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A tuning routine to correct systematic influences in reference PV systems' power outputs

机译:校正例程,以纠正参考光伏系统功率输出中的系统影响

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摘要

Power output measurements from PV systems are subject to a wide variety of systematic external and internal influences, such as shading, soiling, degradation, module and inverter quality issues and other system-level losses. All of these influences upon PV power measurements make the use of PV power output datasets for higher-level analysis problematic, particularly in their use as reference PV systems for estimating the power of a regional portfolio. To address these issues, we present a three-step method. Firstly, a parameterisation and quality control of power measurements is performed, which also corrects for consistent inefficiencies by a loss factor LF. Secondly, the detection of systematic de-ratings affecting PV system power output differently for each time step of the day (predominantly due to shading) together with the implementation of a subsequent "re-rating" of the power output measurements in a process referred to as tuning. The pivotal element of this approach is a 30-day running 90th percentile of the clear-sky index for photovoltaics k(pv) and the computation of a daily de-rating profile. Lastly, high k(pv) related variance in the early morning and evening is detected and filtered. Whilst these three methods are independent of each other, we suggest applying them in combination following the same order as in our paper. Cross-validations of these methods demonstrate significant improvements to the PV power measurement profiles, particularly in their use as reference PV systems for upscaling approaches. The RMSE falls from 0.174 to 0.09 W/W-p, rAMSE from 46.5% to 21.9%, MAPE from 47.9% to 20.8% and the correlation r increases from 0.767 to 0.919. Hence, we report overall improvements to RMSE, rRMSE, MAPE and r by 48%, 53%, 57% and 20%, respectively.
机译:光伏系统的功率输出测量会受到各种各样的系统外部和内部影响,例如阴影,污染,退化,模块和逆变器质量问题以及其他系统级损耗。所有这些对PV功率测量的影响都使得将PV功率输出数据集用于更高级别的分析存在问题,尤其是在将它们用作参考PV系统以估计区域组合的功率时。为了解决这些问题,我们提出了一种三步法。首先,执行功率测量的参数化和质量控制,这还通过损耗因子LF校正了一致的低效率。其次,在一天的每个时间步中(主要是由于阴影)检测到影响光伏系统功率输出的系统降额的方法不同,并且在随后提到的过程中对功率输出测量进行后续的“重新定额”作为调整。这种方法的关键要素是光伏30 k(pv)的晴天指数的30天运行第90个百分位数以及每日降额曲线的计算。最后,在清晨和傍晚检测到高k(pv)相关方差并进行过滤。虽然这三种方法彼此独立,但我们建议按照与本文相同的顺序组合应用它们。这些方法的交叉验证显示出对PV功率测量曲线的显着改进,尤其是在将其用作升级方法的参考PV系统时。 RMSE从0.174降至0.09 W / W-p,rAMSE从46.5%降至21.9%,MAPE从47.9%降至20.8%,相关性r从0.767增至0.919。因此,我们报告了RMSE,rRMSE,MAPE和r的总体改善分别为48%,53%,57%和20%。

著录项

  • 来源
    《Solar Energy》 |2017年第11期|1082-1094|共13页
  • 作者单位

    Australian Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT, Australia;

    Australian Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT, Australia;

    Uppsala Univ, Dept Engn Sci, Lgerhyddsvgen 1, S-75237 Uppsala, Sweden;

    Australian Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PV power measurements; Quality control; PV tuning; Upscaling;

    机译:光伏功率测量;质量控制;光伏调整;升级;

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