论文标题

考虑到浓缩太阳吸收分布的光子增强热发电发电的综合能量平衡分析

Comprehensive Energy Balance Analysis of Photon-Enhanced Thermionic Power Generation Considering Concentrated Solar Absorption Distribution

论文作者

Elahi, A. N. M. Taufiq, Ghashami, Mohammad, Jensen, Devon, Park, Keunhan

论文摘要

本文报告了光子增强的热发射器(PETE)设备的全面能量平衡分析,用于浓缩太阳能(CSP)生成。为此,我们考虑了一种逼真的PETE设备,该装置是由玻璃上的硼掺杂的硅发射器和钨上的磷掺杂的钻石收集器组成的,该钻石收集器被电动机间真空间隙隔开。严格计算深度依赖性光谱吸收及其光伏和光热能量转换过程,以预测PETE功率输出和能量转换效率。我们的计算预测,在优化时,所考虑的PETE设备的功率输出可以达到1.6 W/cm $^2 $,而能量转换效率为$ \ sim $ 18 \%,对于100 $ \ times $ $ \ times $ $太阳浓度,这大大低于在理想条件下预测的。此外,光子增强比低于10,并且由于发射极的光热加热而随着太阳浓度的增加而降低,这表明PETE可能是低于$ \ sim $ \ sim $ 100 $ \ times times $浓度的低到中等CSP的适当能量转换过程。这些观察结果表明,基于光谱和空间太阳吸收分布的严格能量平衡分析的重要性,以准确预测PETE发电。

The present article reports a comprehensive energy balance analysis of a photon-enhanced thermionic emission (PETE) device when it is used for concentrated solar power (CSP) generation. To this end, we consider a realistic PETE device composed of a boron-doped silicon emitter on glass and a phosphorus-doped diamond collector on tungsten separated by the inter-electrode vacuum gap. Depth-dependent spectral solar absorption and its photovoltaic and photothermal energy conversion processes are rigorously calculated to predict the PETE power output and energy conversion efficiency. Our calculation predicts that when optimized, the power output of the considered PETE device can reach 1.6 W/cm$^2$ with the energy conversion efficiency of $\sim$18 \% for 100$\times$ solar concentration, which is substantially lower than those predicted in previous works under ideal conditions. In addition, the photon-enhancement ratio is lower than 10 and decreases with the increasing solar concentration due to the photothermal heating of the emitter, suggesting that PETE may be an adequate energy conversion process for low-to-medium CSP below $\sim$100$\times$ concentration. These observations signify the importance of a rigorous energy balance analysis based on spectral and spatial solar absorption distribution for the accurate prediction of PETE power generation.

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