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A detailed analysis of gains and losses of a fully-integrated flat roof amorphous silicon photovoltaic plant

机译:全面集成的平屋顶非晶硅光伏电站得失的详细分析

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In 2003 a fully-integrated photovoltaic (PV) plant composed by amorphous silicon PV modules was installed on top of a flat roof in Lugano (Southern Switzerland) - a site representative for most of continental Europe - and continuously monitored since. This work follows a previous study which analyzed the first 2 years of operation of the plant, ascribing most of the noticeable winter losses to reflection losses due the lower position of the sun in the sky. Other loss mechanisms were discussed only from a qualitative point of view. The energy production of this particular PV installation is in fact influenced by several combined phenomena such as Staebler-Wronski, spectral variations, temperature and optical losses effects.The present work aims to widen the analysis by discerning between these partly competitive effects and attempts to give a quantitative description of the influence which each single phenomenon has on the energy performance of the PV plant. For this purpose, single PV modules similar to those of the plant (triple-junction a-Si) were subjected to several indoor and outdoor tests.By means of indoor characterization we found that reflection losses become significant for angles of incidence larger than 50°. Repeated indoor and outdoor degradation-recovery cycles underlined the influence of annealing time and temperature on the recovery of the PV modules. In particular outdoor degradation tests showed that at our latitudes (46CN) the influence of the Staebler-Wronski effect on the output power of these devices is around 10% (±5% around an annual average value).The influence of the spectral effects on the current of amorphous silicon modules was assessed by means of outdoor IV characterization: the short circuit current decreases linearly with AM value at a slope between 4% and 8% per AM-unit depending on the technology under investigation.Combining these three effects with the effect of temperature the authors are able to perform a simulation of gains and losses of the a-Si modules which well approximates the energy performance of the CPT-Solar plant over a whole year.
机译:2003年,由无定形硅PV组件组成的完全集成的光伏(PV)工厂安装在卢加诺(瑞士南部)的平坦屋顶上,该屋顶是欧洲大陆大部分地区的代表地,并且自那时以来一直受到监控。这项工作是在之前的一项研究之前进行的,该研究分析了该工厂运营的前两年,将大部分明显的冬季损失归因于天空中较低的太阳位置造成的反射损失。其他损失机制仅从定性的角度进行了讨论。实际上,这种特殊的光伏装置的能源生产受到几种综合现象的影响,例如Staebler-Wronski,光谱变化,温度和光损耗效应。本工作旨在通过区分这些部分竞争性效应并尝试给出以下结果来扩大分析范围:定量描述每种现象对光伏电站能源性能的影响。为此,对与工厂相似的单个PV模块(三结a-Si)进行了几次室内和室外测试。通过室内表征,我们发现,入射角大于50°时反射损耗变得很明显。反复进行的室内和室外退化-恢复循环强调了退火时间和温度对光伏组件恢复的影响。特别是室外退化测试表明,在我们的纬度(46CN)处,施泰伯勒-沃龙斯基效应对这些设备的输出功率的影响约为10%(约为年平均值的5%)。通过室外IV特性评估非晶硅模块的电流:根据研究的技术,短路电流随AM值线性降低,斜率在每AM单元4%至8%之间,具体取决于所研究的技术。作者可以对a-Si组件的得失进行模拟,这很接近CPT-Solar工厂全年的能源表现。

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