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an investigation of dual stator winding induction machines

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Table 9.1 Parameters <strong>of</strong> controllers in series-connected generating system<br />

Controller name 2-pole ABC <strong>winding</strong> 6-pole XYZ <strong>winding</strong><br />

Q-axis current k 24.<br />

18,<br />

k 19708 k 21.<br />

92 , k 17147<br />

D-axis current<br />

Q-axis rotor flux linkage<br />

D-axis rotor flux linkage<br />

DC voltage<br />

pqs1<br />

=<br />

iqs1<br />

=<br />

332<br />

pqs2<br />

=<br />

iqs2<br />

=<br />

k 24.<br />

18 , k 19708 k 21.<br />

92 , k 17147<br />

pds1<br />

=<br />

ids1<br />

=<br />

pds 2 =<br />

ids2<br />

=<br />

k 13.<br />

2 , k 100 k 8.<br />

56 , k 100<br />

pqr1<br />

=<br />

iqr1<br />

=<br />

pqr 2 =<br />

iqr 2 =<br />

k 140.<br />

5 , kidr = 10e4<br />

k 135.8<br />

, kidr = 10e4<br />

pdr1<br />

=<br />

1<br />

pdr 2 =<br />

k = 0.<br />

0396 , k = 0.<br />

1053<br />

9.5 Simulation <strong>an</strong>d Experimental Results<br />

pdc<br />

The proposed control scheme has been simulated in MATLAB/SIMULINK. The<br />

machine parameters are the same as the parameters given in Table 8.2. The computer<br />

simulation results in Figure 9.8 show the starting process <strong>of</strong> the generator. The rotor<br />

ramps up from 955 to 1600 rpm from 0 to 0.34 seconds <strong>an</strong>d is maintained at 1600 rpm<br />

thereafter. The dynamic responses <strong>of</strong> the control scheme to ch<strong>an</strong>ges in load, portioning<br />

voltage coefficient γ <strong>an</strong>d rotor speed are also shown in Figure 9.9. At t = 3 seconds the<br />

coefficient γ is ch<strong>an</strong>ged from 0.5 to 0.3. At t = 2.5 seconds, the rotor speed is ch<strong>an</strong>ged to<br />

1791 rpm <strong>an</strong>d returns to 1600 rpm at t=3 second as shown in Figure 9.9(c). The load<br />

resist<strong>an</strong>ce R L3<br />

is ch<strong>an</strong>ged from 600 Ω to 300 Ω at t = 2 seconds, then the load resist<strong>an</strong>ce<br />

R L1<br />

is then ch<strong>an</strong>ged from 300 Ω to 120 Ω at t = 3.5 seconds, <strong>an</strong>d finally the load<br />

resist<strong>an</strong>ce R L2<br />

is ch<strong>an</strong>ged from 400 Ω to 200 Ω at t = 4 seconds to observe how these<br />

ch<strong>an</strong>ges influence the developed torque <strong>of</strong> each <strong>winding</strong> <strong>an</strong>d the output dc voltage<br />

idc<br />

2

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