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Design and Implementation of a Transmit/Receive Ultrasound Phased Array for Brain Applications
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Design and Implementation of a Transmit/Receive Ultrasound Phased Array for Brain Applications

Hao-Li Liu, Chih-Hung Tsai, Chen-Kai Jan, Hsin-Yu Chang, Sheng-Min Huang, Meng-Lin Li, Weibao QiuHairong Zheng
IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control
07/2018

摘要

Acoustic beams Acoustics blood-brain barrier opening coherent beam formation Dual transmit/receive mode Field programmable gate arrays Image reconstruction Phased arrays Radio frequency transcranial brain therapy Ultrasonic imaging ultrasound phased array Instrumentation Acoustics and Ultrasonics Electrical and Electronic Engineering
Focused ultrasound phased array systems have attracted increased attention for brain therapy applications. However, such systems currently lack a direct and real-time method to intraoperatively monitor ultrasound pressure distribution for securing treatment. This study proposes a dual-mode ultrasound phased array system design to support transmit/receive operations for concurrent ultrasound exposure and backscattered focal-beam reconstruction through a spherically focused ultrasound array. A 256-channel ultrasound transmission system was used to transmit focused ultrasonic energy (full 256 channels), with an extended implementation of multiple-channel receiving function (up to 64 channels) using the same 256-channel ultrasound array. A coherent backscatter-received beam formation algorithm was implemented to map the point spread function (PSF) and focal beam distribution under a free-field/ transcranial environment setup, with the backscattering generated from a strong scatterer (a point reflector or a microbubble-perfused tube) or a weakly-scattered tissue-mimicking graphite phantom. Our results showed that PSF and focal beam can be successfully reconstructed and visualized in free-field conditions, and can also be transcranially reconstructed following skull-induced aberration correction. In-vivo experiments were conducted to demonstrate its capability to pre-operatively and semi-quantitatively map a focal beam to guide blood-brain barrier (BBB)-opening. The proposed system may have potential for real-time guidance of ultrasound brain intervention, and may facilitate the design of a dual-mode ultrasound phased array for brain therapeutic applications.

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