Localization of focused-ultrasound beams in a tissue phantom, using remote thermocouple arrays
Autor: | Srinidhi Nagaraja, Prasanna Hariharan, Matthew R. Myers, Seyed Ahmad Reza Dibaji, Rupak K. Banerjee |
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Rok vydání: | 2014 |
Předmět: |
Hot Temperature
Materials science Acoustics and Ultrasonics Phantoms Imaging Orientation (computer vision) Ultrasonic Therapy Acoustics Imaging phantom Sonication Cardinal point Interference (communication) Thermocouple Linear Models Curve fitting Electrical and Electronic Engineering Focus (optics) Instrumentation Algorithms Beam (structure) Biomedical engineering |
Zdroj: | IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control. 61:2019-2031 |
ISSN: | 0885-3010 |
DOI: | 10.1109/tuffc.2014.006702 |
Popis: | In focused-ultrasound procedures such as vessel cauterization or clot lysis, targeting accuracy is critical. To investigate the targeting accuracy of the focused-ultrasound systems, tissue phantoms embedded with thermocouples can be employed. This paper describes a method that utilizes an array of thermocouples to localize the focused ultrasound beam. All of the thermocouples are located away from the beam, so that thermocouple artifacts and sensor interference are minimized. Beam propagation and temperature rise in the phantom are simulated numerically, and an optimization routine calculates the beam location that produces the best agreement between the numerical temperature values and those measured with thermocouples. The accuracy of the method was examined as a function of the array characteristics, including the number of thermocouples in the array and their orientation. For exposures with a 3.3-MHz source, the remote-thermocouple technique was able to predict the focal position to within 0.06 mm. Once the focal location is determined using the localization method, temperatures at desired locations (including the focus) can be estimated from remote thermocouple measurements by curve fitting an analytical solution to the heat equation. Temperature increases in the focal plane were predicted to within 5% agreement with measured values using this method. |
Databáze: | OpenAIRE |
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