Page 155 - Decision Making Applications in Modern Power Systems
P. 155
118 Decision Making Applications in Modern Power Systems
[18] H. Akagi, New trends in active filters for improving power quality, in: Proceedings of the
1996 International Conference on Power Electronics, Drives and Energy Systems for
Industrial Growth, 1996, pp. 417 425.
[19] W. Yang-Wen, W. Man-Chung, L. Chi-Seng, Historical review of parallel hybrid active
power filter for power quality improvement, in: TENCON 2015—2015 IEEE Region 10
Conference, 2015, pp. 1 6.
[20] L.B.G. Campanhol, S. A. O. d Silva, A. Goedtel, Application of shunt active power filter
for harmonic reduction and reactive power compensation in three-phase four-wire sys-
tems, IET Power Electron. 7 (2014) 2825 2836.
[21] Y. Terriche, J.M. Guerrero, J.C. Vasquez, Performance improvement of shunt active
power filter based on non-linear least-square approach, Electr. Power Syst. Res. 160
(2018) 44 55.
[22] E.L.L. Fabricio, S.C.S. Ju ´nior, C.B. Jacobina, M. B.D.R. Corre ˆa, Analysis of main topolo-
gies of shunt active power filters applied to four-wire systems, IEEE Trans. Power
Electron. 33 (2018) 2100 2112.
[23] R. Panigrahi, B. Subudhi, Performance enhancement of shunt active power filter using a
Kalman filter-based H N control strategy, IEEE Trans. Power Electron. 32 (2017)
2622 2630.
[24] J. Lu, P. Fu, J. Li, H. Mao, X. Shen, L. Xu, et al., A new hybrid filter based on differen-
tial current control method for low-order harmonic suppression in Tokamak power system,
Int. J. Energy Res. 42 (2018) 82 90.
[25] G.A.D.A. Carlos, E.C.D. Santos, C.B. Jacobina, J.P.R.A. Mello, Dynamic Voltage restorer
based on three-phase inverters cascaded through an open-end winding transformer, IEEE
Trans. Power Electron. 31 (2016) 188 199.
[26] A.M. Gee, F. Robinson, W. Yuan, A superconducting magnetic energy storage-emulator/
battery supported dynamic voltage restorer, IEEE Trans. Energy Convers. 32 (2017)
55 64.
[27] S.H. Hosseini, A. Ajami, Transient stability enhancement of AC transmission system using
STATCOM, in: TENCON ’02. Proceedings. 2002 IEEE Region 10 Conference on
Computers, Communications, Control and Power Engineering, vol.3, 2002, pp. 1809 1812.
[28] J.M. Guerrero, L.G.D. Vicuna, J. Uceda, Uninterruptible power supply systems provide
protection, IEEE Ind. Electron. Mag. 1 (2007) 28 38.
[29] M. Aamir, S. Mekhilef, An online transformerless uninterruptible power supply (UPS)
system with a smaller battery bank for low-power applications, IEEE Trans. Power
Electron. 32 (2017) 233 247.
[30] R.B. Gonzatti, S.C. Ferreira, C.H. da Silva, R.R. Pereira, L.E.B. da Silva, G. Lambert-
Torres, Smart impedance: a new way to look at hybrid filters, IEEE Trans. Smart Grid 7
(2016) 837 846.
[31] C.H. Da Silva, R. Pereira, L. Silva, G. Lambert-Torres, R. Gonzatti, S. Ferreira, et al.,
Smart impedance: expanding the hybrid active series power filter concept, in:
IECON2012—38th Annual Conference on IEEE Industrial Electronics Society, 2012,
pp. 1416 1421.
[32] A. Baloi, A. Pana, F. Molnar-Matei, Contributions on harmonic impedance monitoring in
smart grids using virtual instruments, in: 2011 Second IEEE PES International Conference
and Exhibition on Innovative Smart Grid Technologies (ISGT Europe), 2011, pp. 1 5.
[33] K.T. Mok, M. Wang, S.C. Tan, S.Y. Hui, DC electric springs a new technology for sta-
bilizing DC power distribution systems, IEEE Trans. Power Electron. 32 (2016)
1088 1105.