Power from shaded photovoltaic modules through bypass-diode-assisted small-area high-voltage structures

被引:6
作者
Fauzan, Luthfan [1 ,2 ]
Sim, Yeon Hyang [1 ]
Yun, Min Ju [1 ]
Choi, Hyekyoung [1 ]
Lee, Dong Yoon [1 ]
Cha, Seung I. [1 ,2 ]
机构
[1] Korea Electrotechnol Res Inst, Energy Convers Res Ctr, Elect Mat Res Div, Chang Won, South Korea
[2] Univ Sci & Technol, Dept Electrofunct Mat Engn, Daejeon, South Korea
关键词
Bypass diode; Partial shading; Power measure method; Shading intensity; Small-area high-voltage (SAHiV); PV; ENERGY;
D O I
10.1016/j.rser.2024.115047
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Photovoltaics have high potential as a renewable energy source in urban environments. A major challenge in implementing urban photovoltaic systems is the unpredictable shading of photovoltaic modules. Architectural barriers and safety concerns, including fire hazards from partial shading, necessitate innovative photovoltaic system designs. To address this challenge, the small-area high-voltage concept was introduced, facilitating the use of pseudo-high-voltage low-current cells in parallel connections. This research is a continuation of the smallarea high-voltage concept, which has a flexible design with shading tolerance proven to be thrice that of conventional modules. This research explored the optimal number of bypass diodes in a module. Two power measurement methods were adopted because a diode causes multiple peaks in the power curve, making it difficult to obtain maximum power. Simulations were conducted under various shading intensity and shape scenarios, and the results were validated experimentally. The small-area high-voltage modules, even without diodes, outperformed the conventional and shingled modules with one diode per cell. This study concludes that when combined with diodes, the small-area high-voltage concept exhibits remarkable improvements in shading tolerance and stable power production, offering a promising way to improve the adaptability and efficiency of solar energy systems in urban environments.
引用
收藏
页数:16
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共 50 条
[21]   Understanding partial shading effects in shingled PV modules [J].
Kunz, Oliver ;
Evans, Rhett J. ;
Juhl, Mattias K. ;
Trupke, Thorsten .
SOLAR ENERGY, 2020, 202 :420-428
[22]   A general model for comprehensive electrical characterization of photovoltaics under partial shaded conditions [J].
Li, Fuxiang ;
Dong, Wentao ;
Wu, Wei .
ADVANCES IN APPLIED ENERGY, 2023, 9
[23]  
Manimegalai D., 2018, ARPN J Eng Appl Sci Jan, V13, P124
[24]   MPPT in PV systems under partial shading conditions using artificial vision [J].
Martin, Aranzazu D. ;
Vazquez, Jesus R. ;
Cano, J. M. .
ELECTRIC POWER SYSTEMS RESEARCH, 2018, 162 :89-98
[25]  
Mewe AA, 2013, IEEE PHOT SPEC CONF, P891, DOI 10.1109/PVSC.2013.6744287
[26]  
Moser D, 2018, Urban energy transition., Vsecond, P313, DOI [10.1016/B978-0-08-102074-6.00030-9, DOI 10.1016/B978-0-08-102074-6.00030-9]
[27]  
Moza Sahil, 2020, Zenodo
[28]  
Niazi KAK, 2019, APPL POWER ELECT CO, P3164, DOI 10.1109/APEC.2019.8722259
[29]   Factors Affecting the Fire Safety Design of Photovoltaic Installations Under Performance-Based Regulations in Norway [J].
Olso, Brynhild Garberg ;
Stolen, Reidar ;
Mikalsen, Ragni Fjellgaard ;
Bunkholt, Nora Schjoth ;
Friquin, Kathinka Leikanger ;
Hjertnes, Jostein .
FIRE TECHNOLOGY, 2023, 59 (04) :2055-2088
[30]   Fire Hazards and Overheating Caused by Shading Faults on Photo Voltaic Solar Panel [J].
Pandian, Anbu ;
Bansal, Kamal ;
Thiruvadigal, D. John ;
Sakthivel, S. .
FIRE TECHNOLOGY, 2016, 52 (02) :349-364