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Optimization of annealing cycles for electric output in outdoor conditions for amorphous silicon photovoltaic-thermal systems

机译:非晶硅光伏热力系统在室外条件下的电力输出退火周期的优化

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摘要

Previous studies with fixed operating temperatures have shown that hydrogenated amorphous silicon (a-Si:H) was a promising absorber layer for solar photovoltaic-thermal (PVT) systems because of (a) a low temperature coefficient and (b) the opportunity to reverse light induced degradation with thermal annealing. This study further refined the simulation of the optimal dispatch strategy for a-Si:H based PVT by studying annealing cycles and analysis of the degradation at other operating temperatures controlled by the varying ambient temperatures. Four representative case studies were evaluated for the combinations of high and low solar flux and high and low average ambient temperature. Electrically-optimized dispatch strategies are found for a range of PVT thermal insulating effectivenesses. The results showed significantly more electricity generation in all the case study representative regions except for areas dominated by low temperatures and low solar fluxes. These results indicate that a-Si:H PV performance can be improved in most populated regions in the world by integrating it into a PVT device and using spike annealing to reverse light-induced degradation effects. The model presented in this paper uses publicly-available data to implement suitable dispatch strategies and execute virtual performance analysis of PVT for any geographic location in the world. (C) 2015 Elsevier Ltd. All rights reserved.
机译:以前在固定工作温度下进行的研究表明,氢化非晶硅(a-Si:H)是太阳能光伏热(PVT)系统的有希望的吸收层,因为(a)温度系数低,并且(b)可以逆转光引起的热退火降解。这项研究通过研究退火周期并分析了由环境温度变化控制的其他工作温度下的退化,进一步完善了基于a-Si:H的PVT最佳调度策略的仿真。针对高和低太阳通量以及高和低平均环境温度的组合评估了四个代表性案例研究。找到了针对一系列PVT隔热效果的电气优化调度策略。结果表明,在所有案例研究的代表区域中,除以低温和低太阳通量为主的地区外,发电量显着增加。这些结果表明,通过将a-Si:H PV集成到PVT器件中并使用尖峰退火来逆转光诱导的降解效应,可以改善a-Si:H PV的性能。本文介绍的模型使用可公开获得的数据来实施合适的调度策略,并对世界上任何地理位置的PVT进行虚拟性能分析。 (C)2015 Elsevier Ltd.保留所有权利。

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