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首页> 外文期刊>Journal of Electronic Materials >A Comprehensive 3D Finite Element Model of a Thermoelectric Module Used in a Power Generator: A Transient Performance Perspective
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A Comprehensive 3D Finite Element Model of a Thermoelectric Module Used in a Power Generator: A Transient Performance Perspective

机译:发电机热电模块的综合3D有限元模型:瞬态性能的观点

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Thermoelectric power generator has potential for small-scale and distributed power generation because of its high durability and scalability. It is very important to realize that the transient behavior of thermoelectric modules (TEM) affects a thermoelectric generator's response to dynamic working environments. Traditionally, researchers have used simplified models to describe the behavior of thermoelectric modules. In this paper we propose a comprehensive mathematical model that considers the effect of variations of chemical potential and carrier density, which are ignored by traditional models. Finite element models based on this new model are used to simulate the transient behavior of a thermoelectric module subjected to rapid changes in boundary temperature or working load. Simulation results show that transition times of thermoelectric modules affected by temperature change are much longer than those of modules affected by changes in electrical load resistance. Sudden changes in working temperature cause voltage overshoot of the TEM output, which, however, is not observed in responses to sudden changes of load resistance. Comparisons also show there are significant differences between the behavior of TEM predicted by use of this new comprehensive model and that predicted by use of traditional models, particularly for the high-temperature intrinsic ionization region and the low-temperature weak ionization region. This implies that chemical potential and carrier density variations, which are taken into account by this new model but ignored by traditional models, have major effects on the performance of TEM.
机译:热电发电机具有高耐用性和可扩展性,因此有潜力用于小型和分布式发电。认识到热电模块(TEM)的瞬态行为会影响热电发电机对动态工作环境的响应非常重要。传统上,研究人员使用简化的模型来描述热电模块的行为。在本文中,我们提出了一个综合的数学模型,该模型考虑了化学势和载流子密度变化的影响,而传统模型却忽略了这些影响。基于此新模型的有限元模型用于模拟热电模块在边界温度或工作负载快速变化下的瞬态行为。仿真结果表明,受温度变化影响的热电模块的过渡时间比受电气负载电阻变化影响的模块的过渡时间长得多。工作温度的突然变化会引起TEM输出的电压过冲,但是,这在负载电阻突然变化时并未观察到。比较还表明,使用这种新的综合模型预测的TEM行为与使用传统模型预测的TEM行为之间存在显着差异,特别是对于高温固有电离区和低温弱电离区。这意味着该新模型已考虑到但传统模型所忽略的化学势和载流子密度变化对TEM的性能有重大影响。

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