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MICRO/NANOSCALE HEAT TRANSFER:INTERFACIAL EFFECTS DOMINATE THE HEAT TRANSFER

机译:微/纳米级传热:界面效应主导传热

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This paper describes the effects of size on heat conduction in nanofilms, convective heat transfer in micro/nanochannels, and near-field radiation in nanogaps. As the size is reduced, the ratio of the surface area to the volume increases; therefore, the relative importance of the interfacial effects also increases. The physical mechanisms for these size effects have been classified into two classes. When the scale is reduced to the order of micrometers (except for gases), the interfaces only affect the macro parameters and the continuum assumption still holds, but the relative importance of the various forces (inertia force, viscous force, buoyancy, etc.) and effects (interfacial effect, axial heat conduction in the tube wall, etc.) changes, resulting in changes in the heat transfer characteristics from normal conditions. As the size is further reduced to the order of submicrometers or nanometers, the interface affects not only the macro parameters but also the micro parameters (mean free path, relaxation time, etc.) so the continuum assumption breaks down and Newton's viscosity law and Fourier's heat conduction law are no longer applicable. Thus, the major characteristic of micro/nanoscale heat transfer is that the interfacial effects dominate the heat transfer.
机译:本文介绍了大小对纳米岩中的热传导,微/纳米槽的对流热传递以及纳米内的近场辐射的影响。随着尺寸减小,表面积与体积的比率增加;因此,界面效应的相对重要性也增加了。这些大小效应的物理机制已被分为两类。当刻度减小到微米的顺序(气体除外)时,接口仅影响宏参数,连续的假设仍然存在,而是各种力(惯性力,粘性力,浮力等)的相对重要性和效果(界面效应,管壁中的轴向热传导等)变化,导致来自正常条件的传热特性的变化。随着尺寸进一步减少到亚脉管或纳米的顺序,界面不仅影响宏参数,而且影响微观参数(均值自由路径,放松时间等),因此连续的假设崩溃,牛顿的粘度法和傅立叶导热法不再适用。因此,微/纳米级传热的主要特征是界面效应主导传热。

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