Title :
Combined model of fuel cell and microturbine based distributed generation system
Author :
Nayak, Sanjeev K. ; Gaonkar, D.N. ; Kumar, A. Shraban
Author_Institution :
Dept. of Electr. & Electron. Eng., Nat. Inst. of Technol. Karnataka, Mangalore, India
Abstract :
Distributed Generation (DG) play an active role in the distribution network due to its minimum loss, maximum efficiency and environmental impact. Moreover DG can supply base load power which improves the system stability, reliability and power quality. Among the different combined DG systems like solar with wind, tidal with geothermal and others, fuel cell with microturbine is the most economical due to fuel flexibility and inner relation between each other. The hybrid system can utilize exhaust fuel and heat from fuel cell to increase the system efficiency. This paper investigates combined model solid oxide fuel cell/microturbine generator (SOFC/MTG) hybrid system, in which the anode exhaust of SOFC contains reminder of fuel. The exhaust hot gas and waste fuel are mixed with fresh fuel and compressed air is burned inside the burner. The pressurized hot gas from the combustor is expanded through turbine driving the Permanent Magnet Synchronous Machine (PMSM). The governing schemes of combined SOFC/MTG (Fuel & air flow) are controlled by the DC link voltage and current. The generated power of MTG is converted to AC/DC/AC to combine with fuel cell and frequency conversion. The hybrid model of SOFC/MTG with power converter is developed in MATLAB/Simulink library and simulation result shows transient response of hybrid SOFC/MTG DG system.
Keywords :
combustion equipment; distributed power generation; distribution networks; hybrid power systems; permanent magnet machines; power convertors; power generation economics; power generation reliability; power system stability; solid oxide fuel cells; synchronous machines; turbines; AC-DC-AC conversion; DC link current; DC link voltage; SOFC-MTG hybrid system; burner; combined model solid oxide fuel cell-microturbine generator; combustor; compressed air; distributed generation system; distribution network; exhaust fuel utilization; exhaust heat utilization; frequency conversion; fuel flexibility; permanent magnet synchronous machine; power converter; power quality; pressurized hot gas; system efficiency; system reliability; system stability; Atmospheric modeling; Equations; Fuel cells; Fuels; Mathematical model; Turbines; Voltage control; Distributed Generation; Microturbine; Permanent Magnet Synchronous Machine (PMSM); Power Electronics Interfacing Circuit; SOFC;
Conference_Titel :
Innovative Smart Grid Technologies - Middle East (ISGT Middle East), 2011 IEEE PES Conference on
Conference_Location :
Jeddah
Print_ISBN :
978-1-4673-0987-5
DOI :
10.1109/ISGT-MidEast.2011.6220806