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      KCI등재 SCIE SCOPUS

      Interleaved High Step-Up Boost Converter

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      https://www.riss.kr/link?id=A106202375

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      다국어 초록 (Multilingual Abstract)

      Renewable energy based on photovoltaic systems is beginning to play an important role to supply power to remote areas all over the world. Owing to the lower output voltage of photovoltaic arrays, high gain DC-DC converters with a high efficiency are r...

      Renewable energy based on photovoltaic systems is beginning to play an important role to supply power to remote areas all over the world. Owing to the lower output voltage of photovoltaic arrays, high gain DC-DC converters with a high efficiency are required in practice. This paper presents a novel interleaved DC-DC boost converter with a high voltage gain, where the input terminal is interlaced in parallel and the output terminal is staggered in series (IPOSB). The IPOSB configuration can reduce input current ripples because two inductors are interlaced in parallel. The double output capacitors are charged in staggered parallel and discharged in series for the load. Therefore, IPOSB can attain a high step-up conversion and a lower output voltage ripple. In addtion, the output voltage can be automatically divided by two capacitors, without the need for extra sharing control methods. At the same time, the voltage stress of the power devices is lowered. The inrush current problem of capacitors is restrained by the inductor when compared with high gain converters with a switching-capacitor structure. The working principle and steady-state characteristics of the converter are analyzed in detail. The correctness of the theoretical analysis is verified by experimental results.

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      목차 (Table of Contents)

      • Abstract
      • Ⅰ. INTRODUCTION
      • Ⅱ. OPERATING PRINCIPLES OF THE PROPOSED CONVERTER
      • Ⅲ. STEADY-STATE PERFORMANCE OF THE PROPOSED CONVERTER
      • Ⅳ. PERFORMANCE OF COMPARISON
      • Abstract
      • Ⅰ. INTRODUCTION
      • Ⅱ. OPERATING PRINCIPLES OF THE PROPOSED CONVERTER
      • Ⅲ. STEADY-STATE PERFORMANCE OF THE PROPOSED CONVERTER
      • Ⅳ. PERFORMANCE OF COMPARISON
      • Ⅴ. DESIGN CONSIDERATIONS
      • Ⅵ. EXPERIMENTAL RESULTS
      • Ⅶ. CONCLUSION
      • REFERENCES
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      참고문헌 (Reference)

      1 S. Wang, "Multi-level switch-capacitor DC–DC converter : variable voltage gain optimisation issues" 2017 (2017): 1999-2004, 2017

      2 G. A. L. Henn, "Interleaved-boost converter with high voltage gain" 25 (25): 2753-2761, 2010

      3 Y. Zhang, "Interleaved switched-capacitor bidirectional DC-DC converter with wide voltage-gain range for energy storage systems" 33 (33): 3852-3869, 2018

      4 W. Li, "Interleaved high step-up ZVT converter with built-in transformer voltage doubler cell for distributed PV generation system" 28 (28): 300-313, 2013

      5 P. Wang, "Inputparallel Output-series DC-DC Boost Converter with a wide input voltage range, for fuel cell vehicles" 66 (66): 7771-7781, 2017

      6 H. Wen, "Hybrid-mode interleaved boost converter design for fuel cell electric vehicles" 122 : 477-487, 2016

      7 Y. Tang, "Hybrid switchedinductor converters for high step-up conversion" 62 (62): 1480-1490, 2015

      8 W. Khadmun, "High voltage gain interleaved DC boost converter application for photovoltaic generation system" 34 : 390-398, 2013

      9 R. Ling, "High step-up interleaved boost converter with low switch voltage stress" 128 : 11-18, 2015

      10 K. C. Tseng, "High step-up interleaved boost converter for distributed generation using renewable and alternative power sources" 5 (5): 713-721, 2017

      1 S. Wang, "Multi-level switch-capacitor DC–DC converter : variable voltage gain optimisation issues" 2017 (2017): 1999-2004, 2017

      2 G. A. L. Henn, "Interleaved-boost converter with high voltage gain" 25 (25): 2753-2761, 2010

      3 Y. Zhang, "Interleaved switched-capacitor bidirectional DC-DC converter with wide voltage-gain range for energy storage systems" 33 (33): 3852-3869, 2018

      4 W. Li, "Interleaved high step-up ZVT converter with built-in transformer voltage doubler cell for distributed PV generation system" 28 (28): 300-313, 2013

      5 P. Wang, "Inputparallel Output-series DC-DC Boost Converter with a wide input voltage range, for fuel cell vehicles" 66 (66): 7771-7781, 2017

      6 H. Wen, "Hybrid-mode interleaved boost converter design for fuel cell electric vehicles" 122 : 477-487, 2016

      7 Y. Tang, "Hybrid switchedinductor converters for high step-up conversion" 62 (62): 1480-1490, 2015

      8 W. Khadmun, "High voltage gain interleaved DC boost converter application for photovoltaic generation system" 34 : 390-398, 2013

      9 R. Ling, "High step-up interleaved boost converter with low switch voltage stress" 128 : 11-18, 2015

      10 K. C. Tseng, "High step-up interleaved boost converter for distributed generation using renewable and alternative power sources" 5 (5): 713-721, 2017

      11 K. C. Tseng, "High step-up converter with three-winding coupled inductor for fuel cell energy source applications" 30 (30): 574-581, 2015

      12 S. Xiong, "Family of cascaded high-voltagegain bidirectional switched-capacitor dc-dc converters" 6648-6654, 2015

      13 K. W. E Cheng, "Duality approach to the study of switched-inductor power converters and its higher-order variations" 8 (8): 489-496, 2015

      14 S. Xiong, "Cascaded high-voltage-gain bidirectional switched-capacitor DC–DC converters for distributed energy resources applications" 32 (32): 1220-1231, 2017

      15 M. Bhunia, "Cascaded DC-DC converter for a reliable standalone PV fed DC load" 1-6, 2014

      16 Y. Chen, "A novel soft-switching interleaved coupled-inductor boost converter with only single auxiliary circuit" 33 (33): 2267-2281, 2018

      17 J. Fu, "A novel single-switch cascaded DC-DC converter of boost and buck-boost converters" 1-9, 2014

      18 H. Liu, "A novel high step-up converter with a quasi-active switched-inductor structure for renewable energy systems" 31 (31): 5030-5039, 2016

      19 Y. J. Choi, "A novel active discontinuous PWM control strategy for high efficiency partial switching predictive current-mode control PFC converter" 236-241, 2017

      20 B. Wu, "A family of two-switch boosting switched-capacitor converters" 30 (30): 5413-5424, 2015

      21 S. -M. Chen, "A cascaded high step-up DC-DC converter with single switch for microsource applications" 26 (26): 1146-1153, 2011

      22 Jianfei Chen, "A New Interleaved Double-Input Three-Level Boost Converter" 전력전자학회 16 (16): 925-935, 2016

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2014-10-08 학술지명변경 한글명 : 전력전자학회 영문논문지 -> Journal of Power Electronics KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2006-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2004-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.83 0.54 0.74
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.65 0.62 0.382 0.06
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