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Turbulence closure models for free electroconvection

机译:用于自由电对流的湍流闭合模型

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Electroconvection has been simulated in a number of recent studies, given its application in heat transfer enhancement, electrostatic atomizers and flow control. In practical applications, such as in charge injection atomizers, the electric Reynolds number can be sufficiently high such that the well-described ordered large scale electrohydrodynamic (EHD) instabilities that normally appear in electroconvection can dissipate and form into a wider distribution of length-scales. This purely electrohydrodynamically driven chaotic flow has features that resemble turbulent natural convection, and can dominate the operational regime of practical devices. Despite its practical relevance, Reynolds averaged turbulence model closures for EHD are unavailable, which currently makes direct numerical simulation the main viable option for EHD flows. Closure of EHD turbulence in free electro-convection is examined here through implementation of Reynolds stress model (RSM) closures using EHD specific timescales for the unclosed terms appearing in the turbulent scalar flux and space-charge scalar variance equations. A new closure for the highly non-linear triple correlation ((q'E'u') over bar), a term which is specific to EHD, is also presented. The work demonstrates that Reynolds stress closures are a feasible modeling route for EHD flows, with errors approaching similar values as in thermal Rayleigh-Benard convection at analogous levels of turbulence.
机译:考虑到电对流在传热增强,静电雾化器和流量控制中的应用,已经在许多近期研究中对其进行了模拟。在实际应用中,例如在电荷注入雾化器中,电雷诺数可以足够高,以至于通常在电对流中出现的,有序描述的有序大规模电液动力学(EHD)不稳定性可以消散并形成更宽的长度尺度分布。这种纯粹由电动力驱动的混沌流具有类似于湍流自然对流的特征,并且可以主导实际设备的运行方式。尽管具有实际意义,但无法获得用于EHD的Reynolds平均湍流模型闭合,这目前使直接数值模拟成为EHD流动的主要可行选择。通过使用EHD特定时间尺度,针对湍流标量通量和空间电荷标量方差方程中出现的未封闭项,通过实施Eynolds应力模型(RSM)闭合,对自由电对流中EHD湍流的闭合进行了检验。还提出了针对高度非线性三重相关性(bar上的(q'E'u'))的新闭包,该闭包是EHD特有的术语。这项工作表明,雷诺应力闭合是EHD流动的一种可行的建模途径,在类似的湍流水平下,其误差接近热瑞利-贝纳德对流中的值。

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