• Title/Summary/Keyword: Voltage active filter

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A Three-Phase Parallel Active Power Filter Operating with PCC Voltage Compensation by Controlling Reactive Power (무효전력 제어에 의한 PCC전압 보상을 갖는 삼상 병렬형 능동전력필터)

  • Lee, U-Cheol;Hyeon, Dong-Seok;Lee, Taek-Gi
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.49 no.3
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    • pp.211-218
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    • 2000
  • The performance and dynamic characteristics of three-phase active power filter with PCC voltage compensation is presented and analyzed in this paper. The characteristics of parallel active filter are discussed when they are applied to nonlinear loads with current source and voltage source type, the characteristics of voltage compensator and comparison of two functions are discussed. The proposed scheme in this paper employs a PWM voltage-source inverter and has two operation modes. First, it operates as a conventional active filter with reactive power compensation while PCC voltage is in a certain range. Second, is operates as a voltage compensator while PCC voltage is out of range. Finally, the validity of this scheme is investigated through analysis of simulation and experimental results for a prototype active power filter system rated at 10KVA.

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A Study on Current Harmonics Reduction and Unbalanced Source Voltage Compensation Using Series Active Power Filter and Parallel Passive Filter (직렬 능동전력필터와 병렬 수동필터를 이용한 고조파 전류 저감 및 불평형 전원 전압 보상에 관한 연구)

  • Oh, Jae-Hoon;Ko, Su-Hyun;Han, Yoon-Seok;Kim, Young-Seok
    • Proceedings of the KIEE Conference
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    • 2001.10a
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    • pp.196-199
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    • 2001
  • This paper deals with current harmonics and unbalanced source voltages compensation using combined filter system. Filter system consists of a series active filter and parallel passive filters. Passive filters were a traditional method to compensate current harmonics, so those were installed in power system widely. The active filter can be a substitution to improve filtering characteristics and complement drawbacks of the passive filter. The combined system of the active power filter and passive filter can has a better compensation performances and economical goods. The series type active power filter injects compensation voltage into power system by transformers. It's compensation principle is able to applicate for voltage compensation. A new control algorithm for series active filter to compensate current harmonics and unbalanced source voltages is proposed. In the proposed algorithm, a compensation voltage for harmonic reduction is calculated directly by instantaneous reactive power theory, and a compensation voltage for unbalanced source voltage is calculated in based on a synchronous reference frame. By experiments, we show validity of proposed compensation method.

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The Compensating Unbalanced Source Voltages for Unified Active Power Filter System (직.병렬 능동 전력필터 시스템을 이용한 불평형 전원전압 보상)

  • Kim, Young-Seok;Kang, Min-Hyung
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.56 no.4
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    • pp.716-723
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    • 2007
  • This paper suggests of a 3-phase 3-wire unified active power filter. The system is composed of a series active power filter and a parallel active power filter. The proposed series active power filter compensating unbalance source voltage and current harmonics of the parallel active power filter improves power factor. The proposed algorithm which improves for power factor and harmonic reduction are calculated by the performance function, and which compensates for the unbalanced source voltage is calculated based on the symmetrical component analysis. We composed a combined system of the series active power filter and parallel active power filter to confirm a validity of the proposed control methods. The effectiveness of the proposed algorithm is confirmed by the experiments.

Implementation of a Line-voltage Sensorless Active Power Filter (입력전원 센서리스 능동형 전력필터의 구현)

  • Jeong, Gang-Youl
    • Proceedings of the KIPE Conference
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    • 2005.07a
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    • pp.189-191
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    • 2005
  • This paper proposes an implementation of a line- voltage sensorless three-phase active power filter. The line synchronization for an active power filter does not require any additional hardware. It can be properly operated under various line-voltage variation. Current compensation is done in the time domain allowing fast time response. All control functions are implemented in software using a single-chip microcontroller, thus simplifying the control circuit. It is shown via experimental results that the proposed controller gives good performance for the line-voltage sensorless active power filter.

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A Study on the series Active Power Filter for Harmonic Reduction of 3-Phase 3-Wire System (3상 3선식 시스템의 고조파 저감을 위한 직렬형 능동전력필터에 관한 연구)

  • 한윤석
    • Proceedings of the KIPE Conference
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    • 2000.07a
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    • pp.735-738
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    • 2000
  • In this paper we propose a series active power filter and a simple calculation method acquiring the reference voltage. A series active power filter is suitable to suppress harmonics produced by voltage type harmonic source such as a diode rectifier with filter capacitor on the DC side The proposed series active power filter system is applied to 3-phase 3-wire power system including the voltage type harmonic source. Experimental result obtained from a laboratory model are shown to verify the viability and effectiveness of the proposed system.

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A Study on the Series Active Power Filter for Harmonic Reduction and Unbalanced Source Voltage Compensation (전류 고조파와 불평형 전원 전압 보상을 위한 직렬형 능동전력필터에 관한 연구)

  • Oh, Jae-Hoon;Han, Yoon-Seok;Kim, Young-Seok;Won, Chung-Yuen;Choi, Se-Wan
    • Proceedings of the KIEE Conference
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    • 2001.04a
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    • pp.191-194
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    • 2001
  • In this paper, we propose a series active power filter control method to compensate current harmonics and unbalanced source voltage. The system is composed of series active power filter and shunt passive filer that are tuned 5th and 7th harmonics. In this conventional system, series active power filter complements drawbacks of the shunt passive filter, namely improves harmonic compensation characteristics, and compensates unbalanced source voltage. In the proposed algorithm, compensation voltage for harmonic reduction is calculated by performance function, and compensation voltage for unbalanced source voltage is calculated in based on a synchronous reference frame. So, ultimate compensation voltage is sum of those two compensation voltages. By computer simulation, we verify the excellency of proposed method.

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Performance Analysis of a Three-Phase Parallel Active Power Filter which Compensates PCC Voltage and the Unbalanced Loads

  • Lee, Woo-Cheol;Lee, Taeck-Kie;Hyun, Dong-Seok
    • Journal of Power Electronics
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    • v.1 no.1
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    • pp.9-18
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    • 2001
  • The performance analysis of a three-phase parallel active power filter that compensates PCC voltage and the unbalanced loads is presented in this paper. The proposed scheme in this paper employs a PWM voltage-source inverter and has two operation modes. Firstly, it operates as a conventional active filter with reactive power compensation when PCC voltage is within the 15% voltage drop range. Secondly, it operates as a voltage compensator when PCC voltage is not within the 15% voltage drop range. And both APF and voltage compensator compensate asymmetries caused by nonlinear loads. Finally, two methods of detecting the negative sequence are reviewed, and the validity of this scheme is investigated through analysis of simulation and experimental results for a prototype active power filter system rate at 10KVA.

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3-Phase Hybrid Series Active Power Filter with Instantaneous Voltage Fluctuations Compensation (순간전압변동 보상 기능을 갖는 3상 하이브리드형 직렬 능동전력필터)

  • 한석우;최규하
    • The Transactions of the Korean Institute of Power Electronics
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    • v.5 no.6
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    • pp.544-551
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    • 2000
  • In this paper, 3-phase hybrid series active power filter for compensate current harmonics, voltage drop and unbalanced voltage in the network presented. The proposed system is implemented with a space vector modulation voltage source inverter and a high pass filter connected in parallel to the power system. Here the load is six-pulses thyristor rectifier. The phase angle detected in order to generation reference voltage at load terminal is synchronized with the positive sequence component of the unbalanced source by using symmetrical component transformation. The proposed system has an function harmonic isolation between source and load, voltage regulation, and unbalance compensation. Therefore, what the power system is improved quality, the source current is maintained as a nearly sinusoidal waveform and the load voltage is regulated with a rated voltage regardless of the source variation condition. To verify the validity of the proposed compensating system, the computer simulation and experiment are carried out.

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Design and Analysis of High-order Active Input Filter for Power Factor Correction(PFC) Converter (역률 개선 컨버터용 고차 능동 필터의 설계 및 분석)

  • Lee, Dong-Young;Cho, Bo-Hyung
    • Proceedings of the KIEE Conference
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    • 1996.07a
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    • pp.259-261
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    • 1996
  • In this paper, active input filter for power factor correction(PFC) circuit employing ripple arrent and voltage cancellation is proposed to reduce filter's size and cost, and to make filter design easy. Switching ripple current and voltage can be sensed through the secondary windings of filter inductor. Single stage passive filter can achieve high order filter characteristics by using active ripple current and voltage cancellation technique. Conventional high order passive filter and its problems are suggested. Analysis of active filter and design procedure are detailed. Simulation result is presented to verify high order filter characteristics of proposed scheme.

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An Active Output Filter with a Novel Control Strategy for Passive Output Filter Reduction

  • Choi, Kyusik;Cho, Bo-Hyung
    • Journal of Power Electronics
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    • v.16 no.3
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    • pp.1036-1045
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    • 2016
  • This paper presents a novel control strategy for passive output filter reduction using an active output filter. The proposed method achieves the dual-function of regulating the output voltage ripple and output voltage variation during load transients. The novel control strategy allows traditional simple voltage controllers to be used, without requiring the expensive current sensors and complex controllers used in conventional approaches. The proposed method is verified with results from a 125-W forward converter.