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Modelling of segmented high-performance thermoelectric generators with effects of thermal radiation electrical and thermal contact resistances

机译:分段式高性能热电发电机的建模具有热辐射电和热接触电阻

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摘要

In this study, segmented thermoelectric generators (TEGs) have been simulated with various state-of-the-art TE materials spanning a wide temperature range, from 300 K up to 1000 K. The results reveal that by combining the current best p-type TE materials, BiSbTe, MgAgSb, K-doped PbTeS and SnSe with the strongest n-type TE materials, Cu-Doped BiTeSe, AgPbSbTe and SiGe to build segmented legs, TE modules could achieve efficiencies of up to 17.0% and 20.9% at ΔT = 500 K and ΔT = 700 K, respectively, and a high output power densities of over 2.1 Watt cm−2 at the temperature difference of 700 K. Moreover, we demonstrate that successful segmentation requires a smooth change of compatibility factor s from one end of the TEG leg to the other, even if s values of two ends differ by more than a factor of 2. The influence of the thermal radiation, electrical and thermal contact effects have also been studied. Although considered potentially detrimental to the TEG performance, these effects, if well-regulated, do not prevent segmentation of the current best TE materials from being a prospective way to construct high performance TEGs with greatly enhanced efficiency and output power density.
机译:在这项研究中,分段热电发电机(TEG)已在300 K至1000 K的宽温度范围内使用各种最新的TE材料进行了仿真,结果表明,结合目前的最佳p型TE材料,BiSbTe,MgAgSb,K掺杂的PbTeS和SnSe以及最强的n型TE材料,Cu掺杂的BiTeSe,AgPbSbTe和SiGe来构建分段式支腿,TE模块在ΔT处的效率最高可达17.0%和20.9% = 500 K和ΔT= 700 K,并且在700 differenceK的温差下输出功率密度超过2.1 Watt cm −2 。此外,我们证明了成功的分段需要平滑的变化即使两端的s值相差超过2倍,TEG支脚的一端到另一端的相容性因子s的变化也是如此。还研究了热辐射,电接触和热接触效应的影响。尽管被认为可能对TEG性能有害,但是如果调节得当,这些效果并不会阻止当前最好的TE材料的分割,从而成为构建效率大大提高且输出功率密度更高的高性能TEG的前途。

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