Validation of the FDTD method for lightning electromagnetic fields computation in the presence of mixed propagation path with slope-angle

Author(s):  
Omari Mohamed ◽  
Mimouni abdenbi
2015 ◽  
Vol 57 (5) ◽  
pp. 1086-1095 ◽  
Author(s):  
Javad Paknahad ◽  
Keyhan Sheshyekani ◽  
Mohsen Hamzeh ◽  
Dongshuai Li ◽  
Farhad Rachidi

2020 ◽  
Vol 10 (7) ◽  
pp. 2359
Author(s):  
Sajad Mohammadi ◽  
Hamidreza Karami ◽  
Mohammad Azadifar ◽  
Farhad Rachidi

An open accelerator (OpenACC)-aided graphics processing unit (GPU)-based finite difference time domain (FDTD) method is presented for the first time for the 3D evaluation of lightning radiated electromagnetic fields along a complex terrain with arbitrary topography. The OpenACC directive-based programming model is used to enhance the computational performance, and the results are compared with those obtained by using a CPU-based model. It is shown that OpenACC GPUs can provide very accurate results, and they are more than 20 times faster than CPUs. The presented results support the use of OpenACC not only in relation to lightning electromagnetics problems, but also to large-scale realistic electromagnetic compatibility (EMC) applications in which computation time efficiency is a critical factor.


Author(s):  
Maryam Hajebi ◽  
Mojtaba Khosravi-Farsani ◽  
Seyed Hossein Hesamedin Sadeghi ◽  
Rouzbeh Mazandarani Moini

Purpose Tall towers have a high potential for being struck by lightning which is a major source of electromagnetic radiation with adverse effects on electric, electronic and telecommunication instruments. The paper aims to present an accurate method for predicting the radiated electromagnetic fields and current distribution along the lightning channel and the tower hit by the lightning. Design/methodology/approach The electromagnetic model is utilized to model the lightning channel and the tower is represented by lossy conducting wires. The finite difference time domain (FDTD) method is used to solve for the governing Maxwell’s equations. Due to the large computational space, the FDTD code is paralleled between several computer processors. To enhance the efficiency of the code, a non-uniform mesh is used, reducing the mesh length in the air-ground interface. For model evaluation, simulated current distribution along the lightning channel and tower, and the radiated electromagnetic fields are compared with the measurement data and those obtained using the engineering models. Findings The proposed modeling technique has proved to be more accurate than the conventional methods, particularly in the prediction of current distribution along the tall tower and the vertical component of the radiated electric field. Originality/value The main feature of the proposed technique is its ability to consider the impact of metallic structures in a large space around lightning channel on the predicted radiated electromagnetic fields, having no concern on computer memory requirements.


2018 ◽  
Vol 60 (6) ◽  
pp. 2019-2024 ◽  
Author(s):  
Hamidreza Karami ◽  
Keyhan Sheshyekani ◽  
Afshin Rezaei-Zare ◽  
Jean Mahseredjian

2014 ◽  
Vol 38 ◽  
pp. 143-154 ◽  
Author(s):  
Kuisong Zheng ◽  
Hui Yu ◽  
Huan Luo ◽  
Tengjiang Ding

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