Title :
Enhanced reactive power allocation of full converter wind generation system
Author :
Mokui, Hasmina Tari ; Masoum, Mohammad A. S. ; Mohseni, Masoumeh
Author_Institution :
Dept. of Electr. & Comput. Eng., Curtin Univ., Perth, WA, Australia
Abstract :
More stringent grid codes have been set by transmission regulators requiring the wind farms to have proper fault ride through (FRT) capability and actively participate in maintaining network stability following severe disturbances. This may not be easily achieved as the intermittent behavior of wind turbines are highly affected by the environment factors as wind speed. This paper investigates reactive power allocation of full converter wind generators (FCWGs) with different wind speeds in order to comply with the E.ON Netz grid code. This is done by sensing the voltage drop at the point of common coupling (PCC) and using the level of wind speeds to define a power index for extended PQ support of FCWGs. A test system consisting of four FCWGs connected to power grid is simulated using MATLAB/Simulink by introducing types A and F faults for 500ms. Simulation results show that FCWGs with lower wind speeds are able to deliver more reactive power as compared to machine working under higher wind levels. Furthermore, the proposed technique can enhance the FRT capability of FCWGs without violating the DC-link voltage limits during the fault while also improving voltage profiles at PCC in compliance with the E.ON Netz Grid Code.
Keywords :
air pollution control; electric potential; power convertors; power generation control; power generation faults; power generation reliability; power grids; power supply quality; power system stability; power transmission control; reactive power control; wind power plants; wind turbines; E.ON Netz grid code; FCWG; FRT capability; Matlab; PCC; PQ; Simulink; environment factors; fault ride through; full converter wind generator; network stability maintenance; point of common coupling; power grid; power index; reactive power allocation; transmission regulator; voltage drop; wind farm; wind speed; wind turbine; Power system stability; Reactive power; Resource management; Voltage control; Wind farms; Wind speed; Wind turbines; Fault ride through; full converter wind turbine; grid codes; reactive power support; voltage control;
Conference_Titel :
Power Electronics for Distributed Generation Systems (PEDG), 2014 IEEE 5th International Symposium on
Conference_Location :
Galway
DOI :
10.1109/PEDG.2014.6878654