Title :
Non-linear load compensation in Fuel Cell grid interfaced system using active power filter
Author :
Mehta, Gitanjali ; Singh, S.P. ; Patidar, R.D.
Author_Institution :
Electr. Eng. Dept., Indian Institue of Technol., Roorkee, India
Abstract :
The increasing global warming concerns and diminishing fossil fuels have made us necessary to look for alternative sources of energy. Fuel Cell technology holds promise towards sustainable power generation, it being pollution free and using readily available fuels. This paper presents the modeling, control and design analysis of a three-phase Grid-interactive Fuel Cell system with active filter functions. The main focus of this paper is to control the active power supplied by the Fuel Cell Distributed Generation system while compensating harmonics and reactive currents caused by the nonlinear loads using shunt active power filter. The developed Fuel Cell model is connected to the DC-side of the voltage source inverter for interfacing with the grid. Thus the same inverter is utilized as power converter to inject the power generated from the Fuel Cell to the grid and to act as active power filter to compensate load current harmonics and load reactive power demand. The designed controller either regulates the power flow between the Fuel Cell and the Grid or works as an active power filter or performs both the functions simultaneously. The simulation model of the overall system is developed in MATLAB/Simulink environment using SimPower Systems blocksets and then PIL simulated using TMS320F2812 DSP. The results are obtained for different operating conditions with varying load demands to prove the effectiveness of the entire system.
Keywords :
active filters; compensation; distributed power generation; fuel cell power plants; load flow control; power control; power convertors; power filters; power generation control; power grids; power system harmonics; Matlab-Simulink simulation; SimPower system blocksets; TMS320F2812 DSP; active power control; energy sources; fossil fuels; fuel cell distributed generation system; global warming; harmonic compensation; load current harmonic compensation; load reactive power demand; nonlinear load compensation; power converter; power flow regulation; reactive currents; shunt active power filter function; sustainable power generation; three-phase grid-interactive fuel cell system control; voltage source inverter; Active filters; Fuel cells; Harmonic analysis; Inverters; Load modeling; Mathematical model; Power harmonic filters; Active; Active Power Filter; Distributed Generation; Fuel Cell; Reactive and Harmonic Power;
Conference_Titel :
Power Electronics and Drive Systems (PEDS), 2011 IEEE Ninth International Conference on
Conference_Location :
Singapore
Print_ISBN :
978-1-61284-999-7
Electronic_ISBN :
2164-5256
DOI :
10.1109/PEDS.2011.6147246