An Aeroelastic Analysis of Helicopter Rotor Blades Incorporating Piezoelectric Fiber Composite Twist Actuation

Abstract

A simple aeroelastic analysis of a helicopter rotor blade incorporating embedded piezoelectric fiber composite, interdigitated electrode blade twist actuators is described. The analysis consist of a linear torsion and flapwise bending model coupled with a nonlinear ONERA based unsteady aerodynamics model. A modified Galerkin procedure is performed upon the rotor blade partial differential equations of motion to develop a system of ordinary differential equations suitable for numerical integration. The twist actuation responses for three conceptual full-scale blade designs with realistic constraints on blade mass are numerically evaluated using the analysis. Numerical results indicate that useful amplitudes of nonresonant elastic twist, on the order of one to two degrees, are achievable under one-g hovering flight conditions for interdigitated electrode poling configurations. Twist actuation for the interdigitated electrode blades is also compared with the twist actuation of a conventionally poled piezoelectric fiber composite blade. Elastic twist produced using the interdigitated electrode actuators was found to be four to five times larger than that obtained with the conventionally poled actuators.

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Document Details

Document Type
Technical Report
Publication Date
May 01, 1996
Accession Number
AD1046989

Entities

People

  • K. C. Park
  • W. K. Wilkie

Organizations

  • United States Army Research Laboratory

Tags

Communities of Interest

  • Air Platforms
  • Space

DTIC Thesaurus Topics

  • Aerodynamic Forces
  • Aeroelasticity
  • Air Masses
  • Composite Materials
  • Coordinate Systems
  • Differential Equations
  • Electric Fields
  • Equations
  • Equations Of Motion
  • Flaps (Control Surfaces)
  • Frequency
  • Frequency Response
  • Helicopter Rotors
  • Laminates
  • Mechanics
  • Piezoelectric Materials
  • Resonant Frequency

Fields of Study

  • Physics

Readers

  • Aerospace Engineering
  • Materials Science and Engineering.
  • Structural Dynamics.