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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Thermo-bioconvection of oxytactic microorganisms in porous media in the presence of magnetic field
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Thermo-bioconvection of oxytactic microorganisms in porous media in the presence of magnetic field

机译:磁场存在下多孔介质中催略微生物的热生物缺陷

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Purpose - This study aims to explore magnetohydrodynamic (MHD) thermo-bioconvection of oxytactic microorganisms in multi-physical directions addressing thermal gradient, lid motion, porous substance and magnetic field collectively using a typical differentially heated two-sided lid-driven cavity. The consequences of a range of pertinent parameters on the flow structure, temperature, oxygen isoconcentration and microorganisms' isoconcentration are examined and explained in great detail. Design/methodology/approach - Two-dimensional governing equations in a two-sided lid-driven porous cavity heated differentially and packed with oxytactic microorganisms under the influence of the magnetic field are solved numerically using the finite volume method-based computational fluid dynamics code. The evolved flow physics is analyzed assuming a steady laminar incompressible Newtonian flow within the validity of the Boussinesq approximation. The transport of oxytactic microorganisms is formulated by augmenting the continuum model. Findings - The mechanisms involved with MHD-mixed thermo-bioconvection could have potential benefits for industrial exploitation. The distributions of fluid flow, temperature, oxygen and motile microorganisms are markedly modified with the change of convection regime. Both speed and direction of the translating walls significantly influence the concentration of the motile microorganisms. The concentration of oxygen and motile microorganisms is found to be higher at the upper portion of the cavity. The overall patterns of the fluid flow, temperature and the oxygen and microorganism distributions are markedly affected by the increase of magnetic field strength.Research limitations/implications - The concept of the present study could be extended to other areas of bioconvection in the presence of gravity, light or chemical attraction. Practical implications - The findings of the present study could be used to multi-physical applications like biomicrosystems, pollutant dispersion in aquifers, chemical catalytic converters, geothermal energy usage, petroleum oil reservoirs, enhanced oil recovery, fuel cells, thermal energy storage and others. Originality/value - The MHD-mixed thermo-bioconvection of oxytactic microorganisms is investigated under different parametric conditions. The effect of pertinent parameters on the heat and mass transfers are examined using the Nusselt number and Sherwood number.
机译:目的 - 本研究旨在探讨多物理方向的磁性动力学(MHD)热生物vecence,用于使用典型的差分升温的双面盖驱动腔共同地解决热梯度,盖运动,多孔物质和磁场。在流动结构,温度,氧等中的一系列相关参数的后果检查并详细解释并解释。使用基于有限体积法的计算流体动力学代码在数值上根据基于有限体积方法的计算流体动力学代码在数值下求解和填充在磁场的影响下的双面盖驱动的多孔腔中的二维控制器在差异上的二维控制方程。分析了演进的流理物理,假设稳定的层流不可压缩的牛顿流量在Boussinesq近似的有效性内。通过增强连续体模型来配制催略微生物的运输。调查结果 - 涉及MHD混合的热生物 - BioConvection的机制可能具有潜在的工业利用效益。流体流动,温度,氧气和运动微生物的分布随着对流制度的变化而显着改变。平移壁的两个速度和方向都会显着影响运动微生物的浓度。发现氧气和运动微生物的浓度在腔的上部较高。流体流动,温度和氧气和微生物分布的总体图案显着受到磁场强度的增加的影响。研究限制/影响 - 本研究的概念可以扩展到在重力存在下的生物vection的其他领域,光或化学吸引力。实际意义 - 本研究的发现可用于生物聚糖系统等多种物理应用,含水层,化学催化转化器,地热能使用,石油储存器,增强的采油,燃料电池,热能储存等的污染物分散。原创性/值 - 在不同的参数条件下研究了催物微生物的MHD混合热生物vection。使用Nusselt号和舍伍德数检查相关参数对热量和质量传输的影响。

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