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A single-stage three-phase DC/AC inverter based on Cuk converter for PV application

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A single-stage three-phase DC/AC inverter based on Cuk converter for PV application. / Darwish, A.; Abdel-Khalik, A. S.; Massoud, A. et al.
2013 7th IEEE GCC Conference and Exhibition (GCC). IEEE, 2013. p. 384-389.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Darwish, A, Abdel-Khalik, AS, Massoud, A, Holliday, D & Williams, BW 2013, A single-stage three-phase DC/AC inverter based on Cuk converter for PV application. in 2013 7th IEEE GCC Conference and Exhibition (GCC). IEEE, pp. 384-389. https://doi.org/10.1109/ieeegcc.2013.6705809

APA

Darwish, A., Abdel-Khalik, A. S., Massoud, A., Holliday, D., & Williams, B. W. (2013). A single-stage three-phase DC/AC inverter based on Cuk converter for PV application. In 2013 7th IEEE GCC Conference and Exhibition (GCC) (pp. 384-389). IEEE. https://doi.org/10.1109/ieeegcc.2013.6705809

Vancouver

Darwish A, Abdel-Khalik AS, Massoud A, Holliday D, Williams BW. A single-stage three-phase DC/AC inverter based on Cuk converter for PV application. In 2013 7th IEEE GCC Conference and Exhibition (GCC). IEEE. 2013. p. 384-389 doi: 10.1109/ieeegcc.2013.6705809

Author

Darwish, A. ; Abdel-Khalik, A. S. ; Massoud, A. et al. / A single-stage three-phase DC/AC inverter based on Cuk converter for PV application. 2013 7th IEEE GCC Conference and Exhibition (GCC). IEEE, 2013. pp. 384-389

Bibtex

@inproceedings{b8403e62e6e0492fb6208402be5cf9c4,
title = "A single-stage three-phase DC/AC inverter based on Cuk converter for PV application",
abstract = "This paper presents a new three-phase dc-ac inverter based on the basic Cuk converter. The main feature of the proposed topology is the fact that the energy storage elements as inductors and capacitors values can be reduced in order to improve the reliability, reduce the size, and the total cost. Moreover, the bucking-boosting inherent nature of the Cuk converter, depending on the time-varying duty ratios, provides more flexibility for stand-alone and grid connected applications when the required output AC voltage is lower or greater than the DC side voltage. This property is not found in the conventional current source inverter (CSI) when the DC input current is always greater than the ac output one or in the conventional voltage source inverter (VSI) as the output ac voltage is always lower than the dc input one. Averaged large and small signal models are used to study the Cuk nonlinear operation. Basic structure, control design, and MATLAB/SIMULINK results are presented in this paper. The new three-phase DC-AC inverter is very convenient for PV applications where continuous average input currents are required for appropriate Maximum power Point Tracking (MPPT) operations.",
author = "A. Darwish and Abdel-Khalik, {A. S.} and A. Massoud and D. Holliday and Williams, {B. W.}",
year = "2013",
month = nov,
doi = "10.1109/ieeegcc.2013.6705809",
language = "English",
isbn = "9781479907229",
pages = "384--389",
booktitle = "2013 7th IEEE GCC Conference and Exhibition (GCC)",
publisher = "IEEE",

}

RIS

TY - GEN

T1 - A single-stage three-phase DC/AC inverter based on Cuk converter for PV application

AU - Darwish, A.

AU - Abdel-Khalik, A. S.

AU - Massoud, A.

AU - Holliday, D.

AU - Williams, B. W.

PY - 2013/11

Y1 - 2013/11

N2 - This paper presents a new three-phase dc-ac inverter based on the basic Cuk converter. The main feature of the proposed topology is the fact that the energy storage elements as inductors and capacitors values can be reduced in order to improve the reliability, reduce the size, and the total cost. Moreover, the bucking-boosting inherent nature of the Cuk converter, depending on the time-varying duty ratios, provides more flexibility for stand-alone and grid connected applications when the required output AC voltage is lower or greater than the DC side voltage. This property is not found in the conventional current source inverter (CSI) when the DC input current is always greater than the ac output one or in the conventional voltage source inverter (VSI) as the output ac voltage is always lower than the dc input one. Averaged large and small signal models are used to study the Cuk nonlinear operation. Basic structure, control design, and MATLAB/SIMULINK results are presented in this paper. The new three-phase DC-AC inverter is very convenient for PV applications where continuous average input currents are required for appropriate Maximum power Point Tracking (MPPT) operations.

AB - This paper presents a new three-phase dc-ac inverter based on the basic Cuk converter. The main feature of the proposed topology is the fact that the energy storage elements as inductors and capacitors values can be reduced in order to improve the reliability, reduce the size, and the total cost. Moreover, the bucking-boosting inherent nature of the Cuk converter, depending on the time-varying duty ratios, provides more flexibility for stand-alone and grid connected applications when the required output AC voltage is lower or greater than the DC side voltage. This property is not found in the conventional current source inverter (CSI) when the DC input current is always greater than the ac output one or in the conventional voltage source inverter (VSI) as the output ac voltage is always lower than the dc input one. Averaged large and small signal models are used to study the Cuk nonlinear operation. Basic structure, control design, and MATLAB/SIMULINK results are presented in this paper. The new three-phase DC-AC inverter is very convenient for PV applications where continuous average input currents are required for appropriate Maximum power Point Tracking (MPPT) operations.

U2 - 10.1109/ieeegcc.2013.6705809

DO - 10.1109/ieeegcc.2013.6705809

M3 - Conference contribution/Paper

SN - 9781479907229

SP - 384

EP - 389

BT - 2013 7th IEEE GCC Conference and Exhibition (GCC)

PB - IEEE

ER -