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Mixed Convective Heat Transfer Due to Forced and Thermocapillary Flow Around Bubbles in a Miniature Channel: A 2D Numerical Study

机译:由于微型通道中气泡周围的强迫和热毛细流动而产生的混合对流传热:二维数值研究

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Marangoni thermocapillary convection and its contribution to heat transfer during boiling has been the subject of some debate in the literature. Currently, for certain conditions, such as microgravity boiling, it has been shown that Marangoni thermocapillary convection has a significant contribution to heat transfer. Typically, this phenomenon is investigated for the idealized case of an isolated and stationary bubble resting on a heated surface, which is immersed in a semi-infinite quiescent fluid or within a two-dimensional cavity. However, little information is available with regard to Marangoni heat transfer in miniature confined channels in the presence of a cross flow. As a result, this article presents a two-dimensional (2D) numerical study that investigates the influence of steady thermal Marangoni convection on the fluid dynamics and heat transfer around a bubble during laminar flow of water in a miniature channel with the view of developing a refined understanding of boiling heat transfer for such a configuration. This mixed convection problem is investigated under microgravity conditions for channel Reynolds numbers in the range of 0 to 500 at liquid inlet velocities between 0.01 m/s and 0.0 5m/s and Marangoni numbers in the range of 0 to 17,114. It is concluded that thermocapillary flow may have a significant impact on heat transfer enhancement. The simulations predict an average increase of 35% in heat flux at the downstream region of the bubble, while an average 60% increase is obtained at the front region of the bubble where mixed convective heat transfer takes place due to forced and thermocapillary flow.
机译:Marangoni热毛细对流及其在沸腾过程中对热传递的贡献一直是文献中讨论的主题。目前,对于某些条件,例如微重力沸腾,已经表明,Marangoni热毛细管对流对传热有重要贡献。通常,对于在加热表面上放置的固定静止气泡的理想情况,研究这种现象,该气泡浸在半无限静态流体中或在二维腔体内。然而,关于在横流的情况下在微型密闭通道中的马兰戈尼传热的信息很少。结果,本文提出了二维(2D)数值研究,研究了在微型通道中水层流期间稳定的热Marangoni对流对流体动力学和气泡周围传热的影响。对这种配置的沸腾传热有了更深入的了解。在液体重力为0.01 m / s到0.0 5m / s的速度和Marangoni数为0到17,114的情况下,在微重力条件下研究了通道0到500范围内的通道雷诺数的混合对流问题。结论是,热毛细流动可能对热传递的增强有重大影响。模拟预测气泡下游区域的热通量平均增加35%,而气泡前端区域由于强制和热毛细管流动而发生混合对流传热,因此平均增加60%。

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