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      KCI등재 SCIE SCOPUS

      The Decoupled Active/Reactive Power Predictive Control of Quasi-Z-source Inverter for Distributed Generations

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      https://www.riss.kr/link?id=A107270581

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      다국어 초록 (Multilingual Abstract)

      For the quasi-Z-source inverter (qZSI), capacitor voltage stability control, high performance of the inductor current reference tracking and fast response of the active/reactive power are key issues. Thus, a decoupled active/reactive power model predi...

      For the quasi-Z-source inverter (qZSI), capacitor voltage stability control, high performance of the inductor current reference tracking and fast response of the active/reactive power are key issues. Thus, a decoupled active/reactive power model predictive control (MPC) of the qZSI for distributed generations (DGs) is proposed to fulfill these requirements without additional control loops. Firstly, the digital observer is constructed to remove the utilization of the front voltage sensor and reduce the number of hardware equipment. Moreover, based on the advance determination of the system operation mode and the simplified cost function, the calculation complexity of the proposed MPC algorithm is simplified. Further, the proposed improved MPC method with the digital observer is proved to achieve the high accuracy and the zero prediction error, of which stability is demonstrated through Lyapunov stability criteria. Eventually, the proposed controller is compared with conventional MPC and PI controller in detail and its effectiveness is verified by both simulation and experimental results from a grid-connected qZSI.

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      참고문헌 (Reference)

      1 N. Noroozi, "Three-phase quasi-Zsource inverter with constant common-mode voltage for photovoltaic application" 65 (65): 4790-4798, 2018

      2 R. Wang, "The small-signal stability analysis of the droop-controlled converter in electromagnetic timescale" 10 (10): 1459-1469, 2019

      3 J. Rodriguez, "State of the art of finite control set model predictive control in power electronics" 9 (9): 1003-1016, 2013

      4 K. Shinde, "Sliding mode control of single-phase grid-connected quasi-Z-source inverter" 5 (5): 10232-10240, 2017

      5 R. Wang, "Reduced-order transfer function model of the droopcontrolled inverter via Jordan continued-fraction expansion" 35 (35): 1585-1595, 2020

      6 "Public Utilities Commision - Recommendations for Advanced Functions for Distributed Energy Resources (DER)Systems"

      7 Y. Liu, "Overview of space vector modulations for three-phase z-source/quasi-zsource inverters" 29 (29): 2098-2108, 2014

      8 H. Rostami, "Neural networks controlling for both the DC boost and AC output voltage of Z-source inverter" 135-140, 2010

      9 S. Sajadian, "Model predictive-based maximum power point tracking for grid-tied photovoltaic applications using a Z-source inverter" 31 (31): 7611-7620, 2016

      10 L. Tarisciotti, "Model predictive control for shunt active filters with fixed switching frequency" 53 (53): 296-304, 2017

      1 N. Noroozi, "Three-phase quasi-Zsource inverter with constant common-mode voltage for photovoltaic application" 65 (65): 4790-4798, 2018

      2 R. Wang, "The small-signal stability analysis of the droop-controlled converter in electromagnetic timescale" 10 (10): 1459-1469, 2019

      3 J. Rodriguez, "State of the art of finite control set model predictive control in power electronics" 9 (9): 1003-1016, 2013

      4 K. Shinde, "Sliding mode control of single-phase grid-connected quasi-Z-source inverter" 5 (5): 10232-10240, 2017

      5 R. Wang, "Reduced-order transfer function model of the droopcontrolled inverter via Jordan continued-fraction expansion" 35 (35): 1585-1595, 2020

      6 "Public Utilities Commision - Recommendations for Advanced Functions for Distributed Energy Resources (DER)Systems"

      7 Y. Liu, "Overview of space vector modulations for three-phase z-source/quasi-zsource inverters" 29 (29): 2098-2108, 2014

      8 H. Rostami, "Neural networks controlling for both the DC boost and AC output voltage of Z-source inverter" 135-140, 2010

      9 S. Sajadian, "Model predictive-based maximum power point tracking for grid-tied photovoltaic applications using a Z-source inverter" 31 (31): 7611-7620, 2016

      10 L. Tarisciotti, "Model predictive control for shunt active filters with fixed switching frequency" 53 (53): 296-304, 2017

      11 S. Vazquez, "Model predictive control for power converters and drives : Advances and trends" 64 (64): 935-947, 2017

      12 M. Mosa, "Model predictive control applied for quasi-Z-source inverter" 165-169, 2013

      13 D. Cao, "Low-cost semiZ-source inverter for single-phase photovoltaic systems" 26 (26): 3514-3523, 2011

      14 R. Wang, "Line impedance cooperative stability region identification method for gridtied inverters under weak grids" 11 (11): 2856-2866, 2020

      15 M. Mosa, "High-performance predictive control of quasi-impedance source inverter" 32 (32): 3251-3262, 2017

      16 P. Cortes, "Guidelines for weighting factors design in model predictive control of power converters and drives" 1-7, 2009

      17 R. A. Guisso, "Grid-tied single source quasi-Z-source cascaded multilevel inverter for PV applications" 55 (55): 342-343, 2019

      18 P. Iniyaval, "Fuzzy logic based quasi Z-source cascaded multilevel inverter with energy storage for photovoltaic power generation system" 1-5, 2008

      19 S. Bayhan, "Finite control set model predictive control for a quasi-Zsource four-leg inverter under unbalanced load condition" 64 (64): 2560-2569, 2017

      20 R. Wang, "Exponentialfunction-based droop control for islanded microgrids" 7 (7): 899-912, 2019

      21 박주현, "Enhancement on Stability Criteria for Linear Systems with Interval Time-varying Delays" 제어·로봇·시스템학회 14 (14): 12-20, 2016

      22 X. Cao, "Distributed generation planning guidance through feasibility and profit analysis" 9 (9): 5473-5475, 2018

      23 A. Ayad, "Direct model predictive current control strategy of quasi-Z-source inverters" 32 (32): 5786-5801, 2017

      24 C. Gajanayake, "Development of a comprehensive model and a multiloop controller for Z-source inverter DG Systems" 54 (54): 2352-2359, 2007

      25 S. Jain, "Decoupled active and reactive power predictive control for PV applications using a grid-tied quasi-Z-source inverter" 6 (6): 1769-1782, 2018

      26 W. Liang, "DC-link voltage balance control strategy based on multidimensional modulation technique for quasi-Z-source cascaded multilevel inverter photovoltaic power system" 14 (14): 4905-4915, 2018

      27 S. Dong, "Analysis of critical inductance and capacitor voltage ripple for a bidirectional Zsource inverter" 30 (30): 4009-4015, 2015

      28 P. Karamanakos, "A variable switching point predictive current control strategy for quasi-Z-source inverters" 54 (54): 1469-1480, 2018

      29 Y. Liu, "A discretetime average model-based predictive control for a quasiZ-source inverter" 65 (65): 6044-6054, 2018

      30 J. Anderson, "A class of quasi-Z-source inverters" 1-7, 2008

      31 Shiqiong Zhou, "A Novel Maximum Power Point Tracking Algorithms for Stand-alone Photovoltaic System" 제어·로봇·시스템학회 8 (8): 1364-1371, 2010

      32 진명, "A Novel Controller Design for Three-phase Voltage Source Inverter" 제어·로봇·시스템학회 16 (16): 2136-2145, 2018

      33 O. Ellabban, "A DSP-based dualloop peak DC-link voltage control strategy of the Z-source inverter" 27 (27): 4088-4097, 2012

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      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-12-29 학회명변경 한글명 : 제어ㆍ로봇ㆍ시스템학회 -> 제어·로봇·시스템학회 KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-10-29 학회명변경 한글명 : 제어ㆍ자동화ㆍ시스템공학회 -> 제어ㆍ로봇ㆍ시스템학회
      영문명 : The Institute Of Control, Automation, And Systems Engineers, Korea -> Institute of Control, Robotics and Systems
      KCI등재
      2005-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2002-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.35 0.6 1.07
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.88 0.73 0.388 0.04
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