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Mesoscale simulation of Marangoni convection about a vapor bubble in a liquid with temperature gradients under microgravity conditions

机译:微重力条件下温度梯度下液体中气泡与Marangoni对流的中尺度模拟

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Marangoni convection around a 2-D vapor bubble in a liquid, subjected to an imposed negative temperature gradient in the vertical direction under microgravity conditions, is simulated with a newly developed lattice Boltzmann liquid/vapor phase-change method. It is shown that a floating bubble, initially at the center of a confined space, moves gradually toward the hot wall under zero gravity condition because of Marangoni convection. With the increase of the Marangoni number, Marangoni convection along the liquid-vapor interface appears to be more and more significant Under microgravity conditions, a sessile bubble attached on a hot bottom wall facing upward at low superheats, the high velocity region on the liquid/vapor interface moves from the triple-contact line region upward as the wettability of the solid surface changes from hydrophobic to hydrophilic. It is shown that the average Nusselt number of such a sessile vapor bubble under microgravity conditions is larger or smaller than those under zero gravity condition, depending on whether the Marangoni convection is in a direction parallel to or opposite to the direction of the gravity.
机译:使用新开发的格子Boltzmann液相/气相相变方法模拟了液体中二维汽泡周围的Marangoni对流,在垂直方向上在微重力条件下受到了负温度梯度的影响。结果表明,由于Marangoni对流,在零重力条件下,最初位于受限空间中心的浮动气泡逐渐向热壁移动。随着Marangoni数的增加,沿着液-汽界面的Marangoni对流似乎越来越重要。在微重力条件下,在低过热度下,附着在热底壁上的无泡气泡在液体的高速区域朝上流动,当固体表面的润湿性从疏水性变为亲水性时,蒸汽界面从三重接触线区域向上移动。结果表明,这种无固定蒸气气泡在微重力条件下的平均努塞尔数大于或小于零重力条件下的气泡数,这取决于Marangoni对流是平行于重力方向还是相对于重力方向。

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