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Strongly coupled near-field radiative and conductive heat transfer between planar bodies

机译:平面体之间的强耦合近场辐射与传导传热

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摘要

We study the interplay of conductive and radiative heat transfer (RHT) in planar geometries and predict that temperature gradients induced by radiation can play a significant role on the behavior of RHT with respect to gap sizes, depending largely on geometric and material parameters and not so crucially on operating temperatures. Our findings exploit rigorous calculations based on a closed-form expression for the heat flux between two plates separated by vacuum gaps d and subject to arbitrary temperature profiles, along with an approximate but accurate analytical treatment of coupled conduction-radiation in this geometry. We find that these effects can be prominent in typical materials (e.g., silica and sapphire) at separations of tens of nanometers, and can play an even larger role in metal oxides, which exhibit moderate conductivities and enhanced radiative properties. Broadly speaking, these predictions suggest that the impact of RHT on thermal conduction, and vice versa, could manifest itself as a limit on the possible magnitude of RHT at the nanoscale, which asymptotes to a constant (the conductive transfer rate when the gap is closed) instead of diverging at short separations.
机译:我们研究了平面几何中的传导和辐射传热(RHT)的相互作用,并预测辐射引起的温度梯度在RHT的间隙尺寸方面可起重要作用,这在很大程度上取决于几何和材料参数,而并非如此关键在于工作温度。我们的发现基于对由真空间隙d隔开并受到任意温度曲线影响的两块板之间的热通量的闭合表达式进行了严格的计算,并对这种几何形状的耦合传导辐射进行了近似但精确的分析处理。我们发现这些影响在典型的材料(例如二氧化硅和蓝宝石)中以几十纳米的间距突出,并且可以在金属氧化物中发挥更大的作用,其表现出适度的电导率和增强的辐射性能。从广义上讲,这些预测表明,RHT对热传导的影响(反之亦然)可能表明它是对纳米级RHT可能大小的限制,并逐渐趋于恒定(当间隙闭合时的传导速率),而不是短暂分开。

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