DocumentCode :
980527
Title :
Eigencurrent analysis of resonant behavior in finite antenna arrays
Author :
Bekers, Dave J. ; Van Eijndhoven, Stephanus J L ; Van de Ven, Alphons A F ; Borsboom, Peter-Paul ; Tijhuis, Anton G.
Author_Institution :
TNO Defence, Security, & Safety, Den Haag
Volume :
54
Issue :
6
fYear :
2006
fDate :
6/1/2006 12:00:00 AM
Firstpage :
2821
Lastpage :
2829
Abstract :
Resonant behavior in a finite array that appears as (modulated) impedance or current-amplitude oscillations may limit the array bandwidth substantially. Therefore, simulations should predict such behavior. Recently, a new approach has been developed, called the eigencurrent approach, which can predict resonant behavior in finite arrays. A study of line arrays of either E- or H-plane-oriented strips and rings in free space and in half-spaces confirms our conclusion in earlier research that resonant behavior is caused by the excitation of one of the eigencurrents. The eigenvalue (or characteristic impedance) of this eigencurrent becomes small in comparison to the eigenvalues of the other eigencurrents that can exist on the array geometry. We demonstrate that the excitation of this eigencurrent results in an edge-diffracted wave propagating along the surface of the array, which may turn into a standing wave. In that case, the amplitudes and phases of the element impedances show the same standing-wave pattern as those of the excited eigencurrent. We demonstrate that the phase velocity of this wave is approximately equal to or slightly larger than the free-space velocity of light. Finally, we throw light on the relation between the excitation of eigencurrents with a small eigenvalue and the behavior of super directive arrays
Keywords :
antenna arrays; eigenvalues and eigenfunctions; electromagnetic wave propagation; E-plane oriented strips; H-plane-oriented strips; array bandwidth; characteristic impedance; current-amplitude oscillations; edge-diffracted wave; eigencurrent analysis; finite antenna arrays; line arrays; modulated impedance; phase velocity; resonant behavior; standing-wave pattern; Antenna arrays; Bandwidth; Computational modeling; Eigenvalues and eigenfunctions; Frequency; Maxwell equations; Predictive models; Resonance; Surface impedance; Surface waves; Antenna arrays; eigencurrent; resonance; standing wave;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2006.875446
Filename :
1643622
Link To Document :
بازگشت