Characteristic modes (CM) form a set of functions which, under specific boundary conditions, diagonalizes operator relating field and induced sources. Under certain conditions, the set of the CM is unique and complete (at least theoretically) and thereby capable of describing the behavior of a studied object in full.
This article deals with characteristic mode decomposition in electromagnetics, a domain in which the CM theory has originally been proposed.
Background
CM decomposition was originally introduced as set of modes diagonalizing a scattering matrix.[1][2] The theory has, subsequently, been generalized by Harrington and Mautz for antennas.[3][4] Harrington, Mautz and their students also successively developed several other extensions of the theory.[5][6][7][8] Even though some precursors[9] were published back in the late 1940s, the full potential of CM has remained unrecognized for an additional 40 years. The capabilities of CM were revisited[10] in 2007 and, since then, interest in CM has dramatically increased. The subsequent boom of CM theory is reflected by the number of prominent publications and applications.
The scattering of an electromagnetic wave on a PEC body is represented via a boundary condition on the PEC body, namely
with representing unitary normal to the PEC surface, representing incident electric field intensity, and representing scattered electric field intensity defined as
and being wavenumber. The integro-differential operator is the one to be diagonalized via characteristic modes.
The governing equation of the CM decomposition is
with and being real and imaginary parts of impedance operator, respectively: The operator, is defined by
The outcome of (1) is a set of characteristic modes , , accompanied by associated characteristic numbers . Clearly, (1) is a generalized eigenvalue problem, which, however, cannot be analytically solved (except for a few canonical bodies[11]). Therefore, the numerical solution described in the following paragraph is commonly employed.
Matrix formulation
Discretization of the body of the scatterer into subdomains as and using a set of linearly independent piece-wise continuous functions , , allows current density to be represented as
and by applying the Galerkin method, the impedance operator (2)
The eigenvalue problem (1) is then recast into its matrix form
which can easily be solved using, e.g., the generalized Schur decomposition or the implicitly restarted Arnoldi method yielding a finite set of expansion coefficients and associated characteristic numbers . The properties of the CM decomposition are investigated below.
Properties
The properties of CM decomposition are demonstrated in its matrix form.
where superscript denotes the Hermitian transpose and where represents an arbitrary surface current distribution, correspond to the radiated power and the reactive net power,[12] respectively. The following properties can then be easily distilled:
The weighting matrix is theoretically positive definite and is indefinite. The Rayleigh quotient
then spans the range of and indicates whether the characteristic mode is capacitive (), inductive (), or in resonance (). In reality, the Rayleigh quotient is limited by the numerical dynamics of the machine precision used and the number of correctly found modes is limited.
The characteristic numbers evolve with frequency, i.e., , they can cross each other, or they can be the same (in case of degeneracies[13]). For this reason, the tracking of modes is often applied to get smooth curves .[14][15][16][17][18] Unfortunately, this process is partly heuristic and the tracking algorithms are still far from perfection.[11]
The characteristic modes can be chosen as real-valued functions, . In other words, characteristic modes form a set of equiphase currents.
The CM decomposition is invariant with respect to the amplitude of the characteristic modes. This fact is used to normalize the current so that they radiate unitary radiated power
This last relation presents the ability of characteristic modes to diagonalize the impedance operator (2) and demonstrates far field orthogonality, i.e.,
Modal quantities
The modal currents can be used to evaluate antenna parameters in their modal form, for example:
CM decomposition has recently been implemented in major electromagnetic simulators, namely in FEKO,[42] CST-MWS,[43] and WIPL-D.[44] Other packages are about to support it soon, for example HFSS[45] and CEM One.[46] In addition, there is a plethora of in-house and academic packages which are capable of evaluating CM and many associated parameters.
Alternative bases
CM are useful to understand radiator's operation better. They have been used with great success for many practical purposes. However, it is important to stress that they are not perfect and it is often better to use other formulations such as energy modes,[47] radiation modes,[47] stored energy modes[32] or radiation efficiency modes.[48]
References
^Garbacz, R.J. (1965). "Modal expansions for resonance scattering phenomena". Proceedings of the IEEE. 53 (8): 856–864. doi:10.1109/proc.1965.4064. ISSN0018-9219.
^Garbacz, R. J., "A Generalized Expansion for Radiated and Scattered Fields," PhD thesis, Department of Electrical Engineering, The Ohio State Univ., 1968.
^El-Hajj, A.; Kabalan, K.Y.; Harrington, R.F. (1993). "Characteristic mode analysis off electromagnetic coupling through multiple slots in a conducting plane". IEE Proceedings H - Microwaves, Antennas and Propagation. 140 (6): 421. doi:10.1049/ip-h-2.1993.0069. ISSN0950-107X.
^Montgomery, C. G.; Dicke, R.H.; Purcell, E. M., Principles of Microwave Circuits, Section 9.24, New York, United States: McGraw-Hill, 1948.
^Cabedo-Fabres, Marta; Antonino-Daviu, Eva; Valero-Nogueira, Alejandro; Bataller, Miguel (2007). "The Theory of Characteristic Modes Revisited: A Contribution to the Design of Antennas for Modern Applications". IEEE Antennas and Propagation Magazine. 49 (5): 52–68. Bibcode:2007IAPM...49...52C. doi:10.1109/map.2007.4395295. ISSN1045-9243. S2CID32826951.
^Ludick, D.J.; Jakobus, U.; Vogel, M. (2014). A tracking algorithm for the eigenvectors calculated with characteristic mode analysis. Proceedings of the 8th European Conference on Antennas and Propagation. IEEE. pp. 569–572. doi:10.1109/eucap.2014.6901820. ISBN978-88-907018-4-9.
^Wu, Qi; Su, Donglin (2013). "A Broadband Model of the Characteristic Currents for Rectangular Plates". IEEE Transactions on Electromagnetic Compatibility. 55 (4): 725–732. doi:10.1109/temc.2012.2221718. ISSN0018-9375. S2CID25382863.
^Rabah, M. Hassanein; Seetharamdoo, Divitha; Berbineau, Marion (2016). "Analysis of Miniature Metamaterial and Magnetodielectric Arbitrary-Shaped Patch Antennas Using Characteristic Modes: Evaluation of the $Q$ Factor". IEEE Transactions on Antennas and Propagation. 64 (7): 2719–2731. Bibcode:2016ITAP...64.2719R. doi:10.1109/tap.2016.2571723. ISSN0018-926X. S2CID23639874.
^Rabah, M. Hassanein; Seetharamdoo, Divitha; Berbineau, Marion; De Lustrac, Andre (2016). "New Metrics for Artificial Magnetism From Metal-Dielectric Metamaterial Based on the Theory of Characteristic Modes". IEEE Antennas and Wireless Propagation Letters. 15: 460–463. Bibcode:2016IAWPL..15..460R. doi:10.1109/lawp.2015.2452269. ISSN1536-1225. S2CID21297328.
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