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Timoshenko beam model for lateral vibration of liquid-phase microcantilever-based sensors

  • ,
  • Stephen M. Heinrich
    ,
  • Fabien Josse
    ,
  • Isabelle Dufour
    ,
  • Nicholas J. Nigro
    ,
  • Luke A. Beardslee
  • Marquette University
    ,
  • Université de Bordeaux
    ,
  • School of Electrical and Computer Engineering
Research Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Abstract

Dynamic-mode microcantilever-based devices are potentially well suited to biological and chemical sensing applications. However, when these applications involve liquid-phase detection, fluid-induced dissipative forces can significantly impair device performance. Recent experimental and analytical research has shown that higher in-fluid quality factors (Q) are achieved by exciting microcantilevers in the lateral flexural mode. However, experimental results show that, for microcantilevers having larger width-to-length ratios, the behaviors predicted by current analytical models differ from measurements. To more accurately model microcantilever resonant behavior in viscous fluids and to improve understanding of lateral-mode sensor performance, a new analytical model is developed, incorporating both viscous fluid effects and "Timoshenko beam" effects (shear deformation and rotatory inertia). Beam response is examined for two harmonic load types that simulate current actuation methods: tip force and support rotation. Results are expressed in terms of total beam displacement and beam displacement due solely to bending deformation, which correspond to current detection methods used with microcantilever-based devices (optical and piezoresistive detection, respectively). The influences of the shear, rotatory inertia, and fluid parameters, as well as the load/detection scheme, are investigated. Results indicate that load/detection type can impact the measured resonant characteristics and, thus, sensor performance, especially at larger values of fluid resistance.

Bibliographic Information

Output type

Research Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Original language

English

Pages from-to (Number of pages)

Pages 115-124 (10 pages)

Publication milestones

  • Published - 2014

Publication status

Published - 2014

Publication series

  • Publication series name: Conference Proceedings of the Society for Experimental Mechanics Series
    ISSN (Print): 2191-5644
    ISSN (Electronic): 2191-5652
    Volume: 5
9783319007793

Publication IDs

  • Scopus: 84886863673

Host publication title

MEMS and Nanotechnology - Proceedings of the 2013 Annual Conference on Experimental and Applied Mechanics