发电用高效率热电单偶的研制

T. Caillat, J. Fleurial, G. Snyder, A. Zoltan, D. Zoltan, A. Borshchevsky
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引用次数: 44

摘要

为了实现高的热电能量转换效率,需要在较大的温度梯度上操作热电发生器装置,并最大限度地提高用于构建该装置的热电材料的性能。然而,没有一种热电材料适合在很宽的温度范围内使用(/spl sim/300-1000 K),因此有必要在每个温度范围内使用具有最佳性能的不同材料。这可以通过两种方式实现:(1)多级热电发电机,其中每一级在固定的温差下工作,并且是电绝缘的,但与其他一级热接触;(2)分段发电机,其中p和n腿由串联连接的不同段组成。将新的热电材料集成到分段热电单偶中的概念已在早期出版物中介绍。这种新型的单电偶预计将在300-973 K的温差下工作,并将使用基于最先进的热电材料和新型p型Zn/sub 4/Sb/sub 3/、p型CeFeSb/sub 12/基合金和n型CoSb/sub 3/基合金的新型分段式支腿。预计这种新型单电偶的转换效率约为15%。我们介绍了这种单偶体的最新实验结果,包括p-腿、n-腿和p-腿到n-腿互连的不同段之间的键合研究。热和电学测试的单偶正在进行中,并简要介绍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a high efficiency thermoelectric unicouple for power generation applications
To achieve high thermal-to-electric energy conversion efficiency, it is desirable to operate thermoelectric generator devices over large temperature gradients and also to maximize the performance of the thermoelectric materials used to build the devices. However, no single thermoelectric material is suitable for use over a very wide range of temperatures (/spl sim/300-1000 K). It is therefore necessary to use different materials in each temperature range where they possess optimum performance. This can be achieved in two ways: (1) multistage thermoelectric generators where each stage operates over a fixed temperature difference and is electrically insulated but thermally in contact with the other stages; and (2) segmented generators where the p- and n-legs are formed of different segments joined in series. The concept of integrating new thermoelectric materials into a segmented thermoelectric unicouple has been introduced in earlier publications. This new unicouple is expected to operate over a 300-973 K temperature difference and will use novel segmented legs based on a combination of state-of-the-art thermoelectric materials and novel p-type Zn/sub 4/Sb/sub 3/, p-type CeFeSb/sub 12/-based alloys and n-type CoSb/sub 3/-based alloys. A conversion efficiency of about 15% is predicted for this new unicouple. We present the latest experimental results from the fabrication of this unicouple, including bonding studies between the different segments of the p-legs, n-legs, and p-leg to n-leg interconnect. Thermal and electrical tests of the unicouple are in progress and are briefly described.
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