• Title/Summary/Keyword: CV Converter

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Development of the Lithium Polymer Battery Charger Using the Small Fuel Cell (소형 연료전지를 이용한 리튬 폴리머 배터리 충전기의 개발)

  • Kim, Tae-Hoon;Lee, Jong-Hak;Lee, Seung-Joon;Choi, Woojin
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.73.2-73.2
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    • 2010
  • 휴대용 전자기기들의 소비전력 증가에 따라 2차전지에 비해 에너지 밀도가 높은 연료전지를 이용한 충전기의 필요성이 부각되고 있다. 대다수의 충전기는 On-Grid 방식으로 벅타입 컨버터를 이용한 감압 방식이었으나, 연료전지를 이용할 경우 승압식 컨버터를 통한 배터리의 충전이 요구된다. 또한 배터리는 일반 저항부하와 달리 큰 커패시턴스 성분을 가지고 있기 때문에 컨버터의 출력단에 인덕터가 없는 경우 큰 출력 리플전류를 유도하게 되어 시스템의 효율과 배터리의 수명에 좋지 않은 영향을 끼치게 된다. 또한 이를 해결하기 위해 절연형 감압 컨버터를 사용하는 경우 변압기 사용에 의한 부피 증가와 부가 소자의 사용에 따른 가격 상승을 피하기 어렵다. Cuk 컨버터는 주스위치의 ON/OFF 동작에 관계없이 출력으로 에너지가 항상 전달되며, 이상적으로 리플이 거의 존재하지 않아 충전용으로 적합하다. 또한, 승압 및 감압이 자유롭기 때문에 배터리의 정격전압에 상관없는 범용 충전기의 설계도 가능하다. 따라서 본 논문에서는 Cuk 컨버터를 이용하여 배터리 충전기를 설계하고, 그의 상태공간 모델링, 주파수 특성 해석 및 제어기 설계에 대해 기술한다. 제안된 제어 방식은 소형 연료전지 스택을 이용하여 실제 배터리를 대상으로 한 정전류 및 정전압 제어를 실행하여 그 성능 및 안정성을 검증한다.

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Soft Switching Multiple Output Charger By Using Novel Time Division Multiple Control Technique (새로운 시분할 다중 제어 기법을 이용한 소프트 스위칭 다중 출력 충전기)

  • Tran, Van-Long;Choi, Woojin
    • Proceedings of the KIPE Conference
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    • 2014.07a
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    • pp.191-192
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    • 2014
  • Multiple output converters (MOCs) are widely used for applications which require various levels of the output voltages due to their benefits in cost, volume, and efficiency. However, most of the MOCs developed so far can regulate only one output tightly and require as many secondary windings in the transformer as the number of the outputs. In this paper, a novel Time Division Multiple Control (TDMC) method to regulate all the outputs in high precision is proposed and applied for the multiple output battery charger based on the phase shift full bridge topology to charge a multiple number of batteries at one time. The proposed converter can charge three different kinds of batteries or same kind of batteries in different state of charges (SOCs) by using constant current/constant voltage (CC/CV) charge mode independently. At the same time it can provide an even degree of tight regulation for each output to satisfy the strict ripple requirement of the battery. The validity and feasibility of the proposed method are verified through the experiments.

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A study on development of 1kW SOFC test system (1kW급 연료전지 평가시스템 개발에 관한 연구)

  • Hwang, Hyun Suk;Lee, Sanghoon;Lee, Juyoung
    • Journal of Satellite, Information and Communications
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    • v.11 no.3
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    • pp.24-27
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    • 2016
  • In this study, a 1kW Solid Oxide Fuel Cell(SOFC) test system was developed. A SOFC is the most promising power system to provide the higher efficient(over 50%) for house application area(1~10kW). To develop the optimized test system, the temperature control module that controls the preprocess and reaction condition, the flow control module that controls of the mass of reactants, and the electric loader that tests the discharge performance condition, etc. The temperature control module was designed to provide the high control resolution(under $1^{\circ}C$ at $750^{\circ}C$ of operating temperature) using K-type thermal couple. The flow control module was designed control blower and heater precisely using the phase control method. And the electric loader is designed that provide CV, CC, CR discharge mode and minimized the operating error adopting the independent DC-DC converter on analog input and output module. The performance of the developed SOFC test system showed that the accuracy of stack voltage was 0.15% at 80V and stack current was 0.1% at 100A.

Development of a Portable Potentiostat with Wireless Communications for Measuring Dissolved Oxygen (용존산소 측정을 위한 무선통신 기반 휴대형 포텐쇼스탯 개발)

  • Lee, Hyun-Seok;Han, Ji-Hoon;Pak, Jungho
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.67 no.12
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    • pp.1641-1647
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    • 2018
  • In this paper, we describe a portable potentiostat which is capable of cyclic voltammetry(CV) and amperometry for electrochemical dissolved oxygen sensor. In addition, this portable potentiostat can also transmit the measured data wirelessly to android devices such as smart phone, tablet, etc. through Bluetooth. The potentiostat system consists of three parts; a voltage generator circuit which is controlled by Arduino nano and 12-bit DAC(digital to analog converter) to generate necessary electric potential for operating the electrochemical sensor, an oxidation/reduction current measurement circuit, and a Bluetooth module to transmit data wirelessly to an android device. Once measurements are carried out with the android application, the measured data is transmitted to the android device via Bluetooth and displayed using the android app. in real time. In this paper, we report the measured reduction current with a fabricated dissolved oxygen sensor in both saturated-oxygen state and zero-oxygen states. The results of the developed portable potentiostat system are in good agreement with those of the commercial portable potentiostat (${\mu}stat200$, Dropsens inc.). The measured peak reduction currents using the developed potentiostat and the commercial ${\mu}stat200$ potentiostat were $-0.755{\mu}A$ and $-0.724{\mu}A$, respectively. The reduction currents measured at zero-oxygen state were $-0.005{\mu}A$ and $-0.004{\mu}A$. The discrepancy between those two systems seems very small, which implies successful development of a portable and wireless potentionstat.