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Design of thermoelectric (TE) modules based on TE materials of higher specific figure-of-merit and low-cost materials.

机译:基于更高品质因数和低成本材料的TE材料设计热电(TE)模块。

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摘要

The efficiency of thermoelectric (TE) materials is determined by the dimensionless figure-of-merit (ZT) defined as ZT = S2sigmaT/kappa where, S, sigma, kappa, and T are Seebeck coefficient, electrical conductivity, thermal conductivity, and absolute temperature, respectively. For weight-sensitive applications the specific figure of merit defined as ZT divided by mass density, should be emphasized. Since Mg2Si for n-type and higher manganese silicide (HMS, MnSi2-x, x=0.250~0.273) for p-type TE alloys have low mass densities, they produce a TE module with a high specific power suitable for airborne applications. To improve ZT by reducing lattice thermal conductivity, nanostructures are formed by mechanical alloying and spark plasma sintering techniques. Two TE module designs are made, (1) a segmented pi-shape TE module and (2) a segmented linear TE module. The segmented pi-shaped TE generator (TEG) is composed of higher temperature segments made of n-type Mg2Si and p-type HMS and lower temperature segments of n-type and p-type Bi-Te based compounds. The specific power density was measured as 42.9 [W/kg] under 500°C temperature difference, which has a good agreement with analytical predictions. The linear-shaped TEG is composed of AlN-Cu composite electrode integrated into the combustion chamber wall made of Fe based shape memory alloy (Fe-SMA) by shrink-fit joining. The power output of the linear TEG is found to be 7% higher than that of the pi-shaped TEG, and the specific power density is increased from 42.9 [W/kg] to 89.3 [W/kg] due to lighter weight of the linear design. The maximum shear stress of the linear TEG is reduced by 47% compared with the pi-shaped TEG. As a result, the linear TEG proposed gives rise to better performance in terms of the specific power density, while it is more robust.
机译:热电(TE)材料的效率由定义为ZT = S2sigmaT / kappa的无量纲品质因数(ZT)决定,其中S,sigma,kappa和T是塞贝克系数,电导率,导热率和绝对值温度分别。对于重量敏感的应用,应强调定义为ZT除以质量密度的特定品质因数。由于用于p型TE合金的n型和高锰硅化物(HMS,MnSi2-x,x = 0.250〜0.273)的Mg2Si具有较低的质量密度,因此它们生产的TE模块具有高比功率,适用于机载应用。为了通过降低晶格热导率来改善ZT,通过机械合金化和火花等离子体烧结技术形成了纳米结构。进行了两种TE模块设计:(1)分段pi型TE模块和(2)分段线性TE模块。分段pi型TE发生器(TEG)由n型Mg2Si和p型HMS制成的较高温度段以及n型和p型Bi-Te基化合物的较低温度段组成。在500°C温差下测得的比功率密度为42.9 [W / kg],与分析预测有很好的一致性。线性TEG由AlN-Cu复合电极组成,该电极通过收缩配合结合到由Fe基形状记忆合金(Fe-SMA)制成的燃烧室壁中。发现线性TEG的功率输出比pi形TEG高7%,并且由于功率更轻,比功率密度从42.9 [W / kg]增加到89.3 [W / kg]。线性设计。与pi形TEG相比,线性TEG的最大剪切应力降低了47%。结果,提出的线性TEG在比功率密度方面产生了更好的性能,同时它更坚固。

著录项

  • 作者

    Kim, Hee Seok.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering General.;Engineering Materials Science.;Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:47

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