Vol. 125
Latest Volume
All Volumes
PIER 180 [2024] PIER 179 [2024] PIER 178 [2023] PIER 177 [2023] PIER 176 [2023] PIER 175 [2022] PIER 174 [2022] PIER 173 [2022] PIER 172 [2021] PIER 171 [2021] PIER 170 [2021] PIER 169 [2020] PIER 168 [2020] PIER 167 [2020] PIER 166 [2019] PIER 165 [2019] PIER 164 [2019] PIER 163 [2018] PIER 162 [2018] PIER 161 [2018] PIER 160 [2017] PIER 159 [2017] PIER 158 [2017] PIER 157 [2016] PIER 156 [2016] PIER 155 [2016] PIER 154 [2015] PIER 153 [2015] PIER 152 [2015] PIER 151 [2015] PIER 150 [2015] PIER 149 [2014] PIER 148 [2014] PIER 147 [2014] PIER 146 [2014] PIER 145 [2014] PIER 144 [2014] PIER 143 [2013] PIER 142 [2013] PIER 141 [2013] PIER 140 [2013] PIER 139 [2013] PIER 138 [2013] PIER 137 [2013] PIER 136 [2013] PIER 135 [2013] PIER 134 [2013] PIER 133 [2013] PIER 132 [2012] PIER 131 [2012] PIER 130 [2012] PIER 129 [2012] PIER 128 [2012] PIER 127 [2012] PIER 126 [2012] PIER 125 [2012] PIER 124 [2012] PIER 123 [2012] PIER 122 [2012] PIER 121 [2011] PIER 120 [2011] PIER 119 [2011] PIER 118 [2011] PIER 117 [2011] PIER 116 [2011] PIER 115 [2011] PIER 114 [2011] PIER 113 [2011] PIER 112 [2011] PIER 111 [2011] PIER 110 [2010] PIER 109 [2010] PIER 108 [2010] PIER 107 [2010] PIER 106 [2010] PIER 105 [2010] PIER 104 [2010] PIER 103 [2010] PIER 102 [2010] PIER 101 [2010] PIER 100 [2010] PIER 99 [2009] PIER 98 [2009] PIER 97 [2009] PIER 96 [2009] PIER 95 [2009] PIER 94 [2009] PIER 93 [2009] PIER 92 [2009] PIER 91 [2009] PIER 90 [2009] PIER 89 [2009] PIER 88 [2008] PIER 87 [2008] PIER 86 [2008] PIER 85 [2008] PIER 84 [2008] PIER 83 [2008] PIER 82 [2008] PIER 81 [2008] PIER 80 [2008] PIER 79 [2008] PIER 78 [2008] PIER 77 [2007] PIER 76 [2007] PIER 75 [2007] PIER 74 [2007] PIER 73 [2007] PIER 72 [2007] PIER 71 [2007] PIER 70 [2007] PIER 69 [2007] PIER 68 [2007] PIER 67 [2007] PIER 66 [2006] PIER 65 [2006] PIER 64 [2006] PIER 63 [2006] PIER 62 [2006] PIER 61 [2006] PIER 60 [2006] PIER 59 [2006] PIER 58 [2006] PIER 57 [2006] PIER 56 [2006] PIER 55 [2005] PIER 54 [2005] PIER 53 [2005] PIER 52 [2005] PIER 51 [2005] PIER 50 [2005] PIER 49 [2004] PIER 48 [2004] PIER 47 [2004] PIER 46 [2004] PIER 45 [2004] PIER 44 [2004] PIER 43 [2003] PIER 42 [2003] PIER 41 [2003] PIER 40 [2003] PIER 39 [2003] PIER 38 [2002] PIER 37 [2002] PIER 36 [2002] PIER 35 [2002] PIER 34 [2001] PIER 33 [2001] PIER 32 [2001] PIER 31 [2001] PIER 30 [2001] PIER 29 [2000] PIER 28 [2000] PIER 27 [2000] PIER 26 [2000] PIER 25 [2000] PIER 24 [1999] PIER 23 [1999] PIER 22 [1999] PIER 21 [1999] PIER 20 [1998] PIER 19 [1998] PIER 18 [1998] PIER 17 [1997] PIER 16 [1997] PIER 15 [1997] PIER 14 [1996] PIER 13 [1996] PIER 12 [1996] PIER 11 [1995] PIER 10 [1995] PIER 09 [1994] PIER 08 [1994] PIER 07 [1993] PIER 06 [1992] PIER 05 [1991] PIER 04 [1991] PIER 03 [1990] PIER 02 [1990] PIER 01 [1989]
2012-02-18
An Efficient Method for the Computation of Mixed Potential Green's Functions in Cylindrically Stratified Media
By
Progress In Electromagnetics Research, Vol. 125, 37-53, 2012
Abstract
Closed-form mixed potential Green's functions (MPGFs) for cylindrically stratified media are derived in terms of quasistatic-wave and surface-wave contributions. In order to avoid possible overflow/underflow problems in the numerical calculations of special cylindrical functions such as Bessel and Hankel functions, a novel form of the spectral-domain MPGFs is developed. Then, a two-level methodology is used for the approximation of the spectral-domain MPGFs. In the first step, the qusistatic components are extracted from the spectral-domain MPGFs, and then transformed into the space domain with the use of the Sommerfeld identity and its derivatives. In the second step, the remaining parts of the spectral-domain MPGFs are approximated in terms of pole-residue expressions via the rational function fitting method (RFFM). The proposed method is efficient and fully automatic, which avoids an analytical cumbersome extraction of the surface wave poles (SWPs), prior to the spectrum fitting. In addition, this method can evaluate the spatial-domain MPGFs accurately and efficiently for both the near- and far-fields. Finally, numerical results for the spatial-domain MPGFs of a two-layer structure are presented and discussed.
Citation
Liang Feng Ye, Ke Xiao, Lei Qiu, Shun-Lian Chai, and Jun-Jie Mao, "An Efficient Method for the Computation of Mixed Potential Green's Functions in Cylindrically Stratified Media," Progress In Electromagnetics Research, Vol. 125, 37-53, 2012.
doi:10.2528/PIER11112311
References

1. Wang, Q. and Q. Q. He, "An arbitrary conformal array pattern synthesis method that includes mutual coupling and platform effects," Progress In Electromagnetics Research, Vol. 110, 297-311, 2010.
doi:10.2528/PIER10092204

2. Li, W.-T., Y.-Q. Hei, and X.-W. Shi, "Pattern synthesis of conformal arrays by a modified particle swarm optimization," Progress In Electromagnetics Research, Vol. 117, 237-252, 2011.

3. Wang, X., M. Zhang, and S.-J. Wang, "Practicability analysis and application of PBG structures on cylindrical conformal microstrip antenna and array," Progress In Electromagnetics Research, Vol. 115, 495-507, 2011.

4. Bucinskas, J., L. Nickelson, and V. Sugurovas, "Microwave scattering and absorption by a multilayered lossy metamaterial --- Glass cylinder," Progress In Electromagnetics Research, Vol. 105, 103-118, 2010.
doi:10.2528/PIER10041711

5. Yang, P., F. Yang, and Z.-P. Nie, "DOA estimation with subarray divided technique and interporlated esprit algorithm on a cylindrical conformal array antenna," Progress In Electromagnetics Research, Vol. 103, 201-216, 2010.
doi:10.2528/PIER10011904

6. Hall, R. C., C. H. Thng, and D. C. Chang, "Mixed potential Green's functions for cylindrical microstrip structures," IEEE Antennas Propagat. Soc. Int Symp., Vol. 4, 1776-1779, 1995.

7. Svezhentsev, A. Y. and G. A. E. Vandenbosch, "Mixed-potential Green's functions for sheet electric current over metal-dielectric cylindrical structure," Journal of Electromagnetic Waves and Applications, Vol. 16, No. 6, 813-835, 2002.
doi:10.1163/156939302X00174

8. Svezhentsev, A. Y. and G. A. E. Vandenbosch, "Spatial Green's function singularity for sheet electric current over dielectric coated cylinder," IEEE Trans. on Antennas and Propagat., Vol. 52, No. 2, 608-610, 2004.
doi:10.1109/TAP.2003.820951

9. Svezhentsev, A. Y. and G. A. E. Vandenbosch, "Efficient spatial domain moment method solution of cylindrical rectangular microstrip antennas," IEE Proc. Microw. Antennas Propag., Vol. 153, No. 4, 376-384, 2006.
doi:10.1049/ip-map:20045057

10. Svezhentsev, A. Y., "Mixed-potential Green's function of an axially symmetric sheet magnetic current on a circular cylindrical metal surface," Progress In Electromagnetics Research, Vol. 60, 245-264, 2006.
doi:10.2528/PIER06010403

11. Sun, J., Development of Green's functions and its application for cylindrically stratified media, Ph.D. Thesis, Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 2004.

12. Sun, J., C.-F. Wang, J. L.-W. Li, and M.-S. Leong, "Mixed potential spatial domain Green's functions in fast computational form for cylindrically stratified media," Progress In Electromagnetics Research, Vol. 45, 181-199, 2004.
doi:10.2528/PIER03071501

13. Sun, J., C. F. Wang, L. W. Li, and M. S. Leong, "Further improvement for fast computation of mixed potential Green's functions for cylindrically stratified media," IEEE Trans. on Antennas and Propagat., Vol. 52, No. 11, 3026-3036, 2004.
doi:10.1109/TAP.2004.834464

14. Tokgoz, C. and G. Dural, "Closed-form Green's functions for cylindrically stratified media," IEEE Trans. on Microwave Theory and Tech., Vol. 48, No. 1, 40-49, 2000.
doi:10.1109/22.817470

15. Karan, S., V. B. Erturk, and A. Altintas, "Closed-form Green's function representations in cylindrically stratified media for method of moments applications," IEEE Antennas Propagat., Vol. 57, No. 4, 1158-1168, 2009.
doi:10.1109/TAP.2009.2015796

16. Acar, R. C., "Numerically efficient analysis and design of conformal printed structures in cylindrically layered media," Ph.D. Thesis, Department of Electrical and Computer Engineering, Middle East Technical Univ., Ankara, Turkey, 2007.

17. Okhmatovski, V. I. and A. C. Cangellaris, "Evaluation of layered media Green's functions via rational function fitting," IEEE Microw. Wireless Compon. Lett., Vol. 14, No. 1, 22-24, 2004.
doi:10.1109/LMWC.2003.821492

18. Kourkoulos, V. N. and A. C. Cangellaris, "Accurate approximation of Green's functions in planar stratified media in terms of a finite sum of spherical and cylindrical waves," IEEE Trans. on Antennas and Propagat., Vol. 54, No. 5, 1568-1576, 2006.
doi:10.1109/TAP.2006.874329

19. Polimeridis, A. G., T. V. Yioultsis, and T. D. Tsiboukis, "A robust method for the computation of Green's functions in stratified media," IEEE Trans. on Antennas and Propagat., Vol. 55, No. 7, 1963-1969, 2007.
doi:10.1109/TAP.2007.900258

20. Gustavsen, B. and A. Semlyen, "Rational approximation of frequency domain responses by vector fitting," IEEE Trans. on Power Del., Vol. 14, No. 3, 1052-1061, 1999.
doi:10.1109/61.772353

21. Gustavsen, B., "Improving the pole relocating properties of vector fitting," IEEE Trans. on Power Del., Vol. 21, No. 3, 1587-1592, 2006.
doi:10.1109/TPWRD.2005.860281

22. Ye, L. F., F. Zhao, K. Xiao, and S. L. Chai, "A robust method for the computation of Green's functions in cylindrically stratified media," IEEE Trans. on Antennas and Propagat., to be published.

23. Acar, R. C. and G. Dural, "Mutual coupling of printed elements on a cylindrically layered structure using closed-form Green's functions," Progress In Electromagnetics Research, Vol. 78, 103-127, 2008.
doi:10.2528/PIER07082101

24. Akyuz, M. S., V. B. Erturk, and M. Kalfa, "Closed-form Green's function representations for mutual coupling calculations between apertures on a perfect electric conductor circular cylinder covered with dielectric layers," IEEE Trans. on Antennas and Propagat., Vol. 59, No. 8, 3094-3098, 2011.
doi:10.1109/TAP.2011.2158787

25. Wang, D. X., E. K. N. Yung, R. S. Chen, and J. Bao, "A new method for locating the poles of Green's functions in a lossless or lossy multilayered medium," IEEE Trans. on Antennas and Propagat., Vol. 58, No. 7, 2295-2300, Jul. 2010.
doi:10.1109/TAP.2010.2046830