Shaped Actuators and Sensors for Local Control of Intelligent Structures.

Abstract

The properties of the actuator to sensor transfer functions for various shaped strain actuator-sensor pairs on a Bernoulli-Euler beam are investigated. Analytical expressions for these transfer functions and their associated dereverberated transfer functions are derived. It is shown that the actuator-sensor pair can be designed such that its dereverberated transfer function will have a desirable corner frequency and high frequency rolloff rate. The analytical and dereverberated transfer functions of noncollocated actuator-sensor pairs are compared to those of the collocated pairs. Finite element models are constructed which add damping, finite actuator thickness, and finite beam and actuator widths to the model. The actuator to sensor transfer functions are calculated to these models, and the effects of the added factors are determined. It is shown that the transfer bending modes of the three dimensional beam delay the rolloff of the actuator to sensor frequency transfer function by at least two decades. Finally, experimental data confirms the results of the three dimensional finite element model.

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Document Details

Document Type
Technical Report
Publication Date
Jan 23, 1997
Accession Number
ADA325671

Entities

People

  • Amy J. Mccain
  • Edward F. Crawley

Organizations

  • Massachusetts Institute of Technology

Tags

DTIC Thesaurus Topics

  • Actuators
  • Algorithms
  • Boundaries
  • Cantilever Beams
  • Control Systems
  • Differential Equations
  • Equations
  • Evanescent Waves
  • Experimental Data
  • Frequency
  • Geometry
  • Modulus Of Elasticity
  • Piezoelectric Materials
  • Three Dimensional
  • Transfer Functions
  • Two Dimensional
  • Waves

Fields of Study

  • Physics

Readers

  • Robotics and Automation.
  • Structural Dynamics.