DocumentCode
3094810
Title
Design and modeling of an integrated device for acoustic resonance spectroscopy
Author
Agrawal, Meena ; Ying Zhou ; Bellare, Jayesh R. ; Seshia, Ashwin A.
Author_Institution
Nanosci. Center, Univ. of Cambridge, Cambridge, UK
fYear
2013
fDate
21-25 July 2013
Firstpage
2183
Lastpage
2186
Abstract
This paper investigates the design and modelling of an integrated device for acoustic resonance spectroscopy (ARS). Miniaturisation of such platforms can be achieved using MEMS technology thereby enabling scaling of device dimensions to investigate smaller specimens while simultaneously operating at higher frequencies. We propose an integrated device where the transducers are mounted in close proximity with the specimen to be analysed (e.g. by integrating ultrasound transducers within a microfluidic channel). A finite element (FE) model and a simplified analytical model have been constructed to predict the acoustic response of a sample embedded in such a device configuration. A FE simulation is performed in COMSOL by embedding the piezoelectric transducers in representative fluid media. Resonant frequencies associated with the measurement can be extracted from this data. The response of various media modelled through FEA matches with analytical predictions for a range of biological media. A variety of biological media may be identified by using the measured resonant frequencies as a signature of relevant physical characteristics. The paper establishes the modelling basis of an integrated acoustic resonant spectrometer that is then applied to examine the impact of geometrical scaling on system resolution.
Keywords
acoustic resonance; finite element analysis; microchannel flow; piezoelectric transducers; ultrasonic transducers; ARS; COMSOL; MEMS technology; acoustic resonance spectroscopy; acoustic response; biological media; device configuration; device dimensions; finite element model; fluid media; geometrical scaling impact; integrated acoustic resonant spectrometer; integrated device design; integrated device modeling; integrating ultrasound transducers; microfluidic channel; physical characteristics; piezoelectric transducers; proximity effect; resonant frequencies; system resolution; Acoustics; Analytical models; Frequency measurement; Media; Resonant frequency; Transducers; Ultrasonic imaging; Acoustic Resonance Spectroscopy; Finite Element Analysis; MEMS; Resonant Ultrasound Spectroscopy; Ultrasound Propagation;
fLanguage
English
Publisher
ieee
Conference_Titel
Ultrasonics Symposium (IUS), 2013 IEEE International
Conference_Location
Prague
ISSN
1948-5719
Print_ISBN
978-1-4673-5684-8
Type
conf
DOI
10.1109/ULTSYM.2013.0558
Filename
6724952
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