• Title/Summary/Keyword: DVR(dynamic voltage restorer)

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Development of the Dynamic Voltage Restorer Prototype (Dynamic Voltage Restorer Prototype 개발)

  • Kim, Ji-Won;Chun, Yeong-Han;Jeon, Jin-Hong
    • Proceedings of the KIEE Conference
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    • 2000.11a
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    • pp.101-103
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    • 2000
  • 산업의 발달과 각종 기기의 고도화 및 정밀화에 의하여 전원에 민감한 기기들이 많은 산업 현장에 사용 되게 되었다. 이러한 민감한 기기는 입력 전원에 매우 민감하여 일반적인 정전뿐만 아니라 순간적으로 입력전압의 크기가 작아지는 순간전압강하에도 큰 영향을 받게된다. 본 논문에서는 전원측에서 순간전압강하가 발생하는 경우 부하에 영향을 미치지 않도록 하는 DVR에 대해서 제어알고리즘을 제시하고 시뮬레이션과 실험을 통하여 그 알고리즘의 타당성을 검증하였다.

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High-Performance Control of Three-Phase Four-Wire DVR Systems using Feedback Linearization

  • Jeong, Seon-Yeong;Nguyen, Thanh Hai;Le, Quoc Anh;Lee, Dong-Choon
    • Journal of Power Electronics
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    • v.16 no.1
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    • pp.351-361
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    • 2016
  • Power quality is a critical issue in distribution systems, where a dynamic voltage restorer (DVR) is commonly used to mitigate the voltage disturbances for loads. This paper deals with a nonlinear control for the three-phase four-wire (3P-4W) DVR under a grid voltage unbalance and nonlinear loads in the distribution system, where a novel control scheme based on the feedback linearization technique is proposed. Through feedback linearization, a nonlinear model of a DVR with a PWM voltage-source inverter (VSI) and LC filters is linearized. Then, the controller design of the linearized model is performed by applying the linear control theory, where the load voltages are kept constant by controlling the d-q-0 axis components of the DVR output voltages. To keep the load voltage unchanged, an in-phase compensation strategy is employed, where the load voltages are recovered to be the same as the previous voltage without a change in the magnitude. With this strategy, the performance of the DVR becomes faster and more stable even under unbalanced source voltages and nonlinear loads. The validity of the proposed control strategy has been verified by simulation and experimental results.

A Study on the dynamic voltage restorer using hybrid capacitor (하이브리드 커패시터를 적용한 순간전압강하 보상장치에 관한 연구)

  • Seo, Ansik;Maeng, Jucheol;Yoon, Jungrag
    • Proceedings of the KIPE Conference
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    • 2013.11a
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    • pp.75-76
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    • 2013
  • 최근 산업 및 경제의 급속한 발전으로 컴퓨터를 비롯한 전기 및 전자 장비, 통신기기, 반도체 장비 등 전기적 외란에 민감한 부하 설비의 사용이 급증하면서 전력 품질에 대한 관심이 고조되고 있다. 그 이유는 정밀 부하 장비들이 전압의 순간적 변동에 대하여 민감하여 이 문제로 인하여 파생되는 경제적 피해가 매우 크기 때문에 지속적인 관리가 필요하다. 이러한 문제 중에서 가장 빈번하게 발생하는 순간 전압 강하를 보상하기 위한 장치로 전기 이중 층 커패시터 (EDLC: Electric Double Layer Capacitor)를 에너지 저장장치로 사용한 순간전압강하 보상장치 (DVR: Dynamic Voltage Restorer) 시스템이 개발 되어 적용되고 있다. 본 논문에서는 현재 순간전압강하 보상장치에 사용되는 DVR 시스템에서 주로 사용되는 에너지 저장장치인 EDLC 보다 동일 사이즈 대비 에너지 밀도가 높은 하이브리드 커패시터를 적용하는 연구를 하고자 한다.

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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 Study on the Application of the DVR in AC Electric Traction System (전기철도계통에 순간전압강하 보상장치 적용에 관한 연구)

  • 최준호;김태수;김재철;문승일;남해곤;정일엽;박성우
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.17 no.6
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    • pp.95-104
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    • 2003
  • The electric traction systems are quite differ from general power systems which is single-phase and heavy load. Therefore, there are inevitably power quality problems such as steady state or transient voltage drop, voltage imbalance and harmonic distortion. Among these problems, since steady-state volatge drop is the one of most important factor in electric power quality, many researches about on the compensation of volatge drop by using SVC(Static Var Compensator) and/or STACOM(Static Compensator) have been studied and proposed Also, it is expected that transient voltage drop(voltage sag) could affect the control and safety of high speed traction load. In this paper, voltage sag compensation of AT(Auto Transformer) feeding system are studied The detailed transient models of utility source, scott transformer, AT, and traction load are estabilished. The application of DVR(Dynamic Voltage Restorer) in electric traction system is proposed to compensate the voltage sag of traction network which is occured by the fault of utility source. It can be shown that application of the DVR in electric traction system is very useful to compensate the volatge sag from the result of related simulation works.

A Comparative Analysis of Voltage Sag Detecting Techniques for Dynamic Voltage Restorer (동적전압보상기(DVR)를 구성하기 위한 순시전압강하의 검출기법 비교)

  • Shon, Jin-Geun;Suk, Won-Yeob;Park, Jong-Chan;Na, Chae-Dong
    • Proceedings of the KIEE Conference
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    • 2004.07e
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    • pp.10-13
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    • 2004
  • The recent growth in the use of impactive and nonlinear loads, electronic devices sensitive to power quality has caused many power quality problems. Dynamic voltage restorers(DVR) are known as the best effective and economic means to compensate for power quality problems(especially, voltage sag and sewll). In this paper, we adresses the detecting algorithsms and implementation techniques of an voltage sag for operating DVR.

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Design of Voltage Controller of DVR based on DSP (DSP를 기반으로한 DVR의 전압제어기 구현)

  • Lee won-sun;Kim soo-gon;Lim Byung-Kuk;Jeon hee-Jong
    • Proceedings of the KIPE Conference
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    • 2004.07b
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    • pp.566-569
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    • 2004
  • The recent growth in the use of impactive and nonlinear loads, electronic devices sensitive to power quality has caused many power quality problems. Recently, in power system, not only the reliability of the power supply but also the DVR(Dynamic Voltage Restorer) are being studied more and more. The DVR is a series compensator which can instantaneously compensate a voltage variation in supply side, and is a more effective than a existing UPS(Uninterruptible Power Supply) which can be only used in limited range of loads such as single load. Hence, in this paper, a study of inverter side L-C filter output Voltage for DVR is discussed.

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DVR Control System Design applied to 22.9kV Distribution System (22.9kV 배전선로 적용을 위한 DVR 제어시스템 설계)

  • Kim H. J.;Chung Y. H.;Kwon G. H.;Park T. B.;Jeon Y. S.
    • Proceedings of the KIEE Conference
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    • summer
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    • pp.30-32
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    • 2004
  • This paper describes control system design for the DH(dynamic voltage restorer) consisted of a diode rectifier and series inverter applied to 22.9kV distribution system. The DVR control system is consisted of the main two parts. One is a voltage event detector using a neural network and the other is deadbeat controller for the output voltage and current control of the DVR. A simulation model was developed for analyzing performance of the controller and the whole system. The results confirm that the DVR can restore load voltage under the fault of the distribution system.

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A study on analysis of DVR(Dynamic Voltage Restorer) in electric traction network by using the PSCAD/EMTDC (PSCAD/EMTDC를 이용한 전기철도급전계통에 DVR(Dynamic Voltage Restorer)해석에 관한 연구)

  • Choi, J.H.;Kim, J.C.;Park, S.M.;Kim, T.S.;Choo, D.W.;Chung, I.Y.;Park, S.W.
    • Proceedings of the KIEE Conference
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    • 2003.07a
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    • pp.283-286
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    • 2003
  • The electric traction load is quite differ from general power system load which is single-phase, high-speed heavy load receiving power from 3-phase power system and also has variable load characteristics over time and space. Therefore, there are inevitably power quality problems such as steady state or transient voltage drop, voltage imbalance and harmonic distortion. In addition, it is expected that transient voltage sag could affect the safety of feeding system. Thus, in this paper transient analysis and voltage sag compensation of AT(Auto Transformer) feeding system are studied. The fault study of traction network is analysed by using PSCAD/SMTDC simulation tool. In addition, application of DVR in electric traction system is proposed to compensate the voltage sag of traction network which is occurred by the fault of utility source. The results of fault study will be a useful research works for operation and setting of electric traction relay. Also, it can be shown that application of the DVR in electric system is very useful to compensate the voltage sag from the result of related simulated work. The results of study will be a useful research works for management and planning of power quality in electric traction system.

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A Discrete State-Space Control Scheme for Dynamic Voltage Restorers

  • Lei, He;Lin, Xin-Chun;Xue, Ming-Yu;Kang, Yong
    • Journal of Power Electronics
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    • v.13 no.3
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    • pp.400-408
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    • 2013
  • This paper presents a discrete state-space controller using state feedback control and feed-forward decoupling to provide a desirable control bandwidth and control stability for dynamic voltage restorers (DVR). The paper initially discusses three typical applications of a DVR. The load-side capacitor DVR topology is preferred because of its better filtering capability. The proposed DVR controller offers almost full controllability because of the multi-feedback of state variables, including one-beat delay feedback. Feed-forward decoupling is usually employed to prevent disturbances of the load current and source voltage. Directly obtaining the feed-forward paths of the load current and source voltage in the discrete domain is a complicated process. Fortunately, the full feed-forward decoupling strategy can be easily applied to the discrete state-space controller by means of continuous transformation. Simulation and experimental results from a digital signal processor-based system are included to support theoretical analysis.