Modeling and Design of an Oscillatory Current-Sharing Control Strategy in DC Microgrids
- 20 May 2015
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Industrial Electronics
- Vol. 62 (11), 6647-6657
- https://doi.org/10.1109/tie.2015.2435703
Abstract
This paper presents an effective control scheme in dc microgrids to precisely share the load current oscillatory and dc components among distributed generation (DG) units. The proposed control strategy includes current and voltage control blocks. The current control block consists of oscillatory and dc current-sharing units. The main idea of the proposed method is to share the load current oscillatory and dc components among the DG units based on their rated power, by assigning appropriate output impedance values and droop coefficients to each DG unit. The voltage control block is a multiloop voltage control unit employed to control the microgrid voltage. The detailed model of the proposed control architecture is established, and the system dynamics is analyzed. Since the synthesis of a local controller uses only information of the corresponding DG unit, the design procedure is totally decentralized. The performance and dynamic response of the proposed control scheme are verified through extensive simulation studies and experimental results.Keywords
This publication has 22 references indexed in Scilit:
- Modeling and Stability Analysis of Islanded DC Microgrids Under Droop ControlIEEE Transactions on Power Electronics, 2014
- Distributed Cooperative Control of DC MicrogridsIEEE Transactions on Power Electronics, 2014
- On the Reduction of Second Harmonic Current and Improvement of Dynamic Response for Two-Stage Single-Phase InverterIEEE Transactions on Power Electronics, 2014
- Harmonic and Negative-Sequence Current Control in an Islanded Multi-Bus MV MicrogridIEEE Transactions on Smart Grid, 2013
- Harmonizing AC and DC: A Hybrid AC/DC Future Grid SolutionIEEE Power and Energy Magazine, 2013
- DC, Come Home: DC Microgrids and the Birth of the "Enernet"IEEE Power and Energy Magazine, 2012
- Active Power Management of Multihybrid Fuel Cell/Supercapacitor Power Conversion System in a Medium Voltage MicrogridIEEE Transactions on Smart Grid, 2012
- Advanced Control Architectures for Intelligent Microgrids—Part II: Power Quality, Energy Storage, and AC/DC MicrogridsIEEE Transactions on Industrial Electronics, 2012
- Hierarchical Control of Droop-Controlled AC and DC Microgrids—A General Approach Toward StandardizationIEEE Transactions on Industrial Electronics, 2010
- Sharing of nonlinear load in parallel-connected three-phase convertersIEEE Transactions on Industry Applications, 2001