System Identification and Controller Design of a Self-Sensing Piezoelectric Cantilever Structure

Author:

Okugawa Masayuki1,Sasaki Minoru2

Affiliation:

1. Gifu National College of Technology, Motosu, Gifu, 501-0495, Japan,

2. Gifu University, Gifu, Gifu, 501-1193, Japan

Abstract

This paper addresses system identification and vibration control of a cantilever fabricated from piezoelectric materials, PZT, and shows how system identification and state estimation can be used to achieve self-maintenance of a self-sensing system. Currently, self-sensing systems that have concurrent actuation and sensing can be made by using a bridge circuit. However, hardware tuning is still needed due to the unstable nature of an imbalanced bridge circuit. This problem becomes serious in the space environment where human beings may not be available to perform the maintenance. A method of achieving self-sensing without a bridge circuit is proposed in this paper. Dynamics of this proposed system can be described as the state space expression with a direct transmission component. This means that the problem of balancing the bridge circuit is equivalent to the system identification and state estimation problem. By performing a simple experiment, a model of the system was identified using the 4SID, SubSpace State Space Identification method. Observer theory can be used to estimate state vectors which include information about the mechanical dynamics. Thus, system stability depends on the estimated values of the state vectors. The system can be stabilized using a state feedback controller such as a LQ controller. The proposed method was verified with experimental results, demonstrating that smart structures can achieve self-maintenance.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

Reference17 articles.

1. Anderson, E.H. and Hagood, N.W. 1992. “Self-Sensing Piezoelectric Actuation: Analysis and Application to Controlled Structures,” AIAA-92-2465-CP, 2141-2155.

2. Direct Velocity Feedback Control of Large Space Structures

3. A Self-Sensing Piezoelectric Actuator for Collocated Control

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