Abstract:
A periodic moment-method solution for scattering from a doubly periodic array of lossy dielectric bodies is developed. The purpose is to design electromagnetic wedge and ...Show MoreMetadata
Abstract:
A periodic moment-method solution for scattering from a doubly periodic array of lossy dielectric bodies is developed. The purpose is to design electromagnetic wedge and pyramidal absorbers for low reflectivity so that one can improve the performance of anechoic chamber measurements. The spectral-domain formulation and the moment-method volume polarization current approach are used to obtain the expressions for determining the scattering from a doubly periodic array of lossy dielectric bodies. Some wedge and pyramidal absorber configurations that have been designed, fabricated, and tested in the OSU/ESL compact range measurement facility are presented. By taking into account the complexity of real-world material structures, good agreement between calculations and measurements has been obtained.<>
Published in: IEEE Transactions on Antennas and Propagation ( Volume: 41, Issue: 5, May 1993)
DOI: 10.1109/8.222279
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Cites in Papers - IEEE (46)
Select All
1.
Pei-Yang Zhou, Zi He, Xue-Wen Chen, Da-Zhi Ding, "Efficient Calculation of Electromagnetic Characteristics of 2-D Periodic Dielectric Objects Above Half-Space", IEEE Geoscience and Remote Sensing Letters, vol.21, pp.1-5, 2024.
2.
Arya Fallahi, Amin Enayati, "A Synthesis Process for Microwave Absorber Design Based on Pyramidal Absorbers", 2022 16th European Conference on Antennas and Propagation (EuCAP), pp.1-4, 2022.
3.
Arya Fallahi, Amin Enayati, "A Synthesis Process for Microwave Absorber Design Based on Pyramidal Absorbers", 2022 16th European Conference on Antennas and Propagation (EuCAP), pp.1-4, 2022.
4.
Arya Fallahi, Amin Enayati, "Accelerating the Full-wave Simulation of Pyramidal Absorbers Using the Structure Symmetries", 2021 15th European Conference on Antennas and Propagation (EuCAP), pp.1-4, 2021.
5.
Digang Fan, Ruixin Wu, Yimin Hu, Xintao Li, "An Expand Polypropylene Based High-performance Electromagnetic Wave Absorber", 2019 International Applied Computational Electromagnetics Society Symposium - China (ACES), vol.1, pp.1-2, 2019.
6.
Arya Fallahi, Amin Enayati, "Modeling Pyramidal Absorbers Using the Fourier Modal Method and the Mode Matching Technique", IEEE Transactions on Electromagnetic Compatibility, vol.58, no.3, pp.820-827, 2016.
7.
Junhong Wang, Zhan Zhang, "Calculation of the scattering field of lossy finite-size object", 2016 IEEE International Conference on Computational Electromagnetics (ICCEM), pp.336-337, 2016.
8.
Sergei P. Skobelev, Olga N. Smolnikova, "Analysis of Doubly Periodic Inhomogeneous Dielectric Structures by a Hybrid Projective Method", IEEE Transactions on Antennas and Propagation, vol.61, no.10, pp.5078-5087, 2013.
9.
Le Wang, Guangwen George Pan, "Coifman Wavelets in 3-D Scattering From a Calibration Target Consisting of Doubly Periodic Sharp Metal Cones", IEEE Transactions on Antennas and Propagation, vol.61, no.9, pp.4665-4674, 2013.
10.
Lujun Wu, Qun Wang, Zhanghong Tang, "Absorbing properties of three dimensional honeycomb-structured absorbing materials", 2012 6th Asia-Pacific Conference on Environmental Electromagnetics (CEEM), pp.309-312, 2012.
11.
Sergei P. Skobelev, "A Modification of the Kummer's Method for Efficient Computation of the 2-D and 3-D Green's Functions for 1-D Periodic Structures", IEEE Transactions on Antennas and Propagation, vol.60, no.1, pp.412-416, 2012.
12.
Sergei P. Skobelev, "A modification of the kummer's method for efficient computation of the 2-D Green's functions for 1-D periodic structures", 2011 XXXth URSI General Assembly and Scientific Symposium, pp.1-4, 2011.
13.
Kenneth L. Ford, Daniel G. Holtby, Barry Chambers, "Oblique incidence optimisation of a pyramidal absorber using a frequency selective surface", Proceedings of the Fourth European Conference on Antennas and Propagation, pp.1-4, 2010.
14.
Junhong Wang, Yujie Yang, Jungang Miao, Yunmei Chen, "Emissivity Calculation for a Finite Circular Array of Pyramidal Absorbers Based on Kirchhoff's Law of Thermal Radiation", IEEE Transactions on Antennas and Propagation, vol.58, no.4, pp.1173-1180, 2010.
15.
Daniel G. Holtby, Kenneth L. Ford, Barry Chambers, "Genetic Algorithm optimisation of dual polarised pyramidal absorbers loaded with a binary FSS", 2009 Loughborough Antennas & Propagation Conference, pp.217-220, 2009.
16.
Junhong Wang, "Research on the interception power of finite object in plane wave", 2009 5th Asia-Pacific Conference on Environmental Electromagnetics, pp.26-29, 2009.
17.
Michael M. Ivanishin, Sergei P. Skobelev, "A Modification of the Kummer's Method for Efficient Computation of the Green's Function for Doubly Periodic Structures", IEEE Transactions on Antennas and Propagation, vol.57, no.9, pp.2794-2798, 2009.
18.
Daniel G. Holtby, Kenneth L. Ford, Barry Chamber, "Optimisation of a stepped permittivity impedance loaded (SPIL) absorber", 2009 3rd European Conference on Antennas and Propagation, pp.2691-2693, 2009.
19.
Daniel G. Holtby, Kenneth L. Ford, Barry Chambers, "Genetic algorithm optimisation of pyramidal absorbers loaded with a binary FSS", 2009 3rd European Conference on Antennas and Propagation, pp.3878-3880, 2009.
20.
Junhong Wang, Jungang Miao, Yujie Yang, Yunmei Chen, "Scattering Property and Emissivity of a Periodic Pyramid Array Covered With Absorbing Material", IEEE Transactions on Antennas and Propagation, vol.56, no.8, pp.2656-2663, 2008.
21.
Kenneth Lee Ford, Barry Chambers, "Improvement in the Low Frequency Performance of Geometric Transition Radar Absorbers Using Square Loop Impedance Layers", IEEE Transactions on Antennas and Propagation, vol.56, no.1, pp.133-141, 2008.
22.
K. L. Ford, D. Holtby, B. Chambers, "Pyramidal absorbers loaded with resistive FSS", 2007 IEEE Antennas and Propagation Society International Symposium, pp.4553-4556, 2007.
23.
K. L. Ford, B. Chambers, "Optimum performance of pyramidal absorbers using impedance loading layers", 2007 IEEE Antennas and Propagation Society International Symposium, pp.4517-4520, 2007.
24.
Kenneth Lee Ford, Barry Chambers, "Application of Impedance Loading to Geometric Transition Radar Absorbent Material", IEEE Transactions on Electromagnetic Compatibility, vol.49, no.2, pp.339-345, 2007.
25.
K.L. Ford, B. Chambers, "A New Approach to the Design of Low Frequency Radar Absorbent Materials", 2007 International workshop on Antenna Technology: Small and Smart Antennas Metamaterials and Applications, pp.353-356, 2007.
26.
Kwan-Ho Lee, Chi-Chih Chen, Robert Lee, "UWB Dual-Linear Polarization Dielectric Horn Antennas as Reflector Feeds", IEEE Transactions on Antennas and Propagation, vol.55, no.3, pp.798-804, 2007.
27.
Chih-Ping Chang, Chang-Fa Yang, "A moment method solution for the shielding properties of three-dimensional objects above a lossy half space", IEEE Transactions on Electromagnetic Compatibility, vol.47, no.4, pp.723-730, 2005.
28.
V.I. Demidchik, M.U. Sitsko, "Electromagnetic wave absorbers simulation", 2005 15th International Crimean Conference Microwave & Telecommunication Technology, vol.2, pp.653-654 Vol. 2, 2005.
29.
L.C. Trintinalia, Hao Ling, "Integral equation modeling of multilayered doubly-periodic lossy structures using periodic boundary condition and a connection scheme", IEEE Transactions on Antennas and Propagation, vol.52, no.9, pp.2253-2261, 2004.
30.
Chang-Fa Yang, Boau-Cheng Wu, "A ray-tracing/PMM hybrid approach for determining wave propagation through periodic structures", IEEE Transactions on Vehicular Technology, vol.50, no.3, pp.791-795, 2001.
Cites in Papers - Other Publishers (19)
1.
Amirhossein Ahmadi, Parisa Dehkhoda, Ahad Tavakoli, Mojtaba Dehmollaian, "Transmission and Reflection Characteristics of a Multi-Layered Wall with Doubly Periodic Interfaces", AEU - International Journal of Electronics and Communications, pp.153087, 2020.
2.
Youji Kotsuka, "Fundamentals of Electromagnetic Wave Absorbers" in Electromagnetic Wave Absorbers: Detailed Theories and Applications, pp.1-15, 2019.
3.
Youji Kotsuka, "Methods of Absorber Analysis" in Electromagnetic Wave Absorbers: Detailed Theories and Applications, pp.65-82, 2019.
4.
S. P. Skobelev, O. N. Smol?nikova, "Analysis of 1D periodic dielectric structures using a hybrid projection method", Journal of Communications Technology and Electronics, vol.57, no.10, pp.1073, 2012.
5.
Mingji Chen, Yongmao Pei, Daining Fang, "Design, fabrication, and characterization of lightweight and broadband microwave absorbing structure reinforced by two dimensional composite lattice", Applied Physics A, vol.108, no.1, pp.75, 2012.
6.
Viacheslav Kubytskyi, Bernard Sapoval, Gwenael Dun, Jean-Francois Rosnarho, "Fast optimization of microwave absorbers", Microwave and Optical Technology Letters, vol.54, no.11, pp.2472, 2012.
7.
Martijn C. van Beurden, "Fast convergence with spectral volume integral equation for crossed block-shaped gratings with improved material interface conditions", Journal of the Optical Society of America A, vol.28, no.11, pp.2269, 2011.
8.
D.G. Holtby, K.L. Ford, B. Chambers, "Geometric transition radar absorbing material loaded with a binary frequency selective surface", IET Radar, Sonar & Navigation, vol.5, no.4, pp.483-488, 2011.
9.
Yan Shi, Chi Hou Chan, "Multilevel Greens function interpolation method for analysis of 3-D frequency selective structures using volume/surface integral equation", Journal of the Optical Society of America A, vol.27, no.2, pp.308, 2010.
10.
Mingji Chen, Yongmao Pei, Daining Fang, "Computational method for radar absorbing composite lattice grids", Computational Materials Science, vol.46, no.3, pp.591, 2009.
11.
K.L. Ford, D.G. Holtby, B. Chambers, "Optimisation of a pyramidal geometric transition radar absorbing material loaded with a resistive frequency selective surface", IET Radar, Sonar & Navigation, vol.3, no.6, pp.596-600, 2009.
12.
D.G. Holtby, K.L. Ford, B. Chambers, "Optimisation of stepped permittivity impedance loaded absorber", Electronics Letters, vol.45, no.7, pp.339-340, 2009.
13.
H.L. Fan, W. Yang, Z.M. Chao, "Microwave absorbing composite lattice grids", Composites Science and Technology, vol.67, no.15-16, pp.3472, 2007.
14.
B.C. Usner, K. Sertel, J.L. Volakis, "Doubly periodic volume-surface integral equation formulation for modelling metamaterials", IET Microwaves, Antennas & Propagation, vol.1, no.1, pp.150-157, 2007.
15.
Feiyan Lv, Jianjin Ding, Fei Sha, "Periodic Dyadic Green?s Function for field analysis in EMC chamber", Journal of Electronics (China), vol.23, no.6, pp.906, 2006.
16.
Zheng Lou, Jian-Ming Jin, "High-order finite-element analysis of periodic absorbers", Microwave and Optical Technology Letters, vol.37, no.3, pp.203, 2003.
17.
H. Roussel, W. Tabbara, "Domain integral representation vs. homogenization methods for the analysis of photonic band gaps and absorbers", The European Physical Journal Applied Physics, vol.6, no.1, pp.33, 1999.
18.
Lijun Zhang, Nicolaos G. Alexopoulos, "Finite-Element Based Techniques for the Modeling of PBG Materials", Electromagnetics, vol.19, no.3, pp.225, 1999.
19.
Hung-Yu David Yang, Rodolfo Diaz, Nicolaos G. Alexopoulos, "Reflection and transmission of waves from multilayer structures with planar-implanted periodic material blocks", Journal of the Optical Society of America B, vol.14, no.10, pp.2513, 1997.