Title :
Load modeling methodologies for cascading outage simulation considering power system stability
Author :
Jiajia Song ; Cotilla-Sanchez, Eduardo ; Brekken, Ted K. A.
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Oregon State Univ., Corvallis, OR, USA
Abstract :
Cascading outages involve a series of dynamic phenomena that could lead to large blackouts and cause severe socio-economic loss. To better study these power system dynamic sequences when facing disturbance, a dynamic load model that mimics well the real behavior of the physical load is extremely important. Inappropriate load modeling could generate an inaccurate dynamic response in simulations and mislead system operation, which in turn may cause cascading outages. However, since load representation in a power system dynamic study is usually an aggregation of various types of load, it has the key nature of immense uncertainty. In the literature, several load models have been developed and verified for different scenarios. This paper discusses and compares a variety of state-of-the-art load modeling approaches for an application of cascading outage simulation.
Keywords :
dynamic response; load management; power system dynamic stability; power system protection; power system simulation; blackouts; cascading outage simulation; dynamic load model; dynamic response; load representation; physical load; power system dynamic sequences; power system dynamic study; socio-economic loss; state-of-the-art load modeling approaches; Adaptation models; Equations; Induction motors; Load modeling; Mathematical model; Power system dynamics; Reactive power; Cascading Outage; Composite Load Model; Dynamic Load; Load Modeling; Power System Stability; Static Load;
Conference_Titel :
Technologies for Sustainability (SusTech), 2013 1st IEEE Conference on
Conference_Location :
Portland, OR
DOI :
10.1109/SusTech.2013.6617301