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STUDY ON HEAT TRANSFER OF GAS FLOW HEATED BY NANO-PROBE VIA DIRECT SIMULATION MONTE CARLO (DSMC)

机译:纳米探针通过直接仿真蒙特卡罗(DSMC)加热气流传热研究

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Applications of heated tip/surface configuration for micro-/nano- electromechanical systems (MEMS/NEMS) have been widely explored in these years. Since the small gaps in these MEMS/NEMS are comparable to the mean free path of gaseous molecules, the heat transfer via gaseous molecules from the heated tip to the substrate is fundamentally different from macroscopic conduction or convection heat transfer in gases. In this paper, the heat transfer of the rarefied gases heated by hot nano-tip is investigated by means of the Direct Simulation Monte Carlo (DSMC) method. The results show that both tip geometry and tip-substrate distance affect the heat flux density distribution. With the increase of the crossing-angle θ of the nano-tip, the heat flux tends to decrease, while the spatial resolution tends to improve. Moreover, the heat flux density and spatial resolution tend to decrease with the increase of distance between the nano-tip and the substrate. Simulation results provide valuable information for the rational design and optimization of the heated nano-probe for topography applications such as thermally assisted data storage.
机译:多年来广泛探讨了微/纳米机械系统(MEMS / NEM)的加热尖端/表面配置的应用。由于这些MEMS / NEMS中的小间隙与气态分子的平均自由路径相当,因此通过来自加热尖端到基底的气态分子的热传递与气体中的宏观传导或对流热传递源性远外不同。本文通过直接仿真蒙特卡罗(DSMC)方法研究了热纳米尖端加热的稀土气体的热传递。结果表明,两个尖端几何形状和尖端距离都影响了热通量密度分布。随着纳米尖端的交叉角θ的增加,热通量趋于降低,而空间分辨率趋于改善。此外,随着纳米尖端和基板之间的距离的增加,热通量密度和空间分辨率倾向于降低。仿真结果为热辅助数据存储等地形应用提供了有理性设计和优化的理性设计和优化的有价值信息。

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