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Performance of Functionally Graded Thermoelectric Materials and Devices: A Review

机译:功能分级热电材料和设备的性能:综述

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摘要

Direct energy conversion using thermoelectric generators (TEGs) is a research area of growing interest because of its potential for increasing energy efficiency. Bulk thermoelectric modules are used widely in industry as Peltier cooling devices. Currently, only bismuth telluride modules are commercially available for power generation. Significant efforts have been put into exploring promising materials and techniques to improve the figure of merit (zT) at laboratory scale (5-20 g). A variety of techniques have been investigated to improve the output and useful temperature range for common industrial TEGs made from bulk polycrystalline materials including segmentation, geometric pinning, and property gradients. However, the improvement in zT at device level (500-1000 g and up) is exceptionally limited. In addition, the thermal degradation of TEGs occurs when cracks form due to thermal stresses that arise from transient heat sources, which consequently lead to a decreased lifetime. Functionally graded material (FGM) thermoelectrics in bulk and polycrystalline form have been developed to mitigate some of these issues by improving the temperature bandwidth, current output range, and lifetime. The present work provides a review of functionally graded TEGs, including their manufacturing, usage and current techniques for improving their performance. This article also provides a pathway to additional research and approaches for improving the efficiency and temperature range, as well as reducing the property degradation of bulk polycrystalline TEGs.
机译:使用热电发电机(TEGS)的直接能量转换是由于其增加能效的可能性而生长的研究领域。散装热电模块广泛用于工业中作为Peltier冷却装置。目前,只有铋碲化物模块可商购获得发电。重大努力探索了有希望的材料和技术,以改善实验室规模(5-20​​g)的优点(ZT)。已经研究了各种技术,以改善由散装多晶材料制成的普通工业TEG的输出和有用温度范围,包括分段,几何钉扎和性能梯度。然而,设备电平(500-1000克和UP)的ZT的改善异常有限。另外,当由于来自瞬态热源而产生的热应力导致的裂缝形式发生TEG的热劣化,从而导致寿命降低。已经开发出批量和多晶形式的功能渐变材料(FGM)热电,通过改善温度带宽,电流输出范围和寿命来减轻一些问题。本工作提供了对功能分级TEG的审查,包括其制造,使用和目前的技术,用于提高其性能。本文还提供了用于提高效率和温度范围的额外研究和方法的途径,以及降低散装多晶TEG的性质降解。

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