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[Author] Koh YAMANAGA(4hit)

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  • 2-Port Modeling Technique for Surface-Mount Passive Components Using Partial Inductance Concept

    Koh YAMANAGA  Takashi SATO  Kazuya MASU  

     
    PAPER

      Vol:
    E92-A No:4
      Page(s):
    976-982

    Electrical modeling for surface-mount passive components is proposed. In order to accurately capture parasitic inductance, the proposed 2-port model accounts for surrounding ground layer configurations of the print circuit board (PCB) on which the component is mounted. Our model retains conventional modeling paradigm in which component suppliers provide their customers with simulation models characterized independently of the customers' PCB. We also present necessary corrections that compensate magnetic coupling between the separated models. Impedance and its anti-resonant frequency of two power distribution networks are experimentally analyzed being non-separated modeling as the reference. The proposed model achieved very good match with the reference result reducing 7-34% error of the conventional model to about 2%.

  • Linear Time Calculation of On-Chip Power Distribution Network Capacitance Considering State-Dependence

    Shiho HAGIWARA  Koh YAMANAGA  Ryo TAKAHASHI  Kazuya MASU  Takashi SATO  

     
    PAPER-Device and Circuit Modeling and Analysis

      Vol:
    E93-A No:12
      Page(s):
    2409-2416

    A fast calculation tool for state-dependent capacitance of power distribution network is proposed. The proposed method achieves linear time-complexity, which can be more than four orders magnitude faster than a conventional SPICE-based capacitance calculation. Large circuits that have been unanalyzable with the conventional method become analyzable for more comprehensive exploration of capacitance variation. The capacitance obtained with the proposed method agrees SPICE-based method completely (up to 5 digits), and time-linearity is confirmed through numerical experiments on various circuits. The maximum and minimum capacitances are also calculated using average and variance estimation. Calculation times are linear time-complexity, too. The proposed tool facilitates to build an accurate macro model of an LSI.

  • State-Dependence of On-Chip Power Distribution Network Capacitance

    Koh YAMANAGA  Shiho HAGIWARA  Ryo TAKAHASHI  Kazuya MASU  Takashi SATO  

     
    PAPER-Integrated Electronics

      Vol:
    E97-C No:1
      Page(s):
    77-84

    In this paper, the measurement of capacitance variation, of an on-chip power distribution network (PDN) due to the change of internal states of a CMOS logic circuit, is studied. A state-dependent PDN-capacitance model that explains measurement results will be also proposed. The model is composed of capacitance elements related to MOS transistors, signal and power supply wires, and substrate. Reflecting the changes of electrode potentials, the capacitance elements become state-dependent. The capacitive elements are then all connected in parallel between power supply and ground to form the proposed model. By using the proposed model, state-dependence of PDN-capacitances for different logic circuits are studied in detail. The change of PDN-capacitance exceeds 12% of its total capacitance in some cases, which corresponds to 6% shift of anti-resonance frequency. Consideration of the state-dependence is important for modeling the PDN-capacitance.

  • A Universal Equivalent Circuit Model for Ceramic Capacitors

    Koh YAMANAGA  Shuhei AMAKAWA  Kazuya MASU  Takashi SATO  

     
    PAPER

      Vol:
    E93-C No:3
      Page(s):
    347-354

    A physics-based equivalent circuit model of the ceramic capacitor is proposed, which can reproduce frequency characteristics of its impedance including the often observed yet hitherto physically unexplained kinks appearing above the primary series resonance frequency. The model can also account for parasitic effects of external inductances. In order to efficiently analyze and gain engineering insight into ceramic capacitors with a large number of metallic laminae, a two-dimensional method of moments is developed that treats the laminar structure as a uniform, effective medium. It turns out that the primary resonance and the kinks can be well understood and modeled by a lossy transmission line stub with a drastic wavelength reduction. The capacitor model is completed by adding components describing the skin effect and external inductances. The modeled impedance stays within a 4% margin of error up to 5 GHz. The proposed model could greatly improve the accuracy of power distribution network simulation.