<b>Technologies for Photovoltaic Power</b> <b>Generation</b>

Authors

  • Haozhe Zhang

DOI:

https://doi.org/10.61173/5twq6q02

Keywords:

Photovoltaic power generation, conversion efficiency, system efficiency, energy storage technology, cost analysis

Abstract

Stepping onto the energy stage of the 21st century, the rise of renewable energy marks a profound transformation in the global energy landscape. In this context, photovoltaic power generation technology has emerged as a shining highlight in the new era of energy systems due to its direct energy acquisition, environmental friendliness, and sustainability. The purpose of this study is to analyze the key progress of the current photovoltaic power generation technology in detail through the method of comprehensive literature review, including the promotion strategy of conversion efficiency, the optimization way of system performance, the rationalization means of cost control, and the enhancement way of energy storage efficiency. Through extensive collection and systematic summary of domestic and foreign research results in related fields, this study has launched a comprehensive and in-depth discussion and comprehensive evaluation of the core issues such as system efficiency, energy storage solutions and cost composition of photovoltaic power generation, aiming to contribute to promoting the future development of photovoltaic power generation technology. The research conclusion emphasizes that the dual drive of technological innovation and system integration plays a decisive role in achieving the significant growth of photovoltaic power generation efficiency and the improvement of system operation economy.

References

[1] Fu Q. Application of energy storage technology in wind power and photovoltaic systems. China High Tech, 2024, 16:111-113.

[2] Li J L. Discussion on issues related to distributed power supply technology. Journal of Electric Science and Technology, 2014, 33(9):14-17.

[3] Ge Luming, Qu Linan, Chen Ning, Zhu Lingzhi, Zhang Lei. Low voltage crossing characteristic analysis and parameter test method of photovoltaic inverter. Automation of Electric Power Systems, 2018, 42(18):941-951.

[4] Ding Ruchun, Wang Zhipeng, Xie Guangwei, Xu Zikang, Ming Yali, Gong Siqian. Research on automatic grid-connected distributed photovoltaic inverter. Instrument Technology, 2024, 1(1): 39-42.

[5] Liu Congling, Xue Jianping, Peng Hongliang, Xi Xiaojun, Ren Ying. Technical practice of improving the efficiency of photovoltaic power generation system. Petroleum and Petrochemical Energy Conservation and Measurement, 2024, 14(2): 44-48.

[6] Han Cong, Guo Guansheng, Guo Yinyuan, Chen Zhuo. Summary of research on improving power generation efficiency of centralized photovoltaic power station. Science and Technology Innovation and Application, 2024, 17:161-164.

[7] Wu Tao. The challenge and prospect of photovoltaic industry. Foreign Investment in China, 2013, (10): 45-47.

[8] Ghosh, S., Yadav, R. Future of photovoltaic technologies: A comprehensive review. Sustainable Energy Technologies and Assessments, 2021, 47: 101410.

[9] Green, M. A. Recent developments in photovoltaics. Solar Energy, 2004, 76(1-3): 3-8.

[10] Victoria, M., Haegel, N., Peters, I. M., Sinton, R., Jäger- Waldau, A., del Cañizo, C., Breyer, C., Stocks, M., Blakers, A., Kaizuka, I., Komoto, K., Smets, A. Solar photovoltaics is ready to power a sustainable future. Joule, 2021, 5(5): 1041-1056.

Downloads

Published

2025-06-24