Improved Heat Transfer Capabilities of Nanofluids—An Assessment Through CFD Analysis

IF 1.8 4区 工程技术 Q3 ENGINEERING, CHEMICAL Chemical Engineering & Technology Pub Date : 2024-09-17 DOI:10.1002/ceat.202300523
Rehan Zubair Khalid, Mehmood Iqbal, Aitazaz Hassan, Syed Muhammad Haris, Atta Ullah
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Abstract

Conventional fluids used in fission-based water-cooled nuclear reactors have lower heat transfer coefficients (HTCs) and thermal conductivity, which has led researchers to explore high-performance fluids that can enhance heat transfer in routine operation and prevent core meltdown in the case of accidents. It is important to investigate a wide range of fluids that can help designers improve thermal hydraulic characteristics, such as HTC, critical heat flux, and minimum departure from nucleate boiling ratio (MDNBR). In this study, the effectiveness of nanofluids in enhancing heat transfer parameters, including thermal conductivity and heat capacity, was investigated. Four different nanofluids (Al2O3–H2O, ZrO2–H2O, Ag–H2O, and Si–H2O) with pure water as the primary coolant in an HPR-1000 nuclear reactor were compared using computational methods. Due to computational limitations, only the flow channel among four fuel rods with the highest power density in the core was simulated using Eulerian computational fluid dynamics. The results of this study show that silver water (Ag–H2O) nanofluid outperformed other nanofluids and pure water. It had a higher average HTC and MDNBR, with a 67.15 % and 45.23 % improvement, respectively, compared to pure water. The fuel rod wall temperature was also reduced by 28.5 K with Ag–H2O compared to water. Comparison of current simulated results with literature data shows a good agreement.

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提高纳米流体的传热能力--通过 CFD 分析进行评估
裂变水冷式核反应堆中使用的传统流体具有较低的传热系数(HTC)和导热性,这促使研究人员探索高性能流体,以便在常规运行中提高传热性,并在发生事故时防止堆芯熔毁。研究各种能帮助设计人员改善热液压特性(如 HTC、临界热通量和最小离核沸腾比 (MDNBR))的流体非常重要。本研究调查了纳米流体在提高热传导参数(包括热导率和热容量)方面的有效性。使用计算方法比较了四种不同的纳米流体(Al2O3-H2O、ZrO2-H2O、Ag-H2O 和 Si-H2O)与纯水作为 HPR-1000 核反应堆中的主冷却剂。由于计算能力有限,只使用欧拉计算流体动力学模拟了堆芯中功率密度最高的四根燃料棒之间的流道。研究结果表明,银水(Ag-H2O)纳米流体的性能优于其他纳米流体和纯水。与纯水相比,银水的平均 HTC 和 MDNBR 分别提高了 67.15 % 和 45.23 %。与水相比,Ag-H2O 的燃料棒壁温度也降低了 28.5 K。将目前的模拟结果与文献数据进行比较,结果显示两者吻合良好。
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
Chemical Engineering & Technology
Chemical Engineering & Technology 工程技术-工程:化工
CiteScore
3.80
自引率
4.80%
发文量
315
审稿时长
5.5 months
期刊介绍: This is the journal for chemical engineers looking for first-hand information in all areas of chemical and process engineering. Chemical Engineering & Technology is: Competent with contributions written and refereed by outstanding professionals from around the world. Essential because it is an international forum for the exchange of ideas and experiences. Topical because its articles treat the very latest developments in the field.
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