TY - JOUR
T1 - Mathematical morphology-based artificial technique for renewable power application
AU - Sahoo, Buddhadeva
AU - Routray, Sangram Keshari
AU - Rout, Pravat Kumar
AU - Alhaider, Mohammed M.
N1 - Publisher Copyright:
© 2021 Tech Science Press. All rights reserved.
PY - 2021
Y1 - 2021
N2 - This paper suggests a combined novel control strategy for DFIG based wind power systems (WPS) under both nonlinear and unbalanced load conditions. The combined control approach is designed by coordinating the machine side converter (MSC) and the load side converter (LSC) control approaches. The proposedMSCcontrol approach is designed by using a model predictive control (MPC) approach to generate appropriate real and reactive power. The MSC controller selects an appropriate rotor voltage vector by using a minimized optimization cost function for the converter operation. It shows its superiority by eliminating the requirement of transformation, switching table, and the PWM techniques. The proposed MSC reduces the cost, complexity, and computational burden of the WPS. On the other hand, the LSC control approach is designed by using a mathematicalmorphological technique (MMT) for appropriate DC component extraction. Due to the appropriate DC-component extraction, the WPS can compensate the harmonics during both steady and dynamic states. Further, the LSC controller also provides active power filter operation even under the shutdown of WPS condition. To verify the applicability of coordinated control operation, the WPS-based microgrid system is tested under various test conditions. The proposed WPS is designed by using aMATLAB/Simulink software.
AB - This paper suggests a combined novel control strategy for DFIG based wind power systems (WPS) under both nonlinear and unbalanced load conditions. The combined control approach is designed by coordinating the machine side converter (MSC) and the load side converter (LSC) control approaches. The proposedMSCcontrol approach is designed by using a model predictive control (MPC) approach to generate appropriate real and reactive power. The MSC controller selects an appropriate rotor voltage vector by using a minimized optimization cost function for the converter operation. It shows its superiority by eliminating the requirement of transformation, switching table, and the PWM techniques. The proposed MSC reduces the cost, complexity, and computational burden of the WPS. On the other hand, the LSC control approach is designed by using a mathematicalmorphological technique (MMT) for appropriate DC component extraction. Due to the appropriate DC-component extraction, the WPS can compensate the harmonics during both steady and dynamic states. Further, the LSC controller also provides active power filter operation even under the shutdown of WPS condition. To verify the applicability of coordinated control operation, the WPS-based microgrid system is tested under various test conditions. The proposed WPS is designed by using aMATLAB/Simulink software.
KW - Mathematical morphological technique
KW - Model predictive control
KW - Power quality
KW - Power reliability
KW - Sensitive load
KW - Wind power system
UR - http://www.scopus.com/inward/record.url?scp=85110555265&partnerID=8YFLogxK
U2 - 10.32604/cmc.2021.018535
DO - 10.32604/cmc.2021.018535
M3 - Article
AN - SCOPUS:85110555265
SN - 1546-2218
VL - 69
SP - 1851
EP - 1875
JO - Computers, Materials and Continua
JF - Computers, Materials and Continua
IS - 2
ER -