DocumentCode
557722
Title
Evaluation of thermal effect with cavitation in 1.1 MHz ultrasound emission
Author
Park, Jae Hyun ; Noh, Si Cheol ; Kim, Ju Young ; Kim, Jin Su ; Kang, Jung Hoon ; Choi, Heung Ho
Author_Institution
Gimhae Bio-Med. Center, Gimhae, South Korea
Volume
2
fYear
2011
fDate
15-17 Oct. 2011
Firstpage
573
Lastpage
576
Abstract
In this study, experiments were performed for the generation of ultrasound cavitation, which was accompanied by high energy intensity and a temperature increase. First, the ultrasound cavitation was monitored by performing a computer simulation; then, the thermal emission was predicted on the basis of the simulation results. The cavitation generation was simulated by using Matlab 6.0(Mathworks, USA) on the basis of the Keller equation, and the change in the bubble radius was analyzed. On the basis of the bio-heat transfer equation, the increase in the generated cavitation temperature was analyzed by simulating an equilibrium state at 1.1 MHz. To confirm the validity of our simulation result, a Bovine serum albumin (BSA) phantom was developed, and used for generating cavitation; the thermal emission of the cavitation was also studied under the same conditions as those for the simulation. An analysis of the two sets of results using the Pearson correlation indicated that the maximum temperature, region, and diameter of cavitation, and the correlation coefficient for each temperature value at a significance level 0f 0.774 - 0.904 were comparable with each other.
Keywords
biomedical ultrasonics; biothermics; bubbles; cavitation; heat transfer; ultrasonic waves; Bovine serum albumin; Keller equation; Matlab 6.0 simulation; Pearson correlation; bio-heat transfer equation; bubble radius; computer simulation; correlation coefficient; frequency 1.1 MHz; high intensity focused ultrasound; thermal effect; thermal emission; ultrasound cavitation; ultrasound emission; Acoustics; Equations; Mathematical model; Phantoms; Simulation; Temperature measurement; Ultrasonic imaging; Cavitation; HIFU(High intensity focused ultrasound); Thermal distribution; ultrasound thermal effect;
fLanguage
English
Publisher
ieee
Conference_Titel
Image and Signal Processing (CISP), 2011 4th International Congress on
Conference_Location
Shanghai
Print_ISBN
978-1-4244-9304-3
Type
conf
DOI
10.1109/CISP.2011.6100380
Filename
6100380
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