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1500 IEEE TRANSACTIONS ON POWER ELECTRONICS, VOL. 29, NO. 3, MARCH 2014
A Novel Reduced Switching Loss Bidirectional
AC/DC Converter PWM Strategy With Feedforward
Control for Grid-Tied Microgrid Systems
Yi-Hung Liao, Member, IEEE
Abstract—This paper presents a novel simplified pulse width
modulation (PWM) strategy for the bidirectional ac/dc single-
phase converter in a microgrid system. Then, the operation mecha-
nism of the novel simplified PWM is clearly explained. The number
of switchings of the proposed simplified PWM strategy is one-
fourth that of the conventional unipolar PWM and bipolar PWM.
Based on the novel simplified PWM strategy, a feasible feedforward
control scheme is developed to achieve better rectifier mode and
inverter mode performance compared with the conventional dual-
loop control scheme. The proposed simplified PWM strategy with
the proposed feedforward control scheme has lower total harmonic
distortion than the bipolar PWM and higher efficiency than both
unipolar and bipolar PWMs. Furthermore, the proposed simplified
PWM operated in the inverter mode also has larger available fun-
damental output voltage VAB than both the unipolar and bipolar
PWMs. A prototype system is constructed and the control scheme
is implemented using FPGA Spartan-3E XC3S250E. Both simu-
lation and experimental results verify the validity of the proposed
PWM strategy and control scheme.
Index Terms—Bidirectional ac/dc converter, simplified pulse
width modulation (PWM) strategy, total harmonic distortion
(THD).
I. INTRODUCTION
THE single-phase ac/dc pulse width modulation (PWM)
converter is widely used in many applications such as
adjustable-speed drives, switch-mode power supplies, and un-
interrupted power supplies. The single-phase ac/dc PWM con-
verters [1]–[11] are usually employed as the utility interface
in a grid-tied renewable resource system, as shown in Fig. 1.
To utilize the distributed energy resources (DERs) efficiently
and retain power system stability, the bidirectional ac/dc con-
verter plays an important role in the renewable energy system.
When DERs have enough power, the energy from the dc bus can
be easily transferred into the ac grid through the bidirectional
ac/dc converter. In contrast, when the DER power does not have
enough energy to provide electricity to the load in the dc bus, the
Manuscript received August 26, 2012; revised November 5, 2012, January
15, 2013, and March 9, 2013; accepted April 19, 2013. Date of current version
September 18, 2013. This work was supported by the National Science Council
of Taiwan under Contract NSC-101-2221-E-346-006. Recommended for pub-
lication by Associate Editor J.-i. Itoh.
The author is with the Department of Electrical Engineering, National Penghu
University of Science and Technology, Penghu 880, Taiwan (e-mail: hlmliao@
gmail.com).
Color versions of one or more of the figures in this paper are available online
at http://ieeexplore.ieee.org.
Digital Object Identifier 10.1109/TPEL.2013.2260872
Fig. 1. Distribution energy system.
bidirectional ac/dc converters can simultaneously and quickly
change the power flow direction (PFD) from ac grid to dc grid
and give enough power to the dc load and energy storage sys-
tem. There are many requirements for ac/dc PWM converters
as utility interface in a grid-tied system; for instance, providing
power factor correction functions [4], [5], [7], low distortion
line currents [1], [3], [7], high-quality dc output voltage [2], [9],
and bidirectional power flow capability [8], [10], [11], [25].
Moreover, PWM converters are also suitable for modular sys-
tem design and system reconfiguration. In this paper, a novel
PWM control strategy with feedforward control scheme of a
bidirectional single-phase ac/dc converter is presented.
In the existing PWM control strategies of a single-phase
ac/dc converter, the converter switches are operated at higher
frequency than the ac line frequency so that the switching har-
monics can be easily removed by the filter [1], [3], [7]. The
ac line current waveform can be more sinusoidal at the ex-
pense of switching losses. Until now several PWM strategies
have been utilized in a single-phase ac/dc converter such as
bipolar PWM (BPWM), unipolar PWM (UPWM) [12]–[14],
HPWM [15]–[18], and Hysteresis switching [3], [19]–[24].
UPWM results in a smaller ripple in the dc side current and
significantly lower ac side harmonic content [14] compared
to the BPWM. The UPWM effectively doubles the switching
frequency in the ac voltage waveform harmonic spectrum al-
lowing the switching harmonics to be easily removed by the
passive filter. The HPWM [16]–[18] utilizes two of the four
switches modulated at high frequency and utilizes the other
two switches commutated at the (low) output frequency to re-
duce the switching frequency and achieve better quality output.
However, the switching loss in the HPWM is still the same as
that of the UPWM [16]. The hysteresis switching method uti-
lizes hysteresis in comparing the actual voltage and/or current
0885-8993 © 2013 IEEE

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A Novel Reduced Switching Loss Bidirectional AC/DC Converter PWM Strategy With Feedforward Control for Grid-Tied Microgrid Systems

  • 1. www.projectsatbangalore.com 09591912372 1500 IEEE TRANSACTIONS ON POWER ELECTRONICS, VOL. 29, NO. 3, MARCH 2014 A Novel Reduced Switching Loss Bidirectional AC/DC Converter PWM Strategy With Feedforward Control for Grid-Tied Microgrid Systems Yi-Hung Liao, Member, IEEE Abstract—This paper presents a novel simplified pulse width modulation (PWM) strategy for the bidirectional ac/dc single- phase converter in a microgrid system. Then, the operation mecha- nism of the novel simplified PWM is clearly explained. The number of switchings of the proposed simplified PWM strategy is one- fourth that of the conventional unipolar PWM and bipolar PWM. Based on the novel simplified PWM strategy, a feasible feedforward control scheme is developed to achieve better rectifier mode and inverter mode performance compared with the conventional dual- loop control scheme. The proposed simplified PWM strategy with the proposed feedforward control scheme has lower total harmonic distortion than the bipolar PWM and higher efficiency than both unipolar and bipolar PWMs. Furthermore, the proposed simplified PWM operated in the inverter mode also has larger available fun- damental output voltage VAB than both the unipolar and bipolar PWMs. A prototype system is constructed and the control scheme is implemented using FPGA Spartan-3E XC3S250E. Both simu- lation and experimental results verify the validity of the proposed PWM strategy and control scheme. Index Terms—Bidirectional ac/dc converter, simplified pulse width modulation (PWM) strategy, total harmonic distortion (THD). I. INTRODUCTION THE single-phase ac/dc pulse width modulation (PWM) converter is widely used in many applications such as adjustable-speed drives, switch-mode power supplies, and un- interrupted power supplies. The single-phase ac/dc PWM con- verters [1]–[11] are usually employed as the utility interface in a grid-tied renewable resource system, as shown in Fig. 1. To utilize the distributed energy resources (DERs) efficiently and retain power system stability, the bidirectional ac/dc con- verter plays an important role in the renewable energy system. When DERs have enough power, the energy from the dc bus can be easily transferred into the ac grid through the bidirectional ac/dc converter. In contrast, when the DER power does not have enough energy to provide electricity to the load in the dc bus, the Manuscript received August 26, 2012; revised November 5, 2012, January 15, 2013, and March 9, 2013; accepted April 19, 2013. Date of current version September 18, 2013. This work was supported by the National Science Council of Taiwan under Contract NSC-101-2221-E-346-006. Recommended for pub- lication by Associate Editor J.-i. Itoh. The author is with the Department of Electrical Engineering, National Penghu University of Science and Technology, Penghu 880, Taiwan (e-mail: hlmliao@ gmail.com). Color versions of one or more of the figures in this paper are available online at http://ieeexplore.ieee.org. Digital Object Identifier 10.1109/TPEL.2013.2260872 Fig. 1. Distribution energy system. bidirectional ac/dc converters can simultaneously and quickly change the power flow direction (PFD) from ac grid to dc grid and give enough power to the dc load and energy storage sys- tem. There are many requirements for ac/dc PWM converters as utility interface in a grid-tied system; for instance, providing power factor correction functions [4], [5], [7], low distortion line currents [1], [3], [7], high-quality dc output voltage [2], [9], and bidirectional power flow capability [8], [10], [11], [25]. Moreover, PWM converters are also suitable for modular sys- tem design and system reconfiguration. In this paper, a novel PWM control strategy with feedforward control scheme of a bidirectional single-phase ac/dc converter is presented. In the existing PWM control strategies of a single-phase ac/dc converter, the converter switches are operated at higher frequency than the ac line frequency so that the switching har- monics can be easily removed by the filter [1], [3], [7]. The ac line current waveform can be more sinusoidal at the ex- pense of switching losses. Until now several PWM strategies have been utilized in a single-phase ac/dc converter such as bipolar PWM (BPWM), unipolar PWM (UPWM) [12]–[14], HPWM [15]–[18], and Hysteresis switching [3], [19]–[24]. UPWM results in a smaller ripple in the dc side current and significantly lower ac side harmonic content [14] compared to the BPWM. The UPWM effectively doubles the switching frequency in the ac voltage waveform harmonic spectrum al- lowing the switching harmonics to be easily removed by the passive filter. The HPWM [16]–[18] utilizes two of the four switches modulated at high frequency and utilizes the other two switches commutated at the (low) output frequency to re- duce the switching frequency and achieve better quality output. However, the switching loss in the HPWM is still the same as that of the UPWM [16]. The hysteresis switching method uti- lizes hysteresis in comparing the actual voltage and/or current 0885-8993 © 2013 IEEE