周期性振荡水流调节器对水平长水道中混合对流的作用

Q1 Chemical Engineering
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引用次数: 0

摘要

本研究探讨了在一个水平长通道中,多个周期性分布的流动调节器的混合对流特性。流动调节器由沿通道中心线放置的摆动叶片表示,通道上下壁分别保持恒定的高温和低温。在复制叶片振荡时,采用了移动网格法,在任意拉格朗日-欧拉(ALE)框架内,对代表性周期单元进行了处理。通过 Galerkin 有限元求解器,针对以普朗特数表示的不同流体,对调制器的各种动态条件(振荡频率和最大角位移)进行了相应的非维度质量、动量和能量守恒方程求解。该系统的传热性能已通过空间平均瞬态和时间平均努塞尔特数得到证明,而流体流动和热场的定性分析则以流线图和等温线图的形式呈现。目前的研究表明,时间平均努塞尔特数随着叶片振荡频率和最大角位移的变化而发生显著变化,这取决于普朗特数和雷诺数。通过对外加叶片频率和诱导热频率进行快速傅里叶变换(FFT)获得的功率谱分析显示,不同的相关性取决于叶片频率。研究发现,叶片频率和最大角位移越高,叶片摩擦功率需求越大。然而,与功率消耗相反,频率的增加并不会导致传热的显著增加。因此,在叶片摆动频率和最大角位移较高时,比传热会降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of periodic oscillating flow modulators on mixed convection in a long horizontal channel

Present study explores mixed convection characteristics in a long horizontal channel subjected to multiple periodically distributed flow modulators. The flow modulators are represented by oscillating blades placed along a centerline of the channel whose lower and upper walls are kept at constant high and low temperatures respectively. In replicating the blade oscillation, moving mesh approach has been adopted within Arbitrary Lagrangian–Eulerian (ALE) framework for a representative periodical unit. The corresponding non-dimensional governing mass, momentum and energy conservation equations have been solved through Galerkin finite element solver for a wide variations of modulator's dynamic condition (oscillating frequency and maximum angular displacement) for different fluids represented by Prandtl number. Heat transfer performance of the system has been demonstrated in terms of spatially-averaged transient as well as time-averaged Nusselt number while qualitative analysis of fluid flow and thermal field has been presented as streamline and isotherm plots. Present study indicates that the time averaged Nusselt number undergoes significant variation with blade oscillating frequency and maximum angular displacement depending on both the Prandtl number and Reynolds Number. Power spectrum analysis obtained through Fast Fourier Transformation (FFT) of the imposed blade frequency and induced thermal frequency reveals different correlation depending on the blade frequency. Blade friction power requirement has been found to increase at higher blade frequency as well as maximum angular displacement. However, contrary to power consumption, increase in frequency does not result in a significant rise in heat transfer. Consequently, specific heat transfer decreases at higher blade oscillating frequency and maximum angular displacement.

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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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