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Analysis of the motion between CNTs and water in CNTs micro channel cooler with molecular simulation

机译:分子模拟中CNT微通道冷却器中CNTS和水的运动分析

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As the integrity of micro electronic devices improves, the heat power of chips is getting higher and higher. Micro-channel heat sink has been got more and more concerns for its better cooling performance. A lot of investigations about micro-channel coolers have been undertaken in the past years. As a result of the impact of micro-pump power, the traditional silicon micro-channel heat sink cooling has shown its weakness. Considering the orders of magnitude of the thermal conductivity of carbon nanotubes (CNTs) are higher than the metal material, therefore, using carbon nanotube fin to replace silicon fin will improve the micro-cooler performance significantly. This paper carried out the molecular dynamics simulation of water besides CNTs in CNTs micro-channel cooler. The motion model of CNTs and water molecule was established. The movements of water molecule at the interface of the CNTs with the different inlet velocities and the density were analysed. The study found that the number of water molecules close to the CNTs was the minimum and that of the second closing layer of water molecules was more because the repulsion force between the CNTs and water molecules and the attraction effect between the CNTs and less water molecules, some water molecules moved into the CNTs. Simulation results showed that the water molecules at the surface of the CNTs had the velocity slip phenomenon.
机译:随着微型电子设备的完整性,芯片的热功率越来越高。微通道散热器已越来越涉及其更好的冷却性能。对过去几年进行了大量关于微通道冷却器的调查。由于微泵电源的影响,传统的硅微通道散热器冷却显示了其弱点。考虑到碳纳米管(CNT)的导热系数的级别的级高于金属材料,因此,使用碳纳米管翅片替代硅翅片将显着提高微冷却器性能。除CNTS微通道冷却器中除CNT外,本文进行了水的分子动力学模拟。建立了CNT和水分子的运动模型。分析了具有不同入口速度和密度的CNT界面处的水分子的运动。该研究发现,靠近CNT的水分子数是最小的,并且第二个闭合层的水分子的数量更高,因为CNT和水分子之间的排斥力以及CNTs和较少的水分子之间的吸引力效应,一些水分子进入CNT。仿真结果表明,CNT表面的水分子具有速度滑动现象。

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