Development of integrated two-stage thermoelectric generators for large temperature difference

被引:0
|
作者
PEI Jun [1 ]
LI LiangLiang [2 ]
LIU DaWei [3 ]
ZHANG BoPing [1 ]
XIAO Yu [4 ]
LI JingFeng [2 ]
机构
[1] The Beijing Municipal Key Laboratory of New Energy Materials and Technologies, School of Materials Science and Engineering,University of Science and Technology Beijing
[2] State Key Laboratory of New Ceramics and Fine Processing, Tsinghua University
[3] Huaneng Clean Energy Research Institute
[4] School of Materials Science and Engineering, Beihang University
基金
中国国家自然科学基金;
关键词
PbTe; thermoelectric; two-stage module; finite element method; conversion efficiency;
D O I
暂无
中图分类号
TM31 [发电机、大型发电机组(总论)];
学科分类号
080801 ;
摘要
Multi-stage thermoelectric(TE) modules can withstand a large temperature difference and can be used to obtain a high conversion efficiency. In this study, two-stage PbTe/Bi2Te3TE modules were developed with an enhanced efficiency through a comprehensive study of device structure design, module fabrication, and performance evaluation. PbTe-based AgPbmSbTem+2(abbreviated as LAST) is a typically high ZT material, while the corresponding TE module was rarely reported so far. How to utilize LAST to fabricate high efficiency TE modules therefore remains a central problem. Finite element simulation indicates that the temperature stability of the two-stage module for LAST is better than that of two-segmented module. Compared to Cu,Ni, and Ni-Fe alloys, Co-Fe alloy is an effective metallization layer for PbTe due to its low contact resistance and thin diffusion layer. By sintering a slice of Cu on TE legs, pure tinfoil can be used as a common welding method for mid-temperature TE modules. A maximum efficiency(ηmax) of 9.5% was achieved in the range of 303 to 923 K in an optimized PbTe/Bi2Te3based two-stage module, which was almost twice that of a commercial TE module.
引用
收藏
页码:1596 / 1604
页数:9
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