• Title/Summary/Keyword: Voltage-controlled method

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A Study on the Reliability of DVR in a 3-Phase Phase-Controlled Rectifier

  • Kim, Woo-Hyun;Park, Chul-Woo
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.26 no.11
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    • pp.54-61
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    • 2012
  • This study investigated the relationship between the response time of DVR (Dynamic Voltage Restorer) and the possible compensation range for voltage dips by the DVR system which protects the 3-phase phase-controlled rectifier from said dips. As a result, the permissible range of voltage dip is presented in a 3-phase phase-controlled rectifier. When the DVR compensates for voltage dip, the range of voltage dip can be compensated according to the DVR's response time. Using the proposed method, DVR response time can be determined from the parameters of the 3-phase phase-controlled rectifier and the possible compensatory range of voltage dip, while at the same time it is possible to use a control system having an appropriate speed. Therefore, the use of excessively fast equipment can be avoided, improving the stability of the overall system. The reliability of the DVR concerning the 3-phase phase-controlled rectifier can be verified by simulation.

Current-Controlled Driving Method for AC PDP and Experimental Characterization

  • Kim, Joon-Yub;Lim, Jong-Sik
    • KIEE International Transactions on Electrophysics and Applications
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    • v.2C no.5
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    • pp.253-257
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    • 2002
  • A new Current-Controlled Driving Method that can drive AC PDPs with low voltage and high luminous efficiency for the sustaining period is presented. In this driving method, the voltage source is connected to a storage capacitor and the stored voltage is delivered to the panel through LC resonance. Thus, this driving method can drive the panel with a voltage source as low as about half of the voltage necessary in the conventional driving methods. The discharge current flowing into the AC PDP is limited in this method. Thus, the power consumption for the discharge is reduced and the discharge input power to output luminance efficiency is improved. Experimental results using this driving method showed that we could drive an AC PDP with a voltage source as low as 146V and that high luminous efficiency of 1.33 1m/W can be achieved.

A study on the permissible range of voltage dips and the response time of DVR in 3-phase phase-controlled rectifier (3상 위상제어 정류기에서 DVR의 응답시간과 허용 가능한 순시저전압의 범위에 대한 연구)

  • 한무호;권우현;박철우
    • Journal of Institute of Control, Robotics and Systems
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    • v.10 no.4
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    • pp.325-333
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    • 2004
  • It is investigated that the relation between the response time of DVR(Dynamic Voltage Restorer) and the possible compensation range of voltage dip by the DVR system which protects the 3-phase phase-controlled rectifier from voltage dip. As a result, the permissible range of voltage dip is presented in the 3-phase phase-controlled rectifier, and it is presented that the range of voltage dip which can be compensated according to the DVR s response time. when the DVR compensates voltage dip, Using the proposed method, the DVR s response time can be determined from the parameters of 3-phase phase-controlled rectifier and the possible compensation range of voltage dip, and it is possible to use the control system which have an appropriate speed. Therefore, the use of excessively fast device can be avoided, and the stability of the overall system is improved. Also the reliance of DVR about the 3-phase phase-controlled rectifier can be verified.

A New Sustain Driving Method for AC PDP : Charge-Controlled Driving Method

  • Kim, Joon-Yub
    • KIEE International Transactions on Electrophysics and Applications
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    • v.2C no.6
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    • pp.292-296
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    • 2002
  • A new sustain driving method for the AC PDP is presented. In this driving method, the voltage source is connected to a storage capacitor, this storage capacitor charges an intermediate capacitor through LC resonance, and the panel is charged from the intermediate capacitor indirectly. In this way, the current flowing into the AC PDP when the sustain discharge occurs is reduced because the current is indirectly supplied from a capacitor, a limited source of charge. Thus, the input power to the output luminance efficiency is improved. Since the voltage supplied to the storage capacitor is doubled through LC resonance, this method call drive an AC PDP with a voltage source of about half of the voltage necessary in the conventional driving methods. The experiments showed that this charge-controlled driving method could drive ail AC PDP with a voltage source of as low as 107V. Using a panel of the conventional structure, luminous efficiency of 1.28 lm/W was achieved.

Implement of Constant-Frequency-Controled Zero-Voltage-Switching Converter-fed DC Motor Drive for Low Power Loss (직류 전동기의 저손실 구동을 위한 일정 주파수 제어형 영전압 스위칭 변환기의 구현)

  • Ko, Moon-Ju;Park, Jin-Hong;Han, Wan-Ok;Lee, Sung-Paik
    • Proceedings of the KIEE Conference
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    • 1998.07f
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    • pp.2148-2150
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    • 1998
  • This paper proposes a constant frequency controlled zero voltage switching method that can reduce switching losses caused by emf on inductance in DC motor. The zero voltage switching method is used more than a zero current switching method because of reducing switching losses by capacitance of depletion region of MOSFET. To simplify the controller circuit, we propose constant frequency controlled zero voltage switching method in the paper. The control method is more stable than a variable frequency control method because it can optimize bandwidth of a closed-loop and reactances. Therefore, we construct a constant frequency controlled zero voltage switching converter and improve zero switching losses in high switching frequency. In the process, we can control low-losses in full range on variable voltage and load. We simulate the proposed converter with P-SPICE and compare results obtained through the experiment.

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Low Voltage Current Controlled Driving Method for AC PDP

  • Lee, Yang-Keun;Um, Jong-Sik;Kim, Joon-Yub
    • 한국정보디스플레이학회:학술대회논문집
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    • 2002.08a
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    • pp.207-210
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    • 2002
  • This paper presents a new driving method that can drive AC PDPs with low voltage and controlled-current for the sustaining period. The discharge current flowing into the AC PDP is limited in this method. Thus, the power consumption for the discharge is reduced and the discharge input power to output luminance efficiency is improved. Experimental results using this driving method showed that we could drive an AC PDP with a voltage source as low as 146 V and that luminous efficiency of 1.33 lm/W can be achieved.

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Improvement of the Contrast Ratio and Reduction of the Reset Period by Current Controlled Ramp Wavefrom

  • Lee, Sung-Hyun;Kim, Dong-Hyun;Park, Chung-Hoo;Shin, Joong-Hong;Yoo, Choong-Hee
    • Journal of Information Display
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    • v.2 no.4
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    • pp.39-45
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    • 2001
  • The voltage controlled ramp(VCR) waveform has recently been introduced in the reset period prior to addressing for plasma display. However, this method results in the oscillation of the gap voltage when the ramp rate is increased so as to reduce reset period. In this paper a current controlled ramp(CCR) waveform method in the reset period is suggested. This method can suppress the oscillation of gap voltage under the condition of shorter ramp time. Moreover, the reset time can be reduced by about 30 % compared with the VCR method under the same background luminance.

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Voltage control of three phase rectifier with current-controlled voltage type converter

  • Woo, Myeong-Ho;Jeong, Seung-Gi
    • Proceedings of the KIEE Conference
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    • 1991.11a
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    • pp.207-209
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    • 1991
  • This paper deals with voltage control method of PWM rectifier using current-controlled voltage type converter. A linearized model of the current-controlled rectifier is derived, which is used to examine the effect of controller gains to its dynamic responses. Through the simulation, it is shown that the proposed model is generally valid, which is confirmed by experimental results.

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Development of a voltage-controlled output current source for zenor diode degradation analysis (제너다이오드의 열화평가를 위한 전압제어 출력 전류원 개발)

  • Kim, Jong-ho;Chang, Hong-ki;Kwon, Young-mok;Che, Gyu-shik
    • Journal of Advanced Navigation Technology
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    • v.21 no.5
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    • pp.501-507
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    • 2017
  • When zenor diode load current is necessary to be controlled by input voltage as a circuit load, existing voltage controlling method cannot be applied to it because the output current of zenor diode is changed due to breakdown voltage variations. We propose input voltage controlled output current source regardless of zenor breakdown voltage variation due to degradation resulted from severe current applied electronic component life test as a circuit load in this paper. We show breakdown voltage characteristics of this zenor diode circuit through simulation, applying adequate values for each component in order to verify the circuit composed of that method, and then show the result in which output current is controlled by input voltage. We confirmed the output current varies proportional to input voltage, and developed circuit shows a constant value independent of zenor diode breakdown voltage variations due to component degradations.

A study on digital PWM control of $3{\Phi}$ voltage-type inverter (3상 전압형 인버터의 디지털 PWM 제어에 관한 연구)

  • Seul, Nam-O;Kim, Young-Min
    • Proceedings of the KIEE Conference
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    • 1998.07b
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    • pp.585-587
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    • 1998
  • It is suggested that the PWM inverter is controlled by Digital Software Programming. VVVF(Variable Voltage Variable Frequency) inverter control being used by PWM control for driving the motor with speed-varying, makes the PWM pattern with calculating the output voltage and frequency, and with controlling the carrier and signal, so actually this method is difficult to correspond with driving the motor by using voltage-varying and frequency-varying. Therefore this research suggested the new algorithm controlled by micro processor which is already stored by various PWM form of output voltage by using fundamental data of the carrier and signal. The PWM wave can be controlled with real time by using extra hardware and digital software and to speed up program processing, the control signals to switch the power semi-conductor of three phase PWM inverter, simultaneously use the output signal by microprocessor and extra hardware, and control signal by software. In the end, this method was proved by applying to Three Phase Voltage-type Inverter.

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