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      KCI등재 SCOPUS

      3상 Z-소스 PWM 정류기의 입력 AC 전압 센서리스 제어

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      https://www.riss.kr/link?id=A99585510

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      다국어 초록 (Multilingual Abstract)

      Respect to the input AC voltage and output DC voltage, conventional three-phase PWM rectifier is classified as the voltage type rectifier with boost capability and the current type rectifier voltage with buck capability. Conventional PWM rectifier can...

      Respect to the input AC voltage and output DC voltage, conventional three-phase PWM rectifier is classified as the voltage type rectifier with boost capability and the current type rectifier voltage with buck capability. Conventional PWM rectifier can not at the same time the boost and buck capability and its bridge is weak in the shoot-through state. These problems can be solved by Z-source PWM rectifier which has all characteristic of voltage and current type PWM rectifier. By shoot-through duty ratio control, the Z-source PWM rectifier can buck and boost at the same time, also, there is no need to consider the dead time. This paper proposes the input AC voltage sensorless control method of a three-phase Z-source PWM rectifier in order to accomplish the unity input power factor and output DC voltage control. The proposed method is estimated the input AC voltage by using input AC current and output DC voltage, hence, the sensor for the input AC voltage detection is no needed. comparison of the estimated and detected input AC voltage, estimated phase angle of the input voltage, the output DC voltage response for reference value, unity power factor, FFT(Fast Fourier Transform) of the estimated voltage and efficiency are verified by PSIM simulation.

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      목차 (Table of Contents)

      • Abstract
      • 1. 서론
      • 2. 3상 Z-소스 PWM 정류기
      • 3. 입력 전압 센서리스 제어
      • 4. 결과 고찰
      • Abstract
      • 1. 서론
      • 2. 3상 Z-소스 PWM 정류기
      • 3. 입력 전압 센서리스 제어
      • 4. 결과 고찰
      • 5. 결론
      • 참고문헌
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      참고문헌 (Reference)

      1 F. Z. Peng, "Z-source inverter" 39 (39): 504-510, 2003

      2 G. Lo Calzo, "Three-phase Z-source power supply design and dynamic modeling" 1339-1345, 2011

      3 Xinping Ding, "Three phase Z-source rectifier" 494-500, 2005

      4 H. S. Song, "Source voltage sensorless estimation scheme for PWM rectifiers under unbalanced conditions" IEEE-INST ELECTRICAL ELECTRONICS ENGI 50 (50): 0000001238-0000001245, 2003

      5 S. Hansen, "Sensorless control strategy for PWM rectifier" 2 : 832-838, 2000

      6 H. Yoo, "Sensorless Operation of a PWM Rectifier for a Distributed Generation" 22 (22): 1014-1018, 2007

      7 H. Kim, "Phase current reconstruction for AC motor drives using a DC link single current sensor and measurement voltage vectors" 21 (21): 1413-1419, 2006

      8 Se-Jin Kim, "Output AC voltage control of a three-phase Z-source inverter by the voltage gain and modulation index control" 59 (59): 1996-2005, 2010

      9 V. Kaura, "Operation of a voltage source converter at increased utility voltage" 12 : 132-137, 1997

      10 D. M. Vilathgamuwa, "Modelling of three phase Z-source boost-buck rectifiers" 1471-1476, 2007

      1 F. Z. Peng, "Z-source inverter" 39 (39): 504-510, 2003

      2 G. Lo Calzo, "Three-phase Z-source power supply design and dynamic modeling" 1339-1345, 2011

      3 Xinping Ding, "Three phase Z-source rectifier" 494-500, 2005

      4 H. S. Song, "Source voltage sensorless estimation scheme for PWM rectifiers under unbalanced conditions" IEEE-INST ELECTRICAL ELECTRONICS ENGI 50 (50): 0000001238-0000001245, 2003

      5 S. Hansen, "Sensorless control strategy for PWM rectifier" 2 : 832-838, 2000

      6 H. Yoo, "Sensorless Operation of a PWM Rectifier for a Distributed Generation" 22 (22): 1014-1018, 2007

      7 H. Kim, "Phase current reconstruction for AC motor drives using a DC link single current sensor and measurement voltage vectors" 21 (21): 1413-1419, 2006

      8 Se-Jin Kim, "Output AC voltage control of a three-phase Z-source inverter by the voltage gain and modulation index control" 59 (59): 1996-2005, 2010

      9 V. Kaura, "Operation of a voltage source converter at increased utility voltage" 12 : 132-137, 1997

      10 D. M. Vilathgamuwa, "Modelling of three phase Z-source boost-buck rectifiers" 1471-1476, 2007

      11 T. Ohnishi, "Line voltage sensorless three phase PWM converter by tracking control of operating frequency" 1 : 247-252, 1997

      12 K. Karunakar, "Dynamic analysis of three phase Z-source boost-buck rectifier" 198-202, 2008

      13 T. Noguchi, "Direct power control of PWM converter without power-source voltage sensors" 34 (34): 473-479, 1998

      14 R. Wu, "Analysis of an ac-to-dc voltage source converter using PWM with phase and amplitude control" 27 (27): 355-364, 1991

      15 D. C. Lee, "AC voltage and current sensorless control of three-phase PWM rectifier" 17 (17): 883-890, 2002

      16 Tae-Won Chun, "AC output voltage control with minimization of voltage stress across devices in the Z-source inverter using modified SVPWM" 1-5, 2006

      17 V. Blasko, "A new mathematical model and control of a three-phase AC-DC voltage source converter" 12 : 116-123, 1997

      18 W. C. Lee, "A Novel control method for three-phase PWM rectifiers using a single current sensor" 15 (15): 861-870, 2000

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
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      2016 0.27 0.27 0.24
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      0.21 0.19 0.366 0.08
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