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The minimum voltage of the network in the bus 65 is almost 0.9 p.u.
Figure 6 shows that minimum voltage of the feeder is about 0.9360 per unit and violates the lower voltage limit of the system.
Figure 9 shows that the minimum voltage of the system is about 0.9092 p.u., which violates the lower voltage limit of the system.
Results show that conventional scheme of the C-element can reduce power by a factor of 34 for the less consuming scheme if operating at minimum voltage of 0.28 V instead of nominal 1.00 V.
Open image in new window Fig. 3 Real power droop characteristic for DC sub-microgrid k = frac{{V_{hbox{max} }^{{prime }} - V_{hbox{min} }^{{prime }} }}{{P_{hbox{max} } }} (5 where ( V_{hbox{min} }^{{prime }} ) is the allowable minimum voltage of DC source and Pmax is the maximum real power of DC source, respectively.
Without control of the UPFC, the total line loss of the distribution system, the minimum voltage of the AC buses and the maximum loading rate of the lines vary significantly under the natural power flow distribution, as shown in Fig. 6.
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Table 5 shows the maximum and minimum voltages of the wind turbines when a three-phase fault occurres at K10 of the outgoing line.
Table 5 Maximum and minimum voltages of the wind turbines connected to the collector network during a three-phase fault Collecting power line Maximum machine terminal voltage(p.u) Minimum machine terminal voltage(p.u) 1 0.296 0.220 2 0.262 0.218 3 0.261 0.217.
We measured a minimum voltage for discharge in the Mars ambient atmosphere of 410 ± 10 V at 0.3 torr cm.
In case of minimum voltage values, possibility of occurrence is only at the end nodes of the feeder or in-between any two DG (or capacitors, as well as between a capacitor and DG) connected buses.
( {overline{U}}_m ) and ( {underline{U}}_m ) are the maximum and minimum voltage magnitude (p.u) of node m respectively.
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