Title :
Power system stability enhancement with an integrated offshore wind farm and marine-current farm using a STATCOM
Author :
Dinh-Nhon Truong ; Li Wang
Abstract :
This paper presents the simulation results of using a static synchronous compensator (STATCOM) to achieve damping improvement of a synchronous generator (SG)-based one-machine infinite-bus (OMIB) system with an integrated offshore wind farm (OWF) and marine-current farm (MCF). The operating performance of the studied OWF is simulated by an equivalent permanent-magnet generator (PMG) driven by an equivalent wind turbine (WT). An equivalent squirrel-cage rotor induction generator (IG) driven by an equivalent marine-current turbine (MCT) is used to simulate the operating characteristics of the MCF. A damping controller of the STATCOM is designed by using modal control theory to contribute adequate damping characteristics to the dominant modes of the studied OMIB system under various operating conditions. A time-domain scheme based on a nonlinear system model subject to three-phase short-circuit fault at the power grid is utilized to examine the effectiveness of the proposed control scheme. It can be concluded from the simulation results that the proposed STATCOM joined with the modal-control designed damping controller is capable of improving the stability of the studied OMIB system subject to severe disturbance.
Keywords :
hybrid power systems; hydraulic turbines; offshore installations; permanent magnet generators; power generation control; power grids; power system stability; short-circuit currents; static VAr compensators; synchronous generators; wind power plants; MCF; OMIB system; OWF; PMG; SG-based OMIB system; STATCOM; damping controller; equivalent wind turbine; induction generator; integrated offshore wind farm; marine-current farm; marine-current turbine; modal control theory; modal-control; one-machine infinite-bus; permanent-magnet generator; power grid; power system stability enhancement; static synchronous compensator; synchronous generator; three-phase short-circuit fault; time-domain scheme; Automatic voltage control; Blades; Damping; Mathematical model; Power system stability; Reactive power; Stability analysis;
Conference_Titel :
Circuits and Systems (APCCAS), 2012 IEEE Asia Pacific Conference on
Conference_Location :
Kaohsiung
Print_ISBN :
978-1-4577-1728-4
DOI :
10.1109/APCCAS.2012.6419099