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Meysam T. Chorsi

Publications and source records attributed to Meysam T. Chorsi.

5 recordsLinked to original sources

Bifurcation analysis of torsional micromirror actuated by electrostatic forces

In this paper, static and dynamic behavior of an electro statically actuated torsional micro actuator is studied. The micro actuator is composed of a micro mirror and two torsional beams, which are excited with two electrodes. Unlike the traditional micro actuators, the electrostatic force exerted to both side of micro mirror, so the model is exposed to a DC voltage applied from the ground electrodes. The static governing equation of the torsional micro actuator is derived and the relation between rotation angle and the driving voltage is determined. Local and global bifurcation analysis is performed, considering torsional characteristics of the micro-beams. By solving static deflection equation, the fixed points of the actuator are obtained. Critical values of the applied voltage leading to qualitative changes in the micro actuator behavior through a saddle node or pitchfork bifurcations for different spatial condition are obtained. Furthermore the effects of different gap and electrode sizes as well as beam lengths on the dynamic behavior are investigated. It is shown that increasing the applied voltage leads the structure to an unstable condition by undergoing to saddle node and pitchfork bifurcations when the voltages ratio is zero and one, respectively.

cond-mat.mes-hall

Biosensing using Functionally Graded Piezoelectric MEMS Resonators

Nonlinear dynamics of a two-side electro-statically actuated capacitive micro-beam is studied. The piezoelectric actuation leads to the generation of an axial force along the length of the micro-beam and this is used as a tuning tool to shift the primary resonance of the micro-resonator. The governing equation of motion is derived by minimization of the Hamiltonian and generalized to the viscously damped systems. The periodic solutions in the vicinity of the primary resonance are detected and their stability is investigated. The basins of attraction conforming to three individual periodic orbits are determined. The outcomes show that the higher the amplitude of the periodic orbit, the smaller is the area of the attractor.

cond-mat.mes-hall

Intermolecular Interactions in Radial-Contour Mode Microring Resonators

This research is on the dynamics of electrostatically actuated radial-contour mode microring resonators. The governing equation of motion is derived by the minimization of the Hamiltonian and generalized to include the viscous damping effect. The Galerkin method is used to discretize the distributed-parameter model of the considered ring resonator. The influences of intermolecular forces such as van der Waals and Casimir on the dynamic behavior of the resonator are investigated. The natural frequencies and mode shapes of the ring are calculated for various values of ratio of radii (\b{eta}). The effect of the design parameters including ring radius, electrostatic voltage and quality factor on the dynamic responses, is discussed. The results of present study can be used in the design of novel MEMS resonators, RF filters and channelizers.

physics.class-ph

Numerical Modeling of MEMS Resonators

Microelectromechanical systems (MEMS) resonators serve as frequency selective components in applications ranging from biology to communications. In this paper, the dynamic behavior of an RF MEMS disk resonator is formulated using an analytical method.

cond-mat.mes-hall

Nonlinear dynamics of a functionally graded piezoelectric micro-resonator in the vicinity of the primary resonance

This research is on the nonlinear dynamics of a two-sided electrostatically actuated capacitive micro-beam. The microresonator is composed of silicon and PZT as a piezoelectric material. PZT is functionally distributed along the height of the micro-beam according to the power law distribution. The micro-resonator is simultaneously subjected to DC piezoelectric and two-sided electrostatic actuations. The DC piezoelectric actuation leads to the generation of an axial force along the length of the micro-beam and this is used as a tuning tool to shift the primary resonance of the micro-resonator. The governing equation of the motion is derived by the minimization of the Hamiltonian and generalized to the viscously damped systems. The periodic solutions in the vicinity of the primary resonance are detected by means of the shooting method and their stability is investigated by determining the so-called Floquet exponents of the perturbed motions. The basins of attraction corresponding to three individual periodic orbits are determined. The results depict that the higher the amplitude of the periodic orbit, the smaller is the area of the attractor

cond-mat.mes-hall