Abstract

The modeling of stator and rotor faults is the basis of the development of online monitoring techniques. To obtain reliable stator and rotor fault models, this paper focuses on dynamic modeling of the stator and rotor faults in real-time, which adopts a multiple-coupled-circuit method by using a winding function approach for inductance calculation. Firstly, the model of the induction machine with a healthy cage is introduced, where a rotor mesh that consists of a few rotor loops and an end ring loop is considered. Then, the stator inter-turn fault model is presented by adding an extra branch with short circuit resistance on the fault part of a stator phase winding. The broken rotor bar fault is then detailed by merging and removing the broken-bar-related loops. Finally, the discrete models under healthy and faulty conditions are developed by using the Tustin transformation for digital implementation. Moreover, the stator and rotor mutual inductances are derived as a function of the rotor position according to the turn and winding functions distribution. Simulations and experiments are performed on a 2.2-kW/380-V/50-Hz three-phase and four-pole induction motor to show the performance of the stator and rotor faults, where the saturation effect is considered in simulations by exploiting the measurements of a no load test. The simulation results are in close agreement with the experimental results. Furthermore, magnitudes of the characteristic frequencies of 2f1 in torque and (1 ± 2s)f1 in current are analyzed to evaluate the stator and rotor fault severity. Both indicate that the stator fault severity is related to the short circuit resistance. Further, the number of shorted turns and the number of continuous broken bars determines the rotor fault severity.

Highlights

  • It is reported that 37% of stator faults and 10% of rotor faults occur in induction motors in industry applications [1]

  • The simulation results for the stator faults and rotor faults are presented

  • RotorThe fault models considering the saturation proposed on the function stator and rotor mutual inductances are effect crucialwere for the models, based on the winding function approach.inThe stator according and rotor to mutual inductances arewas crucial for and how to calculate the inductance real-time the proposed models detailed the models, and how to calculate the inductance in real-time according to the proposed in this paper

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Summary

Introduction

It is reported that 37% of stator faults and 10% of rotor faults occur in induction motors in industry applications [1]. There are many factors that result in stator and rotor faults, including thermal, mechanical, and environmental stresses It was indicated in [4] that the insulation degradation of stator windings is the main cause for stator inter-turn faults, where the thermal stress is the most recognized factor for the ultimate insulation failure [5]. Other reasons such as partial discharges (PD) [5] lead to the insulation decrease, especially in applications with voltage source inverters.

Stator and Rotor Fault Models
Modeling of Healthy Induction Motors
Discretization
Inductance Calculations
Stator Inductances Calculation
Rotor Inductance Calculations
Transient
Simulation Results
Stator Faults
10. Currents
Rotor Faults
Experimental Results
Healthy Motors
19. Figure
21. Stator
Conclusions
Full Text
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