TY - CONF
T1 - Thermal and Electrical Performance Evaluation and Design Optimization of Hybrid PV/T Systems
T2 - 16th UK Heat Transfer Conference (UKHTC2019)
AU - Al-Damook, Moustafa
AU - Al Qubeissi, Mansour
AU - Khatir, Zinedine
AU - Dixon-Hardy, Darron
AU - Heggs, Peter J.
PY - 2021/6/2
Y1 - 2021/6/2
N2 - This study aims to evaluate the performance and cooling effectiveness of both photovoltaic (PV) and hybrid PV/thermal systems under various ambient conditions. Two models, namely standard PV module subject to ambient conditions without active cooling and a single-pass hybrid PV/T air collector, have been designed and simulated using the CFD software of COMSOL Multiphysics V5.3a. The PV material used in our analysis is monocrystalline silicon with a power temperature coefficient of 0.41% �C?1. The thermal and electrical performances of both systems are evaluated numerically and compared to experimental data for validation. The results predicted for cooling effects show noticeable enhancements in both the electrical and thermal efficiencies of the systems, with up to 44% compared to the PV module without active cooling. The electrical PV/T arrangement has increased the performance of air cooling in a laminar flow regime with up to 4%. A numerical-based design optimization is carried out to enhance the system performance.
AB - This study aims to evaluate the performance and cooling effectiveness of both photovoltaic (PV) and hybrid PV/thermal systems under various ambient conditions. Two models, namely standard PV module subject to ambient conditions without active cooling and a single-pass hybrid PV/T air collector, have been designed and simulated using the CFD software of COMSOL Multiphysics V5.3a. The PV material used in our analysis is monocrystalline silicon with a power temperature coefficient of 0.41% �C?1. The thermal and electrical performances of both systems are evaluated numerically and compared to experimental data for validation. The results predicted for cooling effects show noticeable enhancements in both the electrical and thermal efficiencies of the systems, with up to 44% compared to the PV module without active cooling. The electrical PV/T arrangement has increased the performance of air cooling in a laminar flow regime with up to 4%. A numerical-based design optimization is carried out to enhance the system performance.
KW - Conjugate heat transfer Cooling enhancement Design optimization Hybrid efficiency Hybrid PV/T Photovoltaic
U2 - 10.1007/978-981-33-4765-6_137
DO - 10.1007/978-981-33-4765-6_137
M3 - Paper
SP - 805
EP - 813
ER -