子动力学模拟研究了纯十八烷石蜡、十八烷/氧化铜(CuO)和十八烷/碳纳米管(CNT)复合pcm的热性能。此外,还探讨了这些纳米添加剂增强导热性的机制。结果表明,CuO和CNT纳米添加剂均显著提高了纯石蜡在一定温度范围内的导热系数,但降低了其自扩散系数。特别是在323 K时,加入CuO和碳纳米管分别使纯十八烷的导热系数提高了22.6%和52.0%。值得注意的是,已经观察到CuO和碳纳米管诱导的导热性增强的不同机制。纳米CuO的存在使十八烷分子的构象由线性变为弯曲,但对分子排列的影响很小。相比之下,碳纳米管的掺入不仅使十八烷的分子构象更加伸展,而且有利于分层晶体状排列。CuO和碳纳米管纳米添加剂都有助于形成致密的界面层,该层对碳纳米管显示出更有序的结构。结果表明,对于石蜡/CuO复合材料,致密层内颗粒碰撞频率的增加可能是其导热性增强的主要原因。而对于石蜡/碳纳米管复合材料,十八烷分子在界面附近形成有序的晶体状排列可能是热导率提高的原因。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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