Enhanced melting dynamics of phase change material (PCM) based energy storage system combining modified fin and nanoparticles under solar irradiation

IF 4 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Anjan Nandi, Nirmalendu Biswas
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引用次数: 0

Abstract

Purpose

This study aims to investigate the thermal performance enhancements of phase change materials (PCMs) through the integration of extended fins and CuO nanoparticles under the impact of solar irradiation. The research focuses on improving the melting behavior and thermal efficiency of PCM-based energy storage systems to facilitate the design of more efficient energy storage solutions.

Design/methodology/approach

The analysis is conducted on a top-heated rectangular thermal system filled with pure PCM and nanoparticle-enhanced PCM (NePCM) mixed with 0.01% Wt. CuO nanoparticles, with varying fin configurations considering PCM volume and surface area of fins constraint. The shape of the fin is modified from single to multiple numbers, maintaining the same surface area. The analysis is carried out both experimentally and numerically for the without fin case, and the study is extended numerically (utilizing the finite volume method) considering different sizes and positions of the fins. The study evaluates the impact of nanoparticle inclusion, fin geometry variations and the thermal performance of three different types of PCM (lauric acid, RT-35HC and P-58). Numerical results are validated against the in-house experimental results.

Findings

The study successfully validates the numerical simulations with experimental data, enhancing the credibility of the findings for real-world applications. The addition of 0.01% Wt. CuO nanoparticles to PCM resulted in a 16.36% enhancement in energy storage, as observed experimentally, whereas the numerical simulation showed an 8.55% increase. The inclusion of CuO nanoparticles accelerated the melting process across all fin configurations, with a notable enhancement parameter of 16.51% for the single fin arrangement. The introduction of a single fin structure increased the energy storage rate, but further additions of fins led to diminishing returns, with a maximum energy storage rate of 35.19 J/min achieved with CuO-enhanced PCM in the presence of single fin. The study also highlights RT-35HC as the most effective PCM, offering the highest energy storage and fastest melting speed, making it ideal for rapid thermal response applications.

Research limitations/implications

Future research could explore different types and concentrations of nanoparticles as well as a broader range of fin geometries and materials to further enhance the performance of PCM-based energy storage systems. Long-term experimental validation under real-world conditions would also enhance the applicability and reliability of the findings.

Originality/value

This study provides valuable insights into optimizing thermal energy storage systems by combining nanoparticle enhancement and fin geometry optimization. The results offer practical guidance for improving the efficiency and effectiveness of PCM-based energy storage units in various applications.

改性翅片与纳米颗粒相结合相变材料储能系统在太阳辐照下的熔融动力学增强
目的研究在太阳辐照作用下,扩展翅片与纳米CuO相结合对相变材料热性能的增强作用。研究的重点是改善基于pcm的储能系统的熔化行为和热效率,以促进设计更高效的储能解决方案。该分析是在一个顶部加热的矩形热系统中进行的,该热系统由纯PCM和纳米颗粒增强PCM (NePCM)混合0.01% Wt. CuO纳米颗粒填充,考虑到PCM的体积和鳍的表面积限制,有不同的鳍结构。翅片的形状由单个数字修改为多个数字,保持了相同的表面积。对无翅片的情况进行了实验和数值分析,并在考虑不同尺寸和位置的情况下进行了数值扩展(利用有限体积法)。该研究评估了纳米颗粒包裹体、翅片几何形状变化和三种不同类型PCM(月桂酸、RT-35HC和P-58)的热性能的影响。数值结果与室内实验结果进行了验证。该研究成功地用实验数据验证了数值模拟,提高了研究结果在实际应用中的可信度。实验结果表明,加入0.01% Wt. CuO纳米颗粒后,PCM的储能性能提高了16.36%,而数值模拟结果显示,PCM的储能性能提高了8.55%。CuO纳米颗粒的加入加速了所有翅片的熔化过程,单翅片的加速参数达到16.51%。单翅片结构的引入提高了能量存储速率,但进一步增加翅片导致收益减少,在单翅片存在的情况下,cuo增强的PCM的最大能量存储速率为35.19 J/min。该研究还强调,RT-35HC是最有效的PCM,提供最高的能量存储和最快的熔化速度,使其成为快速热响应应用的理想选择。未来的研究可以探索不同类型和浓度的纳米颗粒,以及更广泛的鳍几何形状和材料,以进一步提高基于pcm的储能系统的性能。在现实条件下的长期实验验证也将增强研究结果的适用性和可靠性。原创性/价值本研究通过结合纳米颗粒增强和翅片几何优化,为优化热能储存系统提供了有价值的见解。研究结果对提高基于pcm的储能装置在各种应用中的效率和效果具有实际指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.50
自引率
11.90%
发文量
100
审稿时长
6-12 weeks
期刊介绍: The main objective of this international journal is to provide applied mathematicians, engineers and scientists engaged in computer-aided design and research in computational heat transfer and fluid dynamics, whether in academic institutions of industry, with timely and accessible information on the development, refinement and application of computer-based numerical techniques for solving problems in heat and fluid flow. - See more at: http://emeraldgrouppublishing.com/products/journals/journals.htm?id=hff#sthash.Kf80GRt8.dpuf
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