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首页> 外文期刊>Journal of Heat Transfer >Surface Deformation and Convection in Electrostatically-Positioned Droplets of Immiscible Liquids Under Microgravity
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Surface Deformation and Convection in Electrostatically-Positioned Droplets of Immiscible Liquids Under Microgravity

机译:在微重力下不溶混液体的静电定位液滴的表面变形和对流

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A numerical study is presented of the free surface deformation and Marangoni convection in immiscible droplets positioned by an electrostatic field and heated by laser beams under microgravity. The boundary element and the weighted residuals methods are applied to iteratively solve for the electric field distribution and for the unknown free surface shapes, while the Galerkin finite element method for the thermal and fluid flow field in both the transient and steady states. Results show that the inner interface demarking the two immiscible fluids in an electrically conducting droplet maintains its sphericity in microgravity. The free surface of the droplet, however, deforms into an oval shape in an electric field, owing to the pulling action of the normal component of the Maxwell stress. The thermal and fluid flow distributions are rather complex in an immiscible droplet, with conduction being the main mechanism for the thermal transport. The non-uniform temperature along the free surface induces the flow in the outer layer, whereas the competition between the interfacial surface tension gradient and the inertia force in the outer layer is responsible for the flows in the inner core and near the immiscible interface. As the droplet cools into an undercooled state, surface radiation causes a reversal of the surface temperature gradients along the free surface, which in turn reverses the surface tension driven flow in the outer layer. The flow near the interfacial region, on the other hand, is driven by a complimentary mechanism between the interfacial and the inertia forces during the time when the thermal gradient on the free surface has been reversed while that on the interface has not yet. After the completion of the interfacial thermal gradient reversal, however, the interfacial flows are largely driven by the inertia forces of the outer layer fluid.
机译:数值研究表明,在静电场作用下并在微重力作用下被激光束加热的不混溶液滴中的自由表面变形和Marangoni对流。边界元法和加权残差法用于迭代求解电场分布和未知的自由表面形状,而Galerkin有限元法则用于瞬态和稳态热流和流体流场。结果表明,在导电液滴中标记两种不混溶流体的内界面在微重力下保持其球形。然而,由于麦克斯韦应力的法向分量的拉动作用,液滴的自由表面在电场中变形为椭圆形。在不混溶的液滴中,热和流体的流量分布相当复杂,传导是热传递的主要机制。沿自由表面的温度不均匀会在外层中引起流动,而界面表面张力梯度和外层中的惯性力之间的竞争则是导致内芯中和不混溶界面附近流动的原因。当液滴冷却至过冷状态时,表面辐射会导致沿自由表面的表面温度梯度反转,从而使外层中由表面张力驱动的流动反向。另一方面,在自由表面上的热梯度已经反转而界面上的热梯度还没有反转的时候,界面和惯性力之间的互补机制驱动了界面附近的流动。然而,在完成界面热梯度反转之后,界面流动很大程度上由外层流体的惯性力驱动。

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