Protection of Photovoltaic Systems Against Direct Lightning Strokes

被引:0
作者
Kermani, Behzad [1 ]
Shariatinasab, Reza [1 ]
机构
[1] Univ Birjand, Dept Elect & Comp Engn, Birjand 97175376, Iran
关键词
Lightning; Protection; Power generation; Surges; Surge protection; Solar panels; Grounding; Metals; Inverters; Transient analysis; Photovoltaic system; lightning overvoltages; frequency-dependent modeling; protection system; POWER-PLANT; PERFORMANCE; MODEL;
D O I
10.1109/TPWRD.2024.3494053
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
As the photovoltaic systems (PVs) are installed in open areas, lightning surges constitute a significant cause of PVs equipment failure. Therefore, the study of lightning-related overvoltages in PVs is vital, and guidelines for the protection must be investigated. This paper demonstrates the frequency-dependent modeling of PVs and determines the resulting overvoltages from direct lightning strokes in the EMTP environment. By analyzing the protection equipment including the lightning rods, surge protection devices (SPDs), the equipotential bonding system (EBS), and the integrated grounding system, the appropriate protection system against lightning overvoltages is proposed. The results show that by installation of SPDs, along with EBS and an integrated grounding system between solar panels and inverters, complete protection for inverters is achieved. In this mode, the energy stress experienced by SPDs is less than their energy handling capacity. As a result, the type of ground system implementation has a significant impact on the optimal performance of the SPDs. The paper also introduces a method based on rolling sphere theory and the Monte Carlo method for designing and placing lightning rods in PVs. The presented method is cost-effective compared to the conventional methods, as it determines the appropriate number and height of the lightning rods.
引用
收藏
页码:301 / 313
页数:13
相关论文
共 49 条
[11]   External Lightning Protection and Grounding in Large-Scale Photovoltaic Applications [J].
Charalambous, Charalambos A. ;
Kokkinos, Nikolaos D. ;
Christofides, Nikolas .
IEEE TRANSACTIONS ON ELECTROMAGNETIC COMPATIBILITY, 2014, 56 (02) :427-434
[12]   Comprehensive transient analysis for low-voltage system in a wind turbine under direct lightning [J].
Chen, Hongcai ;
Zhang, Yang ;
Du, Yaping ;
Cheng, Qingsha S. .
INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2020, 121
[13]   Parameters of lightning strokes: A review [J].
Chowdhuri, P ;
Anderson, JG ;
Chisholm, WA ;
Field, TE ;
Ishii, M ;
Martinez, JA ;
Marz, MB ;
McDaniel, J ;
McDermott, TR ;
Mousa, AM ;
Narita, T ;
Nichols, DK ;
Short, TA .
IEEE TRANSACTIONS ON POWER DELIVERY, 2005, 20 (01) :346-358
[14]  
chowdhuri p., 2004, ELECTROMAGNETIC TRAN
[15]  
Das JC, 2002, IEEE PULP P, P139, DOI 10.1109/PAPCON.2002.1015142
[16]  
Ekman J., 2001, P C EL COMP METH APP, P11
[17]   AN ELECTROMAGNETIC MODEL FOR TRANSIENTS IN GROUNDING SYSTEMS [J].
GRCEV, L ;
DAWALIBI, F .
IEEE TRANSACTIONS ON POWER DELIVERY, 1990, 5 (04) :1773-1779
[18]   A Computer Program for Evaluating the Risk of Lightning Impact and for Designing the Installation of Lightning Rod Protection for Photovoltaic System [J].
Ittarat, Songpol ;
Hiranvarodom, Somchai ;
Plangklang, Boonyang .
10TH ECO-ENERGY AND MATERIALS SCIENCE AND ENGINEERING SYMPOSIUM, 2013, 34 :318-325
[19]  
Jiang T, 2013, 2013 INTERNATIONAL SYMPOSIUM ON LIGHTNING PROTECTION (XII SIPDA), P287, DOI 10.1109/SIPDA.2013.6729225
[20]  
Kokkinos N., 2012, P IEEE 2012 INT C LI, P1