Temperature Distribution in a Non-Prismatic Thermoelectric Leg and the Energy Conversion Efficiency

Zhihe Jin
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Abstract

It has been proposed that asymmetric thermoelectric (TE) legs may enhance the TE energy conversion efficiency. This work presents an analytical model for the temperature field in non-prismatic TE legs and the energy conversion efficiency. Different from the models available in the literature, the present one-dimensional (1D) heat equation for thermal conduction in non-prismatic legs is derived from the general three-dimensional energy and charge balance laws and the thermoelectric constitutive relations considering Joule heating and the Seebeck effect on the heat flow. The temperature field in a TE leg with an arbitrary gradient of the cross sectional area is obtained using the 1D heat equation. The temperature field and energy conversion efficiency are calculated for exponential and quadratic Bi2Te3 legs as well as an exponential PbTe leg. The numerical results indicate that leg tapering has minimal effects on the temperature distribution in and energy efficiency of the non-prismatic leg under the prescribed cold and hot side temperatures boundary conditions provided that the volume of the leg remains the same. The energy efficiency of the tapered leg, however, can be significantly increased under the prescribed hot side heat flux condition. Finally, a simple estimate on the limitation of the 1D models for non-prismatic legs is discussed.
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非棱镜型热电腿的温度分布与能量转换效率
有人提出,非对称热电(TE)腿可提高 TE 能量转换效率。本研究提出了非棱镜式 TE 支脚温度场和能量转换效率的分析模型。与现有文献中的模型不同,本研究针对非棱镜式支脚热传导的一维(1D)热方程是根据一般的三维能量和电荷平衡定律以及热电构成关系(考虑焦耳加热和热流的塞贝克效应)推导出来的。利用一维热方程可获得具有任意横截面积梯度的 TE 支脚中的温度场。计算了指数型和二次型 Bi2Te3 焊脚以及指数型 PbTe 焊脚的温度场和能量转换效率。数值结果表明,在规定的冷侧和热侧温度边界条件下,只要支腿的体积保持不变,支腿锥形对非棱柱形支腿的温度分布和能量效率的影响很小。然而,在规定的热侧热通量条件下,锥形支腿的能效会显著提高。最后,讨论了对非棱柱式支腿一维模型局限性的简单估计。
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