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Tuning electricity generation throughout the year with PV module technology

机译:用光伏模块技术全年调整发电

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Currently, photovoltaic (PV) installations target a maximization of annual energy yield. However, as the grid penetration of PV is increasing, PV electricity generation will need to match better with local load profiles. Especially the seasonal variabilities remain challenging. While wind and PV tend to have complementary seasonal variability, wind turbine installation faces limitations especially in densely populated areas.In this paper, we discuss how this challenge may be addressed with climateand consumption-specific PV module technology. In particular, we demonstrate how the temperature coefficient of a PV system can impact the energy yield throughout the year. In colder climates, higher temperature coefficients allow for a better energy balance, favoring production in colder seasons without a significant reduction of yearly energy yield. Simulations for locations at high latitude, and colder climates, indicate that higher temperature coefficients and improved low-light behavior not only enable a higher energy yield in cold seasons, but also negligible losses in the overall yearly energy yield compared to lower temperature coefficients and slightly better low-light behavior. Simulations show that these results can be obtained using commercial PV modules. More broadly, they indicate how PV module technology may be optimized depending on the location and climate. (C) 2020 Elsevier Ltd. All rights reserved.
机译:目前,光伏(PV)装置瞄准年能产量的最大化。然而,随着PV的栅格渗透,PV发电将需要利用本地负载配置文件匹配。特别是季节性可变性仍然具有挑战性。虽然风和PV往往具有互补的季节性变异性,但风力涡轮机安装面临特别是在密集地位的区域中的限制。在本文中,我们讨论了如何通过Climateand消费特定的光伏模块技术解决这一挑战。特别是,我们展示了PV系统的温度系数如何全年对能源产量影响。在较冷的气候中,较高的温度系数允许更好的能量平衡,有利于在较冷的季节中产生,而不会显着降低年度能源产量。在高纬度和较冷的气候下的位置模拟,表明更高的温度系数和改善的低光行为不仅能够在寒冷的季节中能够更高的能量产量,而且与较低的温度系数和略微的温度系数相比,整体集中产量也可忽略不计的损失更好的低光行为。模拟表明这些结果可以使用商业光伏模块获得。更广泛地,它们表示PV模块技术如何根据位置和气候进行优化。 (c)2020 elestvier有限公司保留所有权利。

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