Parallel method of H-bridge cascaded high-voltage shore power supply based on independent droop control
A shore power supply and cascading technology is applied to electrical components, output power conversion devices, and AC power input to AC power output. Achieve the effects of circulating current suppression, reducing the amount of calculation, and high precision
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Embodiment 1
[0059] Through the matlab simulation software, the parallel control system of two high-voltage shore power supplies is simulated.
[0060] The main circuit parameters of the parallel high-voltage shore power supply are shown in the following table:
[0061] No. parameter name parameter value unit 1 Input voltage 6000 V 2 input frequency 50 Hz 3 Rated Capacity 2 MW 4 DC bus voltage 900 V 5 The output voltage 6600 V 6 Output frequency 60 Hz 7 filter inductor 5 mH 8 filter capacitor 1 μF
[0062] Take a set of sag coefficient m=1×10 -6 ,n=1×10 -6 , observe the parallel operation of the two shore power supplies.
[0063] After the two high-voltage shore power supplies start up with no load and run stably, when t is 0.2s, the parallel contactor closes, and the two shore power supplies run in parallel. At the moment of parallel connection, the impact is very small, and the two shore power supp...
Embodiment 2
[0065] By building an actual system, the parallel connection effect of two high-voltage shore power supplies using an independent droop control method is verified. Its experimental block diagram is as follows Figure 7 As shown, two high-voltage shore power supplies input 10kV voltage, and the output is connected in parallel through two high-voltage switches. The shore power supply runs in parallel with the 1# shore power supply through pre-synchronous start. Figure 8 As shown, the load current is gradually divided evenly. When the 2# shore power supply exits, the load is borne by the 1# shore power supply. The withdrawal process is as follows Figure 9 shown.
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