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an investigation of dual stator winding induction machines

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1 2 1<br />

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

cr 90<br />

cr 60<br />

cr<br />

6 3 6 ( 30 )<br />

= 208 At / m<br />

H o<br />

cr(<br />

ave)<br />

The length <strong>of</strong> one pole pitch at the center <strong>of</strong> the rotor core c<strong>an</strong> be computed from:<br />

l<br />

cr<br />

π<br />

=<br />

=<br />

( D − d ) π ( Dis<br />

− 2lg<br />

− dcr<br />

)<br />

0.<br />

17<br />

ir<br />

P<br />

m<br />

cr<br />

=<br />

P<br />

The corresponding average MMF drop in the rotor core is:<br />

Fcr( ave)<br />

= Hcr(<br />

ave)<br />

lcr<br />

=<br />

35.<br />

3<br />

At<br />

63<br />

(2.51)<br />

(2.52)<br />

(2.53)<br />

The total MMF drop around the magnetic circuits is obtained by summing up the<br />

indivi<strong>dual</strong> MMF drops around the entire magnetic circuit comprising <strong>of</strong> two air gaps, two<br />

<strong>stator</strong> teeth, the <strong>stator</strong> core <strong>an</strong>d the rotor core. The required MMF per pole at the 30 o point<br />

needed to produce the specified air gap flux density is:<br />

2Fg<br />

+ 2Fts<br />

+ F<br />

F o<br />

p(<br />

) = 30<br />

2<br />

= 93.<br />

9 At<br />

cs<br />

+ F<br />

cr<br />

(2.54)<br />

The corresponding value <strong>of</strong> MMF per pole at the maximum value <strong>of</strong> air gap flux<br />

density is expressed as:<br />

o ( ) = Fp1<br />

=<br />

0<br />

2<br />

Fp<br />

3<br />

( 30 )<br />

= 108.<br />

4 At<br />

F o<br />

p<br />

2.3.1.2 Calculation <strong>of</strong> <strong>winding</strong> factor k 1<br />

A) Pitch factor k<br />

p1<br />

(2.55)

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