Effects of cooler shape and position on solidification of phase change material in a cavity

IF 5.5 3区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of the Taiwan Institute of Chemical Engineers Pub Date : 2024-06-28 DOI:10.1016/j.jtice.2024.105628
Hakan F. Öztop , Burak Kiyak , Nirmalendu Biswas , Fatih Selimefendigil , Hakan Coşanay
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Abstract

Background

For balancing the imbalance between the energy supply and demand, phase-change materials (PCMs) provide an efficient means in terms of thermal energy storage and release. The performance of the energy storage is primarily dependent on the melting as well as the solidification process of the storage medium. Faster charging or discharging of the thermal energy is a primary concern for any thermal energy storage unit. On this background, the present study explores the novel approach for enhancing the solidification process of PCM considering the effects of cooler shape (namely semi-circular, triangular, and rectangular) and their position (namely top, side, and bottom) in a molten PCM-filled enclosure. The middle portion of the cooler wall is curved; whereas the remaining cooler wall is straight maintaining the same cooler wall length.

Methods

To analyze the solidification process, the involved transport equations are solved numerically following a finite volume-based computational approach using Ansys Fluent solver in conjunction with the appropriate boundary conditions. The computational model is generated for all the geometry comprising different shapes, as well as positions of the cooler wall. The third-order upwind scheme (QUICK) technique is utilized to discretize the momentum and energy equations. This scheme is well capable to accurately capture the gradients in the temperature and flow domains. Furthermore, the semi-implicit pressure-linked equation (SIMPLE) technique is utilised to address the pressure-velocity coupling. The resolved data are then saved as selective variables (U, V, and θ), which undergo post-processing to produce a local thermo-fluid flow field and extract average data.

Significant findings

The shape, as well as the position of a cooler, dictates the solidification process in an energy storage system. Thermal energy storage with a triangular-shaped cold wall positioned at the top could be opted as an appropriate design approach of an efficient energy storage system compared to a semi-circular or rectangular-shaped cooler model. The shortest solidification time of PCM occurs when the cooler wall is positioned at the top. The top position of the cooler having a triangular shape with higher Grashof number (Gr) values leads to a faster solidification process. Some ideas for possible future research areas in this field are provided after a comprehensive examination.

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冷却器形状和位置对相变材料在空腔中凝固的影响
背景为了平衡能源供需之间的不平衡,相变材料(PCM)提供了一种有效的热能储存和释放手段。能量存储的性能主要取决于存储介质的熔化和凝固过程。热能的快速充放电是任何热能储存装置的首要问题。在此背景下,本研究考虑到冷却器形状(即半圆形、三角形和矩形)及其在充满熔融 PCM 的外壳中的位置(即顶部、侧面和底部)的影响,探索了增强 PCM 凝固过程的新方法。为了分析凝固过程,采用基于有限体积的计算方法,使用 Ansys Fluent 求解器,结合适当的边界条件,对所涉及的传输方程进行数值求解。计算模型是针对不同形状的所有几何体以及冷却器壁的位置生成的。利用三阶上风方案(QUICK)技术来离散动量和能量方程。该方案能够准确捕捉温度和流动域中的梯度。此外,还采用了半隐式压力关联方程(SIMPLE)技术来解决压力-速度耦合问题。解析后的数据被保存为选择性变量(U、V 和 θ),经过后处理生成局部热流体流场并提取平均数据。 重要发现冷却器的形状和位置决定了储能系统的凝固过程。与半圆形或矩形冷却器模型相比,顶部冷壁呈三角形的热能储存器可作为高效储能系统的合适设计方法。当冷却器壁位于顶部时,PCM 的凝固时间最短。冷却器顶部位置呈三角形,格拉肖夫数 (Gr) 值较高,凝固过程较快。在对这一领域进行全面研究后,我们对未来可能的研究领域提出了一些想法。
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来源期刊
CiteScore
9.10
自引率
14.00%
发文量
362
审稿时长
35 days
期刊介绍: Journal of the Taiwan Institute of Chemical Engineers (formerly known as Journal of the Chinese Institute of Chemical Engineers) publishes original works, from fundamental principles to practical applications, in the broad field of chemical engineering with special focus on three aspects: Chemical and Biomolecular Science and Technology, Energy and Environmental Science and Technology, and Materials Science and Technology. Authors should choose for their manuscript an appropriate aspect section and a few related classifications when submitting to the journal online.
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