Central difference model predictive current control of single-phase H-bridge inverter with LCL filter

Author(s):  
Talla Jakub ◽  
Peroutka Zdenek ◽  
Blahnik Vojtech
2015 ◽  
Vol 66 (5) ◽  
pp. 287-291 ◽  
Author(s):  
Vojtech Blahnik ◽  
Jakub Talla ◽  
Zdenek Peroutka

Abstract The paper deals with a control of current source with an LCL output filter. The controlled current source is realized as a single-phase inverter and output LCL filter provides low ripple of output current. However, systems incorporating LCL filters require more complex control strategies and there are several interesting approaches to the control of this type of converter. This paper presents the inverter control algorithm, which combines model based control with a direct current control based on resonant controllers and single-phase vector control. The primary goal is to reduce the current ripple and distortion under required limits and provides fast and precise control of output current. The proposed control technique is verified by measurements on the laboratory model.


Author(s):  
Alfonso Parreno Torres ◽  
Fco. Javier Lopez-Alcolea ◽  
Pedro Roncero-Sanchez ◽  
Javier Vazquez ◽  
Emilio J. Molina-Martinez ◽  
...  

2019 ◽  
Vol 9 (21) ◽  
pp. 4636 ◽  
Author(s):  
Yuqi Peng ◽  
Yuanbin He ◽  
Lijun Hang

Distributed power inverters with inductive capacitive–inductive (LCL) filters have become popular in distributed power generation system. However, due to unknown grid impedance, the inverters are confronted with challenges of local filter resonance, poor power quality, and multiple interactive resonance. This paper proposes a low-loss active compensator that can counteract effects of the grid impedance on the current control performance of single-phase grid-connected inverter with an LCL filter. The compensator utilizes dual unit point-of-common-coupling voltage feedforward control mechanisms (VFFC), in which one is integrated with the inverter controller, and the other is generated through an extra low voltage source converter (LV-VSC) in series with the filter capacitor. The LV-VSC has no additional passive inductive-capacitive filtering elements and provides very low volt-ampere. To confirm its validity, a single-phase inverter testbed integrated with the compensator was built. The experimental results validate the current-controlled performance enhancement of the proposed inverter system operating under different grid conditions.


Author(s):  
Yong Yang ◽  
Jianyu Pan ◽  
Huiqing Wen ◽  
Mingdi Fan ◽  
Rong Chen ◽  
...  

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