TY - GEN
T1 - Characterization of voltage dips and swells in a DG embedded distribution network during and subsequent to islanding process and grid re-connection
AU - Alam, M. R.
AU - Muttaqi, K. M.
AU - Bouzerdoum, A.
N1 - Publisher Copyright:
© 2017 IEEE.
PY - 2017/11/8
Y1 - 2017/11/8
N2 - Stand-alone operation of distributed generations (DGs) under islanded mode is achieved by appropriate switching of controllers from grid-parallel to stand-alone mode. Conversely, during grid-restoration, reverse switching operation is employed. These operations cause voltage quality issues; among these issues, voltage dips and swells are two crucial events which are encountered during and subsequent to islanding. This paper characterizes the voltage dips and/or swells caused by the islanding of DG and its subsequent pre- And post-islanding events. Pre-islanding events encompass the fault initiated islanding scenarios, whereas post-islanding events are associated with transitional state, island stabilization and grid-reconnection states. Considering pre- And post-islanding scenarios, this paper classifies and characterizes the voltage dips and swells using an algorithm incorporating three-phase voltage ellipse and 3D polarization ellipse parameters. Three-phase voltage ellipse parameters, namely, major axis, minor axis and inclination angle of ellipse, are exploited for characterization and classification of voltage dips/swells based on their affected phases, whereas 3D polarization ellipse parameters are employed for classifying seven dip-types, namely A, B, D, F, E, C, and G. Islanding and its subsequent scenarios are simulated using a test distribution network of Australia embedded with DG, and the voltage dips and swells are characterized using the proposed algorithm.
AB - Stand-alone operation of distributed generations (DGs) under islanded mode is achieved by appropriate switching of controllers from grid-parallel to stand-alone mode. Conversely, during grid-restoration, reverse switching operation is employed. These operations cause voltage quality issues; among these issues, voltage dips and swells are two crucial events which are encountered during and subsequent to islanding. This paper characterizes the voltage dips and/or swells caused by the islanding of DG and its subsequent pre- And post-islanding events. Pre-islanding events encompass the fault initiated islanding scenarios, whereas post-islanding events are associated with transitional state, island stabilization and grid-reconnection states. Considering pre- And post-islanding scenarios, this paper classifies and characterizes the voltage dips and swells using an algorithm incorporating three-phase voltage ellipse and 3D polarization ellipse parameters. Three-phase voltage ellipse parameters, namely, major axis, minor axis and inclination angle of ellipse, are exploited for characterization and classification of voltage dips/swells based on their affected phases, whereas 3D polarization ellipse parameters are employed for classifying seven dip-types, namely A, B, D, F, E, C, and G. Islanding and its subsequent scenarios are simulated using a test distribution network of Australia embedded with DG, and the voltage dips and swells are characterized using the proposed algorithm.
KW - 3D polarization ellipse
KW - Distributed generation
KW - Islanding
KW - Power quality
KW - Three-phase voltage ellipse
KW - Voltage dips and swells
UR - https://www.scopus.com/pages/publications/85044168952
U2 - 10.1109/IAS.2017.8101864
DO - 10.1109/IAS.2017.8101864
M3 - Conference contribution
AN - SCOPUS:85044168952
T3 - 2017 IEEE Industry Applications Society Annual Meeting, IAS 2017
SP - 1
EP - 9
BT - 2017 IEEE Industry Applications Society Annual Meeting, IAS 2017
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2017 IEEE Industry Applications Society Annual Meeting, IAS 2017
Y2 - 1 October 2017 through 5 October 2017
ER -