Title :
Steady-state performance and dynamic stability of a self-excited induction generator feeding an induction motor
Author :
Chun, Sung ; Wang, Kuo Li
Author_Institution :
Dept. of Electr. Eng., Nat. Cheng Kung Univ., Tainan, Taiwan
Abstract :
This paper presents a novel scheme on steady-state performance of an isolated three-phase self-excited induction generator (SEIG) supplying a loaded induction motor. An approach based on a d-q axis induction-machine model is employed to derive steady-state equations of the studied SEIG. Eigenvalue analyses based on synchronous reference frame are employed to determine the critical operating conditions and dynamic stability of the studied machines. The required minimum excitation capacitance of the SEIG, the maximum torque of the induction motor load, the combined maximum operating efficiency, etc. of the studied system can be easily investigated. Experimental results obtained from a laboratory 1.1 kW induction machine driven by a DC motor and a 300 W induction motor with a DC generator as its shaft load are also performed to confirm the feasibility of the proposed method
Keywords :
asynchronous generators; eigenvalues and eigenfunctions; induction motors; machine theory; stability; torque; 1.1 kW; 300 W; DC generator; DC motor; critical operating conditions; d-q axis induction-machine model; dynamic stability; eigenvalue analyses; induction motor; induction motor load; isolated three-phase self-excited induction generator; loaded induction motor; maximum operating efficiency; maximum torque; minimum excitation capacitance; self-excited induction generator; shaft load; steady-state equations; steady-state performance; synchronous reference frame; Capacitance; Eigenvalues and eigenfunctions; Equations; Induction generators; Induction machines; Induction motors; Laboratories; Stability analysis; Steady-state; Torque;
Conference_Titel :
Power Engineering Society Winter Meeting, 2000. IEEE
Print_ISBN :
0-7803-5935-6
DOI :
10.1109/PESW.2000.849971