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an investigation of dual stator winding induction machines

an investigation of dual stator winding induction machines

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ωr<br />

Dual-<strong>winding</strong><br />

<strong>induction</strong><br />

generator<br />

Voltage/<br />

current<br />

sensor<br />

S11a S21a S31a S12a Inputs<br />

Converter for ABC <strong>winding</strong> set<br />

S22a S32a DSP<br />

TMS320LF2407A<br />

S11b S21b S31b S12b S22b S32b Converter for XYZ <strong>winding</strong> set<br />

Voltage/<br />

current<br />

sensor<br />

Vab, Vac<br />

ia, ib<br />

Vxy, Vxz<br />

ix, iy<br />

C1 L R<br />

428<br />

DC voltage<br />

sensor<br />

D1<br />

Single phase<br />

ac voltage<br />

source<br />

Figure 11.5 The block diagram <strong>of</strong> the experimental setup for the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong><br />

generator with parallel connected PWM boost rectifier<br />

Similar setup for the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong> <strong>induction</strong> generator with series connected<br />

PWM boost rectifier is given in Figure 11.6. It should be noted that two independent ac<br />

voltage sources are necessary to supply two independent initial dc voltages. If only one<br />

initial voltage is given, since the air gap flux linkage building processes for two <strong>stator</strong><br />

<strong>winding</strong> sets have different time const<strong>an</strong>ts, the <strong>winding</strong> set that has faster flux building<br />

process will occupy the whole initial dc voltage <strong>an</strong>d generates the comm<strong>an</strong>d dc voltage<br />

such that the initial dc voltage circuit will be disconnected <strong>an</strong>d the other <strong>winding</strong> set c<strong>an</strong><br />

not generate <strong>an</strong>y power at all. This has been observed from the experiments that one

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