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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >The Maximum Power Operating Point for a Combustion-Driven Thermoelectric Converter With Heat Recirculation
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The Maximum Power Operating Point for a Combustion-Driven Thermoelectric Converter With Heat Recirculation

机译:带有热循环的燃烧驱动热电转换器的最大功率工作点

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摘要

A model is developed for determining the ideal operating point, based on maximum power output, for a thermoelectric conversion (TEC) element coupled to a combustor. In the analysis, heat recirculation from the combustor exhaust is included. Results presented here are relevant to the operating characteristics of small, combustion-driven energy systems. The model is composed of a TEC element, a combustor, a counterflow heat exchanger, and a thermal shunt resistance to the surroundings. Including the shunt is necessary due to the increased importance of this effect in small-scale thermal systems. From this combination of components, an optimal combustor operating temperature is found giving maximum power output and efficiency. The model is used to determine ideal performance figures as a function of system parameters such as the effectiveness of heat regeneration, loss of heat by conduction, and the parameters describing the thermoelectric conversion element (the so-called ZT parameter). Although a high degree of idealization is employed, the results show the importance of heat recirculation and the significance of thermal losses on system operation.
机译:开发了一个模型,用于基于最大功率输出确定耦合到燃烧器的热电转换(TEC)元件的理想工作点。在分析中,包括了来自燃烧器排气的热再循环。此处显示的结果与小型燃烧驱动的能源系统的运行特性有关。该模型由TEC元件,燃烧器,逆流热交换器和对周围环境的热分流电阻组成。由于这种效应在小规模热力系统中的重要性日益增加,因此必须包括分流器。通过这些组件的组合,可以找到最佳燃烧器工作温度,从而提供最大的功率输出和效率。该模型用于确定理想的性能指标,这些指标是系统参数的函数,例如热再生效率,传导热损失以及描述热电转换元件的参数(所谓的ZT参数)。尽管采用了高度理想化,但结果表明了热再循环的重要性以及热损耗对系统运行的重要性。

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