DocumentCode :
1053001
Title :
On the thermal effects associated with radiation force imaging of soft tissue
Author :
Palmeri, Mark L. ; Nightingale, Kathryn R.
Author_Institution :
Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
Volume :
51
Issue :
5
fYear :
2004
fDate :
5/1/2004 12:00:00 AM
Firstpage :
551
Lastpage :
565
Abstract :
Several laboratories are investigating the use of acoustic radiation force to image the mechanical properties of tissue. Acoustic Radiation Force Impulse (ARFI) imaging is one approach that rises brief, high-intensity, focused ultrasound pulses to generate radiation force in tissue. This radiation force generates tissue displacements that are tracked using conventional correlation-based ultrasound methods. The tissue response provides a mechanism to discern mechanical properties of the tissue. The acoustic energy that is absorbed by tissue generates radiation force and tissue heating. A finite element methods model of acoustic heating has been developed that models the thermal response of different tissues during short duration radiation force application. The beam sequences and focal configurations used during ARFI imaging are modeled herein; the results of these thermal models can be extended to the heating due to absorption associated with other radiation force-based imaging modalities. ARFI-induced thermal diffusivity patterns are functions of the transducer f-number, the tissue absorption, and the temporal and spatial spacing of adjacent ARFI interrogations. Cooling time constants are on the order of several seconds. Tissue displacement due to thermal expansion is negligible for ARFI imaging. Changes in sound speed due to temperature changes call be appreciable. These thermal models demonstrate that ARFI imaging of soft tissue is safe, although thermal response must be monitored when ARFI beam sequences are being developed.
Keywords :
bioacoustics; biological tissues; biomedical ultrasonics; thermal diffusivity; thermal expansion; acoustic energy; acoustic heating; acoustic radiation force impulse imaging; finite element methods; radiation force; soft tissue; thermal diffusivity; thermal expansion; tissue displacements; Absorption; Acoustic beams; Acoustic imaging; Acoustic pulses; Biological tissues; Heating; Laboratories; Mechanical factors; Thermal force; Ultrasonic imaging; Animals; Body Temperature; Computer Simulation; Connective Tissue; Dose-Response Relationship, Radiation; Elasticity; Energy Transfer; Finite Element Analysis; Heat; Humans; Models, Biological; Radiation Dosage; Thermal Conductivity; Thermography; Ultrasonics;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2004.1320828
Filename :
1320828
Link To Document :
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