• Title/Summary/Keyword: Korea AC electric railway system

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Analysis of the amplification of Harmonic Current Using EMTDC in Kyongbu High-Speed Railway (EMTDC를 이용한 경부고속철도 고조파 전류 확대율 해석)

  • Lee H.M;Lee C.M
    • Proceedings of the KIEE Conference
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    • summer
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    • pp.1379-1381
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    • 2004
  • This paper presents the AC electric railway system modeling using PSCAD/EMTDC program. This system model is composed of the scott-transformer the auto-transformer. the running rails. the protection wires, the feeders. the catenary and contact wires, etc. After obtaining the models of the fundamental elements describing the AC electric railway system and its behavior, we have analyzed and tested real traction power feeding system focused on the amplification of harmonic current to verify the proposed model. The simulation results from the proposed approach and the measurement data from the test are described in the paper.

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Development and Performance Test of DC Smart Metering System for the DC Power Measurement of Urban Railway (도시철도 직류 전력량 계측을 위한 직류용 스마트미터링 시스템 개발 및 성능시험)

  • Jung, Hosung;Shin, Seongkuen;Kim, Hyungchul;Park, Jongyoung
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.63 no.5
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    • pp.713-718
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    • 2014
  • DC urban railway power system consists of DC power network and AC power network. The DC power network supplies electric power to railway vehicles and the AC power network supplies electric power to station electric equipment. Recently, because of power consumption reduction and peak load shaving, intelligent measurement of regenerative energy and renewable energy adapted on DC urban railway is required. For this reason, DC smart metering system for DC power network shall be developed. Therefore, in this paper, DC voltage sensor, current sensor, and DC smart meter were developed and evaluated by performance test. DC voltage sensor was developed for measuring standard voltage range of DC urban railway, and DC current sensor was developed as hall effect split core type in order to install in existing system. DC smart meter possesses function of general intelligent electric power meter, such as measuring electricity and wireless communication etc. And, DC voltage sensor showed average 0.17% of measuring error for 2,000V/50mA, and current sensor showed average 0.21% of measuring error for ${\pm}2,000V/{\pm}4V$ in performance test. Also DC smart meter showed maximum 0.92% of measuring error for output of voltage sensor and current sensor. In similar environment for real DC power network, measuring error rate was under 0.5%. In conclusion, accuracy of DC smart metering system was confirmed by performance test, and more detailed performance will be verified by further real operation DC urban railway line test.

Comparison of AC Electric Railway System Model using the EMTDC (EMTDC 및 수 계산에 의한 교류 전철급전시스템 사고 해석)

  • Lee, Han-Min;Oh, Kwang-Hae;Han, Moon-Sub;Lee, Chang-Mu;Chang, Sang-Hoon;Jang, Dong-Uk
    • Proceedings of the KIEE Conference
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    • 2003.04a
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    • pp.395-398
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    • 2003
  • This study presents wrong hand calculations for fault analysis at field on the real AC railway system. Hence, we correctly revised the hand calculations. We propose AC railway system model by using EMTDC. Fault studies are performed. We also compare revised hand calculations with EMTDC simulation to verify the proposed model made by EMTDC. So, we can confirm that the model made by using EMTDC is correctly designed.

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BESS Application to Voltage Compensation of AC Railway System based on 3ϕ/1ϕ BTB Voltage Source Converter (3상/단상 BTB 전압형 컨버터 기반의 전기철도 급전 시스템의 전압제어 향상을 위한 BESS 적용)

  • Yoo, Hyeong-Jun;Shin, Seungkwon;Jung, Hosung;Kim, Hak-Man
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.63 no.11
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    • pp.1588-1593
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    • 2014
  • The scott transformer changes three-phase power to two single-phase power. However, this method causes unbalance and fluctuation of voltage by the change of electric railload. Recently, the AC railway system based on $3{\Phi}/1{\Phi}$ back-to-back (BTB) voltage source converter (VSC) has been proposed to solve these problems. Meanwhile, battery energy storage system (BESS) is used to compensate voltage instantaneously in power system. In this paper, BESS application to the AC railway system based on $3{\Phi}/1{\Phi}$ BTB VSC is suggested to compensate voltage instantaneously. The application effect is shown through simulation using MATLAB/SIMULINK.

A Study on the Overcurrent Relay Modeling and Protective Coordination for Overload in Domestic AC Electrical Railway System (국내 교류 전기철도 급전계통 보호용 과전류 계전기 모델링 및 과부하 보호 협조에 관한 연구)

  • Kim, Hyun-Dong;Cho, Gyu-Jung;Huh, Seung-Hoon;Kim, Chul-Hwan
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.65 no.7
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    • pp.1121-1127
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    • 2016
  • In this paper, modeling of overcurrent relay(OCR) to protect domestic AC electric railway Auto Transformer(AT) feeding system and operation characteristic analysis on overload condition are described. The target system of this paper is actual site where overload trip of circuit breaker occurs frequently. Because this AT feeding system is made of parallel single track which had a load(electric train) respectively, and is connected with only T phase of Scott Transformer. In addition, this system has been feeding 66kV voltage by KEPCO, not 154kV. We focus on protective coordination of Scott Transformer primary side and secondary side OCR for Korea single track AC electrical railway system in operation currently. We modeled single track AT feeding system and OCR. Also we performed faults and overload analysis for verification of OCR's setting values and system modeling. To analyze above mentioned research, we used PSCAD/EMTDC software tool.

Analysis of AC Electric Railway System using the PSCAD/EMTDC (PSCAD/EMTDC를 이용한 교류 전철급전시스템 해석)

  • Lee, Han-Min;Han, Moon-Seob;Chang, Sang-Hoon;Oh, Kwang-Hae;Lee, Chang-Mu;Kim, Joo-Rak
    • Proceedings of the KIEE Conference
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    • 2002.07b
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    • pp.1241-1243
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    • 2002
  • This study presents a AC electric railway system analysis using PSCAD/EMTDC for circuit analysis and fault studies. This PSCAD/EMTDC model includes feeder, contact line, rails. Scott-transformer. Auto-transformer and so on. This model is based on four-port network which is an extension of two-port network theory. In order to verify the proposed model, fault studies of a test system are performed.

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Modelling AC Electric Railway System using the PSCAD/EMTDC (PSCAD/EMTDC를 이용한 교류 전철급전시스템 모델링)

  • Lee, Han-Min;Chang, Sang-Hoon;Han, Moon-Seob;Kim, Joo-Rak;Oh, Kwang-Hae;Lee, Chang-Mu
    • Proceedings of the KIEE Conference
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    • 2002.04a
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    • pp.260-262
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    • 2002
  • This study presents a AC electric railway system model using PSCAD/EMTDC. Ver.3.08 for circuit analysis and fault studies. This system model made by PSCAD/EMTDC is composed of feeder, contact line, rails, Scott-transformer, Auto-transformer. This model is based on four-port network which is an extension of two-port network theory. In order to verify the proposed model, each voltage of feeder-rail, contact line-rail and feeder-contact line is measured and fault studies are also simulated.

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The Voltage Drop Compensation of Electric Railway Feeding system using a Fuelcell System (연료전지 시스템을 이용한 전기철도 급전계통 전압강하 보상)

  • Kim, Jae-Moon
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.64 no.2
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    • pp.342-348
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    • 2015
  • In this paper, fuel cell power generation system that is being studied in recent railway field was applied to compensate for the voltage drop due to the load as driving electric vehicle. PSIM simulation program is to be used to implement the modeling of the electric railway for AC AT feeder system. For it, It was applied to the product-type single-phase PLL algorithm, step-down converter is controlled as power so as to have the fuelcell generation system. Based on it's result, a reactive power due to the catenary impedance in accordance with the current flowing is compensated as linked with fuelcell generation system which supplied the current to the power supply grid. and then its performance was confirmed that voltage compensation effect obtained at SubStation (SS), SubSectioning Post (SSP), Sectioning Post (SP).

Study on Analysis for Power Consumption and Charge/Discharge Effect with BESS in AC High-Speed Electric Railway System (교류 고속철도계통에서 BESS의 도입을 위한 전력소비 및 충·방전효과 분석에 관한 연구)

  • Jeon, Yong-Joo;Kang, Byoung-Wook;Chai, Hui-Seok;Kim, Jae-Chul
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.28 no.9
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    • pp.20-27
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    • 2014
  • The power consumption pattern of high-speed railway has rarely during night time. But, during service time, the power is consumed irregularly related to train operation. Especially certain unusual about 1-2 days of service time interval to indicate the power consumption is rapidly growing phenomenon, which causes the capacity of the power contract is the annual electricity bill to rise rapidly as the cause. Normally, amount of peak power consumption bill rate at railway substation is over 20% of total electrical bill. Therefore, high-speed railway substation is expected to be considerably larger savings by reducing the peak power of the default charge(demand power).

The Estimation of Rail Current Distribution According to Feeding Scheme (급전방식에 따른 레일전류 분포 예측)

  • Lee, C.M.;Han, M.S.;Jung, H.S.;Kim, J.R.;Kim, H.J.
    • Proceedings of the KIEE Conference
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    • 2005.07b
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    • pp.1619-1621
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    • 2005
  • AC electric railway feeding system classifies into three groups such as normal, TIE and PP feeding method. If the feeding scheme of ac electric railway is changed, current distribution flowing through the line is also modified. And if the current distribution is altered according to the feeding scheme, returned tendency through rail load current or fault current of the train is changed. So the investigation about error correcting method of protective relay is needed considering feeding scheme. In this paper prior to error correcting of protective relay, through interpreting feeding circuit, changes in current distribution of the rail in accordance with feeding would be predicted and analyzed.

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