• Title/Summary/Keyword: Fuel-cell Power Conditioning System

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Analysis of Levelized Cost of Electricity for Type of Stationary Fuel Cells (발전용 연료전지 형식에 따른 균등화 발전비용 분석)

  • DONGKEUN LEE;TORRES PINEDA ISRAEL;YONGGYUN BAE;YOUNGSANG KIM;KOOKYOUNG AHN;SUNYOUP LEE
    • Transactions of the Korean hydrogen and new energy society
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    • v.33 no.6
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    • pp.643-659
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    • 2022
  • For the economic analysis of fuel cells, levelized cost of electricity was calculated according to the type, capacity, and annual production of the fuel cells. The cost of every component was calculated through the system component breakdown. The direct cost of the system included stack cost, component cost, assembly, test, and conditioning cost, and profit markup cost were added. The effect of capacity and annual production was analyzed by fuel cell type. Sensitivity analysis was performed according to stack life, capital cost, project period, and fuel cost. As a result, it was derived how much the economic efficiency of the fuel cell improves as the capacity increases and the annual production increases.

Analysis of the Operating Point and Fault Current Contribution of a PEMFC as Distributed Generation (DG)

  • Moon, Dae-Seong;Kang, Gi-Hyeok;Chung, Il-Yop;Won, Dong-Jun
    • Journal of Electrical Engineering and Technology
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    • v.4 no.3
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    • pp.382-388
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    • 2009
  • Recently, hydrogen energy has been anticipated to change the paradigm of conventional power systems because it can expand sustainable energy utilization and conceptually provide remarkable flexibility to power system operation. Since hydrogen energy can be converted to electric energy through fuel cells, fuel cells are expected to play an important role in the future hydrogen economy. In this paper, a Proton Exchange Membrane Fuel Cell (PEMFC) is modeled as an equivalent circuit and its steady-state characteristics investigated using the model. PEMFCs can be connected to power systems through power conditioning systems, which consist of power electronic circuits, and which are operated as distributed generators. This paper analyzes the effects of the characteristics of the PEMFC internal voltages and investigated the dynamic responses of the PEMFC under fault conditions. The results show that the fault current contribution of the PEMFC is different from those of conventional generators and is closely related to its operating point.

An Isolated Soft-Switching Bidirectional Buck-Boost Inverter for Fuel Cell Applications

  • Zhang, Lianghua;Yang, Xu;Chen, Wenjie;Yao, Xiaofeng
    • Journal of Power Electronics
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    • v.10 no.3
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    • pp.235-244
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    • 2010
  • This paper presents a new isolated soft-switching bidirectional buck-boost inverter for fuel cell applications. The buck-boost inverter combines an isolated DC-DC converter with a conventional inverter to implement buck-boost DC-DC and DC-AC conversion. The main switches achieve zero voltage switching and zero current switching by using a novel synchronous switching SVPWM and the volume of the transformer in the forward and fly-back mode is also minimized. This inverter is suitable for wide input voltage applications due to its high efficiency under all conditions. An active clamping circuit reduces the switch's spike voltage and regenerates the energy stored in the leakage inductance of the transformer; therefore, the overall efficiency is improved. This paper presents the operating principle, a theoretical analysis and design guidelines. Simulation and experimental results have validated the characteristics of the buck-boost inverter.

Analyze of High Efficiency PCS for Fuel Cell (연료전지용 3-Stage PCS의 손실 해석)

  • Ba, Yasgalan;Lee, Yong-Jin;Han, Dong-Hwa;Kim, Young-Sik;Gwon, Wang-Song;Jeong, Beong-Hwang;Shin, Woo-Sok;Choe, Gyu-Ha
    • Proceedings of the KIPE Conference
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    • 2008.10a
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    • pp.100-102
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    • 2008
  • As Utility interactive fuel cell systems are widely used, it is required for each power conditioning system(PCS) to have higher generating performance and more stable connecting characteristics. This study is focused to minimization of power losses and hence higher efficiency related to the new half bridge type 3-stage utility interactive PCS topology. The loss factor of half-bridge converter becomes only 1.2[%] under the rated load, and hence total efficiency is maintained to be higher as 91[%].

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A Novel Single Converter and Single Inverter (1Con-1Inv) Topology and Control Algorithm for Photovoltaic-Fuel Cell Hybrid System (태양광-연료전지 하이브리드 발전을 위한 새로운 단일 컨버터 및 단일 인버터 (1Con-1Inv) 회로 및 제어 알고리즘)

  • Kim, Jong-Soo;Choe, Gyu-Yeong;Lee, Byoung-Kuk;Won, Chung-Yuen;Lee, Tae-Won
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.58 no.11
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    • pp.2200-2208
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    • 2009
  • This paper presents a novel single converter and single inverter (1Con-1Inv) topology for photovoltaic (PV)-fuel cell (FC) hybrid system and a new control scheme for the PV-FC hybrid system is then proposed. The new topology and the unique algorithm can minimize volume and production cost of the hybrid system. Moreover, system efficiency can improve due to reduction of losses of hardware components and other control factors are well regulated using just 1Con-1Inv with the help of the proposed control algorithm. The validity of proposed algorithm is verified both computer simulation using PSIM and Matlab/Simulink program and experimental with 700W of PV and 600W of FC system.

Dynamics Modeling of Polymer Electrolyte Membrane Fuel Cell (PEMFC) for Optimal Design of Power Conditioning System (PCS) (PCS 최적설계를 위한 고분자 전해질 연료전지의 동특성 모델링)

  • Kim, Jong-Soo;Choe, Gyu-Yeong;Kang, Hyun-Soo;Lee, Byoung-Kuk
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.57 no.9
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    • pp.1563-1571
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    • 2008
  • In this paper, dynamics modeling of a PEMFC is performed by electro-chemical equations. The developed PEMFC simulation model is implemented using MATLAB Simulink in order to design an optimal PCS for fuel cell systems. In addition, by use of the developed model as an input source of PCS, the validity of the proposed dynamic characteristic model of the PEMFC is verified by various simulation and experimental results.

Effect of System Configuration on Design Performance of Atmospheric Pressure MCFC/Gas Turbine Hybrid Systems (상압형 MCFC/가스터빈 하이브리드 시스템의 구성방법에 따른 설계성능 분석)

  • Oh Kyong Sok;Kim Tong Seop
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.16 no.11
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    • pp.1021-1027
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    • 2004
  • Design performances of various configurations of hybrid systems combining an atmospheric pressure molten carbonate fuel cell and a gas turbine have been analyzed. Two different fuel reforming methods (internal and external reforming) were considered. Influences of turbine inflow heating method, location of fuel combustor and associated component arrangements were investigated. In general, internal reforming leads to higher system efficiencies. The optimum design pressure ratio varies among different system configurations. In particular, the design point selection is closely related to the allowable turbine inlet temperature. Configurations with direct heating of turbine inlet flow may realize both higher efficiency and higher specific power than those with indirect heating.

The Development of 125kW Molten Carbonate Fuel cell System (125kW 용융탄산염 연료전지 시스템 개발)

  • Kim, Beom-Joo
    • Journal of the Korean Professional Engineers Association
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    • v.44 no.1
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    • pp.48-52
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    • 2011
  • The KEPCO Research Institute has developed Molten Carbonate Fuel Cell(MCFC) since 1993. Recently, an 125-kW MCFC system was operated at Boryeong thermal power plant, Korea from December, 2009 to March, 2010, This system is composed of an 125-kW stack, mechanical balance of plant (MBOP), and Power Conditioning System. The stack has 200 unit cells of which effective area is 10,000 cm2. Especially, MBOP is mainly made up of ejector and catalytic combustor which help this system to be supplied with cathode inlet gas using anode tail gas and fresh air. After the pretreatment of this system was performed for about 20 days, initial load operation was performed at January. 2010. Moreover, this system had been operated for 3,270 hours.

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A Study on Electromagnetic Compatibility Performance Evaluation of Power Conditioning System for Residential Fuel Cell (가정용 연료전지 전력변환장치 전자파적합성 성능 평가 연구)

  • Choi, Young-Joo;Nam, Tae-Ho;Lee, Eun-Kyung;Lee, Duk-Gwon;Lee, Jung-Woon;Lee, Seung-Kuk;Moon, Jong-Sam
    • Journal of the Korean Institute of Gas
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    • v.21 no.6
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    • pp.23-29
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    • 2017
  • Solar and wind energy among the renewable energy produce irregular power because resource is difficult to control. When connected to grid have unstable. However, when the fuel cell system is connected to grid more stable because regular frequency and output power based on controllable hydrogen energy. To using fuel cell system in the household, it is important that the safety performance of power conditioning system(PCS) and it is important that evaluation method of electromagnetic compatibility(EMC). In this study, we consider that introduce power-frequency magnetic field immunity test before analyzed that compare with the EMC of the international standards and KGS AB 934 PC53. Also, we conduct that actual assessment and study on available the quantitative analysis as using complementary indicator.

A Feasibility Design of PEMFC Parallel Operation for a Fuel Cell Generation System

  • Kang, Hyun-Soo;Choe, Gyu-Yeong;Lee, Byoung-Kuk;Hur, Jin
    • Journal of Electrical Engineering and Technology
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    • v.3 no.3
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    • pp.408-421
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    • 2008
  • In this paper, the parallel operation for a FC generation system is introduced and designed in order to increase the capacity for the distributed generation of a proton exchange membrane fuel cell (PEMFC) system. The equipment is the type that is used by parallel operated PEMFC generation systems which have two PEMFC systems, two dc/dc boost converters with shared dc link, and a grid-connected dc/ac inverter for embedded generation. The system requirement for the purpose of parallel operated generation using PEMFC system is also described. Aspects related to the mechanical (MBOP) and electrical (EBOP) component, size, and system complexity of the distributed generation system, it is explained in order to design an optimal distributed generation system using PEMFC. The optimal controller design for the parallel operation of the converter is suggested and informative simulations and experimental results are provided.