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an investigation of dual stator winding induction machines

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3.4.2 Mutual Induct<strong>an</strong>ces <strong>of</strong> the ABC Winding Set<br />

The general expression for the mutual induct<strong>an</strong>ce is:<br />

2π<br />

1<br />

Lij = µ 0rl<br />

∫ ⋅ ni<br />

j<br />

g<br />

where, ( θ )<br />

i<br />

0 0<br />

( θ ) ⋅ N ( θ ) ⋅ dθ<br />

n is the turn function <strong>of</strong> th<br />

<strong>winding</strong>, i , j = A,<br />

B,<br />

C <strong>an</strong>d i ≠ j .<br />

i <strong>winding</strong>; ( θ )<br />

101<br />

j<br />

(3.42)<br />

N is the <strong>winding</strong> function <strong>of</strong><br />

The calculation method <strong>an</strong>d process are similar to the one for self-induct<strong>an</strong>ce, but the<br />

number <strong>of</strong> linear region is much more th<strong>an</strong> that. All the mutual induct<strong>an</strong>ces <strong>of</strong> the <strong>stator</strong><br />

<strong>winding</strong>s have the same const<strong>an</strong>t value for const<strong>an</strong>t air gap length. The expression for the<br />

mutual induct<strong>an</strong>ce is:<br />

L<br />

2<br />

2<br />

S πµ 0rl<br />

⎛ 3P1C<br />

s1<br />

⎞ 6πµ<br />

0rl<br />

2<br />

ij = −<br />

C<br />

2 ⎜ ⎟ = −<br />

s1<br />

(3.43)<br />

54P1<br />

g0<br />

⎝ S ⎠ g0<br />

where, i , j = A,<br />

B,<br />

C <strong>an</strong>d i ≠ j .<br />

3.4.3 Self Induct<strong>an</strong>ces <strong>of</strong> the XYZ Winding Set<br />

The turn <strong>an</strong>d <strong>winding</strong> functions <strong>of</strong> the XYZ <strong>winding</strong> set are shown in Figure 3.4 (I)<br />

<strong>an</strong>d Figure 3.4 (II) respectively, where C = N 2 is the number <strong>of</strong> coils per slot for<br />

s2<br />

s2<br />

XYZ <strong>stator</strong> <strong>winding</strong> set. N s2<br />

is the number <strong>of</strong> turns per phase for the XYZ <strong>winding</strong> set.<br />

For phase X, the self-induct<strong>an</strong>ce is:<br />

2π<br />

1<br />

LXX = µ 0rl<br />

∫ ⋅ nX<br />

X<br />

g<br />

0 0<br />

( θ ) ⋅ N ( θ ) ⋅ dθ<br />

th<br />

j<br />

(3.44)

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