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Heat transfer improvement of a wet fin under transient response with a unique design arrangement aspect

机译:独特设计安排方面的瞬态响应下湿翅片的传热改善

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A unique design arrangement for longitudinal and pin fins involving surface dehumidification is proposed for improving the fin's heat transfer enhancement under transient operating condition. The new design arrangement involves dual primary fin surfaces. For the present analysis, the assessment of Fourier and non-Fourier effects is made, and a closed form solution methodology involving separation of variables is adopted to evaluate the fin performance. The proposed closed form methodology for the non-Fourier heat transfer effect in the wet fin is well-validated with the corresponding numerical solution obtained under finite differencing framework. Furthermore, for a dry surface condition, the validation of the present non-Fourier model is done with the pertinent results available in the literature. The Fourier and the non-Fourier heat transfer effects are investigated with various design variables of the wet fin and surface conditions. It is highlighted that the effect of air dehumidification in fins promotes waviness in the temperature distribution. The efficiency is determined to be higher in the case of the longitudinal fin than that of the pin fin, whereas, an opposite behavior is revealed in terms of the fin effectiveness. Higher fin efficiency is observed at lower values of the Fourier number and higher values of the Vernote number. It is apparent from the present study that the proposed new fin design considerably enhances the rate of heat transfer as compared to the conventionally used design. Additionally, the proposed design results in a compact geometry that in turn provides additional mechanical strength resulting in the savings of space utilization and costs related to fin manufacturing. (C) 2018 Elsevier Ltd. All rights reserved.
机译:提出了涉及表面除湿的纵向鳍片和针状鳍片的独特设计方案,以改善瞬态工作条件下鳍片的传热。新的设计方案涉及双主翅片表面。对于本分析,对傅立叶和非傅立叶效应进行了评估,并采用了包含变量分离的封闭形式求解方法来评估鳍片性能。湿翅片中非傅立叶传热效果的封闭形式方法论已通过有限差分框架下获得的相应数值解得到了很好的验证。此外,对于干燥的表面条件,本非傅里叶模型的验证是利用文献中可获得的相关结果进行的。利用湿翅片和表面条件的各种设计变量研究了傅立叶和非傅立叶传热效果。需要强调的是,翅片中空气除湿的作用会促进温度分布的波动。在纵向翅片的情况下,效率被确定为比销翅片的效率高,然而,在翅片效率方面显示出相反的行为。在较低的傅立叶数和较高的Vernote数处观察到较高的鳍片效率。从本研究中可以明显看出,与传统使用的设计相比,提出的新散热片设计大大提高了热传递速率。另外,所提出的设计导致紧凑的几何形状,这又提供了额外的机械强度,从而节省了空间利用和与翅片制造有关的成本。 (C)2018 Elsevier Ltd.保留所有权利。

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