An experimental and numerical study on the energy storage and release performance of shell and tube heat exchangers with phase change material for the data center

IF 6.1 2区 工程技术 Q2 ENERGY & FUELS
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Abstract

In this study, we have established an experimental platform featuring a shell and tube heat exchanger (STHE) combined with phase change material (PCM) to investigate its energy storage and release performance. Paraffin 25 and water have been selected as the energy storage material (ESM) and the heat transfer fluid (HTF), respectively. Besides, numerical simulations of different energy storage units by changing the phase change unit structures are carried out with FLUENT software. The effect of different specific surface area (surface area per bulk volume, m−1) and length-to-diameter (L/D) ratios on the energy storage and release process is numerically studied. The findings show that as the specific surface area rises, the heat conduction effect gets stronger. When the specific surface area rises by 223.8 %, the melting time and solidification time can be cut by about 75.9 % and 87.4 %, respectively. Furthermore, the L/D ratio also has a great influence on the average energy storage rate since the average energy storage rate decreases by 9.6 % when the L/D ratio is increased from 7.9 to 10.5. In contrast, the average energy release rate decreases by only 1.6 %. Additionally, the cooling capacity of the STHE has been extensively explored in this research. For instance, under specific conditions (e.g., with a L/D of 7.9 and a specific surface area of 111.1), the cooling performance is evaluated. The study reveals that when the power of data center servers is set at 100 W and 200 W, the emergency cooling periods are observed to be 1680 s and 330 s, respectively.

关于数据中心使用相变材料的管壳式热交换器能量存储和释放性能的实验和数值研究
在本研究中,我们建立了一个实验平台,其特点是管壳式热交换器(STHE)与相变材料(PCM)相结合,以研究其能量存储和释放性能。我们选择石蜡 25 和水分别作为储能材料(ESM)和导热液体(HTF)。此外,通过改变相变单元的结构,利用 FLUENT 软件对不同的储能单元进行了数值模拟。数值研究了不同比表面积(单位体积表面积,m-1)和长径比(L/D)对能量储存和释放过程的影响。研究结果表明,比表面积越大,热传导效应越强。当比表面积增加 223.8 % 时,熔化时间和凝固时间可分别缩短约 75.9 % 和 87.4 %。此外,长径比对平均储能率也有很大影响,当长径比从 7.9 增加到 10.5 时,平均储能率降低了 9.6%。相比之下,平均能量释放率仅降低了 1.6%。此外,本研究还广泛探讨了 STHE 的冷却能力。例如,在特定条件下(如长径比为 7.9 和比表面积为 111.1),对冷却性能进行了评估。研究表明,当数据中心服务器的功率设定为 100 W 和 200 W 时,紧急冷却时间分别为 1680 秒和 330 秒。
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来源期刊
Applied Thermal Engineering
Applied Thermal Engineering 工程技术-工程:机械
CiteScore
11.30
自引率
15.60%
发文量
1474
审稿时长
57 days
期刊介绍: Applied Thermal Engineering disseminates novel research related to the design, development and demonstration of components, devices, equipment, technologies and systems involving thermal processes for the production, storage, utilization and conservation of energy, with a focus on engineering application. The journal publishes high-quality and high-impact Original Research Articles, Review Articles, Short Communications and Letters to the Editor on cutting-edge innovations in research, and recent advances or issues of interest to the thermal engineering community.
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