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Performance Analysis of a Functionally Graded Thermoelectric Element with Temperature-Dependent Material Properties

机译:具有温度依赖性材料特性的功能梯度热电元件的性能分析

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摘要

A concept of functionally graded thermoelectric materials (FGTEMs) with graded material properties is proposed, in which the material properties are both temperature and spatially dependent. In this paper, we study the performance of a functionally graded thermoelectric (TE) element, including the temperature field, heat flux, power output, and energy conversion efficiency. The results suggest that it is necessary to take into account the temperature-dependent material properties to analyze the performance of functionally graded TE device accurately. Meanwhile, the data show that there is a significant increment in the power output and energy conversion efficiency if proper material property gradients are achieved. Additionally, the results indicate that thermal conductivity has a considerable influence on the temperature field and heat flux distribution, while the Seebeck coefficient plays a critical role in the power output and efficiency of energy conversion. In order to validate the proposed model, it was applied to an experimental case of a functionally graded bismuth antimony TE couple where the numerical results showed good agreement with the experimental data.
机译:的功能梯度热电材料(FGTEMs)用梯度材料特性的概念提出了,其中,所述材料特性是温度和空间依赖。在本文中,我们研究了功能梯度热电(TE)元件的性能,包括温度场,热通量,功率输出和能量转换效率。结果表明,有必要考虑温度依赖性材料特性,以准确地分析功能梯度TE器件的性能。同时,如果实现了适当的材料特性梯度,则数据显示电源输出和能量转换效率的显着增量。另外,结果表明导热率对温度场和热通量分布具有相当大的影响,而塞贝克系数在功率输出和能量转换效率中起着关键作用。为了验证所提出的模型,它应用于功能渐变的铋锑TE耦合的实验情况,其中数值结果与实验数据显示出良好的一致性。

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