纳米流体和不同多孔翅片布置对双管换热器效率的优化

Avinash Kumar, V. Arya, Chirodeep Bakli
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引用次数: 1

摘要

对多孔翅片在逆流式双管换热器中的作用进行了数值研究。模拟了4种不同多孔翅片布置方式的DPHE,计算了不同的达西数、翅片高度和翅片数量,并与常规无多孔翅片布置的DPHE进行了比较。考虑固定Re = 100时,采用Darcy-Brinkman-Forchheimer方程模拟多孔翅片内的流动。Al2O3-H2O纳米流体和水分别作为热流体和冷流体。不锈钢作为多孔材料,其孔隙率为0.65。根据有效性和绩效评价标准(PEC)对结果进行评价。利用换热器的效率分析换热特性,同时利用PEC分析考虑压力损失的换热特性。我们通过有效性分析评估了热性能的最大增强,并通过PEC研究评估了最佳有效性和相应的设计参数。结果表明,采用多孔翅片可使换热性能提高134.3%。然而,随着传热的增强,压力损失也增加,这使得多孔翅片的应用变得不可行。因此,通过PEC研究,我们获得了最优设计参数(Da = 10−3,hf = 4 cm, n = 30),该参数适用于多孔鳍片,传热增强66.38%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Effectiveness of Double Pipe Heat Exchanger Using Nanofluid and Different Porous Fins Arrangement
A numerical study is carried out to investigate the effect of porous fins in counter-flow Double Pipe Heat Exchanger (DPHE). Four DPHE with different porous fin arrangements is simulated for varying Darcy number, fin height, and the number of fins and compared with the conventional DPHE with no porous fins. The Darcy-Brinkman-Forchheimer equation is employed to model the flow in the porous fins considering fixed Re = 100. Al2O3-H2O nanofluid and water are used as hot and cold fluids respectively. Stainless steel is used as porous material with a porosity of 0.65. Results are evaluated in terms of effectiveness and Performance Evaluation Criterion (PEC). The effectiveness of the heat exchanger is used to analyze the heat transfer characteristics whereas the PEC is used to analyze the heat transfer characteristics considering pressure losses also. We evaluated maximum enhancement in thermal performance using effectiveness analysis and through PEC study we evaluated optimal effectiveness and corresponding design parameters. It is shown that utilizing porous fins in DPHE enhances the heat transfer by 134.3%. However, along with enhancement in heat transfer, the pressure losses also enhance which makes the application of porous fin non-viable. Therefore, using the PEC study we obtained optimal design parameters (Da = 10−3, hf = 4 cm, and n = 30) which adapts porous fin viable with enhancement in heat transfer by 66.38%.
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