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Simulating the energy yield of a bifacial photovoltaic power plant
Indexado
WoS WOS:000467892000074
Scopus SCOPUS_ID:85063345680
DOI 10.1016/J.SOLENER.2019.03.071
Año 2019
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



Bifacial photovoltaics (bifacial PV) offer higher energy yields as compared to monofacial PV. The development of appropriate models for simulating the energy yield of bifacial PV power plants is a major topic in both research and industry. In particular, the adequate calculation of the energy yield from ground-reflected irradiance (GRI) is challenging. The purpose of this work is to investigate the currently available energy yield models and suggest areas for improvement. A new model with the proposed enhancements is used to investigate the behaviour of bifacial PV power plants in more detail. The model calculates the absorbed irradiation originating from eight irradiance contributions for the front and rear of each cell string: DNI, DHI, GRI from DHI (GRI(DHI)) and GRI from DNI (GRI(DNI)). The model was tested using a defined case study power plant. The breakdown of absorbed irradiation (subscript "ab") into its contributions revealed that while in summer months GRI(DNI-ab-rear) is significantly larger than GRI(DHI-ab-rear), both are roughly the same in winter months. Furthermore, for the calculation of GRI the common simplification of infinitely long module rows was avoided by implementing an algorithm for the view factor calculation for a three-dimensional space. This procedure allowed for the assessment of impact of the ground size on the annual energy yield. In a sensitivity analysis, it has been shown that the extension of the relevant ground area resulted in an asymptotical increase of the energy yield. Additionally, the impact of ground shadows on the power plant's performance was quantified. The presence of ground shadows reduced the annual electricity generation by almost 4%, compared to a hypothetical scenario where no ground shadows existed. Finally, five different ground surfaces and the resulting bifacial gains were analysed. The results show that while dry asphalt (12% reflectivity) gave less than 6% of bifacial gain related to generated electricity (BG(el)), the use of a white membrane (70%) would result in 29% of BG(el).

Revista



Revista ISSN
Solar Energy 0038-092X

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Disciplinas de Investigación



WOS
Energy & Fuels
Scopus
Sin Disciplinas
SciELO
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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 Chudinzow, Dimitrij - UNIV STUTTGART - Alemania
Universitat Stuttgart - Alemania
2 Haas, J. Hombre UNIV STUTTGART - Alemania
Universitat Stuttgart - Alemania
3 Diaz-Ferran, Gustavo Hombre Universidad de Chile - Chile
4 Moreno-Leiva, Simon Hombre UNIV STUTTGART - Alemania
Universitat Stuttgart - Alemania
5 Eltrop, Ludger Hombre UNIV STUTTGART - Alemania
Universitat Stuttgart - Alemania

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Financiamiento



Fuente
Comisión Nacional de Investigación Científica y Tecnológica
Deutscher Akademischer Austauschdienst
German Federal Ministry of Education and Research
German Academic Exchange Service (DAAD)
National Commission for Scientific and Technological Research of Chile
Bundesministerium für Bildung und Forschung
Chilean Council of Scientific and Technological Research through the Solar Energy Research Center SERC-Chile
Chilean Council of Scientific and Technological Research
Solar Energy Research Center SERC-Chile
National Commission for Scientific and Technological Research of Chile (CONICYT) through the "Becas Chile-DAAD" program
Solar Mining project (Program for International Cooperation)
Consejo Nacional para Investigaciones Científicas y Tecnológicas
Bundesministerium für Bildung und Forschung

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Agradecimientos



Agradecimiento
The authors are grateful for the support of the German Federal Ministry of Education and Research through Grant number 01DN15008 and the support of the Chilean Council of Scientific and Technological Research through the Solar Energy Research Center SERC-Chile (CONICYT/FONDAP/15110019) and the Solar Mining project (Program for International Cooperation/CONICYT-BMBF/20140019). Simon Moreno-Leiva would like to thank the support of the German Academic Exchange Service (DAAD) and the National Commission for Scientific and Technological Research of Chile (CONICYT) through the "Becas Chile-DAAD" program.
The authors are grateful for the support of the German Federal Ministry of Education and Research through Grant number 01DN15008 and the support of the Chilean Council of Scientific and Technological Research through the Solar Energy Research Center SERC-Chile (CONICYT/FONDAP/15110019) and the Solar Mining project (Program for International Cooperation/CONICYT-BMBF/20140019). Simón Moreno-Leiva would like to thank the support of the German Academic Exchange Service (DAAD) and the National Commission for Scientific and Technological Research of Chile (CONICYT) through the “Becas Chile-DAAD” program.

Muestra la fuente de financiamiento declarada en la publicación.