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an investigation of dual stator winding induction machines

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2.3.4 Rotor Bar Resist<strong>an</strong>ce r b<br />

The length <strong>of</strong> one rotor bar not including the end ring is:<br />

l<br />

b<br />

le<br />

+ 2lbe<br />

=<br />

cosα<br />

= 0.<br />

065 m<br />

(2.86)<br />

Therefore, the resist<strong>an</strong>ce <strong>of</strong> one rotor bar is given as:<br />

r<br />

b<br />

lb<br />

= ρ<br />

A<br />

b<br />

−8<br />

1.<br />

6×<br />

10 ⋅0.<br />

065<br />

=<br />

−6<br />

63.<br />

4×<br />

10<br />

= 14.<br />

5 µ Ω<br />

2.3.5 End Ring Resist<strong>an</strong>ce r e<br />

The tooth pitch at the middle <strong>of</strong> the end ring c<strong>an</strong> be obtained as:<br />

τ<br />

r 2<br />

P pr(<br />

ave)<br />

=<br />

Sr<br />

= 0.<br />

0069 m<br />

τ<br />

The resist<strong>an</strong>ce <strong>of</strong> the end <strong>winding</strong> portion over one rotor slot pitch is:<br />

τ r re<br />

= ρal<br />

a<br />

2<br />

er<br />

= 1.<br />

8 µ Ω<br />

2.3.6 Stator Resist<strong>an</strong>ce r s<br />

73<br />

(2.87)<br />

(2.88)<br />

(2.89)<br />

By properly using str<strong>an</strong>ding <strong>an</strong>d tr<strong>an</strong>sposition, the eddy current in a <strong>stator</strong> coil c<strong>an</strong><br />

usually be reduced to a small value such that it c<strong>an</strong> be neglected in our calculation. The

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