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首页> 外文期刊>Journal of Electronic Materials >One-Dimensional Modeling of Thermogenerator Elements with Linear Material Profiles
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One-Dimensional Modeling of Thermogenerator Elements with Linear Material Profiles

机译:具有线性材料轮廓的热电元件的一维建模

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Graded and segmented thermoelectric elements have been studied for a long time with the aim of improving the performance of thermogenerators that are exposed to a large temperature difference. However, it has been shown that simply adjusting the maximum figure of merit ZT in each segment of a stacked or graded thermoelectric (TE) element is not a sufficient strategy to maximize thermoelectric device performance. Global optimization of a performance parameter is commonly based on a one-dimensional continua-theoretical model. Following the proposal by Müller and coworkers, the temperature profile T(x) can be calculated within a model-free setup directly from the one-dimensional (1D) thermal energy balance, e.g., based on continuous monotonic gradient functions for all material profiles, and independent and free variability of the material parameters S(x), σ(x), and κ(x) is assumed primarily, where S is the Seebeck coefficient, and σ and κ are the electrical and thermal conductivities, respectively. Thus the optimum current density can be determined from the maximum of the global performance parameter. This has been done up to now by means of numerical procedures using a 1D thermoelectric (TE) finite-element method (FEM) code or the algorithm of multisegmented elements. Herein, an analytical solution of the 1D thermal energy balance has been found for constant gradients, based on Bessel functions. For a constant electrical conductivity but linear profiles S(x) and κ(x), first results for the electrical power output of a thermogenerator are presented.
机译:分级和分段的热电元件已经进行了很长时间的研究,目的是提高暴露在较大温差下的热力发电机的性能。然而,已经表明,仅仅调节堆叠的或分级的热电(TE)元件的每个段中的最大品质因数ZT不足以最大化热电装置性能。性能参数的全局优化通常基于一维连续理论模型。根据Müller及其同事的建议,可以直接从一维(1D)热能平衡,例如,基于所有材料轮廓的连续单调梯度函数,在无模型设置中直接计算温度轮廓T(x),主要假设材料参数S(x),σ(x)和κ(x)的独立性和自由可变性,其中S是塞贝克系数,σ和κ分别是电导率和热导率。因此,可以从全局性能参数的最大值确定最佳电流密度。到目前为止,这是通过使用一维热电(TE)有限元方法(FEM)代码或多段元素算法的数字程序来完成的。在此,基于贝塞尔函数,发现了恒定梯度的一维热能平衡的解析解。对于恒定的电导率但线性分布S(x)和κ(x),给出了热力发电机电功率输出的第一结果。

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