Title :
Transient excitation of a straight thin-wire segment: a new look at an old problem
Author :
Tijhuis, Anton G. ; Zhongqiu, Peng ; Bretones, Amelia Rubio
Author_Institution :
Dept. of Electr. Eng., Delft Univ. of Technol., Netherlands
fDate :
10/1/1992 12:00:00 AM
Abstract :
The transient excitation of a straight thin-wire segment is analyzed with the aid of a one-dimensional integral equation for the current along the wire. An almost exact derivation of that equation, in which only the radial current on the end faces is approximated, is given. The integral equation obtained turns out to be identical to the reduced version of Pocklington´s equation. On the basis of this derivation, existing and new numerical solution techniques are critically reviewed. Pocklington´s equation and Hallen´s equivalent form are solved directly by marching on in time as well as indirectly via a transformation to the frequency domain. For Pocklington´s equation, a conventional moment-method discretization leads to a Toeplitz matrix that is inverted with Levinson´s algorithm. For Hallen´s equation, the Toeplitz structure is disturbed, and the frequency-domain constituents are determined with the aid of the conjugate-gradient-FFT method. Illustrative numerical results are presented and discussed
Keywords :
antenna theory; electric current; frequency-domain analysis; numerical analysis; transients; Hallen´s equivalent form; Levinson´s algorithm; Pocklington´s equation; Toeplitz matrix; conjugate-gradient-FFT method; end faces; frequency domain transformation; moment-method discretization; numerical solution techniques; one-dimensional integral equation; radial current; straight thin-wire segment; transient excitation; Dielectric losses; Electromagnetic fields; Extrapolation; Frequency domain analysis; Frequency estimation; Integral equations; Kernel; Laboratories; Transient analysis; Wire;
Journal_Title :
Antennas and Propagation, IEEE Transactions on