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an investigation of dual stator winding induction machines

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are:<br />

Fts = H ts(<br />

ave)<br />

d s<br />

( ave)<br />

=<br />

2.<br />

0<br />

At<br />

C) MMF <strong>of</strong> <strong>stator</strong> core F cs<br />

The maximum flux in the <strong>stator</strong> core is obtained from<br />

⎛ 2 ⎞⎛τ<br />

p ⎞<br />

φcs<br />

= ⎜ Bg 2 ⎟ ⎜ le<br />

2 ⎟<br />

⎝ π ⎠⎝<br />

⎠<br />

= 0.<br />

58 mWb<br />

Therefore, the peak fundamental component <strong>of</strong> flux density in the core is,<br />

cs<br />

B o ( ) = cs 90 dcskisle<br />

= 0.<br />

56 T<br />

φ<br />

61<br />

(2.40)<br />

(2.41)<br />

(2.42)<br />

The corresponding values <strong>of</strong> core flux density points 30 o <strong>an</strong>d 60 o from the maximum<br />

o ( ) = 60<br />

3<br />

Bcs(<br />

90 2 )<br />

= 0.<br />

48 T<br />

B o<br />

cs<br />

<strong>an</strong>d<br />

1<br />

o ( ) = B<br />

30<br />

cs(<br />

90 2 )<br />

= 0.<br />

28 T<br />

B o<br />

cs<br />

(2.43)<br />

(2.44)<br />

Assume the B-H characteristic <strong>of</strong> 3% silicon steel is linear, the average field intensity<br />

along the <strong>stator</strong> core is calculated as<br />

1 2 1<br />

= H o ( ) + H o ( ) + H<br />

cs 90<br />

cs 60<br />

cs<br />

6 3 6 ( 30 )<br />

= 208 At / m<br />

H o<br />

cs(<br />

ave)<br />

(2.45)<br />

The length <strong>of</strong> one pole pitch at the center line <strong>of</strong> the <strong>stator</strong> core c<strong>an</strong> be computed from

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