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an investigation of dual stator winding induction machines

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where, r R is the resist<strong>an</strong>ce matrix, r i is the rotor loop current vector <strong>an</strong>d λ r is the rotor<br />

loop flux linkage vector.<br />

The rotor flux linkage c<strong>an</strong> be divided into three components, the first is due to the<br />

ABC <strong>winding</strong> currents, the second is due to the XYZ <strong>winding</strong> currents while the third<br />

component is due to the rotor currents. The expression for rotor flux linkage c<strong>an</strong> be<br />

expressed as:<br />

λ +<br />

r = λrs1<br />

+ λrs2<br />

λrr<br />

(3.72)<br />

The expression for each term <strong>of</strong> (3.72) c<strong>an</strong> be written as:<br />

⎛ λ<br />

⎜<br />

⎞<br />

⎟<br />

⎛ L<br />

⎜<br />

L<br />

r1s1<br />

ar1<br />

br1<br />

cr1<br />

⎛ a ⎞<br />

⎜λr<br />

2s1<br />

⎟ ⎜ Lar<br />

2 Lbr<br />

2 Lcr<br />

2 ⎟ ⎜ ⎟<br />

rs1<br />

= =<br />

⋅ ib<br />

= Lrs1<br />

L<br />

⎞<br />

⎟<br />

i<br />

λ ⎜ ⎟ ⎜<br />

⎟ ⎜ ⎟ ⋅ iabc<br />

(3.73)<br />

M M M M<br />

⎜ ⎟ ⎜<br />

⎟ ⎜i<br />

⎟<br />

⎜ ⎟ ⎜<br />

c<br />

rns Larn<br />

Lbrn<br />

L ⎟ ⎝ ⎠<br />

⎝ λ 1 ⎠ ⎝<br />

crn ⎠<br />

⎛ λ<br />

⎞<br />

⎛ L<br />

⎜<br />

L<br />

r1s<br />

2 xr1<br />

yr1<br />

zr1<br />

⎜ ⎟<br />

⎛i<br />

x ⎞<br />

⎜λ<br />

L<br />

r s ⎟ ⎜ xr Lyr<br />

Lzr<br />

⎟ ⎜ ⎟<br />

2 2<br />

2 2 2<br />

rs2<br />

= =<br />

⋅ iy<br />

= Lrs2<br />

L<br />

⎞<br />

⎟<br />

λ ⎜ ⎟ ⎜<br />

⎟ ⎜ ⎟ ⋅i<br />

xyz<br />

(3.74)<br />

M M M M<br />

⎜ ⎟ ⎜<br />

⎟ ⎜i<br />

⎟<br />

⎜ ⎟ ⎜<br />

z<br />

L<br />

rns<br />

xrn Lyrn<br />

L ⎟ ⎝ ⎠<br />

⎝ λ 2 ⎠ ⎝<br />

zrn ⎠<br />

⎛ L<br />

⎜<br />

⎜<br />

⎜<br />

⎜<br />

⎝<br />

rr<br />

+ 2<br />

L<br />

( l + l )<br />

( l + l )<br />

rm1<br />

b rr b e<br />

rm2<br />

r 2<br />

λ rr =<br />

⋅ Lrr<br />

ir<br />

(3.75)<br />

L<br />

M<br />

rm1<br />

b<br />

− l<br />

− l<br />

b<br />

e<br />

L<br />

L<br />

rm1<br />

+ 2<br />

L<br />

M<br />

− l<br />

rm2<br />

b<br />

L<br />

L<br />

O<br />

L<br />

L<br />

rr<br />

115<br />

L<br />

rm1<br />

L<br />

M<br />

+ 2<br />

− l<br />

( l + l )<br />

b<br />

b<br />

e<br />

⎞ ⎛ ir1<br />

⎞<br />

⎟ ⎜ ⎟<br />

⎟ ⎜i<br />

⎟<br />

⎟ ⎜ ⎟ =<br />

M<br />

⎟ ⎜ ⎟<br />

⎟ ⎜i<br />

⎟<br />

⎠ ⎝ rn ⎠<br />

where, L irj is the mutual induct<strong>an</strong>ce between the <strong>stator</strong> th<br />

i <strong>winding</strong> <strong>an</strong>d<br />

⋅<br />

th<br />

j rotor loop,<br />

i = A,<br />

B,<br />

C,<br />

X , Y,<br />

Z <strong>an</strong>d j = 1,<br />

2,<br />

Ln<br />

, n is the number <strong>of</strong> rotor loop; L rr is the self-<br />

induct<strong>an</strong>ce <strong>of</strong> the rotor loops; L rm1<br />

is the mutual induct<strong>an</strong>ce between the adjunct rotor<br />

loops; L rm2<br />

is the mutual induct<strong>an</strong>ce between the rotor loops that are not adjunct; l b <strong>an</strong>d<br />

l e are the leakage induct<strong>an</strong>ce <strong>of</strong> the rotor bar <strong>an</strong>d the segment <strong>of</strong> end ring respectively.

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