Computer Simulation Technology
 
CST

A Unit Cell Model of a Single Periodic Waveguide Phased-Array Antenna

A major strength of the transient solver of CST MICROWAVE STUDIO® (CST MWS) is the capability to simulate even complex structures with several millions mesh-cells. Therefore, typically complete antenna arrays can be simulated including all edge effects. However, for large arrays a quicker and more efficient simulation can be obtained by assuming an infinite array of antennas. In that case the unit-cell feature of the frequency domain solver offers a very powerful and user-friendly functionality.

Phased-array antennas are planar double-periodic structures that find many applications in electronic systems. This article describes the application of a single periodic open-ended waveguide phased-array antenna with a dielectric radome at its aperture of variable thickness. The absorbing boundary (a so-called Floquet-Port) is placed at some distance away from the aperture and absorbs the generated plane waves of the periodic structure. Complex periodic boundary conditions sustain the propagation of the plane waves at the model’s side walls.  In particular, the case of phase-shift angles where two plane waves exists is of interest here. As a verification it is shown that the superposition of two independent plane waves shows the same field pattern as the one created by the unit cell model.   

The analyzed structure is shown in Figure 1. Parts of the waveguide are cut away to allow the view of the field distribution inside the structure. In front of the waveguide the dielectric radom is visible.


The considered waveguide antenna with dielectric sheet. Outside the waveguide periodic boundaries are applied to model an infinite array of antennas.
Figure 1: The considered waveguide antenna with dielectric sheet. Outside the waveguide periodic boundaries are applied to model an infinite array of antennas.

A primary result from any CST MWS simulation is the S-Parameters. Figure 2 shows the reflection coefficient |S11| of the waveguide port for a fixed frequency of 3 GHz depending on the phase shift between the periodic boundaries. The measured results are shown on the left (taken from [1]) and the CST MWS simulated results on the right. Both curves show excellent agreement.


The reflection coefficient over the phase shift between the periodic boundaries for different thickness of the dielectric sheet. The CST MWS simulation (right) agrees well to measurement (left).
Figure 2: The reflection coefficient over the phase shift between the periodic boundaries for different thickness of the dielectric sheet. The CST MWS simulation (right) agrees well to measurement (left).

The S-Parameters already contain important information about the behavior of the device. The curve for the dielectric sheet with e.g. 1/2*lambda displays a 45° phase shift at the point where maximum radiation is possible (minimum of |S11|). At around 70° the antenna shows a "blind spot" at which almost all energy is reflected (|S11| = 1). A grating lobe appears above a phase shift of 150° and the resulting wave pattern is an overlay of two plane waves. The physical effects can be pointed out even better by visualizing them with the help of field monitors.


Visualization of the field distribution for different shift angles as an overlay of electric field amplitude and power flow.
Figure 3: Visualization of the field distribution for different shift angles as an overlay of electric field amplitude and power flow.

As a verification the same result as in Figure 3c) can be synthesized from the overlay of two pure plane waves. All necessary information such as direction and amplitude of the two waves can easily be extracted from the previous CST MWS simulation. The next figure shows the two individual plane waves.


Two separate plane waves representing the two componentes in Figure 3c) are generated.
Figure 4: Two separate plane waves representing the two componentes in Figure 3c) are generated.

Finally, the two waves are combined in Figure 5. Both the unit-cell simulation and the plane wave superposition show excellent agreement proving the consistency of both approaches.


The original wavguide antenna with periodic boundaries show very good agreement to the overlay of two ideal plane waves.
Figure 5: The original wavguide antenna with periodic boundaries show very good agreement to the overlay of two ideal plane waves.

References:

[1] N. Amitay, V. Galindo and C.P. Wu, " Theory and Analysis of Phased Array Antennas", New York: Wiley Interscience, 1972, p 238

[2]  J. P. Montgomery, "Scattering by an Infinite Periodic Array of thin Conductors on a Dielectric Sheet",  IEEE Trans on Ant+Prop, Vol Ap - 23, No. 1, Jan 1975

 

CST MWS offers an extremely user-friendly and intuitive treatment of periodic and unit-cell structures of arbitrary grid angles. Excitation is typically achieved by waveguide ports which correctly takes into account the periodic nature of the mode pattern. These so-called Floquet modes are also used for the absorbtion of the the higher-order wavepatterns in the solution domain and are proven to be more reliable than classic open boundaries. Proper handling of the Floquet modes is imperative for efficient and accurate analysis of periodic structures. 


CST Article "A Unit Cell Model of a Single Periodic Waveguide Phased-Array Antenna "
last modified 16. Jan 2006 5:42
printed 10. Feb 2012 10:05, Article ID 132
URL:

All rights reserved.
Without prior written permission of CST, no part of this publication may be reproduced by any method, be stored or transferred into an electronic data processing system, neither mechanical or by any other method.

Other Articles

Left-Handed Wave Propagation of a Coplanar Waveguide based on Split Ring Resonators

Left-Handed Wave Propagation of a Coplanar Waveguide based on Split Ring Resonators
Metamaterials are a new class of man-made materials that can be engineered to respond to electromagntec fields in unconventional ways. The response of a material to an EM field is described by permittivity and can be tuned in meta-materials to assume negative values. This means that the material can reverse the phase of propagating waves and are commonly referred to as left-handed materials (LHM). A famous concept of LHM -the Split Ring Resonator (SRR) consists of periodic metallic structures controlling EM-properties on a macroscopic scale. The model presented here consists of a coplanar waveguide (CPW) periodically coupled to SRRs forming a bandpass behaviour. Read full article..

A Small, Efficient, Linear-polarized Omni-directional Antenna

A Small, Efficient, Linear-polarized Omni-directional Antenna
Nearly full-sized performance from a spherical coil only 1/6th as long in the E-plane normal direction as a half-wave dipole antenna. Read full article..

Consistent Charged Particle Simulation of a Pierce Gun

Consistent Charged Particle Simulation of a Pierce Gun
The pierce type gun example demonstrates the analysis of an electrically large gun configuration using CST PARTICLE STUDIO™ Read full article..

Light Trapping in Thin-Film Silicon Solar Cells with periodic Nano-Structures

Light Trapping in Thin-Film Silicon Solar Cells with periodic Nano-Structures
This article summarises the simulation study conducted with CST MICROWAVE STUDIO® (CST MWS) of thin-film silicon solar cells with nano-structured interfaces. The good agreement between the experimental data and solar cell simulations shows the reliability and versatility of the performed FIT simulations to investigate nano-optics of thin-film solar cell devices in 3 dimensions. This article is presented with the courtesy and permission of Hasse, C. and Stiebig, H. , Forschungszentrum Juelich who gave a presentation of their work at the CST European User group Meeting at Boppard, Germany, 9-10th March 2006. Read full article..

Ultra-Wide-Band Printed Circular Dipole Antenna

Ultra-Wide-Band Printed Circular Dipole Antenna
A UWB dipole antenna composed of circular arms containing a special feeding system is modeled simulated using CST MICROWAVE STUDIO®, the results of which are presented in this article. The design, developed by IETR-INSA / Thomson R&D France, shows good broadband matching (3-10 GHz) and an omnidiectional radiation pattern up to 6 GHz. Read full article..

Back