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用于蒸发毛细桥的外部斯特藩和内部马兰戈尼热流体动力学

External Stefan and Internal Marangoni Thermo-Fluid Dynamics for Evaporating Capillary Bridges.

作者信息

Paul Arnov, Roy Apurba, Dhar Purbarun

机构信息

Hydrodynamics and Thermal Multiphysics Lab (HTML), Department of Mechanical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.

出版信息

Langmuir. 2024 Mar 12;40(10):5255-5269. doi: 10.1021/acs.langmuir.3c03703. Epub 2024 Feb 27.

Abstract

We probe the evaporation mechanisms of wettability-moderated, confined capillary bridges and bulges. For the first time, we explore the internal Marangoni hydrodynamics and external Stefan advection dynamics in the surrounding gaseous domain due to evaporative effects. A transient simulation approach based on the level set (LS) method and the Arbitrary Lagrangian-Eulerian (ALE) framework was adopted to computationally model the capillary bridge profiles and evaporation phenomenon with generic contact line dynamics (both CCR and CCA modes). The governing equations corresponding to the transport processes in both the liquid and gaseous domains are simulated in a fully coupled manner with appropriate boundary conditions to precisely trace the liquid-vapor interface and the three-phase contact point during evaporation. The effect of the bridge confinement phenomenon, i.e., the extent of confined ambient surrounding the liquid-vapor interface between the solid surfaces, is explored. Also, the role of wetting state and contact line dynamics during CCR and CCA modes of evaporation were probed, and good agreement with experimental observations was noted. Results show that the evaporation rate is primarily dictated by the confinement phenomenon, and wettability effects play a marginal role. A higher confinement curtails the evaporation rate due to an increased local vapor concentration around the liquid bridges. However, the wetting state substantially affects the internal Marangoni effect dynamics and the Stefan advection dynamics due to its explicit influence on the nonuniform evaporative flux along the liquid-vapor interface. Between superhydrophobic confinements, the contact lines are confined in the wedge-shaped region, thereby locally augmenting the vapor concentration. As a result, the large evaporative flux near the bulge region develops a higher temperature gradient, thereby inducing upscaled thermal Marangoni flow compared to hydrophilic confinements. These findings may have significant implications for the efficient designing and development of thermofluidic systems involving thermal transport, mixing, and deposition of dissolved particles in liquid bridges.

摘要

我们探究了润湿性调节的受限毛细桥和凸起的蒸发机制。首次,我们研究了由于蒸发效应在周围气态区域内的内部马兰戈尼流体动力学和外部斯蒂芬平流动力学。采用基于水平集(LS)方法和任意拉格朗日 - 欧拉(ALE)框架的瞬态模拟方法,以通用接触线动力学(CCR和CCA模式)对毛细桥轮廓和蒸发现象进行计算建模。在适当的边界条件下,以完全耦合的方式模拟液体和气体域中传输过程的控制方程,以精确追踪蒸发过程中的液 - 气界面和三相接触点。探究了桥限域现象的影响,即固体表面之间液 - 气界面周围受限环境的范围。此外,还研究了CCR和CCA蒸发模式下润湿性状态和接触线动力学的作用,并与实验观测结果取得了良好的一致性。结果表明,蒸发速率主要由限域现象决定,润湿性效应起次要作用。较高的限域会降低蒸发速率,这是由于液桥周围局部蒸汽浓度增加所致。然而,润湿性状态由于其对沿液 - 气界面不均匀蒸发通量的明确影响,极大地影响了内部马兰戈尼效应动力学和斯蒂芬平流动力学。在超疏水限域之间,接触线被限制在楔形区域,从而局部增加了蒸汽浓度。结果,凸起区域附近的大蒸发通量产生了更高的温度梯度,从而与亲水性限域相比诱导了更大规模的热马兰戈尼流。这些发现可能对涉及热传输、混合以及液体桥中溶解颗粒沉积的热流体系统的高效设计和开发具有重要意义。

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