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A molecular dynamics simulation of nanoscale convective heat transfer with the effect of axial heat conduction

机译:轴向传热效应的纳米对流换热的分子动力学模拟

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Effective heat dissipation from nano-fluidic devices is sometimes necessary to ensure their performance and lifespan. In the molecular dynamics simulation of nanoscale convective heat transfer, thermostats cannot be directly applied to the fluid because of the non-uniform temperature distribution. Periodic boundary is typically utilised, but unrealistic axial heat conduction exists when there is a temperature difference between the outlet and images of inlet atoms. In this paper, the effect of axial conduction caused by periodic boundary is investigated through the Peclet number (Pe). Taking viscous dissipation into consideration, the magnitude of outlet thermal diffusion is observed to decrease with increasing Pe. The local average temperature of fluid changes in an exponential form except in the region close to the outlet. Results show that the contribution of outlet axial conduction to the local average temperature is less than 2.0% when Pe, 10. The main reason is that the magnitude of fluid velocity and viscous heat dissipation in nanochannels is much larger than that in macro-channels at the same Peclet number.
机译:有时需要从纳米流体设备中有效散热,以确保其性能和使用寿命。在纳米级对流换热的分子动力学模拟中,由于温度分布不均匀,无法将恒温器直接应用于流体。通常使用周期性边界,但是当出口原子和入口原子的图像之间存在温差时,存在不切实际的轴向热传导。本文通过Peclet数(Pe)考察了周期性边界引起的轴向传导的影响。考虑到粘性耗散,观察到出口热扩散的幅度随Pe的增加而减小。除了靠近出口的区域外,流体的局部平均温度呈指数形式变化。结果表明,当Pe,10时,出口轴向传导对局部平均温度的贡献小于2.0%。主要原因是纳米通道中的流体速度和粘性散热的幅度远大于宏观通道中的速度。相同的Peclet号。

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