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Simulation of thermoelectric-hydraulic performance of a thermoelectric power generator with longitudinal vortex generators

机译:具有纵向涡流发生器的热电发电机的热电液压性能模拟

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This work investigates the feasibility of using LVGs (longitudinal vortex generators) to improve heat transfer in TEG (thermoelectric generator) systems. A coupled fluid-thermal-electric model is established with COMSOL Multiphysics (R) to study the effects of LVG height, LVG attack angle, and hot-side inlet gas temperature. We find that LVGs can significantly enhance the heat transfer performance, power output, and thermal conversion efficiency due to the generated longitudinal vortices, especially at small LVG attack angles. The performance of the thermoelectric generators with LVGs is best for LVGs that span the full height of the channel at the highest temperature examined (550 K), where the heat input, net power and thermal conversion efficiency are enhanced by 29%-38%, 90%-104% and 31%-36%, respectively, compared to smooth flow channel. As the hot-side inlet gas temperature decreases, the pumping power remains constant and requires a larger portion of the power output since the heat input and power output are significantly reduced. Therefore, it is not beneficial to use tall LVGs at lower hot-side inlet temperatures and higher inlet Reynolds numbers due to the large ratio of pressure drop to power output, but smaller LVGs are still useful under these conditions. (C) 2015 Elsevier Ltd. All rights reserved.
机译:这项工作研究了使用LVG(纵向涡流发生器)改善TEG(热电发生器)系统中的热传递的可行性。利用COMSOL Multiphysics(R)建立了流体-热电耦合模型,以研究LVG高度,LVG迎角和热侧入口气体温度的影响。我们发现,由于产生了纵向涡旋,LVG可以显着提高传热性能,功率输出和热转换效率,尤其是在小LVG迎角的情况下。带有LVG的热电发电机的性能最适合在最高温度(550 K)下跨越通道整个高度的LVG,在该温度下,热量输入,净功率和热转换效率提高了29%-38%,与流畅的流道相比,分别为90%-104%和31%-36%。随着热侧入口气体温度降低,泵送功率保持恒定,并且由于热输入和功率输出显着降低,因此需要功率输出的较大部分。因此,由于压降与功率输出的比率较大,在较低的热侧入口温度和较高的入口雷诺数下使用高LVG不利,但是在这些条件下较小的LVG仍然有用。 (C)2015 Elsevier Ltd.保留所有权利。

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