Modelling and optimisation of solar photovoltaic power using response surface methodology

Modeling and analysing the relationship between the operating conditions of solar photovoltaic module such as the solar irradiance, module temperature, wind speed, dust, air moisture and the performance metric of generated power is considered as an interesting subject. In the current study, the resp...

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Main Authors: Abdulrahman Mohammad, Mudhar Al-Obaidi, Hassan Dakkama, Haitham Bahlol
Format: Article
Language:English
Published: SDEWES Centre 2024-12-01
Series:Journal of Sustainable Development of Energy, Water and Environment Systems
Subjects:
Online Access: http://www.sdewes.org/jsdewes/pid12.0519
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author Abdulrahman Mohammad
Mudhar Al-Obaidi
Hassan Dakkama
Haitham Bahlol
author_facet Abdulrahman Mohammad
Mudhar Al-Obaidi
Hassan Dakkama
Haitham Bahlol
author_sort Abdulrahman Mohammad
collection DOAJ
description Modeling and analysing the relationship between the operating conditions of solar photovoltaic module such as the solar irradiance, module temperature, wind speed, dust, air moisture and the performance metric of generated power is considered as an interesting subject. In the current study, the response surface methodology based on the D-optimal Design approach is applied to model an optimise the generated power of photovoltaic module using desirability function. The optimisation has considered the interaction of three essential independent variables including: solar irradiance (169.2-981.7) , module temperature (36.14-67.01) °C and wind speed (0.5-2.4) m/s with the generated power (dependent variable). A data set of 328 reading is collected and analysed. In this regard, the suggested response model uses two factorial order with polynomial equation. The response surface methodology model has indicated a linear relationship between the independent variables and power generated with a coefficient of determination of 98.45%. The optimal operating conditions of 968.04  solar irradiance, module temperature 41.82 °C and wind speed 1.67 m/s are obtained with a maximum desirability function of 0.985. This in turn has elaborated a maximum generated power of 128.883 W. Interestingly, this optimised power is in corroboration with the experimental value of 127.1 W at the same conditions. Notably, the module temperature has a considerable negative influence on the generated power.  
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spelling doaj-art-e09f38d89de943b1b7df899065ecef942025-08-20T02:38:51ZengSDEWES CentreJournal of Sustainable Development of Energy, Water and Environment Systems1848-92572024-12-0112411610.13044/j.sdewes.d12.05191120519Modelling and optimisation of solar photovoltaic power using response surface methodologyAbdulrahman Mohammad0Mudhar Al-Obaidi1Hassan Dakkama2Haitham Bahlol3 Middle Technical University, Dayala, Iraq Middle Technical University, Baghdad, Iraq Middle Technical University, Baghdad, Iraq Middle Technical University, Baghdad, Iraq Modeling and analysing the relationship between the operating conditions of solar photovoltaic module such as the solar irradiance, module temperature, wind speed, dust, air moisture and the performance metric of generated power is considered as an interesting subject. In the current study, the response surface methodology based on the D-optimal Design approach is applied to model an optimise the generated power of photovoltaic module using desirability function. The optimisation has considered the interaction of three essential independent variables including: solar irradiance (169.2-981.7) , module temperature (36.14-67.01) °C and wind speed (0.5-2.4) m/s with the generated power (dependent variable). A data set of 328 reading is collected and analysed. In this regard, the suggested response model uses two factorial order with polynomial equation. The response surface methodology model has indicated a linear relationship between the independent variables and power generated with a coefficient of determination of 98.45%. The optimal operating conditions of 968.04  solar irradiance, module temperature 41.82 °C and wind speed 1.67 m/s are obtained with a maximum desirability function of 0.985. This in turn has elaborated a maximum generated power of 128.883 W. Interestingly, this optimised power is in corroboration with the experimental value of 127.1 W at the same conditions. Notably, the module temperature has a considerable negative influence on the generated power.   http://www.sdewes.org/jsdewes/pid12.0519 photovoltaic (pv); power; solar irradiance; module temperature; response surface methodology (rsm); optimisation.
spellingShingle Abdulrahman Mohammad
Mudhar Al-Obaidi
Hassan Dakkama
Haitham Bahlol
Modelling and optimisation of solar photovoltaic power using response surface methodology
Journal of Sustainable Development of Energy, Water and Environment Systems
photovoltaic (pv); power; solar irradiance; module temperature; response surface methodology (rsm); optimisation.
title Modelling and optimisation of solar photovoltaic power using response surface methodology
title_full Modelling and optimisation of solar photovoltaic power using response surface methodology
title_fullStr Modelling and optimisation of solar photovoltaic power using response surface methodology
title_full_unstemmed Modelling and optimisation of solar photovoltaic power using response surface methodology
title_short Modelling and optimisation of solar photovoltaic power using response surface methodology
title_sort modelling and optimisation of solar photovoltaic power using response surface methodology
topic photovoltaic (pv); power; solar irradiance; module temperature; response surface methodology (rsm); optimisation.
url http://www.sdewes.org/jsdewes/pid12.0519
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AT mudharalobaidi modellingandoptimisationofsolarphotovoltaicpowerusingresponsesurfacemethodology
AT hassandakkama modellingandoptimisationofsolarphotovoltaicpowerusingresponsesurfacemethodology
AT haithambahlol modellingandoptimisationofsolarphotovoltaicpowerusingresponsesurfacemethodology