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an investigation of dual stator winding induction machines

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2.3 Machine Parameter Estimation<br />

To evaluate the perform<strong>an</strong>ce <strong>of</strong> the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> machine, the<br />

equivalent circuit parameters need to be determined. Furthermore, in the full model<br />

simulation <strong>of</strong> the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> machine, the estimated parameters <strong>of</strong> the<br />

designed machine c<strong>an</strong> be used to check the parameter calculations in the full model<br />

simulation. Magnetic circuit <strong>an</strong>alysis method, which is the general method to determine<br />

the parameters <strong>of</strong> the equivalent circuit, is used here [2.3]. Only the calculation progress<br />

for the 2-pole <strong>winding</strong> set is shown here, the one for the 6-pole <strong>winding</strong> set c<strong>an</strong> be found<br />

by using exactly the same way.<br />

2.3.1 Magnetizing Induct<strong>an</strong>ce L m2<br />

2.3.1.1 Calculation <strong>of</strong> MMF<br />

The effective length <strong>of</strong> the <strong>stator</strong> (<strong>an</strong>d rotor in this case) is expressed as:<br />

l = l + 2l<br />

(2.28)<br />

ef<br />

e<br />

g<br />

From which<br />

l ef<br />

= 57 . 15 + 2⋅<br />

0.<br />

33 =<br />

57.<br />

81<br />

mm<br />

Let us now determine the MMF per pole necessary to produce a peak value <strong>of</strong> the<br />

fundamental component <strong>of</strong> air gap flux density B g2<br />

.<br />

A) MMF <strong>of</strong> air gap F g<br />

The Carter's coefficient for the <strong>stator</strong> slot c<strong>an</strong> be expressed as:<br />

58

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