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Model Checking Autonomous Components within Electric Power Systems Specified by Interpreted Petri Nets.

Iwona Grobelna1, Paweł Szcześniak1

  • 1Institute of Automatic Control, Electronics and Electrical Engineering, University of Zielona Góra, 65-516 Zielona Góra, Poland.

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Summary

Formal verification of autonomous electric power systems using interpreted Petri nets ensures safety and liveness. This method identifies design errors early by checking user-defined properties with the nuXmv model checker.

Keywords:
Petri netcontrol systemmodel checkingpower energy systemspecificationverification

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Area of Science:

  • Electrical Engineering
  • Computer Science
  • Formal Methods

Background:

  • Autonomous components in electric power systems require rigorous specification and verification.
  • Interpreted Petri nets offer a formal method for specifying system behavior.
  • Ensuring safety and liveness properties is critical for reliable power system operation.

Purpose of the Study:

  • To present a formal method for verifying user-defined behavioral properties of autonomous electric power system components.
  • To demonstrate the application of interpreted Petri nets and temporal logic for formal verification.
  • To enable early identification of design errors in autonomous power system components.

Main Methods:

  • Specification of autonomous components using interpreted Petri nets.
  • Transformation of interpreted Petri nets into rule-based logical models.
  • Formal verification of system properties using temporal logic formulas and the nuXmv model checker.
  • Application to an electric energy storage (EES) system for stabilizing renewable energy sources (RES).

Main Results:

  • Interpreted Petri nets can be formally verified against user-defined safety and liveness properties.
  • The proposed method allows for automatic checking of system requirements.
  • Design errors in autonomous components can be detected at an early stage.
  • The approach was successfully applied to an EES control algorithm.

Conclusions:

  • Formal verification using interpreted Petri nets and temporal logic is effective for ensuring the safety and liveness of autonomous electric power systems.
  • This methodology facilitates early detection of design flaws, improving system reliability.
  • The presented approach provides a robust framework for specifying and verifying complex control algorithms in power systems.