Beam model and three dimensional numerical simulations on suspended microchannel resonators
At the microscale level, the vibrational characteristics of microstructures have been widely applied on biochemical microchips, especially for bio-molecules detection. The vibrational mechanics and mechanism of microcantilever beams immersed in the fluids for detecting target bio-molecules carried...
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doaj-c6c4609528b64c9f8c89679c35967a392020-11-24T23:10:45ZengAIP Publishing LLCAIP Advances2158-32262012-12-0124042176042176-2110.1063/1.4770321077204ADVBeam model and three dimensional numerical simulations on suspended microchannel resonatorsKuan-Rong Huang0Jeng-Shian Chang1Sheng D. Chao2Kuang-Chong Wu3Institute of Applied Mechanics, National Taiwan University, Taipei 106, Taiwan, Republic of ChinaInstitute of Applied Mechanics, National Taiwan University, Taipei 106, Taiwan, Republic of ChinaInstitute of Applied Mechanics, National Taiwan University, Taipei 106, Taiwan, Republic of ChinaInstitute of Applied Mechanics, National Taiwan University, Taipei 106, Taiwan, Republic of China At the microscale level, the vibrational characteristics of microstructures have been widely applied on biochemical microchips, especially for bio-molecules detection. The vibrational mechanics and mechanism of microcantilever beams immersed in the fluids for detecting target bio-molecules carried in the fluids have been widely studied and realized in recent years. However, it is not the case for microcantilever beams containing fluids inside (called suspended microchannel resonators, SMR). In this paper, an 1-D beam model for SMR is proposed and the formula for prediction of resonant frequency and resonant frequency shift are derived. For verification of validity of the 1-D beam model, three dimensional finite element simulations using ANSYS are performed. The effects of relevant parameters, such as density and viscosity of the fluids, on the frequency response are investigated. A link between numerical simulations and mathematical modeling is established through an equivalence relation. Subsequently, a useful formula of the resonant frequency shift as a function of the mass variation and the viscosity of the contained fluid is derived. Good agreement between the numerical simulations and the experimental data is obtained and the physical mechanism is elucidated. http://dx.doi.org/10.1063/1.4770321 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kuan-Rong Huang Jeng-Shian Chang Sheng D. Chao Kuang-Chong Wu |
spellingShingle |
Kuan-Rong Huang Jeng-Shian Chang Sheng D. Chao Kuang-Chong Wu Beam model and three dimensional numerical simulations on suspended microchannel resonators AIP Advances |
author_facet |
Kuan-Rong Huang Jeng-Shian Chang Sheng D. Chao Kuang-Chong Wu |
author_sort |
Kuan-Rong Huang |
title |
Beam model and three dimensional numerical simulations on suspended microchannel resonators |
title_short |
Beam model and three dimensional numerical simulations on suspended microchannel resonators |
title_full |
Beam model and three dimensional numerical simulations on suspended microchannel resonators |
title_fullStr |
Beam model and three dimensional numerical simulations on suspended microchannel resonators |
title_full_unstemmed |
Beam model and three dimensional numerical simulations on suspended microchannel resonators |
title_sort |
beam model and three dimensional numerical simulations on suspended microchannel resonators |
publisher |
AIP Publishing LLC |
series |
AIP Advances |
issn |
2158-3226 |
publishDate |
2012-12-01 |
description |
At the microscale level, the vibrational characteristics of microstructures have been widely applied on biochemical microchips, especially for bio-molecules detection. The vibrational mechanics and mechanism of microcantilever beams immersed in the fluids for detecting target bio-molecules carried in the fluids have been widely studied and realized in recent years. However, it is not the case for microcantilever beams containing fluids inside (called suspended microchannel resonators, SMR). In this paper, an 1-D beam model for SMR is proposed and the formula for prediction of resonant frequency and resonant frequency shift are derived. For verification of validity of the 1-D beam model, three dimensional finite element simulations using ANSYS are performed. The effects of relevant parameters, such as density and viscosity of the fluids, on the frequency response are investigated. A link between numerical simulations and mathematical modeling is established through an equivalence relation. Subsequently, a useful formula of the resonant frequency shift as a function of the mass variation and the viscosity of the contained fluid is derived. Good agreement between the numerical simulations and the experimental data is obtained and the physical mechanism is elucidated.
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url |
http://dx.doi.org/10.1063/1.4770321 |
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