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Analysis of thermoelectric energy conversion efficiency with linear and nonlinear temperature dependence in material properties

机译:材料特性与线性和非线性温度相关的热电能量转换效率分析

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摘要

A novel approach to estimate energy conversion efficiency for a power-generating thermoelectric element, whose material properties possess both linear (first order) and nonlinear (second order) dependence on temperature, is developed by solving the differential equation governing its temperature distribution, which includes both the Joule heat and the Thomson effect. In order to obtain analytic expressions for power output and energy conversion efficiency, several steps of simplification are taken. Most notably, the material properties are evaluated with a linear temperature profile between the hot and cold ends. The model is further applied to a high-performance n-type half-Heusler alloy, matching the results of direct numerical analysis. The close correspondence between the proposed model and the numerical solution indeed proves that the approximations we have made are valid. The effect of linear and nonlinear components in the temperature dependence of material properties on the energy conversion efficiency is analyzed both qualitatively and quantitatively with the model. The results suggest that the accurate inclusion of the Thomson effect is essential to understand even the qualitative behavior of thermoelectric energy conversion.
机译:通过求解控制温度分布的微分方程,开发了一种估算热电元件能量转换效率的新方法,该材料的材料特性对温度具有线性(一阶)和非线性(二阶)依赖性。焦耳热和汤姆森效应。为了获得功率输出和能量转换效率的解析表达式,采取了几个简化步骤。最值得注意的是,材料特性通过热端和冷端之间的线性温度曲线进行评估。该模型进一步应用于高性能n型半霍斯勒合金,与直接数值分析的结果相匹配。所提出的模型与数值解之间的密切对应关系确实证明了我们所做的近似是有效的。利用该模型定性和定量地分析了线性和非线性成分对材料性能的温度依赖性对能量转换效率的影响。结果表明,汤姆森效应的准确包含对于理解热电能量转换的定性行为至关重要。

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