DocumentCode
1307753
Title
Numerical and Experimental Investigation of Grounding Electrode Impulse-Current Dispersal Regularity Considering the Transient Ionization Phenomenon
Author
Li, Jingli ; Yuan, Tao ; Yang, Qing ; Sima, Wenxia ; Sun, Caixin ; Zahn, Markus
Author_Institution
State Key Lab. of Power Transm. Equip. & Syst. Safety & New Technol., Chongqing Univ., Chongqing, China
Volume
26
Issue
4
fYear
2011
Firstpage
2647
Lastpage
2658
Abstract
This paper presents a numerical method, combined the finite element method in the spatial domain with the finite difference time domain, to calculate the transient impulse response of grounding systems considering the ionization phenomenon. In this numerical method, space-time variable soil resistivity is used to simulate the soil ionization phenomenon where soil resistivity is controlled according to its relationship with the local instantaneous value of the electric field and no a priori hypothesis on the geometrical shape of the ionized region around the electrodes is necessary. Based on the widely accepted principle of dimensional similarity, this paper makes simulated experimental investigations on the impulse-current dispersal regularity of grounding electrodes with various structures. The proposed numerical scheme is validated by comparing computed results with experimental results and simulation results in literature. Based on the measurement and simulation results, the impulse response regularity of grounding electrodes is discussed and the effect of ionization on human and installations safety is reported.
Keywords
earth electrodes; finite difference time-domain analysis; finite element analysis; soil; surface ionisation; transient response; finite difference time domain; finite element method; grounding electrode; impulse response regularity; impulse-current dispersal regularity; installations safety; soil ionization phenomenon; soil resistivity; transient ionization phenomenon; Electrodes; Electromagnetic fields; Finite difference methods; Finite element methods; Grounding; Impulse testing; Ionization; Lightning protection; Nonlinear equations; Numerical analysis; Electrodes; electromagnetic fields; finite difference methods; finite-element methods; grounding; impulse testing; ionization; lightning protection; nonlinear equations; numerical analysis; soil;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2011.2158860
Filename
5999744
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