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an investigation of dual stator winding induction machines

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(a)<br />

(b)<br />

(c)<br />

(d)<br />

(e)<br />

(f)<br />

(g)<br />

(h)<br />

(k)<br />

(m)<br />

(n)<br />

(p)<br />

Figure 9.8. Simulation results for starting process, from top: (a) q-axis voltage Vqs1 <strong>of</strong> ABC<br />

<strong>winding</strong>s, (b) d-axis voltage Vds1 <strong>of</strong> ABC <strong>winding</strong>s, (c) rotor electric speed ωr1 <strong>of</strong> ABC <strong>winding</strong>s,<br />

(d) slip frequency ωs1 <strong>of</strong> ABC <strong>winding</strong>s, (e) electromagnetic torque Te1 <strong>of</strong> ABC <strong>winding</strong>s, (f)<br />

comm<strong>an</strong>d <strong>an</strong>d actual dc voltage Vdc1, (g) q-axis voltage Vqs2 <strong>of</strong> XYZ <strong>winding</strong>s, (h) d-axis voltage<br />

Vds2 <strong>of</strong> XYZ <strong>winding</strong>s, (k) rotor electric speed ωr2 <strong>of</strong> XYZ <strong>winding</strong>s, (m) slip frequency ωs2 <strong>of</strong><br />

XYZ <strong>winding</strong>s, (n) electromagnetic torque Te2 <strong>of</strong> XYZ <strong>winding</strong>s, (p) comm<strong>an</strong>d <strong>an</strong>d actual dc<br />

voltage Vdc2.<br />

334

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