The Development of High-Current Power Supply System for Electrolytic Copper Foil

논문상세정보
' The Development of High-Current Power Supply System for Electrolytic Copper Foil' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 전기공학, 전자공학
  • compositecontrol
  • current sharing
  • feedforward control
  • high frequency
  • switching power supply
  • two-leg rectifier
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
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' The Development of High-Current Power Supply System for Electrolytic Copper Foil' 의 참고문헌

  • “High-efficiency digital-controlled interleaved power converter for high-power PEM fuel-cell applications
    S.-J. Cheng IEEE Trans. Ind. Electron. 60 (2) : 773 ~ 780 [2013]
  • Virtual impedance loop for droop-controlled single-phase parallel inverters using a second-order general-integrator scheme
    J. Matas IEEE Trans. Power Electron. 25 (12) : 2993 ~ 3001 [2010]
  • Three-phase unity-power-factor star-connected switch (VIENNA)rectifier with unified constant-frequency integration control
    C. Qiao IEEE Trans. Power Electron. 18 (4) : 952 ~ 957 [2003]
  • Suppression of the second harmonic current and improvement of the dynamic performance for two-stage single-phase inverters
    G. Zhu Proc. the CSEE 33 (12) : 72 ~ 80 [2013]
  • Robust model predictive current control of three-phase voltage source PWM rectifier with online disturbance observation
    C. Xia IEEE Trans. Ind. Informat. 8 (3) : 459 ~ 471 [2012]
  • Novel high-power copper electrolytic rectifier based on auto disturbance rejection controller
    L. Cheng International Conference on Mechatronic Science, Electric Engineering and Computer (MEC) : 58 ~ 61 [2011]
  • Master–slave current-sharing control of a parallel DC–DC converter system over an RF communication interface
    S. K. Mazumder IEEE Trans. Ind. Electron. 55 (1) : 59 ~ 66 [2008]
  • Large current rectifiers: State of the art and future trends
    J. R. Rodriguez IEEE Trans. Ind. Electron. 52 (3) : 738 ~ 746 [2005]
  • Instantaneous current-sharing control strategy for modular UPS using virtual impedance
    Y. Zhang Proc. the CSEE 32 (21) : 8 ~ 14 [2012]
  • High-power high-efficient and simplified high-frequency switching power supply for electrolytic plating
    F. Ma Proc. the CSEE 32 (21) : 71 ~ 78 [2012]
  • Elimination of the output voltage imbalance in a half-bridge boost rectifier
    Y.-K. Lo IEEE Trans. Power Electron. 22 (4) : 1352 ~ 1360 [2007]
  • Decentralized control for parallel operation of distributed generation inverters using resistive output impedance
    J. M. Guerrero IEEE Trans. Ind. Electron. 54 (2) : 994 ~ 1004 [2007]
  • Crystal growth of electrolytic cu foil
    K. Kondo J. Eeletrochem Soc 151 (7) : 514 ~ 518 [2004]
  • Control scheme of paralleled UPS system based on output virtual resistance
    W. Yu Proc. the CSEE 29 (24) : 32 ~ 39 [2009]
  • Control of three-phase boost-type PWM rectifier in stationary frame under unbalanced input voltage
    Z. Li IEEE Trans. Power Electron. 25 (10) : 2521 ~ 2530 [2010]
  • Comprehensive design and optimization of a high-power-density single-phase boost PFC
    K. Raggl IEEE Trans. Ind. Electron. 56 (7) : 2574 ~ 2587 [2009]
  • Classification of parallel DC/DC converters part I: circuit theory
    Y. Huang European Conference on Circuit Theory and Design : 1010 ~ 1013 [2007]
  • Basic study of a phase-shifted soft switching high-frequency inverter with boost PFC converter for induction heating
    Y. Kawaguchi Journal of Power Electronics 8 (2) : 192 ~ 199 [2008]
  • Analysis, design and implementation of an interleaved DC/DC converter with series-connected transformers
    B.-R. Lin Journal of Power Electronics 12 (4) : 643 ~ 653 [2012]
  • Analysis and design of parallel-connected peak-current-mode-controlled switching DC/DC power supplies
    J. J. Shieh IEE Proc.-Electr. Power Appl. 151 (4) : 434 ~ 442 [2004]
  • An improved control strategy of triple line-voltage cascaded voltage source converter based on proportional–resonant controller
    C. Xia IEEE Trans. Ind. Electron. 60 (7) : 2894 ~ 2908 [2013]
  • An analytical modeling of three-phase four-switch PWM rectifier under unbalanced supply conditions
    J. Klima IEEE Trans. Circuits Syst. II, Exp. Briefs 54 (12) : 1155 ~ 1159 [2007]
  • A three-phase single-stage AC–DC PWM buck-type full-bridge converter:Analysis, design, and characteristics
    D. S. Wijeratne IEEE Trans. Ind. Electron. 60 (10) : 4201 ~ 4214 [2013]
  • A novel PCCM boost PFC converter with fast dynamic response
    F. Zhang IEEE Trans. Ind. Electron. 58 (9) : 4207 ~ 4216 [2011]
  • A general PWM strategy for four-switch three-phase inverters
    M. Beltrao de Rossiter Correa IEEE Trans. Power Electron 21 (6) : 1618 ~ 1627 [2006]