• Title/Summary/Keyword: Turn-off control

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Adaptive Synchronous Rectification Control Method for High Efficiency Resonant Converter

  • Kim, Joohoon;Moon, Sangcheol;Kim, Jintae
    • Proceedings of the KIPE Conference
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    • 2017.07a
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    • pp.40-41
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    • 2017
  • New adaptive SR (synchronous rectification) control method is proposed offering high efficiency in entire load conditions for resonant converters, in this paper. Unlike the conventional SR control method where turn-on time of the MOSFETs is varied depending on load conditions due to the stray inductance induced by a lead frame of MOSFET or PCB patterns, the proposed method automatically maintains a time interval between turn-off instance of a MOSFET and zero current instance of a body diode of the MOSFET as a predetermined time, in each switching cycle. Therefore, optimized turn-on time of the MOSFET can be achieved regardless of the leakage inductance. In this paper, the operational principle of proposed control method has been discussed. It has been tested on LLC resonant converter with 240 W to verify the proposed control method.

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Acoustic Noise Reduction of Three-Phase SRM with Random Pulse Position PWM and Random Turn-on/off Angle Control

  • Khai, Nguyen Minh;Shin, Duck-Shick;Jung, Young-Gook;Lim, Young-Cheol
    • Proceedings of the KIEE Conference
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    • 2006.10d
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    • pp.139-142
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    • 2006
  • This paper describes a new method using random modulated strategies for switched reluctance machines. The proposed method is combined random turn-on, turn-off angle technique and random pulse width modulation technique. The purpose of this proposed method is to decrease harmonic spectrum, and thus reduce the emitted acoustical noise. A random generator is generated by linear congruential generator (LCG) using random pulse position (RPP) scheme. Simulation results show that the harmonic intensity of proposed method is better than that of conventional method.

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Optimal Design of a DC-DC Converter for Photovoltaic Generation

  • Kwon, Soon-Kurl
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.25 no.3
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    • pp.40-49
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    • 2011
  • This paper presents novel circuit topology of half-bridge soft-switching PWM inverter type DC-DC high power converter for DC bus feeding power plants. The proposed DC-DC power converter is composed of a typical voltage source-fed, half-bridge high frequency PWM inverter with a high frequency planar transformer link PWM control scheme and parallel capacitive lossless snubbers. The operating principle of the new DC-DC converter treated here is described by using switching mode-equivalent circuits, together with its unique features. All the active power switches in the half-bridge arms and input DC bus lines can achieve ZCS turn-on and ZVS turn-off commutation transitions. The total turn-off switching losses of the power switches can be significantly reduced. As a result, high switching frequency IGBTs can actually be selected in the frequency range of 40[kHz] under the principle of soft-switching. The performance evaluations of the experimental setup are illustrated practically.

Control of Grid Connected Type PCS to Minimize Voltage Disturbance at Line Fault (계통 사고 발생시 전압 변동을 최소화 하기위한 계통연계형 PCS의 제어 기법)

  • Jung, Jae-Hun;Kwon, Chang-Keun;Nho, Eui-Cheol;Kim, In-Dong;Kim, Heung-Geun;Chun, Tae-Won
    • Proceedings of the KIPE Conference
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    • 2011.11a
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    • pp.257-258
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    • 2011
  • This paper describes a new method for the seamless operation mode transfer of a PCS with minimized voltage disturbance. The proposed method provides reduced STS turn off time after line fault and smooth mode change between current and voltage control of the PCS. The usefulness of the method is verified through simulations with the consideration of the time delay in detecting a line fault and SCR turn-off time.

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A Study on Novel Step-Up AC-DC Chopper of High Efficiency by using Lossless Snubber Capacitor (새로운 무손실 스너버 커패시터를 이용한 고효율 스텝 업 AC-DC 초퍼에 관한 연구)

  • Kwak, Dong-Kurl;Kim, Sang-Hoon
    • Proceedings of the IEEK Conference
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    • 2008.06a
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    • pp.1103-1104
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    • 2008
  • In this paper, authors propose a novel step-up AC-DC chopper operated with power factor correction (PFC) and with high efficiency. The proposed chopper behaves with discontinuous current control (DCC) of input current. The input current waveform in the proposed chopper is got to be a discontinuous sinusoid form in proportion to magnitude of ac input voltage under the constant duty cycle switching. Therefore, the input power factor is nearly unity and the control method is simple. In the general DCC chopper, the switching devices are turned-on with the zero current switching, but turn-off of the switching devices is switched at current maximum value. To achieve a soft switching of the switching turn-off, the proposed chopper is used a new partial resonant circuit. The result is that the switching loss is very low and the efficiency of chopper is high.

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Design and Test of SI-Thyristor for Pulsed Power Modulator (펄스 모듈레이터용 정전 유도 사이리스터의 최적 게이트 드라이버 설계 및 성능 측정)

  • Kim, Bong-Seong;Ko, Kwang-Cheol
    • Proceedings of the KIEE Conference
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    • 2006.10a
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    • pp.147-148
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    • 2006
  • Sl-Thyristor는 기존의 Power semlconductor인 단일 IGBT,MOSFET과 비교하여 높은 정격 전압과 대전류의 소호가 가능하며 빠른 turn on swithcing time을 가지는 특성이 있다. 하지만 게이트 드라이버를 이용한 Sl-Thyristor의 turn on 구동시에는 전압구동의 특성과 turn 0ff시에는 전류 구동의 특성에 가까운 구동 특성이 요구되기 때문에 스위칭 요구 특성에 맞는 게이트 드라이버의 설계 및 제어가 쉽지 않다. 본 논문은 펄스 파워 어플리케이션으로 Sl-Thyristor(PT-201 5kV/100A)를 사용하여 pulsed power moduiator용 Sl-Thyristor의 게이트 드라이버의 요구인 빠른 turn on switching 특성과 turn off 시 Si-Thyristor 내의 전하를 빨리 제거하기 위한 조건을 제시하고 있다.

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A High Performance ZVT-PWM Boost Rectifier with Soft Switched Auxiliary Switch (스프트 스위칭 보조 스위치를 가지는 ZVT-PWM 부스트 컨버터)

  • 김윤호;김윤복;정재웅
    • Proceedings of the KIPE Conference
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    • 1998.07a
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    • pp.265-268
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    • 1998
  • This paper presents a soft-switching average current control PWM high power factor boost converter. Conventional boost ZVT-PWM converter has a disadvantage of hard-switching for auxiliary switch at turn-off. A soft switched auxiliary switch is proposed to achieve a high performance ZVT-PWM boost rectifier. The simulation and experimental results show that soft switching operation can be maintained for wide line and load range, which in turn improves the converter performance in terms of efficiency, switching noise and circuit reliability.

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Torque Ripple Reduction of SRM using DITC (직접 순시 토크 제어에 의한 SRM 토크 리플 억제)

  • Lee, Zhen-Guo;Lee, Dong-Hee;Ahn, Jin-Woo
    • Proceedings of the KIEE Conference
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    • 2006.04b
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    • pp.87-90
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    • 2006
  • The direct instantaneous torque control (DITC) method is presented in this paper, which enables torque to be generated during all region and instantaneous torque control to be possible. The hysteresis control mode with the compared value between given torque and instantaneous output torque as input is applied in respect region. The output torque function, that is instantaneous output torque with the variation of current and position of rotor, is achieved by experiment. In this control mode the torque subsection function and current control are not needed. The turn on angle with variation of load torque and speed is only selected and turn off angle can be neglected. The validity of method is tested by simulation and experiment.

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A New Three-Phase Current Modulation Method to Suppress the Commutation Torque Ripple of Brushless DC Motor

  • Wang, Zhiqiang;Yin, Shuai;Ma, Tiehua
    • Journal of Electrical Engineering and Technology
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    • v.12 no.5
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    • pp.1925-1933
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    • 2017
  • The brushless DC motor's commutation torque ripple is caused by inconsistency in the rate of phase current change. Thus, a method that considers armature resistance is proposed to modulate phase current. The three-phase control strategy, which involves the "open-phase conduction, off-phase pulse width modulation, and maintained non-commutation phase" technique, is applied during commutation at full-speed segments of the motor. Changes in each phase current are analyzed theoretically by establishing mathematical model based on phase current to determine the relative difference among shutdown phase, duty, and motor operating parameters. The turn-on and turn-off phase current change rates are made to be consistent to ensure less non-commutation phase current ripple, then the torque ripple is inhibited. The simulation results show that the phase commutation current and torque ripple coefficient of the proposed method are reduced from 56.9% and 55.5% to 6.8% and 6.1%, respectively. In the experiment system, the pulsation coefficient of the motor phase current is reduced from 40.0% to 16.7% at low speed and 50.0% to 18.8% at high speed. The simulation and experimental results show that the proposed control method significantly inhibits commutation current and torque in the full section.

Continuous Conduction Mode Soft-Switching Boost Converter and its Application in Power Factor Correction

  • Cheng, Miao-miao;Liu, Zhiguo;Bao, Yueyue;Zhang, Zhongjie
    • Journal of Power Electronics
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    • v.16 no.5
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    • pp.1689-1697
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    • 2016
  • Continuous conduction mode (CCM) boost converters are commonly used in home appliances and various industries because of their simple topology and low input current ripples. However, these converters suffer from several disadvantages, such as hard switching of the active switch and reverse recovery problems of the output diode. These disadvantages increase voltage stresses across the switch and output diode and thus contribute to switching losses and electromagnetic interference. A new topology is presented in this work to improve the switching characteristics of CCM boost converters. Zero-current turn-on and zero-voltage turn-off are achieved for the active switches. The reverse-recovery current is reduced by soft turning-off the output diode. In addition, an input current sensorless control is applied to the proposed topology by pre-calculating the duty cycles of the active switches. Power factor correction is thus achieved with less effort than that required in the traditional method. Simulation and experimental results verify the soft-switching characteristics of the proposed topology and the effectiveness of the proposed input current sensorless control.