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an investigation of dual stator winding induction machines

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Figure 4.27 Stator rotor mutual induct<strong>an</strong>ce under 20% static <strong>an</strong>d 10% dynamic rotor eccentricity<br />

4.5 Model <strong>of</strong> the Dual Stator Winding Machine<br />

The model <strong>of</strong> the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> machine used under rotor eccentricity<br />

conditions is the same as the one given in Chapter 3, except the torque calculation using<br />

the power bal<strong>an</strong>ce method is used to simplify the calculation process.<br />

The expression for the electromagnetic torque is derived using the M<strong>an</strong>ley-Rowe<br />

power-frequency relationships for nonlinear circuits since electric <strong>machines</strong> are nonlinear<br />

energy-conversion circuits [4.7, 4.8]. The co-energy method was not used to determine<br />

the equation for the electromagnetic torque in view <strong>of</strong> the excessive computational<br />

burden occasioned by the need to find derivatives <strong>of</strong> rotor-<strong>an</strong>gle dependent <strong>stator</strong>-rotor<br />

induct<strong>an</strong>ces <strong>an</strong>d other components <strong>of</strong> the <strong>stator</strong> <strong>an</strong>d rotor induct<strong>an</strong>ces. The M<strong>an</strong>ley-Rowe<br />

real power-frequency relationship for a dissipation-less circuit with non-linear or time-<br />

180

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