Modeling I-V curves of photovoltaic modules at indoor and outdoor conditions by using the Lambert function

dc.contributor.authorPolo, Jesús
dc.contributor.authorMartín-Chivelet, Nuria
dc.contributor.authorAlonso-García, Carmen
dc.contributor.authorZitouni, Houssain
dc.contributor.authorAlonso-Abella, Miguel
dc.contributor.authorSanz-Saiz, Carlos
dc.contributor.authorVela-Barrionuevo, Nieves
dc.date.accessioned2024-01-29T07:43:55Z
dc.date.available2024-01-29T07:43:55Z
dc.date.issued2019
dc.description.abstractAccurate and robust modeling of the characteristic I-V curve of a photovoltaic module is essential in many applications focused on forecasting and predicting photovoltaic (PV) performance. The single diode equivalent model has been used extensively for representing the working principles of solar cells. This work presents a simple methodology for solving the single diode equation from the manufacture’s datasheet parameters, by combining the Lambert-W function and an iterative procedure on the ideality factor of the diode, which has a fast convergence and robustness. The model has been assessed by comparing with experimental I-V curves measured for different modules at indoor and outdoor conditions with good results. Sensitivity analysis has been also Accurate and robust modeling of the characteristic I-V curve of a photovoltaic module is essential in many applications focused on forecasting and predicting photovoltaic (PV) performance. The single diode equivalent model has been used extensively for representing the working principles of solar cells. This work presents a simple methodology for solving the single diode equation from the manufacture’s datasheet parameters, by combining the Lambert-W function and an iterative procedure on the ideality factor of the diode, which has a fast convergence and robustness. The model has been assessed by comparing with experimental I-V curves measured for different modules at indoor and outdoor conditions with good results. Sensitivity analysis has been alsoAccurate and robust modeling of the characteristic I-V curve of a photovoltaic module is essential in many applications focused on forecasting and predicting photovoltaic (PV) performance. The single diode equivalent model has been used extensively for representing the working principles of solar cells. This work presents a simple methodology for solving the single diode equation from the manufacture’s datasheet parameters, by combining the Lambert-W function and an iterative procedure on the ideality factor of the diode, which has a fast convergence and robustness. The model has been assessed by comparing with experimental I-V curves measured for different modules at indoor and outdoor conditions with good results. Sensitivity analysis has been also done to indicate the possible impact of the uncertainty of the initial parameters that input the model.es_ES
dc.identifier.citationPolo, J., Martín-Chivelet, N., Alonso-García, M. C., Zitouni, H., Alonso-Abella, M., Sanz-Saiz, C., & Vela, N. (2019). Modeling I-V curves of photovoltaic modules at indoor and outdoor conditions by using the Lambert function. En Energy Conversion and Management (Vol. 195, Número September, pp. 1004-1011). Zenodo. https://doi.org/10.1016/j.enconman.2019.05.085es_ES
dc.identifier.issn0196-8904
dc.identifier.urihttps://hdl.handle.net/20.500.14855/2214
dc.language.isoenges_ES
dc.publisherElsevieres_ES
dc.rights.accessRightsopen accesses_ES
dc.subjectPV modelinges_ES
dc.subjectI-V curvees_ES
dc.subjectIndoor and outdoor conditionses_ES
dc.titleModeling I-V curves of photovoltaic modules at indoor and outdoor conditions by using the Lambert functiones_ES
dc.typejournal articlees_ES

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