Effects of segmentation in composite phase change material on melting/solidification performance of triplex-tube thermal energy storage systems

IF 1.6 4区 工程技术 Q3 ENGINEERING, CHEMICAL Canadian Journal of Chemical Engineering Pub Date : 2024-06-24 DOI:10.1002/cjce.25378
Md Tabrez Alam, Rajesh Kumar, Anoop K. Gupta
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Abstract

In this work, a numerical evaluation of the melting/solidification performance of phase change material (PCM) filled inside a triplex-tube latent heat storage unit has been carried out. To enhance the melting/solidification performance, the porous Cu metal foam (MF) was embedded inside PCM (termed as composite PCM). Alternative segments of pure PCM and composite PCM have been allocated in such a way that both the pure PCM and composite PCM occupy the equal annular area (i.e., equal volumes). Influence of increasing number of segments was delineated on the melting/solidification rate, complete melting time, and thermal energy storage/recovery enhancement. The comparisons were drawn with reference to the model having two segments of PCM and composite PCM. The results show that the model containing 64 segments with alternate allocations of PCM and composite PCM has a faster melting/solidification rate than other models. With 32 alternate segments of MF, the full melting/solidification time reduced by 23%/77% with respect to the case with one segment of MF only. The melting/solidification performance gets saturated beyond 32 segments (M-5) and negligible variation (only ~1%) in the thermal performance was noticed upon further segmentation. Finally, the model M-5 proved as the best model considering the aspects of augmented melting/solidification rate and associated complexities. Moreover, the heterogeneity of MF applied in 32-segment model confirmed that the anisotropic MF results in an increased melting rate and leads over other random isotropic distributions of MF.

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复合相变材料中的分段对三联管热能储存系统熔化/凝固性能的影响
在这项工作中,对填充在三联管潜热储存装置内的相变材料(PCM)的熔化/凝固性能进行了数值评估。为了提高熔化/凝固性能,在 PCM 内嵌入了多孔铜金属泡沫 (MF)(称为复合 PCM)。纯 PCM 和复合 PCM 的交替分段分配方式使纯 PCM 和复合 PCM 占据相等的环形区域(即相等的体积)。分析了段数增加对熔化/凝固速率、完全熔化时间和热能储存/回收率提高的影响。比较参照了包含两段 PCM 和复合 PCM 的模型。结果表明,与其他模型相比,包含 64 段 PCM 和复合 PCM 交替分配的模型具有更快的熔化/凝固速率。在交替分配 32 段 MF 的情况下,全部熔化/凝固时间比只分配一段 MF 的情况分别缩短了 23% 和 77%。超过 32 段(M-5)后,熔化/凝固性能趋于饱和,进一步分段后,热性能的变化可忽略不计(只有 ~1%)。最后,考虑到增加的熔化/凝固速率和相关的复杂性,M-5 模型被证明是最佳模型。此外,32 段模型中应用的 MF 的异质性证实,各向异性的 MF 会导致熔化率增加,并领先于其他随机各向同性分布的 MF。
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来源期刊
Canadian Journal of Chemical Engineering
Canadian Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
3.60
自引率
14.30%
发文量
448
审稿时长
3.2 months
期刊介绍: The Canadian Journal of Chemical Engineering (CJChE) publishes original research articles, new theoretical interpretation or experimental findings and critical reviews in the science or industrial practice of chemical and biochemical processes. Preference is given to papers having a clearly indicated scope and applicability in any of the following areas: Fluid mechanics, heat and mass transfer, multiphase flows, separations processes, thermodynamics, process systems engineering, reactors and reaction kinetics, catalysis, interfacial phenomena, electrochemical phenomena, bioengineering, minerals processing and natural products and environmental and energy engineering. Papers that merely describe or present a conventional or routine analysis of existing processes will not be considered.
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Issue Information Issue Highlights Table of Contents Issue Highlights Preface to the special issue of the International Conference on Sustainable Development in Chemical and Environmental Engineering (SDCEE-2024)
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