空化
波束赋形
声学
传感器
微气泡
超声波
材料科学
超声波传感器
治疗性超声
光学
计算机科学
物理
电信
作者
Paul Boulos,François Varray,Adrien Poizat,Alessandro Ramalli,B. Gilles,Jean-Christophe Béra,Christian Cachard
出处
期刊:IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control
[Institute of Electrical and Electronics Engineers]
日期:2018-09-24
卷期号:65 (12): 2301-2310
被引量:20
标识
DOI:10.1109/tuffc.2018.2871983
摘要
Ultrasound (US) cavitation is currently being explored for low-invasive therapy techniques applied to a wide panel of pathologies. Because of the random behavior of cavitation, a real-time spatial monitoring system may be required. For this purpose, the US passive imaging techniques have been recently investigated. In particular, the passive acoustic mapping (PAM) beamforming method enables the reconstruction of cavitation activity maps by beamforming acoustic signals passively recorded by an array transducer. In this paper, an optimized version of PAM, PAM weighted with a phase coherence factor (PAM-PCF), is considered. A general validation process is developed including simulations on a point source and experiments on a wire. Furthermore, using a focused regulated US-induced cavitation generator, reproducible cavitation experiments are conducted in water and in agar gel. The spatial behavior of a bubble cavitation cloud is determined using the PAM-PCF beamforming method to localize the focal cavitation point in two perpendicular imaging planes.
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