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an investigation of dual stator winding induction machines

an investigation of dual stator winding induction machines

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A) Induced voltage in the XYZ <strong>winding</strong> set due to <strong>stator</strong> currents flowing in the XYZ<br />

<strong>winding</strong> set is :<br />

u<br />

s2<br />

() [ ( ) ] ⎬<br />

⎭ ⎫<br />

2 ⎧ µ 0ω<br />

2r<br />

*<br />

jω2t<br />

t = 2 rl Re − j C 2 3C<br />

⋅ I e<br />

π ⎨<br />

s2<br />

s2<br />

s2<br />

(5.104)<br />

2<br />

⎩ gP2<br />

B) Induced voltage in the XYZ <strong>winding</strong> set due to <strong>stator</strong> currents flowing in the ABC<br />

<strong>winding</strong> set is :<br />

uqp () t = 0<br />

(5.105)<br />

C) Induced voltage in the XYZ <strong>winding</strong> set due to the rotor currents induced by<br />

currents flowing in the ABC <strong>winding</strong> set is:<br />

u<br />

qrp<br />

() t<br />

2<br />

Nr<br />

⎧ µ r<br />

*<br />

( ( ) ) ( ( ) ) ⎫<br />

0ω1<br />

P2<br />

j ω1t<br />

+ −P1<br />

−P2<br />

ωrt<br />

− j P2<br />

i−1<br />

αr<br />

⎪ j 2 ⋅ Cs<br />

2 ⋅ CR<br />

⋅ e<br />

⋅∑<br />

IiR1<br />

⋅ e ⎪<br />

⎪ P2<br />

g<br />

i=<br />

1<br />

⎪<br />

= 2π<br />

rl Re⎨<br />

⎬ (5.106)<br />

2<br />

Nr<br />

⎪ µ r<br />

*<br />

0ω1<br />

P2<br />

j(<br />

ω1t<br />

+ ( P2<br />

−P1<br />

) ωrt<br />

) j(<br />

P2<br />

( i−1)<br />

αr<br />

)<br />

− j 2 ⋅ C ⋅ ⋅<br />

⋅ ⋅<br />

⎪<br />

s2<br />

CR<br />

e<br />

⎪<br />

∑ IiR1<br />

e<br />

⎩ P g<br />

⎪<br />

2<br />

i=<br />

1<br />

⎭<br />

D) Induced voltage in the XYZ <strong>winding</strong> set due to the rotor currents induced by<br />

currents flowing in the XYZ <strong>winding</strong> set is :<br />

u<br />

qrq<br />

() t<br />

2<br />

N<br />

⎧<br />

r<br />

µ r<br />

*<br />

( ) ( ( ) ) ⎫<br />

0ω<br />

2<br />

P2<br />

j ω2t<br />

−2<br />

P2ω<br />

rt<br />

− j P2<br />

i−1<br />

α r<br />

⎪ j 2 ⋅ Cs<br />

2 ⋅ C R ⋅ e ⋅∑<br />

I iR2<br />

⋅ e ⎪<br />

⎪ P2<br />

g<br />

i=<br />

1<br />

⎪<br />

= 2π<br />

rl Re⎨<br />

⎬ (5.107)<br />

2<br />

N r<br />

⎪ µ 0ω<br />

2r<br />

*<br />

P j(<br />

t ) j(<br />

P ( i−1)<br />

) ⎪<br />

2 ω2<br />

2 α r<br />

⎪−<br />

j 2 ⋅ Cs<br />

2 ⋅ C R ⋅ e ⋅∑<br />

I iR2<br />

⋅ e<br />

⎪<br />

⎩ P2<br />

g<br />

i=<br />

1<br />

⎭<br />

The developed electromagnetic torque in the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> machine is<br />

composed <strong>of</strong> the torque component produced by the ABC <strong>winding</strong> set <strong>an</strong>d the torque<br />

component produced by the XYZ <strong>winding</strong> set.<br />

T = T + T<br />

(5.108)<br />

e<br />

eABC<br />

eXYZ<br />

The summary <strong>of</strong> the torque equations is shown in the following section.<br />

220

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