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an investigation of dual stator winding induction machines

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<strong>induction</strong> <strong>machines</strong> having the same air-gap flux MMF, but electrically <strong>an</strong>d mech<strong>an</strong>ical<br />

coupled through the rotor.<br />

6.3 The Dynamic Model <strong>of</strong> the Machine<br />

The voltage equations <strong>of</strong> <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> machine c<strong>an</strong> be expressed in<br />

the complex form as [1.10]:<br />

V = r i + pλ<br />

− jωλ<br />

(6.4)<br />

qdsi<br />

si qdsi<br />

qdsi<br />

qdsi<br />

( ω −ω<br />

) = 0<br />

Vqdri = rriiqdri<br />

+ pλ<br />

qdri − j ri λqdri<br />

(6.5)<br />

where, i = 1,<br />

2 represents the (classical) parameters <strong>an</strong>d state variables <strong>of</strong> ABC <strong>an</strong>d XYZ<br />

<strong>winding</strong> set respectively; ω is the electrical rotating speed <strong>of</strong> the common reference<br />

frame; ω ri is the electrical rotor speed. Since it is easier to account for the magnetic<br />

saturation <strong>of</strong> the main flux linkage using flux linkages as state variables, the currents in<br />

(6.4-6.5) are eliminated. The flux linkage equations given in terms <strong>of</strong> currents are :<br />

as:<br />

⎡λ<br />

⎢<br />

⎣λ<br />

where,<br />

qdsi<br />

qdri<br />

⎤ ⎡ L<br />

⎥ = ⎢<br />

⎦ ⎣L<br />

si<br />

mi<br />

L<br />

L<br />

mi<br />

ri<br />

⎤ ⎡i<br />

⎥ × ⎢<br />

⎦ ⎣i<br />

qdsi<br />

qdri<br />

⎤<br />

⎥<br />

⎦<br />

244<br />

(6.6)<br />

The <strong>stator</strong> <strong>an</strong>d rotor currents from (6.6) c<strong>an</strong> be expressed in terms <strong>of</strong> the flux linkages<br />

L<br />

L<br />

ri<br />

mi<br />

iqdsi = λqdsi − λqdri<br />

Di<br />

Di<br />

L L<br />

= (6.7)<br />

si<br />

mi<br />

iqdri λqdri − λqdsi<br />

Di<br />

Di<br />

D = L L − L .<br />

i<br />

si<br />

ri<br />

2<br />

mi

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