Attack angle parametrization for capacity augmentation and wake management by vortex generators in finned compact heat exchangers

IF 1.6 4区 工程技术 Q3 ENGINEERING, MECHANICAL
A. Arora, P. Subbarao
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Abstract

Enhancing gas-side thermal conductance is essential for the compact sizing of finned-tube heat exchangers, and this study attempts it by integrating vortex generators. The orientation of the vortex generators, which is defined by its attack angle, has a strong bearing on the degree of augmentation. As energy-efficiency keeps varying with the attack angle, the thrust of this investigation is to identify best attack angle(s) for the stipulated task. Since spatial positioning of the generators too has a strong bearing on the energy-efficiency, therefore, its effect is duly accounted for a comprehensive investigation. For the selection of optimal designs, regression-based phenomenological models are used as they apply thermo-hydraulic trade-off. After determining the best angle(s), a study is carried out to evaluate their robustness under varying operating conditions. Although phenomenological models are adequate for design optimization, they do not describe the physics of thermo-hydraulic enhancement. Therefore, a study explaining the bearing of design modifications on the local characteristics too is carried out. Additionally, a study discussing the effect of generators' attack angle on heat transfer over the wake affected surfaces, which has a predominant existence in baseline flows, is reported. It has been found that the thermal augmentation over the said surfaces is the key to compact sizing of the system. For a selected wake-region deployment, the highest relative Colburn j-factor corresponding to wake-affected fin equals 3.07 at a specified Reynolds number..
翅片式紧凑型换热器涡发生器增容和尾迹管理的攻角参数化
提高气侧导热系数是翅片管换热器小型化的关键,本研究尝试通过集成涡发生器来实现。涡发生器的方向由其攻角决定,对增强的程度有很大的影响。由于能源效率随攻角不断变化,本研究的重点是确定规定任务的最佳攻角。由于发电机的空间位置对能源效率也有很大的影响,因此,对其影响应进行全面的调查。对于最优设计的选择,采用了基于回归的现象学模型,因为它应用了热-水力权衡。在确定最佳角度后,对其在不同工况下的鲁棒性进行了研究。虽然现象学模型足以用于设计优化,但它们不能描述热水力增强的物理特性。因此,也进行了一项研究来解释设计修改对当地特征的影响。此外,本文还报道了一项研究,讨论了发电机攻角对尾迹影响表面传热的影响,这种影响在基线流动中普遍存在。已经发现,在上述表面上的热增强是系统紧凑尺寸的关键。对于选定的尾迹区域部署,在指定雷诺数下,尾迹影响鳍对应的最高相对科尔伯恩j因子为3.07。
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
Journal of Thermal Science and Engineering Applications
Journal of Thermal Science and Engineering Applications THERMODYNAMICSENGINEERING, MECHANICAL -ENGINEERING, MECHANICAL
CiteScore
3.60
自引率
9.50%
发文量
120
期刊介绍: Applications in: Aerospace systems; Gas turbines; Biotechnology; Defense systems; Electronic and photonic equipment; Energy systems; Manufacturing; Refrigeration and air conditioning; Homeland security systems; Micro- and nanoscale devices; Petrochemical processing; Medical systems; Energy efficiency; Sustainability; Solar systems; Combustion systems
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