Rahman Md Atiqur, Gupta Sanjay Kumar, Akylbekov Nurgali, Zhapparbergenov Rakhmetulla, Hasnain S M Mozammil, Zairov Rustem
Department of Mechanical Engineering, Vignan's Foundation for Science, Technology & Research (Deemed to be University), Vadlamudi, Guntur, Andhra Pradesh 522213, India.
Laboratory of Engineering Profile "Physical and Chemical Methods of Analysis", Korkyt Ata Kyzylorda University, Aiteke bi Str. 29A, Kyzylorda 120014, Kazakhstan.
iScience. 2024 Sep 14;27(10):110950. doi: 10.1016/j.isci.2024.110950. eCollection 2024 Oct 18.
The paper examines strategies to improve the efficiency of photovoltaic (PV) systems, which are challenged by high operating temperatures that reduce performance. It focuses on enhancing PV systems through the use of gallium arsenide (GaAs) thin films and reviews techniques like spectral beam splitting to boost efficiency, particularly in multi-junction PV receivers and hybrid collectors. The study also explores Photovoltaic-thermal (PVT) systems that combine PV cells with thermal absorbers, highlighting advanced absorber designs, mini/microchannels, and the use of polymers over traditional metals. Additionally, the incorporation of phase change materials (PCM) and nanofluids is discussed for their potential to improve thermal conductivity and storage. By synthesizing experimental and numerical research, the paper emphasizes the importance of these innovations in advancing PVT systems for sustainable energy production.
本文探讨了提高光伏(PV)系统效率的策略,该系统面临着因运行温度过高而导致性能下降的挑战。它着重于通过使用砷化镓(GaAs)薄膜来增强光伏系统,并回顾了诸如光谱束分裂等技术以提高效率,特别是在多结光伏接收器和混合集热器中。该研究还探索了将光伏电池与热吸收器相结合的光伏-热(PVT)系统,强调了先进的吸收器设计、微通道/微纳通道以及使用聚合物而非传统金属的情况。此外,还讨论了相变材料(PCM)和纳米流体的加入,因其具有提高热导率和储能的潜力。通过综合实验和数值研究,本文强调了这些创新对于推动用于可持续能源生产的PVT系统的重要性。