Increasing the Resolution and Spectral Range of Measured Direct Irradiance Spectra for PV Applications

Author:

López Gabriel1ORCID,Gueymard Christian A.2ORCID,Polo Jesús3ORCID,Alonso-Montesinos Joaquín45ORCID,Marzo Aitor6ORCID,Martín-Chivelet Nuria3ORCID,Ferrada Pablo7,Escalona-Llaguno Martha Isabel8,Batlles Francisco Javier4

Affiliation:

1. Departamento Ingeniería Eléctrica y Térmica, de Diseño y Proyectos, Escuela Técnica Superior de Ingeniería, Universidad de Huelva, 21007 Huelva, Spain

2. Solar Consulting Services, Colebrook, NH 03576, USA

3. Photovoltaic Solar Energy Unit (CIEMAT), 28040 Madrid, Spain

4. Departamento Química y Física, Universidad de Almería, 04120 Almería, Spain

5. CIESOL, Joint Centre of the University of Almería-CIEMAT, 04120 Almería, Spain

6. Departamento Óptica, Universidad de Granada, 18071 Granada, Spain

7. Centro de Desarrollo Energético Antofagasta (CDEA), Universidad de Antofagasta, Antofagasta 1240000, Chile

8. Universidad Autónoma de Zacatecas, Zacatecas 98000, Mexico

Abstract

The spectral distribution of the solar irradiance incident on photovoltaic (PV) modules is a key variable controlling their power production. It is required to properly simulate the production and performance of PV plants based on technologies with different spectral characteristics. Spectroradiometers can only sense the solar spectrum within a wavelength range that is usually too short compared to the actual spectral response of some PV technologies. In this work, a new methodology based on the Simple Model of the Atmospheric Radiative Transfer of Sunshine (SMARTS) spectral code is proposed to extend the spectral range of measured direct irradiance spectra and to increase the spectral resolution of such experimental measurements. Satisfactory results were obtained for both clear and hazy sky conditions at a radiometric station in southern Spain. This approach constitutes the starting point of a general methodology to obtain the instantaneous spectral irradiance incident on the plane of array of PV modules and its temporal variations, while evaluating the magnitude and variability of the abundance of atmospheric constituents with the most impact on surface irradiance, most particularly aerosols and water vapor.

Funder

Spanish Ministry of Economy, Industry, and Competitiveness

European Regional Development Fund

Ministerio de Ciencia e Innovación

European Union

Solar Energy Research Center

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

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