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A fast and simple model to estimate the contribution of the circumsolar irradiance to measured broadband beam irradiance under cloud-free conditions in desert environment

机译:一种快速简单的模型,用于估计沙漠环境中无云条件下绕太阳辐照度对测得的宽带束辐照度的贡献

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摘要

Routine measurements of the broadband beam irradiance at normal incidence by means of pyrheliometers or equivalent pyranometric systems include unknown contributions from the irradiance originating from within the extent of the solar disc B-n(sun), and that from a larger circumsolar region defined by its solid angle aperture, called the circumsolar normal irradiance CSn. This article describes a fast and simple parametric model that estimates the beam and circumsolar radiation, for opening half-angles in the interval [0.4 degrees, 5 degrees], under cloud-free conditions in a desert environment. 1 min measurements of the beam normal B-n, global G and diffuse D horizontal irradiances at Solar Village, Saudi Arabia, and Tamanrasset, Algeria, were used for calibration and validation. Using AERONET measurements as inputs to the radiative transfer code libRadtran, it has been checked-through an 'indirect' validation with the ground measured B-n-that the modelled B-n(sun) and CSn are accurate. Accordingly, a library of B(n)(sun )and CSn modelled by libRadtran for varying solid angle apertures was generated. Building on this library, a fast parametric model was developed to estimate B-n(sun) and CSn using G, D and B-n, as inputs. The coefficients of the model were fitted to a training set of measurements and then validated twice: once at their respective site, and once at the other site. When using the coefficients for their own site for both Solar Village and Tamanrasset for CSn, the relative bias is respectively -2.7% and -1.5%, the relative root mean square error (RMSE) is 19.9% and 19.6%, and the correlation coefficient is 0.871 and 0.935. As for B-n(sun), the relative bias is -2.0% and -2.2%, the RMSE is 2.7% and 3.6%, and the correlation coefficient is 0.999 and 0.998. Applying the coefficients of one site to the other site yields satisfactory results. It is recommended to use the coefficients of Tamanrasset for desert sites exhibiting frequent clear skies, and those of Solar Village for sites exhibiting frequent turbid skies. The coefficients have also been fitted using data from both sites, for a combined model.
机译:通过日射辐射计或等效的日射强度计系统对法向入射的宽带束辐照度进行常规测量,包括来自太阳圆盘Bn(sun)范围内的辐照度以及由其立体角定义的较大的外接区域引起的辐照度的未知贡献孔径,称为圆um法线辐照度CSn。本文介绍了一种快速,简单的参数模型,该模型可以估计在沙漠环境中在无云条件下以[0.4度,5度]间隔打开半角的光束和绕太阳辐射。在沙特阿拉伯的太阳村和阿尔及利亚的塔曼拉斯塞特,分别测量了光束法线B-n,总G和漫射D水平辐照度的1分钟,用于校准和验证。使用AERONET测量作为辐射传递代码libRadtran的输入,已通过对地面测得的B-n进行“间接”验证来检查建模的B-n(sun)和CSn是否准确。因此,生成了由libRadtran建模的用于改变立体角孔径的B(n)(sun)和CSn库。在此库的基础上,开发了一种快速参数模型,可以使用G,D和B-n作为输入来估计B-n(sun)和CSn。将模型的系数拟合到一组训练的测量值,然后进行两次验证:一次在各自的站点,一次在另一个站点。当使用太阳村和Tamanrasset自己站点的CSn系数时,相对偏差分别为-2.7%和-1.5%,相对均方根误差(RMSE)为19.9%和19.6%,相关系数是0.871和0.935。对于B-n(sun),相对偏差为-2.0%和-2.2%,RMSE为2.7%和3.6%,相关系数为0.999和0.998。将一个站点的系数应用于另一站点会产生令人满意的结果。对于经常出现晴朗天空的沙漠地区,建议使用塔曼拉塞特系数,对于经常出现浑浊天空的地方,建议使用太阳村系数。还使用两个站点的数据对系数进行了拟合,以建立组合模型。

著录项

  • 来源
    《Solar Energy》 |2018年第3期|497-509|共13页
  • 作者单位

    PSL Res Univ, MINES ParisTech, CS 10207, F-06904 Sophia Antipolis, France;

    PSL Res Univ, MINES ParisTech, CS 10207, F-06904 Sophia Antipolis, France;

    Khalifa Univ Sci & Technol, Masdar Inst, Res Ctr Renewable Energy Mapping & Assessment, POB 54224, Abu Dhabi, U Arab Emirates;

    Total New Energies, R&D Solar, F-92069 Paris, France;

    PSL Res Univ, MINES ParisTech, CS 10207, F-06904 Sophia Antipolis, France;

  • 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

    Circumsolar ratio; Direct normal irradiance; Pyrheliometer; Sunshape;

    机译:周长比;直接法向辐射;高温计;日形;
  • 入库时间 2022-08-18 00:22:49

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