Title :
Load Sharing Strategy for Autonomous AC Microgrids Based on FPGA Implementation of ADALINE&FLL
Author :
Guzman, Cesar ; Cardenas, Alben ; Agbossou, Kodjo
Author_Institution :
Dept. de Genie Electr. et Genie Inf., Univ. du Quebec a Trosi-Rivieres, Trosi-Rivières, QC, Canada
Abstract :
Paralleled operation of voltage-source inverters (VSIs) is currently achieved by using voltage/frequency droop control techniques which requires the knowledge of the system parameters. Otherwise, centralized control techniques with robust communication among VSIs controllers are also used. This paper presents a new control strategy which allows the load sharing between the power sources of an ac microgrid without centralized controller or any communication among the VSIs; only local measurements of voltage and output current are used. The dispatchable sources (e.g., fuel cells) of the microgrid are operated using voltage control with a direct droop scheme, and the nondispatchables or intermittent ones (e.g., wind turbine generators) are operated using power control with a complementary inverse droop scheme (D-Droop + I-Droop). The number of operating sources can be changed online without any modification needed on the VSI controllers. The proposed VSI controllers are based on the variable frequency adaptive linear neuron with frequency-locked loop for the VSIs system synchronization, voltage/power and signal estimation. Experimental results using field-programmable gate array devices for the implementation of each VSI control in the microgrid test bench demonstrated the validity of the proposition.
Keywords :
adaptive control; distributed power generation; electric current control; electric current measurement; field programmable gate arrays; frequency control; frequency locked loops; invertors; power generation control; power generation dispatch; robust control; synchronisation; voltage control; voltage measurement; ADALINE; D-droop; FLL; FPGA implementation; I-droop; VSI system synchronization; autonomous AC microgrid power source; centralized control techniques; complementary inverse droop scheme; current measurement; direct droop scheme; dispatchable sources; field programmable gate array devices; frequency droop control technique; frequency locked loop; intermittent; load sharing strategy; nondispatchable sources; power control; robust communication; system parameters; variable frequency adaptive linear neuron; voltage control; voltage droop control technique; voltage measurement; voltage source inverter control; Frequency control; Inverters; Microgrids; Power generation; Reactive power; Voltage control; Voltage measurement; Distributed power generation; frequency-locked loops; neural networks; power generation control; programmable logic arrays; smart grids; very large scale integration; voltage control;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2014.2312881