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Dual high-frequency difference excitation for contrast detection

机译:双重高频差激励,用于对比度检测

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Stimulating high-frequency nonlinear oscillations of ultrasound contrast agents is helpful to distinguish microbubbles from background tissues. Nevertheless, inefficiency of such oscillations from most commercially available contrast agents and intense attenuation of the resultant high-frequency harmonics limit microbubble detection with high-frequency ultrasound. To avoid this high-frequency nature, we devised and explored a dual-frequency difference excitation technique to induce efficiently low-frequency, rather than high-frequency, nonlinear scattering from microbubbles by using high-frequency ultrasound. The proposed excitation pulse is comprised of 2 high-frequency sinusoids with frequency difference subject to the microbubble resonance frequency. Its envelope, with frequency being the difference between the 2 frequencies, is used to stimulate nonlinear oscillation of microbubbles for the consonant low-frequency harmonic generation, whereas high-imaging resolution is retained because of narrow high-frequency transmit beams. Hydrophone measurements and phantom experiments of speckle-generating flow phantoms were performed to demonstrate the efficacy of the proposed technique. The results show that, especially when the envelope frequency is near the microbubbleiquests resonance frequency, the envelope of the proposed excitation pulse can induce significant nonlinear scattering from microbubbles, the induced nonlinear responses tend to increase with the pulse pressures, and up to 26 dB and 36 dB contrast-to-tissue ratios with second- and fourth-order nonlinear responses, respectively, can be obtained. Potential applications of this method include microbubble fragmentation and cavitation with high-frequency ultrasound.
机译:刺激超声造影剂的高频非线性振荡有助于区分微泡和背景组织。然而,大多数市售造影剂产生的这种振荡效率低下,并且所产生的高频谐波强烈衰减,限制了使用高频超声进行微气泡检测。为了避免这种高频特性,我们设计并探索了一种双频差激励技术,该技术通过使用高频超声从微泡中有效诱导低频而非高频非线性散射。所提出的激励脉冲由2个高频正弦波组成,其频率差受微泡共振频率的影响。它的包络(频率是两个频率之间的差)被用来刺激微泡的非线性振荡,以产生辅音低频谐波,而由于高频发射光束较窄,因此保留了高成像分辨率。进行水听器测量和产生斑点的流动体模的体模实验以证明所提出的技术的有效性。结果表明,特别是当包络频率接近微气泡的共振频率时,所提出的激励脉冲的包络可以引起微气泡的明显非线性散射,所产生的非线性响应倾向于随脉冲压力而增加,并高达26 dB和可获得分别具有二阶和四阶非线性响应的36 dB对比度与组织的比率。该方法的潜在应用包括微气泡破碎和高频超声的空化作用。

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