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Effects of Nonlinear Propagation in Ultrasound Contrast Agent Imaging
Authors:Meng-Xing Tang  Naohisa Kamiyama  Robert J. Eckersley
Affiliation: Department of Bioengineering, Faculty of Engineering, Imperial College London, UK; Application & Research Group, Ultrasound Division, Toshiba Medical Systems Corp., Otawara, Japan; Imaging Sciences Department, Faculty of Medicine, Imperial College London, UK
Abstract:This paper investigates two types of nonlinear propagation and their effects on image intensity and contrast-to-tissue ratio (CTR) in contrast ultrasound images. Previous studies have shown that nonlinear propagation can occur when ultrasound travels through tissue and microbubble clouds, making tissue farther down the acoustic path appear brighter in pulse inversion (PI) images, thus reducing CTR. In this study, the effect of nonlinear propagation through tissue or microbubbles on PI image intensity and CTR are compared at low mechanical index. A combination of simulation and experiment with SonoVue microbubbles were performed using a microbubble dynamics model, a laboratory ultrasound system and a clinical prototype scanner. The results show that, close to the bubble resonance frequency, nonlinear propagation through a bubble cloud of a few centimeter thickness with a modest concentration (1:10000 dilution of SonoVue microbubbles) is much more significant than through tissue-mimicking material. Consequently, CTR in regions distal to the imaging probe is greatly reduced for nonlinear propagation through the bubble cloud, with as much as a 12-dB reduction compared with nonlinear propagation through tissue-mimicking material. Both types of nonlinear propagation cause only a small change in bubble PI signals at the bubble resonance frequency. When the driving frequency increases beyond bubble resonance, nonlinear propagation through bubbles is greatly reduced in absolute values. However because of a greater reduction in nonlinear scattering from bubbles at higher frequencies, the corresponding CTR is much lower than that at bubble resonance frequency. (E-mail: mengxing.tang@imperial.ac.uk)
Keywords:Contrast agents   Nonlinear propagation   Imaging artefacts   Perfusion quantification
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