Numerical simulation and structural optimization of spiral finned tube thermal energy storage

Yunfei Ma , Yu Meng , Jingyu Li , Weixiong Chen , Xiaohu Yang , Shaodan Li , Daotong Chong , Junjie Yan
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引用次数: 0

Abstract

Thermal energy storage (TES) has emerged as a promising solution to enhance nuclear safety by passively removing decay heat during reactor shutdown and accidents, thus preventing overheating of the reactor core and protecting the integrity of containment barriers. The research of TES with different structures has broad application prospects and practical significance. In this study, the melting process of phase change material (PCM) in various TES structures was simulated by the numerical simulation method in two and three dimensions. The mechanism of gravity-driven natural convection enhancing heat transfer was revealed. The effects of different TES structures, fin pitch, fin height, and fin thickness on heat transfer performance were studied. The results showed that many vortices formed by liquid PCM are the main reason for enhancing the natural convection. Adding fins could greatly accelerate the heat storage process. The melting time of PCM in annular and spiral finned tube TES was 47.3% and 61.3% less than that in smooth tube TES, respectively. In the present study, the heat transfer effect was enhanced as the spiral fin pitch became small, the fin height increased and the fin thickness increased. Two opposite effects of fin structure on the natural convection were revealed: (1) positive effect provided by heat transfer enhancement and (2) negative effect produced by blockage.

螺旋翅片管热能存储的数值模拟和结构优化
热能储存(TES)可在反应堆停堆和事故期间被动地带走衰变热,从而防止反应堆堆芯过热,保护安全壳屏障的完整性,是增强核安全的一种有前途的解决方案。研究不同结构的 TES 具有广阔的应用前景和现实意义。本研究采用数值模拟方法,从二维和三维模拟了不同结构 TES 中相变材料(PCM)的熔化过程。研究揭示了重力驱动自然对流增强传热的机理。研究了不同 TES 结构、翅片间距、翅片高度和翅片厚度对传热性能的影响。结果表明,液体 PCM 形成的许多涡流是增强自然对流的主要原因。增加翅片可以大大加快蓄热过程。环形翅片管和螺旋翅片管 TES 中 PCM 的熔化时间分别比光滑管 TES 少 47.3% 和 61.3%。在本研究中,随着螺旋翅片间距变小、翅片高度增加和翅片厚度增加,传热效果也随之增强。翅片结构对自然对流有两种相反的影响:(1)传热增强带来的积极影响;(2)阻塞产生的消极影响。
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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