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Deconstructing Temperature Gradients across Fluid Interfaces: The Structural Origin of the Thermal Resistance of Liquid-Vapor Interfaces

机译:解构流体界面的温度梯度:液体 - 蒸汽界面热阻的结构起源

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摘要

The interfacial thermal resistance determines condensation-evaporation processes and thermal transport across material-fluid interfaces. Despite its importance in transport processes, the interfacial structure responsible for the thermal resistance is still unknown. By combining nonequilibrium molecular dynamics simulations and interfacial analyses that remove the interfacial thermal fluctuations we show that the thermal resistance of liquid-vapor interfaces is connected to a low density fluid layer that is adsorbed at the liquid surface. This thermal resistance layer (TRL) defines the boundary where the thermal transport mechanism changes from that of gases (ballistic) to that characteristic of dense liquids, dominated by frequent particle collisions involving very short mean free paths. We show that the thermal conductance is proportional to the number of atoms adsorbed in the TRL, and hence we explain the structural origin of the thermal resistance in liquid-vapor interfaces.
机译:界面热阻决定了冷凝-蒸发过程以及跨材料-流体界面的热传递。尽管它在运输过程中很重要,但导致热阻的界面结构仍然未知。通过结合非平衡分子动力学模拟和消除界面热波动的界面分析,我们表明,液汽界面的热阻与吸附在液体表面的低密度流体层相连。该热阻层(TRL)定义了边界,在该边界处,热传输机制从气体(弹道)转变为稠密液体的特征,主要由频繁的粒子碰撞(涉及非常短的平均自由程)决定。我们显示出热导率与TRL中吸附的原子数成正比,因此我们解释了液-气界面中热阻的结构起源。

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