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an investigation of dual stator winding induction machines

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The qd0 voltage equations <strong>of</strong> a <strong>dual</strong> <strong>winding</strong> <strong>induction</strong> generator feeding two ac-dc<br />

boost PWM rectifiers expressed in the synchronous reference frames <strong>of</strong> the <strong>winding</strong> rotor<br />

flux linkages are given in (9.1-9.10). The subscripts 1 <strong>an</strong>d 2 correspond to the parameters<br />

or state variables for the 2-pole (ABC) three-phase <strong>winding</strong> set <strong>an</strong>d the 6-pole (XYZ)<br />

three-phase <strong>winding</strong> set, respectively:<br />

r L L<br />

L + σ<br />

(9.1)<br />

r1<br />

m1<br />

m1<br />

σ 1 pI qs1<br />

r1I<br />

qs1<br />

= Vqs1<br />

−ω<br />

e1Lσ<br />

1I<br />

ds1<br />

+ λ 2 qr1<br />

−ω<br />

r1<br />

λdr1<br />

= qs1<br />

Lr1<br />

Lr1<br />

r L L<br />

L + σ<br />

(9.2)<br />

r1<br />

m1<br />

m1<br />

σ 1 pI ds1<br />

r1I<br />

ds1<br />

= Vds1<br />

+ ωe1Lσ 1I<br />

qs1<br />

+ λ 2 dr1<br />

+ ωr1<br />

λqr1<br />

= ds1<br />

Lr1<br />

Lr1<br />

r r L<br />

pλ + λ = I −<br />

= σ<br />

(9.3)<br />

( ωe1<br />

− ωr1)<br />

λdr1<br />

1<br />

r1<br />

r1<br />

m1<br />

qr1<br />

Lr1<br />

qr1<br />

Lr1<br />

qs1<br />

qr<br />

r r L<br />

pλ + λ = I +<br />

= σ<br />

(9.4)<br />

( ωe1<br />

−ωr<br />

1)<br />

λqr1<br />

1<br />

r1<br />

r1<br />

m1<br />

dr1<br />

Lr1<br />

dr1<br />

Lr1<br />

ds1<br />

dr<br />

r L L<br />

L + σ<br />

(9.5)<br />

r2<br />

m2<br />

m2<br />

σ 2 pIqs2<br />

r2I<br />

qs2<br />

= Vqs2<br />

−ωe2<br />

Lσ<br />

2I<br />

ds2<br />

+ λ 2 qr2<br />

−ωr<br />

2 λdr2<br />

= qs2<br />

Lr2<br />

Lr2<br />

r L<br />

L<br />

L pI + r I = V + L I + +<br />

= σ<br />

(9.6)<br />

r 2 m2<br />

m2<br />

σ 2 ds2<br />

2 ds2<br />

ds2<br />

ωe2 σ 2 qs2<br />

λ 2 dr2<br />

ωr<br />

2 λqr2<br />

ds2<br />

Lr<br />

2 Lr<br />

2<br />

r r L<br />

pλ + λ = I −<br />

= σ<br />

(9.7)<br />

( ω 2 −ω<br />

2 ) λ 2 2<br />

r 2<br />

r 2 m2<br />

qr2<br />

Lr<br />

2<br />

qr2<br />

Lr<br />

2<br />

qs2<br />

e r dr qr<br />

r r L<br />

pλ + λ = I +<br />

= σ<br />

(9.8)<br />

C<br />

C<br />

1<br />

2<br />

( ω 2 − ω 2 ) λ 2 2<br />

r1<br />

r 2 m2<br />

dr2<br />

Lr1<br />

dr2<br />

Lr<br />

2<br />

ds2<br />

e r qr dr<br />

pV<br />

pV<br />

3<br />

( M I + M I )<br />

V<br />

V<br />

dc1<br />

dc1<br />

dc 2<br />

dc1<br />

= − qs1<br />

qs1<br />

ds1<br />

ds1<br />

− −<br />

(9.9)<br />

2<br />

RL1<br />

RL3<br />

3<br />

( M I + M I )<br />

V<br />

315<br />

+ V<br />

+ V<br />

dc 2 dc1<br />

dc 2<br />

dc 2 = − qs 2 qs 2 ds 2 ds 2 − −<br />

(9.10)<br />

2<br />

RL<br />

2 RL3<br />

V

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