Weakly nonlinear analysis of Darcy–Brinkman gravity modulated biothermal convection in rotating porous media

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-10-09 DOI:10.1002/htj.23205
P. A. Akhila, B. Patil Mallikarjun, Palle Kiran
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引用次数: 0

Abstract

The present study investigates the gyrotactic microorganism flow in a rotating porous medium containing Newtonian fluid. Using gravity modulation, Darcy–Brinkman biothermal convection is examined. Linear theory describes the stationary convective mode which derives the expression for critical Rayleigh number. This indicates the onset of bioconvection. The system's marginal stability is demonstrated by graphical and tabular representation which has a good agreement with each other. The Ginzburg–Landau equation governs the Nusselt number, which is used to further explore heat transfer. The study provides an explanation and graphical representation of the effects of the following factors on heat transfer: cell eccentricity, modified Vadasz number and bioconvective Rayleigh–Darcy number, modulation frequency, and amplitude along with Taylor number. The mean Nusselt number has been plotted in the current study. The effect of rotating porous media and gravity modulation is explained in this work. Additionally, a comparison graph is plotted to examine the effects of gravity, both modulated and unmodulated, on the Nusselt number. This demonstrates how well gravity modulation on rotating porous media controls the system's heat transfer. A comparison between numerical and analytical results for unmodulated cases is also explained graphically.

旋转多孔介质中Darcy-Brinkman重力调制双热对流的弱非线性分析
本文研究了微生物在含牛顿流体的旋转多孔介质中的陀螺仪流动。利用重力调制,研究了达西-布林克曼双温对流。线性理论描述了平稳对流模式,导出了临界瑞利数的表达式。这表明生物对流的开始。系统的边际稳定性用图形和表格的形式表示,两者具有较好的一致性。金兹堡-朗道方程决定了努塞尔数,它被用来进一步研究传热。本研究对细胞偏心率、修正Vadasz数和生物对流Rayleigh-Darcy数、调制频率、振幅和Taylor数等因素对换热的影响进行了解释和图解。在本研究中绘制了平均努塞尔数。本文解释了旋转多孔介质和重力调制的影响。此外,绘制了一个比较图,以检查重力对努塞尔数的影响,无论是调制的还是未调制的。这证明了旋转多孔介质上的重力调制如何很好地控制了系统的传热。对非调制情况下的数值结果和解析结果进行了比较,并给出了图解说明。
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
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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