Loading...

Coupled bending and torsion effects on the squeezed film air damping in torsional micromirrors

Moeenfard, H ; Sharif University of Technology | 2012

599 Viewed
  1. Type of Document: Article
  2. DOI: 10.1115/DETC2012-70114
  3. Publisher: 2012
  4. Abstract:
  5. The current paper presents an analytical model for the problem of squeezed film damping in micromirrors considering the bending of the supporting torsion microbeams. At the first the nonlinear Reynolds equation governing the behavior of the squeezed gas underneath the mirror is linearized. The resulting linearized equation is then nondimensionalized and analytically solved for two cases of the infinitesimal and finite tiling angle of the mirror. The obtained pressure distribution from the solution of the Reynolds equation is then utilized for finding the squeezed film damping force and torque applied to the mirror. The results show that in the case of the infinitesimal tilting angle, the squeezed film damping can be modeled with a linear viscous damping in both torsional and lateral directions. It is also shown that when the mirror's rotation angle is small, with increasing the length of the mirror, the damping force and damping torque are increased. For the case of the finite tilting angle it was observed that the applied damping torque highly depends on the tilting angle of the mirror as well as the ratio of its vertical to angular velocity and as a result the effect of the vertical velocity of the mirror on the squeezed film damping force and torque applied to the mirror cannot be simply neglected. The results of this paper can be used for accurate dynamical modeling of the micromirrors under the effect of the squeezed film damping
  6. Keywords:
  7. Coupled bending ; Damping torques ; Dynamical model ; Lateral directions ; Linearized equations ; Squeezed film damping ; Torsional micromirrors ; Vertical velocity ; Design ; Linearization ; Mirrors ; Reynolds equation ; Torsional stress ; Damping
  8. Source: Proceedings of the ASME Design Engineering Technical Conference, 12 August 2012 through 12 August 2012 ; Volume 5 , August , 2012 , Pages 49-55 ; 9780791845042 (ISBN)
  9. URL: http://proceedings.asmedigitalcollection.asme.org/proceeding.aspx?articleid=1736614