NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Back to Results
Vibration Control via Stiffness Switching of Magnetostrictive TransducersIn this paper, a computational study is presented of structural vibration control that is realized by switching a magnetostrictive transducer between high and low stiffness states. Switching is accomplished by either changing the applied magnetic field with a voltage excitation or changing the shunt impedance on the transducer's coil (i.e., the magnetostrictive material's magnetic boundary condition). Switched-stiffness vibration control is simulated using a lumped mass supported by a damper and the magnetostrictive transducer (mount), which is represented by a nonlinear, electromechanical model. Free vibration of the mass is calculated while varying the mount's stiffness according to a reference switched-stiffness vibration control law. The results reveal that switching the magnetic field produces the desired change in stiffness, but also an undesired actuation force that can significantly degrade the vibration control. Hence, a modified switched-stiffness control law that accounts for the actuation force is proposed and implemented for voltage-controlled stiffness switching. The influence of the magneto-mechanical bias condition is also discussed. Voltage-controlled stiffness switching is found to introduce damping equivalent to a viscous damping factor up to about 0.13; this is shown to primarily result from active vibration reduction caused by the actuation force. The merit of magnetostrictive switched-stiffness vibration control is then quantified by comparing the results of voltage- and shunt-controlled stiffness switching to the performance of optimal magnetostrictive shunt damping. For the cases considered, optimal resistive shunt damping performed considerably better than both voltage- and shunt-controlled stiffness switching.
Document ID
20160008997
Acquisition Source
Glenn Research Center
Document Type
Conference Paper
Authors
Scheidler, Justin J.
(Universities Space Research Association Cleveland, OH, United States)
Asnani, Vivake M.
(NASA Glenn Research Center Cleveland, OH United States)
Dapino, Marcelo J.
(Ohio State Univ. Columbus, OH, United States)
Date Acquired
July 13, 2016
Publication Date
March 20, 2016
Subject Category
Electronics And Electrical Engineering
Mechanical Engineering
Report/Patent Number
GRC-E-DAA-TN30316
Meeting Information
Meeting: SPIE Smart Structures/NDE 2016
Location: Las Vegas, NV
Country: United States
Start Date: March 20, 2016
End Date: March 24, 2016
Sponsors: International Society for Optical Engineering
Funding Number(s)
WBS: WBS 664817.02.03.02.02.01
CONTRACT_GRANT: NNX14AE24H
CONTRACT_GRANT: NNC13BA10B
CONTRACT_GRANT: NNC14IA07I
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
vibration control
stiffness tuning
Terfenol-D
shunt damping
magnetostrictive materials
No Preview Available