Title :
Closed-Loop Control of DC–DC Dual-Active-Bridge Converters Driving Single-Phase Inverters
Author :
Hengsi Qin ; Kimball, Jonathan W.
Author_Institution :
SolarBridge Technol., Inc., Austin, TX, USA
Abstract :
A solid-state transformer (SST) is a high-frequency power electronic converter that is used as a distribution power transformer. A common three-stage configuration of an SST consists of ac-dc rectifier, isolated dc-dc dual-active-bridge (DAB) converter, and dc-ac inverter. This study addresses the controller design issue for a dc-dc DAB converter when driving a regulated single-phase dc-ac inverter. Since the switching frequency of the inverter stage is much higher than that of the DAB stage, the single-phase inverter is modeled as a double-line-frequency (e.g., 120 Hz) current sink. The effect of 120-Hz current by the single-phase inverter is studied. The limitation of a PI-controller, low gain at 120 Hz, is investigated. Two methods are proposed to improve the regulation of the output voltage of DAB converters. The first one uses a bandstop filter and feedforward, while the second method uses an additional proportional-resonant controller in the feedback loop. Theoretical analysis, simulation, and experiment results are provided.
Keywords :
AC-DC power convertors; DC-AC power convertors; DC-DC power convertors; PI control; band-stop filters; closed loop systems; invertors; power transformers; solid-state rectifiers; DAB converter; DC-DC dual-active-bridge converters; PI-controller; SST; ac-dc rectifier; bandstop filter; closed-loop control; current sink; dc-ac inverter; distribution power transformer; double line frequency; feedback loop; frequency 120 Hz; high-frequency power electronic converter; isolated dc-dc dual-active-bridge converter; proportional-resonant controller; single-phase inverters; solid-state transformer; switching frequency; Capacitance; Feedforward neural networks; Frequency conversion; Harmonic analysis; Inverters; Switching frequency; Voltage control; DC-DC power converters; power smoothing; pulse width modulation converters;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2013.2257859