• Title/Summary/Keyword: low voltage implementation

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Verification of Hi9h Impedance Fault Relay through Low Voltage Power System Implementation (저압모의계통 구성을 통한 고저항지락사고 검출용 계전기의 실계통 적응성 검증)

  • Hong, Sun-Chun;Jang, Byung-Tae;Yoo, Heung-Jun
    • Proceedings of the KIEE Conference
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    • 1999.07c
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    • pp.1437-1439
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    • 1999
  • This paper describes test method though low voltage power system implementation for high impedance fault relay test before its operation in real power system. Through this test, relay tested its function and algorithm. In this paper, we will provides test method using low voltage power system and its results.

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Design and Implementation of Low-Voltage and Lour-Power Driving Method for Plasma Display Panel (저 전압, 저 전력 Plasma Display Panel 구동 회로의 설계 및 구현)

  • Kim, Sang-Bong;Choi, Jin-Ho;Jang, Yun-Sepk
    • Proceedings of the IEEK Conference
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    • 2004.06b
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    • pp.601-604
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    • 2004
  • In this paper, we propose a driving circuit that can be operated with a lower voltage than that of the conventional circuit without reducing the discharge voltage. the circuit proposed in this paper has a merit to improve the electrical characteristics because it can be composed of switching devices with low voltage. The operation and efficiency using real devices. The features of the circuit proposed in this paper are as follows; the power loss can be decreased by the use of low voltage, the cost if the driving circuit for PDP can be reduced by the use of switching devices operated with low voltage.

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Analysis and Implementation of a New Single Switch, High Voltage Gain DC-DC Converter with a Wide CCM Operation Range and Reduced Components Voltage Stress

  • Honarjoo, Babak;Madani, Seyed M.;Niroomand, Mehdi;Adib, Ehsan
    • Journal of Power Electronics
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    • v.18 no.1
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    • pp.11-22
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    • 2018
  • This paper presents a single switch, high step-up, non-isolated dc-dc converter suitable for renewable energy applications. The proposed converter is composed of a coupled inductor, a passive clamp circuit, a switched capacitor and voltage lift circuits. The passive clamp recovers the leakage inductance energy of the coupled inductor and limits the voltage spike on the switch. The configuration of the passive clamp and switched capacitor circuit increases the voltage gain. A wide continuous conduction mode (CCM) operation range, a low turn ratio for the coupled inductor, low voltage stress on the switch, switch turn on under almost zero current switching (ZCS), low voltage stress on the diodes, leakage inductance energy recovery, high efficiency and a high voltage gain without a large duty cycle are the benefits of this converter. The steady state operation of the converter in the continuous conduction mode (CCM) and discontinuous conduction mode (DCM) is discussed and analyzed. A 200W prototype converter with a 28V input and a 380V output voltage is implemented and tested to verify the theoretical analysis.

Design and Simulation of analog controller for 3 Phase PWM Converter Based on Stationary Reference Frame (3상 PWM Converter를 위한 정지 좌표계법 Analog 제어기 설계 및 시뮬레이션)

  • 이영국;노철원;최종률
    • Proceedings of the KIPE Conference
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    • 1997.07a
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    • pp.14-20
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    • 1997
  • Due to several advantages of Pulse Width Modulated(PWM) Converter, such as unity power factor with low-harmonics and energy regeneration, PWM converter has been widely used in industrial application. In every application of energy conversion equipment, the design and implementation must be carried out considering performance and cost. High quality with low cost is the best choice for energy conversion equipment. High dc link voltage can reduce inverter and motor side losses and system dimension compare to low dc link voltage. Analog controller can make PWM converter cheaper without considerable degradation of the performance than digital controller. This paper shows the simplified analog controller-for 600V dc link voltage using stationary reference frame control and the simulation results.

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1.5Gb/s Low Power LVDS I/O with Sense Amplifier (Sense amplifier를 이용한 1.5Gb/s 저전력 LVDS I/O 설계)

  • 변영용;이승학;김성하;김동규;김삼동;황인석
    • Proceedings of the IEEK Conference
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    • 2003.07b
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    • pp.979-982
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    • 2003
  • Due to the differential transmission technique and low voltage swing, LVDS has been widely used for high speed transmission with low power consumption. This paper presents the design and implementation of interface circuits for 1.5Gb/s operation in 0.35um CMOS technology. The interface circuit ate fully compatible with the low-voltage differential signaling(LVDS) standard. The LVDS proposed in this paper utilizes a sense amplifiers instead of the conventional differential pre-amplifier, which provides a 1.5Gb/s transmission speed with further reduced driver output voltage. Furthermore, the reduced driver output voltage results in reducing the power consumption.

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A Novel Six-Level Inverter Topology with Capacitor Voltage Self-Balancing (커패시터 전압 자기 밸런싱 기능이 있는 새로운 6-레벨 인버터 토폴로지)

  • Pribadi, Jonathan;Lee, Dong-Choon
    • Proceedings of the KIPE Conference
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    • 2020.08a
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    • pp.316-317
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    • 2020
  • In this paper, a novel six-level inverter is proposed. Voltage regulation is applied at DC-link and flying capacitors through the implementation of phase-shifted carrier-based modulation with zero-sequence voltage injection. The performance of the proposed structure has been verified under various modulation indices, where low voltage ripple is achieved at each capacitor and total harmonic distortions (THD) of line voltage at unity modulation index is about 15.95%.

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Design and Implementation of Low Cost Boost Type Single-Phase Inverter System for Compensation of Voltage Sag (순간전압강하 보상을 위한 저가의 승압형 단상 인버터 시스템의 설계 및 구현)

  • Lee, Seung-Yong;Hong, Soon-Chan
    • The Transactions of the Korean Institute of Power Electronics
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    • v.17 no.1
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    • pp.85-92
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    • 2012
  • In this paper, a 300[W] class boost type single-phase inverter system which can compensate voltage sag on source side is designed and implemented. This system is a two-stage conversion system composed of a boost converter and a PWM inverter. If the voltage sag has appeared at the point of common coupling, the boost converter would be operated to compensate it. The boost converter and the inverter were constructed on single smart power module(SPM) to implement low cost system. The system is designed for that the THD of output voltage is below 5[%]. Finally, the validity of the design for the inverter system is verified by both simulations and experiments.

A Special Protection Scheme Against a Local Low-Voltage Problem and Zone 3 Protection in the KEPCO System

  • Yun, Ki-Seob;Lee, Byong-Jun;Song, Hwa-Chang
    • Journal of Electrical Engineering and Technology
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    • v.2 no.3
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    • pp.294-299
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    • 2007
  • This paper presents a special protection scheme, which was established in the KEPCO (Korea Electric Power Corporation) system, against a critically low voltage profile in a part of the system after a double-circuit tower outage. Without establishing the scheme, the outage triggers the operation of a zone 3 relay and trips the component. This sequence of events possibly leads to a blackout of the local system. The scheme consists of an inter-substation communication network using PITR (Protective Integrated Transmitter and Receiver) for acquisition of the substations' data, and under-voltage load shedding devices. This paper describes the procedure for determining the load shedding in the scheme and the experiences of the implementation.

Study on High Efficiency Boosting-up Circuit for Renewable Energy Application (신재생에너지용 연계형 인버터의 고효율 승압에 관한 연구)

  • Jung, Tae-Uk;Kim, Ju-Yong;Choi, Se-Kwon;Cho, Jun-Seok;Kho, Hee-Seok
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2009.05a
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    • pp.336-339
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    • 2009
  • In this paper, such as battery power or solar energy and fuel cells generated from Renewable energy sources, high voltage to low voltage DC-DC Converter for converting the design of the study. System consists of low voltage ($24{\sim}28$ [VDC]) and Boosts the voltage (270 [VDC]) for a 3 [kW] DC-DC converter and control circuit is configured as, Power switch the ST Tomson's Automotive low voltage high current MOSFET switches STE250NS10S (temperature 250A) was applied to the two parallel. Also, Controller's processor used ATMEGA128, and Gate Drive applies and composed Photo Coupler TLP250. development. Input voltage (24V) and output voltage (270V) for Conversion in the H-bridge converter topology of the circuit output side power and voltage to control the implementation of the Phase shift angle control applied. And, 3kW of power to pass appropriate specification of the secondary side as interpreted by the high frequency transformer, and the experimental production and analysis of the experiment

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A Development of Visualization Software for Protective Engineering in Low-Voltage Power Systems (저압계통 보호 엔지니어링을 위한 시각화 소프트웨어 개발)

  • Yun, Sang-Yun;Lee, Nam-Ho;Lee, Wook-Hwa;Lee, Jin;Kim, Jae-Chul
    • The Transactions of the Korean Institute of Electrical Engineers A
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    • v.55 no.7
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    • pp.297-305
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    • 2006
  • This paper summarizes a development of visualization software for protective engineering in low-voltage power systems. The study is concentrated on the following aspects. First, a software engineering method is applied for designing the object-oriented program. The design and implementation of a Graphic User Interface(GUI) and its integration to a power system framework are developed using object-oriented programming(OOP) in Visual C++. Second, we develop the short circuit analysis module that oriented a low-voltage power system. It is possible to calculate a peak, symmetrical RMS, DC component and asymmetrical fault currents for each time. And it is the first software that can calculate the fault current for single branch of three-phase system. The calculation accuracy is compared with commercial software, and the libraries of low-voltage components are served for convenience use. Third, protective engineering functions are equipped. It is possible to automatically select the circuit breaker which based on the user input characteristics and the fault current calculation and examine the protective coordination. Through the case study, we verified that the developed software can be effectively used to examine the protective engineering in low-voltage power systems.