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Characterization of an Array-Based Dual-Frequency Transducer for Superharmonic Contrast Imaging

机译:基于阵列的超高音响对比度成像的阵列双频传感器的表征

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摘要

Superharmonic imaging with dual-frequency imaging systems uses conventional low-frequency ultrasound transducers on transmit, and high-frequency transducers on receive to detect higher order harmonic signals from microbubble contrast agents, enabling high-contrast imaging while suppressing clutter from background tissues. Current dual-frequency imaging systems for superharmonic imaging have been used for visualizing tumor microvasculature, with single-element transducers for each of the low- and high-frequency components. However, the useful field of view is limited by the fixed focus of single-element transducers, while image frame rates are limited by the mechanical translation of the transducers. In this article, we introduce an array-based dual-frequency transducer, with low-frequency and high-frequency arrays integrated within the probe head, to overcome the limitations of single-channel dual-frequency probes. The purpose of this study is to evaluate the line-by-line high-frequency imaging and superharmonic imaging capabilities of the array-based dual-frequency probe for acoustic angiography applications in vitro and in vivo. We report center frequencies of 1.86 MHz and 20.3 MHz with -6 dB bandwidths of 1.2 MHz (1.2-2.4 MHz) and 14.5 MHz (13.3-27.8 MHz) for the low- and high-frequency arrays, respectively. With the proposed beamforming schemes, excitation pressure was found to range from 336 to 458 kPa at its azimuthal foci. This was sufficient to induce nonlinear scattering from microbubble contrast agents. Specifically, in vitro contrast channel phantom imaging and in vivo xenograft mouse tumor imaging by this probe with superharmonic imaging showed contrast-to-tissue ratio improvements of 17.7 and 16.2 dB, respectively, compared to line-by-line micro-ultrasound B-mode imaging.
机译:具有双频成像系统的超高臂成像在发射机上使用传统的低频超声换能器,以及接收的高频传感器,以检测来自微泡造影剂的高阶谐波信号,从而实现高对比度成像,同时抑制背景组织的杂波。用于超高频成像的电流双频成像系统已用于可视化肿瘤微血管结构,用于每个低频和高频分量的单元素换能器。然而,有用的视野由单元素换能器的固定焦点限制,而图像帧速率受换能器的机械翻译的限制。在本文中,我们介绍了基于阵列的双频传感器,具有低频和高频阵列集成在探头头内,以克服单通道双频探头的限制。本研究的目的是评估基于阵列的双频探头的逐行高频成像和超高频成像能力,用于体外和体内声学血管造影应用。我们报告了1.86 MHz的中心频率和20.3 MHz,分别为-6 dB带宽为1.2 MHz(1.2-2.4 MHz)和14.5 MHz(13.3-27.8 MHz),用于低频和高频阵列。利用所提出的波束成形方案,发现激发压力在其方位角焦点的336至458kPa之间。这足以从微泡造影剂诱导非线性散射。具体地,通过该探针在逐行微型微超声B型比较的情况下,通过该探针的体外对比通道模拟和体内异种移植小鼠肿瘤成像分别显示出对比于组织比例的提高17.7和16.2dB成像。

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