DocumentCode :
915273
Title :
Vibro-magnetometry: Theoretical aspects and simulations
Author :
Carneiro, Adilton O. ; Baffa, Oswaldo ; Silva, Glauber T. ; Fatemi, Mostafa
Author_Institution :
Dept. de Fis. e Mat., Univ. de Sao Paulo, Sao Paulo
Volume :
56
Issue :
5
fYear :
2009
fDate :
5/1/2009 12:00:00 AM
Firstpage :
1065
Lastpage :
1073
Abstract :
In this article, we introduce the theory for vibro-magnetometry (VM) with computational simulations for an idealized experimental setup. A method based on acoustic radiation force and magnetic measurement has been proposed for interrogating the mechanical vibrations of a target immersed in fluid medium. In this method, ultrasound radiation is used to exert a low-frequency (in kHz range) force on a rigid magnetized target immersed in a viscoelastic medium. In response, the target vibrates sinusoidally in a pattern determined by viscoelastic properties of the medium. The magnetic field resulting from target vibration is related to both the ultrasonic and low-frequency (kHz range) mechanical characteristics of the medium. We report the relationship between the magnetic field signal and the incident ultrasonic pressure field in terms of the mechanical parameters of the medium. Simulations were conducted to demonstrate a simple approach based on using amplitude-modulated ultrasound to generate a dynamic acoustic radiation force on a magnetic target. The magnetic field generated by vibration of this target is then obtained and used to estimate the radiation-force-induced displacement as a function of time. It was observed that the intensity of the dynamic component of the magnetic field caused by the acoustic excitation is high enough to be registered by a conventional magnetic sensor. When a low stress is applied on a reactive magnetic target embedded in the medium, the subsequent oscillating magnetic field is measured by a dedicated magnetic sensor, yielding the applicable mechanical information of the host medium. The proposed methodology presents a powerful tool for evaluation of acoustic radiation force as well as the mechanical properties of soft materials.
Keywords :
biological tissues; biomechanics; biomedical measurement; magnetic fields; magnetic sensors; magnetometers; ultrasonic variables measurement; vibration measurement; viscoplasticity; acoustic excitation; amplitude-modulated ultrasound; dynamic acoustic radiation force; fluid medium; incident ultrasonic pressure field; low-frequency mechanical characteristics; magnetic field signal; magnetic measurement; magnetic sensor; mechanical vibrations; oscillating magnetic field; radiation-force-induced displacement; reactive magnetic target; soft materials; target vibration; ultrasonic mechanical characteristics; ultrasound radiation; vibro-magnetometry; viscoelastic medium; viscoelastic properties; Computational modeling; Elasticity; Magnetic field measurement; Magnetic fields; Magnetic sensors; Soft magnetic materials; Ultrasonic imaging; Vibrations; Virtual manufacturing; Viscosity; Acoustics; Algorithms; Computer Simulation; Elasticity Imaging Techniques; Electromagnetic Fields; Models, Theoretical; Ultrasonography; Vibration; Viscosity; Water;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2009.1140
Filename :
4976293
Link To Document :
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