• Title/Summary/Keyword: DC-voltage

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EMTP Modeling of an Alterative Counter voltage (ACV) DC Hybrid Circuit Breaker (DC-HCB) (대체 카운터 전압(ACV) DC 하이브리드 회로 차단기(DC-HCB)의 EMTP 모델링)

  • Kazim, Raza Muhammad;Rhee, Sang-Bong
    • Proceedings of the KIEE Conference
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    • 2015.07a
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    • pp.601-602
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    • 2015
  • Interruption of AC is easier due to natural occuring of zero crossings. In DC, zero crossings is achieved by Forced commutation technique. In this paper an alternative counter voltage(ACV) DC Hybrid Circuit breaker(DC-HCB) is modeled using EMTP/ATP tool, Results show that, ACV DC-HCB can interrupt DC with in 5ms with a source voltage of upto 1 KV.

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Development of High Efficiency DC-DC Converter Circuit Topology for Renewable Energy Application (신재생에너지 연계용 고효율 승압형 DC-DC Converter 회로 토폴로지 개발)

  • Jung, Tae-Uk;Kim, Ju-Yong
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.24 no.1
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    • pp.105-111
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    • 2010
  • This article studies the design of DC-DC Converter to convert low-voltage energy sources generated from renewable power like battery power, photovoltaic power, or fuel cells into high-voltage ones. The circuit topology of H-bridge Converter to convert input voltage, 24[V], into out voltage, 400[V], was realized through applying phase shift angle control so as to manage electric power and voltage in the output side. The advantages of the converter system suggested are the low cost as well as current stress reduction, high efficiency, reliability, and simplified maintenance. It is also found that the system is highly useful to produce residential electric power.

Design of 2-Ch DC-DC Converter with Wide-Input Voltage Range of 2.9V~5.6 V for Wearable AMOLED Display (2.9V~5.6V의 넓은 입력 전압 범위를 가지는 웨어러블 AMOLED용 2-채널 DC-DC 변환기 설계)

  • Lee, Hui-Jin;Kim, Hak-Yun;Choi, Ho-Yong
    • Journal of IKEEE
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    • v.24 no.3
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    • pp.859-866
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    • 2020
  • This paper proposes a 2-ch DC-DC converter with a wide-input voltage range from 2.9V~5.6V for wearable AMOLED displays. For positive voltage VPOS, a boost converter is designed using an over-charged voltage permissible circuit (OPC) which generates a normal output voltage even if over-input voltage is applied, and a SPWM-PWM dual mode with 3-segmented power transistors to improve efficiency at light load. For negative voltage VNEG, a 0.5x regulated inverting charge pump is designed to increase power efficiency. The proposed DC-DC converter was designed using a 0.18-㎛ BCDMOS process. Simulation results show that the proposed DC-DC converter generates VPOS voltages of 4.6 V and VNEG voltage of -0.6V~-2.3V for input voltage of 2.9V to 5.6V. In addition, it has power efficiency of 49%~92%, output ripple voltage has less than 20 mV for load current range of 1 mA~70 mA.

Two Stage High Step-Up Converter for Low Input Voltage and High Current Applications (낮은 입력전압, 대전류 응용을 위한 2단 구성 승압컨버터)

  • Noh, Young-Jae;Xu, Han;Kang, Cheol-Ha;Kim, Eun-Soo;Jang, Sang-Ho
    • The Transactions of the Korean Institute of Power Electronics
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    • v.17 no.6
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    • pp.507-515
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    • 2012
  • DC-DC converter which composed of LLC resonant converter, operated by fixed switching frequency with fixed duty cycle (50%), and flyback converter to provide constant output voltage($400V_{DC}$) with variation of input voltage($30-60V_{DC}$) is proposed in this paper. To obtain constant output voltage($400V_{DC}$), flyback converter is not operated in case of above the maximum input voltage($60V_{DC}$) and operated as the input voltage decreases to below 60VDC. Therefore, flyback converter can be designed to the 50% power rating of the maximum power in the proposed DC-DC converter. Operation modes and voltage gain characteristics were analyzed and a 360W prototype converter was tested to verify the proposed converter.

DC-Link Voltage Balance Control in Three-phase Four-wire Active Power Filters

  • Wang, Yu;Guan, Yuanpeng;Xie, Yunxiang;Liu, Xiang
    • Journal of Power Electronics
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    • v.16 no.5
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    • pp.1928-1938
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    • 2016
  • The three-phase four-wire shunt active power filter (APF) is an effective method to solve the harmonic problem in three-phase four-wire power systems. In addition, it has two possible topologies, a four-leg inverter and a three-leg inverter with a split-capacitor. There are some studies investigating DC-link voltage control in three-phase four-wire APFs. However, when compared to the four-leg inverter topology, maintaining the balance between the DC-link upper and lower capacitor voltages becomes a unique problem in the three-leg inverter with a split-capacitor topology, and previous studies seldom pay attention to this fact. In this paper, the influence of the balance between the two DC-link voltages on the compensation performance, and the influence of the voltage balance controller on the compensation performance, are analyzed. To achieve the balance between the two DC-link capacitor voltages, and to avoid the adverse effect the voltage balance controller has on the APF compensation performance, a new DC-link voltage balance control strategy for the three-phase four-wire split-capacitor APF is proposed. Representative simulation and experimental results are presented to verify the analysis and the proposed DC-link voltage balance control strategy.

Design of Buck-Boost DC-AC Inverter Using Microcontroller (마이크로컨트롤러를 이용한 벅-부스트 DC-AC 인버터 설계)

  • Park, Jong-Gyu
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.23 no.10
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    • pp.45-51
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    • 2009
  • The single phase buck-boost DC-AC inverter generates an alternating output voltage as the differential voltage of two DC-DC individual buck-boost converters. Two converters are driven with DC-biased and $180[^{\circ}]$ phase-shifted sinusoidal references. The peak value of the inverter alternating output voltage does not depend on the direct input voltage. In this paper, single phase buck-boost DC-AC inverter is designed and implemented on a prototype with digital controller using a microcontroller.

Design of a Step-Down DC-DC converter with On-chip Capacitor multiplyed Compensation circuit (온칩된 커패시터 채배기법 적용 보상회로를 갖는 DC to DC 벅 변환기 설계)

  • Park, Seung-Chan;Lim, Dong-Kyun;Yoon, Kwang-Sub
    • Proceedings of the IEEK Conference
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    • 2008.06a
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    • pp.537-538
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    • 2008
  • A step-down DC-DC converter with On-chip Compensation for battery-operated portable electronic devices which are designed in 0.18um CMOS standard process. In an effort to improve low load efficiency, this paper proposes the PFM (Pulse Frequency modulation) voltage mode 1MHz switching frequency step-down DC-DC converter with on-chip compensation. Capacitor multiplier method can minimize error amplifier compensation block size by 20%. It allows the compensation block of DC-DC converter be easily integrated on a chip and occupy less layout area. But capacitor multiplier operation reduces DC-DC converter efficiency. As a result, this converter shows maximum efficiency over 87% for the output voltage of 1.8V (input voltage : 3.3V), maximum load current 500mA, and 0.14% output ripple voltage. The total core chip area is $mm^2$.

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Investigation and Circuit Analysis for DC-DC Converter (DC-DC Converter 특성검토 및 회로해석)

  • Hwang, Su-Seol;Lee, Jae-Deuk
    • Aerospace Engineering and Technology
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    • v.5 no.2
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    • pp.166-173
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    • 2006
  • A DC-DC converter is a device that accepts a DC input voltage and produces a DC output voltage. Typically the output produced is at a different voltage level than the input. In addition, DC-DC converters are used to provide noise isolation, power bus regulation, etc. In this paper, it reviews some kinds of the popular DC-DC converter topolopgies and performs simulation selected basic type of DC-DC Converter.(Buck-type Converter)

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A Small Areal Dual-Output Switched Capacitor DC-DC Converter with a Improved Range of Input Voltage (입력전압 범위가 향상된 저면적 이중출력 스위치드 커패시터 DC-DC 변환기)

  • Hwang, Seon-Kwang;Kim, Seong-Yong;Woo, Ki-Chan;Kim, Tae-Woo;Yang, Byung-Do
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.9
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    • pp.1755-1762
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    • 2016
  • In this paper, a small areal dual-output SC(switched capacitor) DC-DC converter with a improved range of an input voltage is presented. The conventional SC DC-DC converter has an advantage of low cost and small chip area. But, it has a narrow input voltage range to convert efficiently. Also, it has a lager chip area and a lower power efficiency from multiple outputs. The proposed SC DC-DC converter improves the power efficiency by using the capacitor array structure which efficiently converts the voltage according to the input voltage. By sharing two switch array, it reduces the number of switches and capacitors from 32 to 25. The proposed SC DC-DC converter was manufactured in a $0.18{\mu}m$ CMOS process. In the simulation, the range of the input voltage is 0.7~ 1.8V, the max. power efficiency is 90%, and the chip area is $0.255mm^2$.

Copper Particle Effect on the Breakdown Strength of Insulating Oil at Combined AC and DC Voltage

  • Wang, You-Yuan;Li, Yuan-Long;Wei, Chao;Zhang, Jing;Li, Xi
    • Journal of Electrical Engineering and Technology
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    • v.12 no.2
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    • pp.865-873
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    • 2017
  • Converter transformer is the key equipment of high voltage direct current transmission system. The solid suspending particles originating from the process of installation and operation of converter transformer have significant influence on the insulation performance of transformer oil, especially in presence of DC component in applied voltage. Under high electric field, the particles easily lead to partial discharge and breakdown of insulating oil. This paper investigated copper particle effect on the breakdown voltage of transformer oil at combined AC and DC voltage. A simulation model with single copper particle was established to interpret the particle effect on the breakdown strength of insulating oil. The experimental and simulation results showed that the particles distort the electric field. The breakdown voltage of insulating oil contaminated with copper particle decreases with the increase of particle number, and the breakdown voltage and the logarithm of particle number approximately satisfy the linear relationship. With the increase of the DC component in applied voltage, the breakdown voltage of contaminated insulating oil decreases. The simulation results show that the particle collides with the electrode more frequently with more DC component contained in the applied voltage, which will trigger more discharge and decrease the breakdown voltage of insulating oil.