• Title/Summary/Keyword: gain margin

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Robust PID controller design to ensure specified Gain and Phase Margin (이득여유와 위상여유를 보강하는 견실한 PID 제어기 설계)

  • Cho, Joon-Ho;Ryu, Young-Guk;Choi, Jung-Nae;Hwang, Hyung-Soo
    • Proceedings of the KIEE Conference
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    • 2000.11d
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    • pp.632-634
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    • 2000
  • The robust design of controllers to ensure gain and phase margin is can be use approximation of arctan function. In this paper, We proposed a tuning algorithm PID controllers based on specified gain and phase margin by a new approximation of arctan function. This method have linear interpolation equations of two arctan interval instead of one arctan interval of arctan(x). It is shown that the frequency response of this method was to ensure specified gain and phase margin.

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A Study of the Gain Margin in Accordance with the PSS Inputs (PSS 입력신호에 따른 이득여유 연구)

  • Kim, Dong-Joon;Moon, Young-Hwan;Kim, Tae-Kyun;Shin, Jeong-Hoon;Kim, Yong-Hak
    • Proceedings of the KIEE Conference
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    • 1999.07c
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    • pp.1060-1062
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    • 1999
  • This paper proposes a guideline of choosing the optimum stabilizer input considering the gain margin of power system stabilizer between the optimum stabilizer gain and the allowable maximum stabilizer gain in accordance with the five inputs, such as generator shaft speed, bus frequency, electrical power, accelerating power and bus terminal voltage. The local mode damping and exciter mode damping are considered with increasing the stabilizer gain to determine each gain margin of the inputs.

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Improved negative capacitance circuit stable with a low gain margin (이득 여유가 작아도 안정한 개선된 네가티브 커패시턴스 회로)

  • 김영필;황인덕
    • Journal of the Institute of Electronics Engineers of Korea SC
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    • v.40 no.6
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    • pp.68-77
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    • 2003
  • An improved negative capacitance circuit that cancels out input impedance of a front-end in a bioimpedance measurement and operates stably with a low gain margin has been proposed. Since the proposed circuit comprises wide-band operational amplifiers, selecting operational amplifiers is easy, while an operational amplifier of prefer bandwidth should be chosen to apply conventional circuit. Also, since gain margin can be controlled by a feedback resistor connected serially with a feedback capacitor, gain margin is tuneable with a potentiometer. The input impedance of the proposed circuit is two times larger than that of the conventional circuit and 40-times than that without a negative capacitance circuit. Furthermore, closed-loop phase response of the proposed circuit is better than that of the conventional circuit or without a negative capacitance circuit. Above all, for the proposed circuit, the frequency at which a gain peaking occurs is higher than the frequency at which the loop gain becomes a maximum. Thus, the proposed circuit is not affected by a gain peaking and can be operated with a very low gain margin.

A Modified IMC-PID Controller Design Considering Model Uncertainty (모델 불확실성을 고려한 변형된 IMC-PID 제어기 설계)

  • Kim, Chang-Hyun;Lim, Dong-Kyun;Suh, Byung-Suhl
    • Proceedings of the KIEE Conference
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    • 2005.05a
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    • pp.128-130
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    • 2005
  • This paper proposes a modified IMC-PID controller that introduces controlling factor of the system identification to the standard IMC-PID controller in order to meet the design specifications such as gain, phase margin and maximum magnitude of sensitivity function in the frequency domain as well as the design specifications in time domain, settling, rising time and overshoot, and so on.

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Gain-phase margin specified PI speed control of a PM synchronous motor

  • Kim G.S.;Youn M.J.
    • Proceedings of the KIPE Conference
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    • 2003.07b
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    • pp.994-997
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    • 2003
  • Simple tuning formulae are derived to design a Pl controller to meet the gain and phase margin specifications. These formulae are suitable for the auto-tuning of a process where the robustness should be guaranteed. The auto-tuned PI controller is examined for the speed regulation of a PM synchronous motor.

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High speed wide fan-in designs using clock controlled dual keeper domino logic circuits

  • Angeline, A. Anita;Bhaaskaran, V.S. Kanchana
    • ETRI Journal
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    • v.41 no.3
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    • pp.383-395
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    • 2019
  • Clock Controlled Dual keeper Domino logic structures (CCDD_1 and CCDD_2) for achieving a high-speed performance with low power consumption and a good noise margin are proposed in this paper. The keeper control circuit comprises an additional PMOS keeper transistor controlled by the clock and foot node voltage. This control mechanism offers abrupt conditional control of the keeper circuit and reduces the contention current, leading to high-speed performance. The keeper transistor arrangement also reduces the loop gain associated with the feedback circuitry. Hence, the circuits offer less delay variability. The design and simulation of various wide fan-in designs using 180 nm CMOS technology validates the proposed CCDD_1 and CCDD_2 designs, offering an increased speed performance of 7.2% and 8.5%, respectively, over a conventional domino logic structure. The noise gain margin analysis proves good robustness of the CCDD structures when compared with a conventional domino logic circuit configuration. A Monte Carlo simulation for 2,000 runs under statistical process variations demonstrates that the proposed CCDD circuits offer a significantly reduced delay variability factor.

A Study on the Stability Magin of the LQ Regulator : Time Domain Analysis (LQ 조절기의 안정도 영역에 관한 연구 : 시간 영역에서의 해석)

  • 김상우;권욱현;이상정
    • 제어로봇시스템학회:학술대회논문집
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    • 1987.10b
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    • pp.125-129
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    • 1987
  • The stability margin of the LQ regulator is investigated in the time domain. it is shown that the same guaranteed gain margin as that of the frequency domain analysis can be obtained with simple assumptions for the continuous time systems. It is also shown that the allowable modelling error bound can be expressed in terms of system matrices and Riccati equation solution. Guaranteed qain. margin and the allowable modelling error bound for the discrete time systems are also obtained by the similar procedures. In this case, through the some examples, the gain margin is shown to be less conservative than the frequency domain analysis result.

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The Optimal Compensator for AT Forward Multi Resonant Converter

  • Oh Yong-Seung;Kim Hee-Jun;Kim Chang-Sun
    • Proceedings of the KIPE Conference
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    • 2001.10a
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    • pp.242-246
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    • 2001
  • The alternated forward multi resonant converter (AT forward MRC) is studied on the transient response and the measured loop gain for stability. The compensator is composed of the error amplifier with 3 poles and 2 zeros. This is optimized through the experiment with HP4194A network analyzer. We are initiated by the thinking of how to make the stabilization from the experimental results of loop gain curves. The loop gain, low frequency gain and gain margin are more improved through the experimental considerations. Also, the transient response is more enhanced effectively.

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Frequency-domain properties of Kalman filters for linear systems with delay in output (출력에 시간지연이 있는 시스템을 위한 칼만필터의 주파수영역 특성)

  • 이상정
    • 제어로봇시스템학회:학술대회논문집
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    • 1988.10a
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    • pp.169-171
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    • 1988
  • This paper deals with the robustness property of Kalman filters for linear systems with delay in output. The operator-type Riccati equation is transformed to algebraic equations, and the circle condition is derived. Based on the circle condition, it is shown that the same nondivergence margin, (1/2, .inf.) gain margin and +-60.deg. phase margin, is guaranteed as for ordinary systems.

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A Design of Homopolar Generator System Considering Instability with Negative Characteristics Load (부성부하와의 발진을 고려한 단극발전기 시스템 설계)

  • Kim, In-Soo;Seong, Se-Jin
    • Proceedings of the KIPE Conference
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    • 2008.06a
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    • pp.449-451
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    • 2008
  • This paper studies the instability between homopolar generator and constant power load with negative impedance characteristics, provides the design method of homopolar generator system which overcomes the instability. In case of magnitude and phase of impedance of source and load mismatch, control instability of source can occur. For the safety of phase of load impedance, the gain of P, I controller with sufficient phase margin is applied through analysis on the simulation model of generator system, and the gain limit of load impedance is ensured by limitation of the gain margin of generator system. The stability of power system can be increased by considering and analyzing the impedance of source and load.

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