Mechatronics, Electrical Power, and Vehicular Technology
Vol 12, No 1 (2021)

Experimental and model validation of photovoltaic-thermal (PVT) air collector: exergy analysis

Ahmad Fudholi (Solar Energy Research Institute, Universiti Kebangsaan Malaysia, 43600 Bangi Selangor, Malaysia)
Mariyam Fazleena Musthafa (Department of Energy, Ministry of Environment, Maldives)
Goh Li Jin (Solar Energy Research Institute, Universiti Kebangsaan Malaysia, 43600 Bangi Selangor, Malaysia)
Rudi Darussalam (Research Centre for Electrical Power and Mechatronics, Indonesian Institute of Sciences (LIPI) Bandung, Indonesia)
Ahmad Rajani (Research Centre for Electrical Power and Mechatronics, Indonesian Institute of Sciences (LIPI) Bandung, Indonesia)
Andri Setiawan (Research Centre for Electrical Power and Mechatronics, Indonesian Institute of Sciences (LIPI) Bandung, Indonesia)
Anwar Anwar (Research Centre for Electrical Power and Mechatronics, Indonesian Institute of Sciences (LIPI) Bandung, Indonesia)
Mohammad Hossein Yazdi (Department of Electric Power Generation Stations, Network and Supply Systems, Institute of Engineering and Technology, South Ural State University, 76, Lenin Avenue, Chelyabinsk, 454080, Russian Federation)
Hazim Moria (Department of Mechanical Engineering Technology, Yanbu Industrial College, Yanbu Al-Sinaiyah City 41912, Kingdom of Saudi Arabia)
Mohd Yusof Othman (Solar Energy Research Institute, Universiti Kebangsaan Malaysia, 43600 Bangi Selangor, Malaysia)
Mohd Hafidz Ruslan (Solar Energy Research Institute, Universiti Kebangsaan Malaysia, 43600 Bangi Selangor, Malaysia)
Kamaruzzaman Sopian (Solar Energy Research Institute, Universiti Kebangsaan Malaysia, 43600 Bangi Selangor, Malaysia)



Article Info

Publish Date
31 Jul 2021

Abstract

Solar energy is a renewable energy that can produce heat via a thermal system and generate electricity via a photovoltaic (PV) module. A photovoltaic-thermal (PVT) collector is a system that has a PV module combined with a thermal collector system. The PVT collector is a popular technology for harvesting solar energy. A PVT collector can generate both electrical and thermal energies simultaneously. The study aims to validate the PV and outlet temperature for various mass flow rates and solar radiation. To develop a predictive model, a steady-state energy analysis of a PVT air collector was performed. An energy balance equation was solved using the matrix inversion method. The theoretical model was developed and validated against the experimental results, which have a similar trend and are consistent with the experimental results. On the other hand, the validated model was used to study the performances of PVT air collectors using exergy analysis for the mass flow rate ranging from 0.007 kg/s to 0.07 kg/s and solar radiation ranging from 385 W/m2 to 820 W/m2. The result from the mathematical model was found to be consistent with the experimental data with an accuracy of about 95 %. The average PVT exergy efficiency was found to be 12.7 % and 12.0 % for the theoretical and experimental studies, respectively.

Copyrights © 2021






Journal Info

Abbrev

mev

Publisher

Subject

Electrical & Electronics Engineering

Description

Mechatronics, Electrical Power, and Vehicular Technology (hence MEV) is a journal aims to be a leading peer-reviewed platform and an authoritative source of information. We publish original research papers, review articles and case studies focused on mechatronics, electrical power, and vehicular ...