Title :
Modeling and Analysis of Stator Interturn Fault Location Effects on Induction Machines
Author :
Patel, Dhaval C. ; Chandorkar, M.C.
Author_Institution :
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
Abstract :
Locating the stator interturn (SIT) fault on the motor winding structure adds an important feature in the fault diagnosis. This motivates to study the effects of SIT fault location on the induction machine. In this paper, a simple yet accurate stationary reference frame q-d-0 model of SIT-faulted induction machine, including the fault location parameter, is developed. The fundamental components of winding functions (WFs) are used to calculate the machine inductances for the proposed model. These inductances in stationary reference frame q-d-0 variables are rotor-position-independent expressions and functions of fault severity and fault location. The proposed model is as accurate as the multiple-coupled-circuit model for fault location study. It does not require the recalculation of machine inductances in each integration step to solve the model. The experimental validation of the model is presented. The steady-state analysis based on the proposed model indicates that the inclination of the current vector locus and the phase angle of the negative-sequence current phasor are the strong indicators of the SIT fault location.
Keywords :
asynchronous machines; coupled circuits; fault diagnosis; fault location; inductance; rotors; stators; SIT; fault diagnosis; fault location parameter; fault severity; induction machine; machine inductance calculation; motor winding structure; multiple coupled circuit model; negative sequence current phasor; phase angle; q-d-0 model; rotor position independent expressions; stationary reference frame; stator interturn fault location effects; steady-state analysis; vector locus; winding functions; Circuit faults; Fault location; Integrated circuit modeling; Rotors; Stator windings; Windings; Fault location; stationary reference frame; stator interturn (SIT) faults; transient modeling; winding functions (WFs);
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2013.2288191