Improving the Step Response of Flexible Systems in the Presence of Real Nonminimum Phase Zeros

Author:

Rath Siddharth1,Radgolchin Moeen1,Awtar Shorya1

Affiliation:

1. University of Michigan Precision Systems Design Lab, Mechanical Engineering, , Ann Arbor, MI 48103

Abstract

Abstract It is well known that real nonminimum phase (RNMP) zeros impose a tradeoff between the settling time and undershoot in the step response of flexible systems. Existing methods to alleviate this tradeoff predominantly rely on various advanced control strategies without delving into a broader mechatronic approach that combines physical system and control system design. To address this gap, this article proposes a proportional viscous damping-based physical system design in combination with feedback control and prefilter design. First, the effect of proportional viscous damping on RNMP zeros of flexible systems is established to propose a damping strategy that pushes all the RNMP zeros further away from the imaginary axis. Then, a step-by-step mechatronic system design process is presented to apply this damping strategy along with a full-state feedback control strategy and prefilter to a multi-degree-of-freedom (DoF) flexible system. The application of this design process yields simultaneous improvement in the settling time and undershoot in the step response of this flexible system.

Funder

National Science Foundation

Publisher

ASME International

Reference28 articles.

1. A Numerical Study on Controlling a Nonlinear Multilink Arm Using a Retrospective Cost Model Reference Adaptive Controller;Isaacs,2011

2. Retrospective Cost Adaptive Control of a Planar Multilink Arm With Nonminimum-Phase Zeros;Morozov,2010

3. Zero Locus of a Beam With Varying Sensor and Actuator Locations;Lee;J. Guid. Control Dyn.,1993

4. Sensitivity of Structural Models for Noncollocated Control Systems;Spector;ASME J. Dyn. Syst. Meas. Control,1989

5. Demystifying Enigmatic Undershoot in Setpoint Command Following [Focus on Education];Kamaldar;IEEE Control Syst. Mag.,2022

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