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Experimental dynamic performance of an Aluminium-MRE shallow shell

  • Jiawei Zhang
  • , Tanju Yildirim*
  • , Guru Prakash Neupane
  • , Yuechuan Tao
  • , Jiang Bingnong
  • , Weihua Li*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The nonlinear dynamics of a directly forced clamped-clamped-free-free magneto-rheological elastomer (MRE) sandwich shell has been experimentally investigated. Experiments have been conducted on an aluminium shallow shell (shell A) and an MRE-aluminium sandwich shallow shell with single curvature (shell B). An electrodynamic shaker has been used to directly force shells A and B in the vicinity of their fundamental resonance frequency; a laser displacement sensor has been used to measure the vibration amplitude to construct the frequency-response curves. It was observed that for an aluminium shell (shell A), that at small forcing amplitudes, a weak softening-type nonlinear behaviour was observed, however, at higher forcing amplitudes the nonlinear dynamical behaviour shifted and a strong hardening-type response occurred. For the MRE shell (shell B), the effect of forcing amplitude showed softening at low magnetic fields and hardening for medium magnetic fields; it was also observed the mono-curved MRE sandwich shell changed dynamics to quasiperiodic displacement at some frequencies, from a periodic displacement. The presence of a magnetic field, initial curvature, and forcing amplitude has significant qualitative and quantitative effects on the nonlinear dynamical response of a mono curved MRE sandwich shell. © 2020 Techno-Press, Ltd. http:/www.techno-press.org/?journal=sss&subpage=7
Original languageEnglish
Pages (from-to)57-64
JournalSmart Structures and Systems
Volume25
Issue number1
Online published25 Jan 2020
DOIs
Publication statusPublished - Jan 2020
Externally publishedYes

Research Keywords

  • Experimentation
  • Magneto-rheological elastomer
  • Mechanics
  • Nonlinear experiments
  • Shallow shell

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