• DocumentCode
    8283
  • Title

    Timoshenko beam effects in lateral-mode microcantilever-based sensors in liquids

  • Author

    Schultz, Jarvis A. ; Heinrich, Stephen M. ; Josse, Fabien ; Nigro, Nicholas J. ; Dufour, Isabelle ; Beardslee, L.A. ; Brand, Oliver

  • Author_Institution
    Dept. of Civil, Constr. & Environ. Eng., Marquette Univ., Milwaukee, WI, USA
  • Volume
    8
  • Issue
    11
  • fYear
    2013
  • fDate
    Nov-13
  • Firstpage
    762
  • Lastpage
    765
  • Abstract
    Recent experimental and analytical research has shown that higher in-fluid quality factors (Q) are achieved by actuating microcantilevers in the lateral flexural mode, especially for microcantilevers having larger width-to-length ratios. However, experimental results show that for these geometries the resonant characteristics predicted by the existing analytical models differ from the measurements. A recently developed analytical model to more accurately predict the resonant behaviour of these devices in viscous fluids is described. The model incorporates viscous fluid effects via a Stokes-type fluid resistance assumption and `Timoshenko beam´ effects (shear deformation and rotatory inertia). Unlike predictions based on Euler-Bernoulli beam theory, the new theoretical results for both resonant frequency and Q exhibit the same trends as seen in the experimental data for in-water measurements as the beam slenderness decreases. An analytical formula for Q is also presented to explicitly illustrate how Q depends on beam geometry and on beam and fluid properties. Beam thickness effects are also examined and indicate that the analytical results yields good numerical estimates of Q for the thinner (5 μm) specimens tested, but overestimate Q for the thicker (20 μm) specimens, thus suggesting that a more accurate fluid resistance model should be introduced in the future for the latter case.
  • Keywords
    Young´s modulus; cantilevers; microsensors; shear deformation; shear modulus; Euler-Bernoulli beam theory; Stokes-type fluid resistance assumption; Timoshenko beam effects; Young´s moduli; analytical model; beam geometry; beam thickness effects; lateral-mode microcantilever-based sensors; liquids; resonant behaviour; rotatory inertia; shear deformation; shear moduli; viscous fluids;
  • fLanguage
    English
  • Journal_Title
    Micro & Nano Letters, IET
  • Publisher
    iet
  • ISSN
    1750-0443
  • Type

    jour

  • DOI
    10.1049/mnl.2013.0395
  • Filename
    6678372