English

A Framework for Frequency Stability Assessment of Future Power Systems: An Australian Case Study

Systems and Control 2017-08-03 v1

Abstract

The increasing penetration of non-synchronous renewable energy sources (NS-RES) alters the dynamic characteristic, and consequently, the frequency behaviour of a power system. To accurately identify these changing trends and address them in a systematic way, it is necessary to assess a large number of scenarios. Given this, we propose a frequency stability assessment framework based on a time-series approach that facilitates the analysis of a large number of future power system scenarios. We use this framework to assess the frequency stability of the Australian future power system by considering a large number of future scenarios and sensitivity of different parameters. By doing this, we identify a maximum non-synchronous instantaneous penetration range from the frequency stability point of view. Further, to reduce the detrimental impacts of high NS-RES penetration on system frequency stability, a dynamic inertia constraint is derived and incorporated in the market dispatch model. The results show that such a constraint guarantees frequency stability of the system for all credible contingencies. Also, we assess and quantify the contribution of synchronous condensers, synthetic inertia of wind farms and a governor-like response from de-loaded wind farms on system frequency stability. The results show that the last option is the most effective one.

Keywords

Cite

@article{arxiv.1708.00739,
  title  = {A Framework for Frequency Stability Assessment of Future Power Systems: An Australian Case Study},
  author = {Ahmad Shabir Ahmadyar and Shariq Riaz and Gregor Verbic and Archie Chapman and David J. Hill},
  journal= {arXiv preprint arXiv:1708.00739},
  year   = {2017}
}

Comments

This paper is uploaded here just for reference. It is not published yet

R2 v1 2026-06-22T21:04:41.711Z