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Digital PI-PD controller design for arbitrary order systems: Dominant pole placement approach.

Emre Dincel1, Mehmet Turan Söylemez1

  • 1Control and Automation Engineering Department, Istanbul Technical University, Istanbul, Turkey.

ISA Transactions
|May 7, 2018
PubMed
Summary

A new digital PI-PD controller design method effectively places dominant closed-loop poles for systems with time delays. This approach converts the problem to a digital PID controller design, ensuring desired transient responses.

Keywords:
Chebyshev polynomialsDiscrete-time domainDominant pole placementFan and plate systemPID controllersRelative stabilization

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Area of Science:

  • Control Systems Engineering
  • Digital Control Theory

Background:

  • Achieving precise transient response in complex systems, especially those with time delays, remains a challenge in control engineering.
  • Existing methods for digital controller design may not universally address arbitrary order systems.

Purpose of the Study:

  • To propose a novel digital PI-PD controller design methodology.
  • To enable desired transient response in arbitrary order systems, including those with time delays, using dominant pole placement.

Main Methods:

  • The design problem is reformulated as a digital PID controller design problem.
  • Dominant pole locations are parameterized, and Chebyshev polynomials are used to ensure stability by placing other poles away from the dominant pair.
  • PID controller parameters are transformed into PI-PD controller parameters by considering the closed-loop zero.

Main Results:

  • The proposed method successfully designs digital PI-PD controllers for arbitrary order systems with and without time delays.
  • Simulations on an example transfer function show comparable or superior performance to existing PID methods.
  • Real-world implementation on a fan and plate laboratory system validates the method's effectiveness.

Conclusions:

  • The presented digital PI-PD controller design method offers a robust solution for achieving desired transient responses in complex systems.
  • The conversion to a PID design problem simplifies the controller synthesis for PI-PD controllers.
  • The method's practical applicability is confirmed through experimental validation.