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Energies 2016,9, 410
Figure 19 shows the simulatedwaveforms of gate signals ofQ3,Q4, the two-phase inductor
currents (iL1, iL2) and the switch voltages of (VQ3, VQ4) in charge state at full load condition.
The corresponding experimental results are also shown in Figure 20. One can observe that both
results are in very close agreement aswell. From the figures it is observed that by interleaved
controlling thedutycyclesof 0.52 for the switches (Q3,Q4), the two-phase currents (iL1, iL2) are in
complementary relationand inCCM.Also, fromFigures 19band20b, the charge-pumpcapacitor
voltage (VCB) isabout192.5V, it canclamptheswitchvoltagesofactiveswitches (Q3,Q4) tobenearly
one-halfof theregulatedhigh-sidevoltageVHof385V.
(a)
(b)
(c)
Figure19.Simulatedwaveformsof thestudiedBDCindischargestateat full load: (a)gatesignalsof
Q3,Q4, two-phase inductorcurrents iL1, iL2; (b) switchvoltagesofQ3,Q4; (c) charge-pumpcapacitor
voltageVCB andhigh-sidevoltageVH.
235
Emerging Technologies for Electric and Hybrid Vehicles
- Title
- Emerging Technologies for Electric and Hybrid Vehicles
- Editor
- MDPI
- Location
- Basel
- Date
- 2017
- Language
- English
- License
- CC BY-NC-ND 4.0
- ISBN
- 978-3-03897-191-7
- Size
- 17.0 x 24.4 cm
- Pages
- 376
- Keywords
- electric vehicle, plug-in hybrid electric vehicle (PHEV), energy sources, energy management strategy, energy-storage system, charging technologies, control algorithms, battery, operating scenario, wireless power transfer (WPT)
- Category
- Technik