Size modulated transition in the fluid–structure interaction losses in nano mechanical beam resonators

Vishwakarma, S D and Pandey, Ashok Kumar and Parpia, J M et. al. (2016) Size modulated transition in the fluid–structure interaction losses in nano mechanical beam resonators. Journal of Applied Physics, 119 (19). p. 194303. ISSN 0021-8979

Full text not available from this repository. (Request a copy)

Abstract

An understanding of the dominant dissipative mechanisms is crucial for the design of a high-Q doubly clamped nanobeam resonator to be operated in air. We focus on quantifying analytically the viscous losses—the squeeze film damping and drag force damping—that limit the net quality factor of a beam resonator, vibrating in its flexural fundamental mode with the surrounding fluid as air at atmospheric pressure. Specifically, drag force damping dominates at smaller beam widths and squeeze film losses dominate at larger beam widths, with no significant contribution from structural losses and acoustic radiation losses. The combined viscous losses agree well with the experimentally measured Q of the resonator over a large range of beam widths, within the limits of thin beam theory. We propose an empirical relation between the maximum quality factor and the ratio of maximum beam width to the squeeze film air gap thickness.

[error in script]
IITH Creators:
IITH CreatorsORCiD
Pandey, Ashok KumarUNSPECIFIED
Item Type: Article
Subjects: Physics > Mechanical and aerospace
Divisions: Department of Mechanical & Aerospace Engineering
Depositing User: Team Library
Date Deposited: 29 May 2019 04:24
Last Modified: 29 May 2019 04:24
URI: http://raiithold.iith.ac.in/id/eprint/5361
Publisher URL: http://doi.org/10.1063/1.4950758
Related URLs:

Actions (login required)

View Item View Item
Statistics for RAIITH ePrint 5361 Statistics for this ePrint Item