Download A High Step-up Bidirectional Isolated Dual-Active

Survey
yes no Was this document useful for you?
   Thank you for your participation!

* Your assessment is very important for improving the workof artificial intelligence, which forms the content of this project

Document related concepts

Electrification wikipedia , lookup

Power over Ethernet wikipedia , lookup

Three-phase electric power wikipedia , lookup

Power inverter wikipedia , lookup

Stray voltage wikipedia , lookup

Mercury-arc valve wikipedia , lookup

Electrical substation wikipedia , lookup

Grid energy storage wikipedia , lookup

Integrating ADC wikipedia , lookup

Shockley–Queisser limit wikipedia , lookup

History of electric power transmission wikipedia , lookup

Metadyne wikipedia , lookup

Power engineering wikipedia , lookup

Surge protector wikipedia , lookup

Rectifier wikipedia , lookup

Television standards conversion wikipedia , lookup

Distributed generation wikipedia , lookup

Pulse-width modulation wikipedia , lookup

Variable-frequency drive wikipedia , lookup

Amtrak's 25 Hz traction power system wikipedia , lookup

Voltage optimisation wikipedia , lookup

Alternating current wikipedia , lookup

Mains electricity wikipedia , lookup

Opto-isolator wikipedia , lookup

HVDC converter wikipedia , lookup

Switched-mode power supply wikipedia , lookup

Buck converter wikipedia , lookup

Transcript
A High Step-up Bidirectional Isolated Dual-ActiveBridge Converter with Three-Level Voltage-Doubler
Rectifier for Energy Storage Applications
Abstract:
A bidirectional isolated dual-active-bridge (DAB) converter with three-level
voltage-doubler rectifier (TL-VDR) is presented for energy storage applications.
The voltage conversion ratio is enhanced and the voltage stresses on transformer
windings are reduced with the help of TL-VDR. Optimized pulse widthmodulation (PWM) plus dual phase-shift-modulation (PSM) strategy is applied to
the presented DAB converter. The circulating current is reduced and the softswitching performance is achieved in wide voltage and load range. Therefore, high
efficiency bidirectional step-up/step-down power conversion is achieved with the
presented topology and control strategy. These features make the presented
converter attractive for energy storage applications. The operation principles and
characteristics are analyzed and verified with experimental results.
Existing system:
 A high step-up bidirectional DC-DC converter is required to control
bidirectional power transfer of the energy storage devices. Thus, high
efficiency bidirectional DC-DC converters have attracted much interest in
energy storage systems.
 A dual active- bridge (DAB) converter is attractive for isolated bidirectional
power conversion due to its symmetric structure and zero voltage switching
performance. However, this converter has a limited ZVS range and high
circulating current under wide voltage variation.
Proposed system:
 A novel bidirectional DAB converter utilizing a three-level voltage-doubler
rectifier (TL-VDR) on the high voltage side is proposed in this paper.
 With PWM plus dual phase-shift-modulation (PSM) control, soft-switching
for all switches can be realized over a wide range, which helps to reduce
switching losses.
 The TL-VDR can be employed to reduce the circulating current by
generating a trapezoidal three level in the high-voltage side, which
contributes to reduce conduction losses.
Circuit diagram:
Reference:
[1] D. Velasco de la Fuente, C. L. T. Rodriguez, E. Figueres, et.al,
“Photovoltaic power system with battery backup with grid-connection
and islanded operation capabilities,” IEEE Trans. on Ind. Electron., vol.
60, no. 4, pp. 1571–1581, Apr. 2013.
[2] Zhe Zhang, Ziwei Ouyang, Ole C. Thomsen, Michael A. E. Andersen,
“Analysis and Design of a Bidirectional Isolated DC–DC Converter for
Fuel Cells and Supercapacitors Hybrid System,” IEEE Trans. on Power.
Electron., vol. 27, no. 2, pp. 848–859, Feb. 2012.
[3] S.N. Motapon, L.-A. Dessaint and K. AI-Haddad, “A comparative study
of energy management schemes for a fuel-cell hybrid emergency power
system of more-electric aircraft,” IEEE Trans. on Ind. Electron., vol. 61,
no. 3, pp. 1320–1334, Mar. 2014.
[4] Haihua Zhou, Ashwin M. Khambadkone, “Hybrid Modulation for DualActive-Bridge Bidirectional Converter With Extended Power Range for
Ultracapacitor Application,” IEEE Trans. on Ind. Electron., vol. 45, no.
4, pp. 1434–1442, Jul. 2009.