流体动力和热滑移对液滴热管理系统的影响

J. Thalakkottor, K. Mohseni
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引用次数: 0

摘要

流体在微通道中的流动主要是层流,这是由于粘滞力支配着体或惯性力。因此,液滴中的流体循环大大增强了传热。因此,壁面-流体界面的滑移对液滴热系统的传热有双重影响;第一种是流体-壁面界面的热滑移的直接结果,第二种是由于界面的流体动力滑移导致内循环减少,从而减少了传热。本文采用分子动力学模拟分别考察了热滑移和水动力滑移的影响,并研究了它们对微通道中运动液滴传热的累积效应。研究了等温通道中流体动力滑移的影响,发现环流与滑移长度成反比。建立了一个简单的模型来捕捉这种影响,它还表明,只有当问题的长度尺度与滑动长度的顺序相当时,滑动对循环的影响才变得重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of hydrodynamic and thermal slip on droplet based thermal management systems
Fluid flow in a microchannel is primarily laminar due to viscous forces dominating over body or inertia forces. Hence fluid circulation in a droplet greatly enhances heat transfer. As a result, slip at a wall-fluid interface could have a two fold affect on heat transfer in droplet based thermal systems; the first is a direct result of thermal slip at the fluid-wall interface, the second is due to hydrodynamic slip at the interface which leads to reduction of internal circulation and in turn reduction in heat transfer. In this paper molecular dynamic simulations are used to look at the effects of thermal and hydrodynamic slip separately and then to investigate the cumulative effect of them on heat transfer in moving droplets in a microchannel. The affect of hydrodynamic slip in an isothermal channel is studied and it is observed that circulation is inversely dependent on slip length. A simple model is established that captures this effect and it also shows that the effect of slip on circulation only becomes important when the length scale of the problem is comparable to the order of slip length.
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