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Energy Conversion by Nanomaterial-Based Trapezoidal-Shaped Leg of Thermoelectric Generator Considering Convection Heat Transfer Effect

机译:考虑对流传热效应的热电发电机纳米材料梯形腿的能量转换

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摘要

Thermoelectric generators (TEGs) can harvest energy without any negative environmental impact using low potential sources, such as waste heat, and subsequently convert that energy into electricity. Different shaped leg geometries and nanostructured thermoelectric materials have been investigated over the last decades in order to improve the thermal efficiency of the TEGs. In this paper, a numerical study on the performance analysis of a nanomaterial-based (i. e., p-type leg composed of BiSbTe nanostructured bulk alloy and n-type leg composed of Bi2Te3 with 0.1 vol % SiC nanoparticles) trapezoidal-shaped leg geometry has been investigated considering the Seebeck effect, Peltier effect, Thomson effect, Fourier heat conduction, and surface to surrounding irreversible heat transfer loss. Different surface convection heat transfer losses (h) are considered to characterize the current output, power output, and thermal efficiency at various hot surface (T-H) and cold surface (T-C) temperatures. Good agreement has been achieved between the numerical and analytical results. Moreover, current numerical results are compared with previous related works. The designed nanomaterial-based TEG shows better performance in terms of output current and thermal efficiency with the thermal efficiency increasing from 7.3% to 8.7% using nanomaterial instead of traditional thermoelectric materials at h = 0 W/m(2) K while T-H is 500 K and T-C is 300 K.
机译:热电发电机(TEG)可以利用低潜力能源(例如废热)来收集能源,而不会对环境造成任何负面影响,然后将其转化为电能。在过去的几十年中,已经研究了不同形状的腿部几何形状和纳米结构的热电材料,以提高TEG的热效率。本文对基于纳米材料(即由BiSbTe纳米结构体合金构成的p型支腿和由0.1vol%SiC纳米颗粒的Bi2Te3构成的n型支腿)的性能分析进行了数值研究,其梯形形支腿具有考虑塞贝克效应,珀尔帖效应,汤姆森效应,傅立叶热传导以及表面到周围不可逆的传热损失进行了研究。考虑了不同的表面对流传热损失(h)来表征电流输出,功率输出以及在各种热表面(T-H)和冷表面(T-C)温度下的热效率。数值结果和分析结果之间已经取得了很好的一致性。此外,将当前数值结果与以前的相关工作进行了比较。设计的基于纳米材料的TEG在输出电流和热效率方面表现出更好的性能,在h = 0 W / m(2)K且TH为500的情况下,使用纳米材料代替传统的热电材料,热效率从7.3%提高到8.7%。 K和TC为300K。

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