使用混合纳米流体[(SWCNTs-CuO)/H2O]和螺旋(螺旋)线圈通过PCM改善储能:混合无源技术

IF 3.2 3区 工程技术 Q2 MECHANICS
Aliakbar Hosseinpour , Mohsen Pourfallah , Mosayeb Gholinia
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引用次数: 1

摘要

本文的目的是对相变材料在螺旋线圈中的熔化过程进行数值分析。内管与外壳之间的空间填充RT-50作为PCM。此外,混合纳米流体(含碳成分)流经内管。本工作的新颖之处在于在PCM熔化过程中使用不同构型的鳍和不同百分比的杂化纳米颗粒(SWCNTs-CuO)。在ANSYS-Fluent软件建立的数值模型中,研究了不同进口温度的影响。结果表明,额外翅片形成的延伸面对熔化时间的影响占主导地位,添加第三翅片可使熔化时间缩短39.24%。影响PCM熔化的第二大因素是工质入口温度,温度每升高10℃,PCM熔化时间缩短35.41%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving energy storage by PCM using hybrid nanofluid [(SWCNTs-CuO)/H2O] and a helical (spiral) coil: Hybrid passive techniques

The aim of this study is the numerical analysis of the melting process of the phase change material (PCM) in a spiral coil. The space between the inner tube and outer shell is filled with RT-50 as PCM. Moreover, the hybrid nanofluid (with a carbon component) flows through the inner tube. The novelty of this work is to use different configurations of fin and different percentage of hybrid nanoparticles (SWCNTs-CuO) on the PCM melting process. In the numerical model created by ANSYS-Fluent, the effect of various inlet temperatures is investigated. The results indicate that the extended surface created by extra fin has a dominant effect on melting time, so by adding the third fin, the melting time is reduced by 39.24%. The next most influential factor in PCM melting is the inlet temperature of the working fluid, so that 10 °C increment of temperature result in the PCM melting time decreased by 35.41%.

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来源期刊
CiteScore
6.20
自引率
2.90%
发文量
545
审稿时长
12 weeks
期刊介绍: An international journal devoted to rapid communications on novel and original research in the field of mechanics. TAML aims at publishing novel, cutting edge researches in theoretical, computational, and experimental mechanics. The journal provides fast publication of letter-sized articles and invited reviews within 3 months. We emphasize highlighting advances in science, engineering, and technology with originality and rapidity. Contributions include, but are not limited to, a variety of topics such as: • Aerospace and Aeronautical Engineering • Coastal and Ocean Engineering • Environment and Energy Engineering • Material and Structure Engineering • Biomedical Engineering • Mechanical and Transportation Engineering • Civil and Hydraulic Engineering Theoretical and Applied Mechanics Letters (TAML) was launched in 2011 and sponsored by Institute of Mechanics, Chinese Academy of Sciences (IMCAS) and The Chinese Society of Theoretical and Applied Mechanics (CSTAM). It is the official publication the Beijing International Center for Theoretical and Applied Mechanics (BICTAM).
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