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Optimal performance and entropy generation transition from micro to nanoscaled thermoelectric layers

机译:从微热层到纳米热电层的最佳性能和熵产生过渡

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In this paper we address the heat and electric charge transport in a thermoelectric thin layer. The analysis is based on hyperbolic type equations describing the time evolution of dissipative flows including size effects on the thermal and electric conductivities. We explore the effects of the layer width on the time evolution of the system and, particularly, on the thermal figure of merit and the entropy generation. We find a transition between two dynamic regimes controlled by the system's size when going from the micro to the nanometric scale of lengths. The transition is featured by a marked increasing of the thermal figure of merit and the total entropy generation. The low entropy generation regime is dominated by the diffusive transport of heat and the regime with high entropy generation values by wave energy transfer (this last corresponding to the nanometric scale). We use here the spectral methods of solution which assure a well representation of wave behaviour of heat given their spectral convergence.
机译:在本文中,我们讨论了热电薄层中的热量和电荷传输。该分析基于双曲型方程,描述了耗散流的时间演化,包括尺寸对热导率和电导率的影响。我们探讨了层宽对系统时间演化的影响,特别是对热功因数和熵产生的影响。当从微米级到纳米级长度时,我们发现了两个受系统大小控制的动态状态之间的过渡。该转变的特征在于,热功因数和总熵产生显着增加。低熵产生状态主要由热量的扩散传输主导,而高能量产生状态则通过波能量传递来控制(最后一个对应于纳米尺度)。我们在这里使用频谱的求解方法,考虑到它们的频谱收敛性,可以确保很好地表示热波的行为。

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