Title :
An engineering model for transient analysis of grounding system under lightning strikes: nonuniform transmission-line approach
Author :
Liu, Yaqing ; Theethayi, Nelson ; Thottappillil, Rajeev
Author_Institution :
Div. for Electr.ity & Lightning Res., Uppsala Univ., Sweden
fDate :
4/1/2005 12:00:00 AM
Abstract :
A nonuniform transmission line approach is adopted in this paper for modeling the transient behavior of different types of grounding systems under lightning strikes in time domain by solving Telegrapher´s equations based on finite-difference time-domain (FDTD) technique. Electromagnetic couplings between different parts of the grounding wires are included using effective per-unit length parameters (l, c, and g), which are space and time dependent. The present model can predict both the effective length and the transient voltage of grounding electrodes accurately, while, an uniform transmission line approach with electrode length dependent per-unit length parameters fails to predict the same. Unlike the circuit theory approach , the present model is capable of predicting accurately the surge propagation delay in the large grounding system. The simulation results for buried horizontal wires and grounding grids based on the present model are in good agreement with that of the circuit and electromagnetic field approaches , . From an engineering point of view, the model presented in this paper is sufficiently accurate, time efficient, and easy to apply.
Keywords :
earth electrodes; electromagnetic coupling; finite difference time-domain analysis; power transmission lines; transient analysis; FDTD technique; electromagnetic coupling; finite-difference time-domain technique; grounding electrode; grounding system; lightning strike; nonuniform transmission line approach; surge propagation delay; telegrapher equation; transient analysis; Distributed parameter circuits; Electromagnetic transients; Finite difference methods; Grounding; Lightning; Power system transients; Time domain analysis; Transient analysis; Transmission lines; Wires; Grounding; lightning; transient analysis; transmission line and finite-difference time-domain (FDTD) methods;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2004.843437