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磷脂包裹微泡对啁啾编码激励的响应:对高频非线性成像的影响。

The response of phospholipid-encapsulated microbubbles to chirp-coded excitation: implications for high-frequency nonlinear imaging.

机构信息

Department of Electrical and Computer Engineering, University of Rochester, Rochester New York 14627, USA.

出版信息

J Acoust Soc Am. 2013 May;133(5):3145-58. doi: 10.1121/1.4798677.

Abstract

The current excitation strategy for harmonic and subharmonic imaging (HI and SHI) uses short sine-bursts. However, alternate pulsing strategies may be useful for enhancing nonlinear emissions from ultrasound contrast agents. The goal of this study was to corroborate the hypothesis that chirp-coded excitation can improve the performance of high-frequency HI and SHI. A secondary goal was to understand the mechanisms that govern the response of ultrasound contrast agents to chirp-coded and sine-burst excitation schemes. Numerical simulations and acoustic measurements were conducted to evaluate the response of a commercial contrast agent (Targestar-P(®)) to chirp-coded and sine-burst excitation (10 MHz frequency, peak pressures 290 kPa). The results of the acoustic measurements revealed an improvement in signal-to-noise ratio by 4 to 14 dB, and a two- to threefold reduction in the subharmonic threshold with chirp-coded excitation. Simulations conducted with the Marmottant model suggest that an increase in expansion-dominated radial excursion of microbubbles was the mechanism responsible for the stronger nonlinear response. Additionally, chirp-coded excitation detected the nonlinear response for a wider range of agent concentrations than sine-bursts. Therefore, chirp-coded excitation could be a viable approach for enhancing the performance of HI and SHI.

摘要

当前谐波和亚谐波成像(HI 和 SHI)的激励策略使用短正弦脉冲。然而,交替的脉冲激发策略可能有助于增强超声对比剂的非线性发射。本研究的目的是验证啁啾编码激励可以改善高频 HI 和 SHI 的性能的假设。次要目标是了解控制超声对比剂对啁啾编码和正弦脉冲激励方案的响应的机制。进行了数值模拟和声学测量,以评估商业对比剂(Targestar-P(®))对啁啾编码和正弦脉冲激励(10 MHz 频率,峰值压力 290 kPa)的响应。声学测量的结果表明,啁啾编码激励的信噪比提高了 4 到 14 dB,亚谐波阈值降低了两到三倍。使用 Marmottant 模型进行的模拟表明,微泡的膨胀为主导的径向运动增加是导致更强非线性响应的机制。此外,啁啾编码激励比正弦脉冲检测到更宽范围的造影剂浓度的非线性响应。因此,啁啾编码激励可能是增强 HI 和 SHI 性能的一种可行方法。

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