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首页> 外文期刊>International Journal of Heat and Mass Transfer >The effect of Joule-heating-induced buoyancy on the electrohydrodynamic instability in a fluid layer with electrical conductivity gradient
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The effect of Joule-heating-induced buoyancy on the electrohydrodynamic instability in a fluid layer with electrical conductivity gradient

机译:焦耳加热引起的浮力对具有电导率梯度的流体层中电流体动力学不稳定性的影响

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摘要

Applying an electric field across a fluid layer with a conductivity gradient can induce an electrical body force destabilizing the flow and simultaneously generate Joule-heating effect. For microfluidic devices with high surface area to volume ratio, the Joule heating can be removed and the onset of instability occurs only when the electrical body force overcomes the viscous force. For mini-scale devices containing conducting solutions, the Joule heating can induce thermal buoyancy sufficiently to affect the stability. This paper performs an analysis to examine the possible impact on the stability due to the presence of Joule-heating-induced buoyancy. Results show that for the cases of low conductivity gradient, the induced buoyancy always appears to enhance the electrohydrodynamic instability regardless of the direction of buoyancy. However, at high conductivity gradients, the buoyancy may become a stabilizing mechanism if the electrical field and the buoyancy are on the opposite direction.
机译:在具有电导率梯度的流体层上施加电场会导致电场力使流量不稳定,并同时产生焦耳热效应。对于具有高表面积与体积比的微流体装置,只有当电场力克服粘性力时,才可以消除焦耳热,并且不稳定性会开始。对于包含导电溶液的小型设备,焦耳加热会引起足够的热浮力,从而影响稳定性。本文进行了分析,以检查由于焦耳热引起的浮力的存在可能对稳定性产生的影响。结果表明,在低电导率梯度的情况下,无论浮力的方向如何,诱导的浮力似乎总是会增强电流体动力学的不稳定性。但是,在高电导率梯度下,如果电场和浮力方向相反,则浮力可能会成为稳定机制。

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