The effect of lateral position of heating surface and angular orientation of latent heat thermal energy storage system on the melting characteristics: a numerical investigation

IF 4 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Himanshu Kumar, Gurjeet Singh, Ankit Yadav, Müslüm Arici
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Abstract

Purpose

This study aims to address the low thermal conductivity and suboptimal performance of phase change materials (PCMs) by examining the impact of geometric adjustments on their melting rate.

Design/methodology/approach

A two-dimensional numerical model was created to investigate the effect of different positions and angular inclinations of the inside heating surface (IHS) on the melting rate of PCM within a latent heat thermal energy storage system. The model analysed the IHS at the centre and below the centre at various positions (10, 20, 30 and 40 mm) and inclinations (0°, 15°, 30°, 45°, 60°, 75° and 90°).

Findings

The 90° inclination (vertical) significantly reduced the melting time by 75% compared to the 0° inclination (horizontal). The best melting performance was recorded with the IHS positioned 20 mm below the centre. At a 30° inclination, the maximum reduction in melting time was observed with the IHS at 30 and 40 mm placements. The system demonstrated the highest energy storage capacity of 307.72 kJ/kg at a 75° inclination with the IHS positioned 10 mm laterally, and the lowest capacity of 255.02 kJ/kg at a 0° inclination with the IHS at a 30 mm lateral position.

Practical implications

To address the deficient part of PCM like low thermal conductivity and below level performance characteristics, a structural (geometrical) adjustment was developed to study the effect on the melting rate of PCM without any cost addition. Using the computational model, an optimised thermal energy storage system is developed that can play a pivotal role in improving the applicability of thermal energy storage systems.

Originality/value

This research is novel in simultaneously investigating the numerical characteristics of PCM melting behaviour with different lateral positions and angular orientations of the IHS. A unique design modification was introduced, using a 2D numerical model and simulations to explore the effects under isothermal conditions.

受热面侧向位置和潜热蓄热系统角向对熔体特性影响的数值研究
本研究旨在通过研究几何调整对相变材料熔化速率的影响,解决相变材料导热系数低和性能欠佳的问题。设计/方法/方法建立了一个二维数值模型,研究了潜热蓄热系统内加热面(IHS)不同位置和角度倾角对PCM熔化速率的影响。该模型分析了中心和中心以下不同位置(10,20,30和40mm)和倾角(0°,15°,30°,45°,60°,75°和90°)的IHS。与0°倾角(水平)相比,90°倾角(垂直)显著减少了75%的熔化时间。当IHS位于中心以下20毫米处时,记录了最佳熔化性能。在30°倾斜时,在30和40 mm位置观察到最大的熔化时间减少。当斜倾角为75°、斜倾角为10 mm时,储能容量最大,为307.72 kJ/kg;当斜倾角为0°、斜倾角为30 mm时,储能容量最小,为255.02 kJ/kg。为了解决PCM的缺陷部分,如低导热性和低于水平的性能特征,开发了一种结构(几何)调整来研究在不增加成本的情况下对PCM熔化速度的影响。利用该计算模型,开发了一种优化的蓄热系统,对提高蓄热系统的适用性具有关键作用。独创性/价值:本研究是新颖的,同时研究了PCM熔化行为的数值特征与不同的横向位置和角取向的IHS。引入了一种独特的设计修改,使用二维数值模型和模拟来探索等温条件下的影响。
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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