Title :
Design Optimization of Controller Parameters Used in Variable Speed Wind Energy Conversion System by Genetic Algorithms
Author :
Hasanien, Hany M. ; Muyeen, S.M.
Author_Institution :
Electr. Power & Machines Dept., Ain Shams Univ., Cairo, Egypt
fDate :
4/1/2012 12:00:00 AM
Abstract :
This paper presents an optimum design procedure for the controller used in the frequency converter of a variable speed wind turbine (VSWT) driven permanent magnet synchronous generator (PMSG) by using genetic algorithms (GAs) and response surface methodology (RSM). The cascaded control is frequently used in the control of the frequency converter using the proportional plus integral (PI) controllers. The setting of the parameters of the PI controller used in a large system is cumbersome, especially in an electrical power system, which is difficult to be expressed by a mathematical model or transfer function. This study attempts to optimally design the parameters of the PI controllers used in the frequency converter of a variable speed wind energy conversion system (WECS). The effectiveness of the designed parameters using GAs-RSM is then compared with that obtained using a generalized reduced gradient (GRG) algorithm considering both symmetrical and unsymmetrical faults. The permanent fault condition due to unsuccessful reclosing of circuit breakers is considered as well. It represents another salient feature of this study. It is found that fault-ride-through of VSWT-PMSG can be improved considerably using the parameters of its frequency converter obtained from GAs-RSM.
Keywords :
PI control; cascade control; control system synthesis; direct energy conversion; fault diagnosis; frequency convertors; genetic algorithms; gradient methods; machine control; permanent magnet generators; power generation control; response surface methodology; synchronous generators; transfer functions; wind turbines; PI controllers; cascaded control; circuit breakers; design optimization; electrical power system; fault condition; fault-ride-through; frequency converter; generalized reduced gradient algorithm; genetic algorithms; mathematical model; optimum design procedure; permanent magnet synchronous generator; proportional plus integral controllers; response surface methodology; symmetrical faults; transfer function; unsymmetrical faults; variable speed wind energy conversion system; variable speed wind turbine; Circuit faults; Frequency control; Frequency conversion; Generators; Inverters; Mathematical model; Optimization; Fault-ride-through; frequency converter; genetic algorithms (GAs); permanent magnet synchronous generator (PMSG); response surface methodology (RSM); wind energy conversion system (WECS);
Journal_Title :
Sustainable Energy, IEEE Transactions on
DOI :
10.1109/TSTE.2012.2182784