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[Author] Yoshihiko KONISHI(18hit)

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  • Convergence Property of IDR(s) Method Implemented along with Method of Moments for Solving Large-Scale Electromagnetic Scattering Problems Involving Conducting Objects

    Hidetoshi CHIBA  Toru FUKASAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    PAPER-Electromagnetic Theory

      Vol:
    E94-C No:2
      Page(s):
    198-205

    In this paper, the performance of the induced dimension reduction (IDR) method implemented along with the method of moments (MoM) is described. The MoM is based on a combined field integral equation for solving large-scale electromagnetic scattering problems involving conducting objects. The IDR method is one of Krylov subspace methods. This method was initially developed by Peter Sonneveld in 1979; it was subsequently generalized to the IDR(s) method. The method has recently attracted considerable attention in the field of computational physics. However, the performance of the IDR(s) has hardly been studied or practiced for electromagnetic wave problems. In this study, the performance of the IDR(s) is investigated and clarified by comparing the convergence property and memory requirement of the IDR(s) with those of other representative Krylov solvers such as biconjugate gradient (BiCG) methods and generalized minimal residual algorithm (GMRES). Numerical experiments reveal that the characteristics of the IDR(s) against the parameter s strongly depend on the geometry of the problem; in a problem with a complex geometry, s should be set to an adequately small value in order to avoid the "spurious convergence" which is a problem that the IDR(s) inherently holds. As for the convergence behavior, we observe that the IDR(s) has a better convergence ability than GPBiCG and GMRES(m) in a variety of problems with different complexities. Furthermore, we also confirm the IDR(s)'s inherent advantage in terms of the memory requirements over GMRES(m).

  • Efficient Implementation of Inner-Outer Flexible GMRES for the Method of Moments Based on a Volume-Surface Integral Equation Open Access

    Hidetoshi CHIBA  Toru FUKASAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    PAPER-Numerical Techniques

      Vol:
    E94-C No:1
      Page(s):
    24-31

    This paper presents flexible inner-outer Krylov subspace methods, which are implemented using the fast multipole method (FMM) for solving scattering problems with mixed dielectric and conducting object. The flexible Krylov subspace methods refer to a class of methods that accept variable preconditioning. To obtain the maximum efficiency of the inner-outer methods, it is desirable to compute the inner iterations with the least possible effort. Hence, generally, inaccurate matrix-vector multiplication (MVM) is performed in the inner solver within a short computation time. This is realized by using a particular feature of the multipole techniques. The accuracy and computational cost of the FMM can be controlled by appropriately selecting the truncation number, which indicates the number of multipoles used to express far-field interactions. On the basis of the abovementioned fact, we construct a less-accurate but much cheaper version of the FMM by intentionally setting the truncation number to a sufficiently low value, and then use it for the computation of inaccurate MVM in the inner solver. However, there exists no definite rule for determining the suitable level of accuracy for the FMM within the inner solver. The main focus of this study is to clarify the relationship between the overall efficiency of the flexible inner-outer Krylov solver and the accuracy of the FMM within the inner solver. Numerical experiments reveal that there exits an optimal accuracy level for the FMM within the inner solver, and that a moderately accurate FMM operator serves as the optimal preconditioner.

  • Construction and Design Equations of a Lumped Element Dual-Band Wilkinson Divider

    Takeshi OSHIMA  Masataka OHTSUKA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    LETTER-Microwaves, Millimeter-Waves

      Vol:
    E92-C No:10
      Page(s):
    1322-1324

    This letter presents the construction and design equations of a lumped element Wilkinson divider with dual-band operation. This divider is constructed of series and parallel LC resonant circuits, and an isolation resistor. The element values can be uniquely determined by giving the two frequencies for operation as a Wilkinson divider and the load resistance. An 800 MHz/2 GHz dual-band Wilkinson divider is treated as a design example, and its operation is verified by simulation and experiment. The fabricated divider has compact dimensions of 3.564 mm2.

  • Using Conducting Wire at A-Sandwich Junctions to Improve the Transmission Performance of Radomes

    Yoshio INASAWA  Toshio NISHIMURA  Jun TSURUTA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    LETTER-Antennas and Propagation

      Vol:
    E91-B No:8
      Page(s):
    2764-2767

    We present design procedures for using conducting wires in A-sandwich junctions to achieve high transmission performance; bench-test results validate the procedures. The scattering characteristics of the junction are obtained by solving the electric field integral equation of volumetric equivalent currents. The transmission performance is evaluated by subtracting the scattered fields of the same-sized A-sandwich panel in order to offset the effect of edge diffraction. Optimum wire width is determined by examining transmission performance with different arrangements. The designed junction achieves high transmission performance. The measured scattering characteristics of a bench model demonstrate the validity of the presented method.

  • Acceleration of Flexible GMRES Using Fast Multipole Method for Implementation Based on Combined Tangential Formulation

    Hidetoshi CHIBA  Toru FUKASAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    PAPER-Electromagnetic Theory

      Vol:
    E94-C No:10
      Page(s):
    1661-1668

    In this study, we demonstrate an acceleration of flexible generalized minimal residual algorithm (FGMRES) implemented with the method of moments and the fast multipole method (FMM), based on a combined tangential formulation. For the implementation of the FGMRES incorporated with the FMM concept, we propose a new definition of the truncation number for the FMM operator within the inner solver. The proposed truncation number provides an optimal variable preconditioner by controlling the accuracy and computational cost of the inner iteration. Moreover, to further accelerate the convergence, we introduce the concept of a multistage preconditioner. Numerical experiments reveal that our new version of FGMRES, based on the proposed truncation number for the inner solver and the multistage preconditioner, achieves outstanding acceleration of the convergence for large-scale and practical electromagnetic scattering and radiation problems with several levels of geometrical complexity.

  • Design Method for a Low-Profile Dual-Shaped Reflector Antenna with an Elliptical Aperture by the Suppression of Undesired Scattering

    Yoshio INASAWA  Shinji KURODA  Kenji KUSAKABE  Izuru NAITO  Yoshihiko KONISHI  Shigeru MAKINO  Makio TSUCHIYA  

     
    PAPER-Electromagnetic Theory

      Vol:
    E91-C No:4
      Page(s):
    615-624

    A design method is proposed for a low-profile dual-shaped reflector antenna for the mobile satellite communications. The antenna is required to be low-profile because of mount restrictions. However, reduction of its height generally causes degradation of antenna performance. Firstly, an initial low-profile reflector antenna with an elliptical aperture is designed by using Geometrical Optics (GO) shaping. Then a Physical Optics (PO) shaping technique is applied to optimize the gain and sidelobes including mitigation of undesired scattering. The developed design method provides highly accurate design procedure for electrically small reflector antennas. Fabrication and measurement of a prototype antenna support the theory.

  • RCS Prediction Method from One-Dimensional Intensity Data in Near-Field

    Yoshio INASAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    LETTER-Electromagnetic Theory

      Vol:
    E91-C No:7
      Page(s):
    1167-1170

    Radar Cross Section (RCS) can be obtained from near-field data by using near-field to far-field RCS transformation methods. Phase errors in near-field data cause the degradation of the prediction accuracy. In order to overcome the difficulty, we propose the far-field RCS prediction method from one-dimensional intensity data in near-field. The proposed method is derived by extending the phase retrieval method based on the Gerchberg-Saxton algorithm with the use of the relational expression between near-fields and scattering coefficients. The far-field RCS can be predicted from the intensity data of scattered fields measured at two different ranges. The far-field RCS predicted by the proposed method approximately coincides with the computed one. The proposed method also has significant advantages of simple and efficient algorithm. The proposed method is valuable from a practical point of view.

  • Radar Cross Section Analysis Considering Multi-Reflection inside a Radome Based on SBR Method

    Shinji KURODA  Yoshio INASAWA  Shin-ichi MORITA  Hitoshi NISHIKAWA  Yoshihiko KONISHI  Yonehiko SUNAHARA  Shigeru MAKINO  

     
    PAPER-Imaging

      Vol:
    E88-C No:12
      Page(s):
    2274-2281

    The authors propose the simple and efficient method based on the shooting and bouncing rays (SBR) method in order to evaluate multi-reflection effects inside a radome. In this paper, we show the analysis procedure of the proposed method. Next, we compare calculated data with some measured data in order to verify the proposed method. We confirmed that the proposed method is effective for the objects with radome except the areas where strong edge diffraction appears.

  • Inclined Slot Array Antennas on a Hollow Rectangular Coaxial Line

    Satoshi YAMAGUCHI  Yukihiro TAHARA  Toru TAKAHASHI  Kazushi NISHIZAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  

     
    PAPER-Antennas and Propagation

      Vol:
    E95-B No:9
      Page(s):
    2870-2877

    Slotted-waveguide array antennas are attractive because of their low-loss characteristics at high frequencies. Several types of slotted arrays whose polarization angles are inclined to the waveguide axis have been reported. In this paper, we propose a new type of slot array antenna on a rectangular coaxial line for minimizing the waveguide width. As opposed to a conventional waveguide, there is no “cut-off” concept in our proposal because the coaxial line is a transverse electromagnetic (TEM) line. Therefore it is possible to guide the wave even if the diameter of the line is much smaller than that of the waveguide. Moreover, the proposed antenna is a resonant slot array antenna that is based on standing-wave excitation and is thus different from traveling-wave antennas (such as a leaky coaxial cable (LCX)).

  • A PCB Integrated Multi-layered Strip Line Tandem Coupler Using Compensating Ground Through-Hole Elements

    Takeshi YUASA  Yukihiro TAHARA  Tetsu OWADA  Naofumi YONEDA  Yoshihiko KONISHI  Moriyasu MIYAZAKI  

     
    PAPER-Microwaves, Millimeter-Waves

      Vol:
    E97-C No:10
      Page(s):
    1014-1020

    This paper presents a printed circuit board (PCB) integrated multi-layered strip line tandem coupler, which used simple compensating ground through-hole (GTH) elements. The GTH elements on one end of the coupled line can generate additional capacitance between the signal line and the ground, which effectively compensates for the parasitic capacitance around the crossed signal lines on the opposite end of the coupled line. It has been experimentally demonstrated that the proposed coupler fabricated for the X-band is effective to improve both the reflection and the isolation characteristics.

  • An Elliptic-Function Bandpass Filter Utilizing Left-Handed Operations of an Inter-Digital Coupled Line

    Hiromitsu UCHIDA  Naofumi YONEDA  Yoshihiko KONISHI  

     
    PAPER

      Vol:
    E91-C No:11
      Page(s):
    1772-1777

    A new elliptic-function bandpass filter (BPF) is proposed, which utilizes an inter-digital coupled line (IDCPL) as a left-handed transmission line. The IDCPL is employed in order to realize a negative coupling between non-adjacent resonators in a wideband BPF. As the authors' knowledge, the left-handed operations of the IDCPL has rarely utilized before, although the IDCPL itself has been widely used in many microwave circuits without being paid attention to the left-handed operations. Measured characteristics of two BPFs are presented in this paper, one is targeted for 3-4 GHz WiMAX systems, and the other is for 3-5 GHz ultra wideband communication systems (UWB).

  • M-Shaped Dielectric Phase Shifter for Beam-Steerable Base-Station Antenna

    Kengo NISHIMOTO  Takeshi OSHIMA  Toru FUKASAWA  Hiroaki MIYASHITA  Yoshihiko KONISHI  Manabu KURIHARA  Yoshiyuki CHATANI  

     
    PAPER-Antennas and Propagation

      Vol:
    E96-B No:8
      Page(s):
    2095-2101

    We propose a simple and small phase shifter for a beam-steerable base-station antenna. This phase shifter has no metallic heterojunction, and the phase shift is controlled by moving an M-shaped dielectric plate between the strip conductor and the ground plane of a strip line. We derive a design equation from the condition that at the center frequency f0, the reflection coefficient = 0. In this phase shifter, the reflection coefficient becomes minimum at f0 regardless of the movement distance, r, of the dielectric plate, and the relationship between the phase shift and r is linear. These characteristics are verified by performing simulations and measurements. The size of the M-shaped dielectric phase shifter is 0.27λ00.12λ0, where λ0 is the free-space wavelength at f0. The insertion loss is smaller than about 0.2 dB within a fractional bandwidth of 10%, and the phase shift can vary from 0 to about 80 degrees.

  • One-Dimensional Electronic Beam-Scanning Center-Fed Imaging Reflector Antenna

    Michio TAKIKAWA  Izuru NAITO  Kei SUWA  Yoshio INASAWA  Yoshihiko KONISHI  

     
    PAPER-Antenna Technologies

      Vol:
    E97-C No:1
      Page(s):
    17-25

    We propose a new, compact, center-fed reflector antenna that is capable of one-dimensional electronic beam scanning. The reflector profile in the vertical section (beam-scanning) is set to an imaging reflector configuration, while the profile in the orthogonal horizontal section (non-beam-scanning) is set to a Cassegrain antenna configuration. The primary radiator is a one-dimensional phased array antenna. We choose a center-fed configuration in order to reduce the antenna size as much as possible, despite the fact that the increased blocking area from the primary radiator causes degradation in efficiency compared to the typical offset-type configuration. In the proposed configuration, beam scanning is limited to one dimension, but utilize a compact, center-fed configuration that maintains the features of an imaging reflector antenna. We present the antenna configuration and design method and show that results obtained from the prototype antenna verify the predicted performance.

  • Phased Array Antennas Open Access

    Yoshihiko KONISHI  

     
    INVITED PAPER

      Vol:
    E86-B No:3
      Page(s):
    954-967

    This paper reviews research and development on the phased array antennas (PAAs) for several applications in Japan in over past two decades. First, the author shows the historical overview of the PAA for radar, satellite and mobile communication uses. Next, this paper introduces analysis methods for the PAA. It shows mutual coupling analysis methods and pattern synthesis methods for the PAA. Furthermore, the author discusses measurement methods for the PAA. Especially, he explains the rotating-element electric-field vector (REV) method for the Japanese original PAA calibration method. Finally, the author concludes and shows future PAA technologies.

  • A Waveguide-Based Power Divider Using H-Plane Probes Short-Circuited with Substrate Metallization Patterns

    Motomi ABE  Yukihiro TAHARA  Hideyuki OH-HASHI  Naofumi YONEDA  Yoshihiko KONISHI  

     
    PAPER

      Vol:
    E92-C No:9
      Page(s):
    1144-1149

    A novel waveguide power divider based on a coaxial-to-waveguide transition using a H-plane probe is presented. The waveguide consists of split metal blocks and substrates which are alternately stacked. The power divider is realized by arranging identical transitions using coaxial probes short-circuited with metal patterns on the substrate. The parasitic reactance of probes can be canceled out with the metal patterns on the substrate, so it is ease to design the power divider. The advantages of this structure are small footprint, low insertion loss, simple fabrication, and ease of design. A design method of the proposed power divider is described. The fabricated eight-way power divider shows excellent performances at 10 GHz-band.

  • Ultra-Wideband Tapered Slot Antenna Arrays with Parallel-Plate Waveguides

    Satoshi YAMAGUCHI  Hiroaki MIYASHITA  Toru TAKAHASHI  Masataka OTSUKA  Yoshihiko KONISHI  

     
    PAPER-Antennas and Propagation

      Vol:
    E93-B No:5
      Page(s):
    1248-1255

    Owing to their ultra-wideband characteristics, tapered slot antennas (TSAs) are used as element antennas in wideband phased arrays. However, when the size of a TSA is reduced in order to prevent the generation of a grating lobe during wide-angle beam scanning, the original ultra-wideband characteristics are degraded because of increased reflections from the ends of the tapered slot aperture. To overcome this difficulty, we propose a new antenna structure in which parallel-plate waveguides are added to the TSA. The advantage of this new structure is that the reflection characteristics of individual antenna elements are not degraded even if the width of the antenna aperture is very small, i.e., approximately one-half the wavelength of the highest operating frequency. In this study, we propose a procedure for designing the new antenna through numerical simulations by using the FDTD method. In addition, we verify the performance of the antenna array by experiments.

  • Sidelobe Canceller Using Multiple Quantized Weights Combining for Reducing Excitation Error

    Tasuku KURIYAMA  Kazunari KIHIRA  Toru TAKAHASHI  Yoshihiko KONISHI  

     
    PAPER-Adaptive Array Antennas/MIMO

      Vol:
    E96-B No:10
      Page(s):
    2483-2490

    This paper presents a method of reducing excitation error in sidelobe canceller without increasing the resolution of the digital phase shifters and the digital attenuators. In general sidelobe canceller, the null direction is shifted because of the excitation error (quantization error and random error, etc.) and the suppression capability degrades. The proposed method can alleviate the influence of the excitation error by vector composition of some quantized excitation weights. Computer simulation results show that the output signal to interference and noise power ratio (SINR) using the proposed method can improve greatly in comparison with that using conventional quantized excitation weight.

  • A Linear Array Antenna Using Bifilar Helical Elements for Mobile Satellite Communications

    Masataka OHTSUKA  Yoshihiko KONISHI  Makoto MATSUNAGA  Takashi KATAGI  

     
    PAPER-Passive Devices

      Vol:
    E79-C No:5
      Page(s):
    699-704

    In this paper, authors propose a linear array antenna using two bifilar helical antenna elements placed along the helix axis to reduce beam direction movement according to frequency change. The beam direction movement of this proposed array antenna is smaller than that of a conventional bifilar helical antenna. Also, the gain of this proposed array antenna is higher than that of the conventional helical antenna for a cross point angle of radiation patterns at the different transmit and receive(Tx and Rx) frequencies. The conventional helical antenna is suitable for vehicle antennas in mobile satellite communication systems such as the MSAT system because it owns circularly polarized omni-directional radiation pattern and its thin pole form. However, this antenna has a disadvantage that the beam direction in an elevation plane moves according to frequency change. In the proposed array antenna, the beam direction movement is about 9 smaller than that of the conventional bifilar helical antenna on condition that antenna total length is 4.83 λ0, antenna diameter is 0.12 λ0, and frequency change is from 0.957f0 to 1.043f0(f0 is center frequency and λ0 is free space wavelength at f0). Also, the Tx and Rx gains of this proposed array antenna at the cross point angle between Tx and Rx beams are about 2 dB higher than that of the conventional bifilar helical antenna on the same condition.