Journal of Electromagnetic Analysis and Applications
Vol.08 No.12(2016), Article ID:72816,10 pages
10.4236/jemaa.2016.812024
The Effect of Laminate Angles in Composite Substrates on the Performance of Rectangular Microstrip Antenna
C. C. Hung1, S. M. Yang2
1Department of Aeronautical and Opto-Mechatronic Engineering, Vanung University, Taiwan
2Department of Aeronautics and Astronautics, National Cheng Kung University, Taiwan

Copyright © 2016 by authors and Scientific Research Publishing Inc.
This work is licensed under the Creative Commons Attribution International License (CC BY 4.0).
http://creativecommons.org/licenses/by/4.0/



Received: October 6, 2016; Accepted: December 13, 2016; Published: December 16, 2016
ABSTRACT
The performance of a microstrip antenna has been known sensitive to substrate’s dielectric properties, which is dependent on the angle of laminate layers inside a composite laminated substrate. Modal analysis in spectral domain is applied to investigate the resonant frequency and radiation pattern of rectangular microstrip antenna on composite substrates. It is shown that the substrate’s dielectric properties are dependent upon the laminate angles, i.e., upon the orientation of the antenna relative to the substrate’s fiber direction. For the same operating frequency, the antenna size on composite substrates is larger than that on isotropic substrates, and the far field pattern is also more directional.
Keywords:
Spectral Domain Analysis, Microstrip Antenna, Composite Materials

1. Introduction
Many studies of microstrip antenna design often assumed the substrate to be isotropic with uniform dielectric property. This “isotropic assumption” was made to conjecture the performance of a microstrip antenna attached on Kevlar composite substrate [1] and composite structure [2] . It has been known, however, that the resonant frequency of a microstrip antenna depends upon the substrate’s dimension (thickness) and material properties (permittivity and tangent loss). Yet little is known about the effects of composite substrate’s dielectric properties on antenna performance because of insufficient analytical models and/or numerical tools.
Composite laminated substrates have been widely used in aerospace structures, where continuous fiber/matrix layers stacking at suitable laminate angles can achieve desirable mechanical properties. Such substrates also facilitate embed- ding sensor/actuator and microstrip antenna to improve aerodynamic perfor- mance [3] . Previous studies of microstrip antenna in composite substrates were often by numerical methods, but none was able to predict the effects of different laminate angles on the substrate’s dielectric properties, and antenna performance.
The performance of a microstrip antenna attached on anisotropic layer is found to be strongly influenced by the substrate’s dielectric properties [4] [5] . A solution technique in frequency domain for analyzing electromagnetic wave propagation was developed to study an antenna embedded in composite laminated substrates [6] and to investigate the effect of dielectric overlay [7] . Recent study on microstrip antenna arrays on honey comb sandwich substrate [8] and composite laminated substrate [9] also validated that the antenna performance was sensitive to the substrate’s dielectric property―a function of the substrate’s laminate angles. Electromagnetic co-design by modeling the substrate structure is necessary [10] . Analytical solution would be desirable to conduct parametric study on substrate’s laminate angles affecting antenna performance.
2. Solution by Spectral Domain Analysis
Recent development of Conformal Load-bearing Antenna Structure (CLAS) by embedding microstrip antenna inside composite laminated substrates has been considered desirable. For a microstrip antenna with optical axis in y-direction on anisotropic substrate as illustrated in Figure 1, the permittivity matrix is
Figure 1. A microstrip antenna with its x-y-z axes of dimension (L ´ W) on the substrate with
(1)
with dielectric constant
along the fiber direction and
along the other two normal axes, where
,
,
and
are the relative
permittivity, and
in free-space. In isotropic substrates, the
optical axis (principal radiation direction) is normal to the antenna patch such that the permittivity matrix remains diagonal. In composite substrates, however, the antenna’s axes (x-y-z) may not necessarily be co-linear with any of the substrate’s principal axes (
potentials
and
. In vector form 
and
, where
is the unit vector of coordinate transformation between the antenna’s x-y-z and the substrate’s 1-2-3 axes. The wave equations in terms of the Fourier transform pairs
and
can be written as
, (2a)
, (2b)
where

and
By the solution technique in spectral domain [4] , the electric and magnetic fields of a substrate (denoted by superscript s) are represented by the Hertzian potentials,



and



The Hertzian potentials are obtained by solving Equations 2(a) and 2(b)


Similarly the solutions in the air medium (with superscript a) are


where 












The immittance matrix in Equation (6) is function of the laminate angle







The size, resonant frequency, and the radiation pattern of a microstrip antenna on substrates of different laminate angles can then be calculated.
3. Resonant Frequency by Modal Analysis
For a rectangular microstrip antenna of dimension L ´ W, the base functions in modal analysis for solving Equation (6) can be selected as


and in spectral domain they are


where 
Consider the rectangular antenna from previous works [11] [12] : L =





Figure 2. Resonant frequency of a microstrip antenna (L = 1.0 cm and W = 0.2 cm) on substrates

with increasing





In order to illustrate the effects of laminate angle on antenna performance, denote the size of a 2.4 GHz antenna on isotropic substrate by length 






In addition, the laminate angle has profound impact on the patch size of a 2.4 GHz antenna. For a given size of rectangular microstrip antenna, Figure 3(b) shows that the resonant frequency is dependent upon the laminate angle. At





These results show that the laminate angle is critical to antenna performance. Electromagnetic wave propagation is very much influenced when


4. Antenna Pattern by Modal Analysis
In addition to antenna size and resonant frequency, the effects of laminate angle on radiation pattern are even more sensitive. The far field patterns of an antenna operating at 2.4 GHz on y-z plane are shown in Figure 4. The radiation efficiency is scaled in the direction perpendicular to the microstrip patch, and the pattern of isotropic substrate (bold line) with the maxima in the normal direction is also plotted for reference. On composite substrates, however, the maxima will be shifted from the normal direction and is dependent on the laminate angle.
Figure 3. (a) The dimension of a 2.4 GHz microstrip antenna 

Figure 4. The far field patterns of a 2.4 GHz microstrip antenna on composite substrates (d = 1.00 cm) of anisotropic ratio (a) η = 0.50 and (b) η = 0.75 at different laminate angles
In Figure 4(a), the E-field pattern on substrate with 



5. Conclusions
1) An electromagnetic model in spectral domain has been applied to investigate the effects of substrate’s laminate angle on antenna performance. The non-diagonal permittivity matrix from different laminate angles comes from the fact that the fiber direction of the laminate layer may not necessarily align with the antenna’s optical axis. Modal analysis shows that the laminate angle has strong influence on antenna design. The resonant frequency of a rectangular microstrip antenna is very much different from that on isotropic or uniaxial substrates. The antenna size deviates lower at all laminate angles, except 
2) Analyses show that the resonant frequency, and hence the length ratio Liso/ L, varies at different laminate angles, and the variations are more noticeable as thickness increases. The far field patterns show that the maxima will not always be in the normal direction and is dependent on the laminate angle. The performance of a microstrip antenna on composite substrate is very much different from that on isotropic substrate.
Acknowledgements
This work was supported in part by the National Science Council, Taiwan, under NSC100-2221-E006-098-MY3.
Cite this paper
Hung, C. C. and Yang, S. M. (2016) The Effect of Laminate Angles in Composite Substrates on the Per- formance of Rectangular Microstrip Anten- na. Journal of Electromagnetic Analysis and Applications, 8, 261-270. http://dx.doi.org/10.4236/jemaa.2016.812024
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