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高阶贝塞尔光束与水下球形超声造影剂壳的相互作用 - 散射理论。

Interaction of a high-order Bessel beam with a submerged spherical ultrasound contrast agent shell - Scattering theory.

机构信息

Mayo Clinic, College of Medicine, Department of Physiology and Biomedical Engineering, Ultrasound Research Laboratory, 200 First Street SW, Rochester, MN 55905, USA.

出版信息

Ultrasonics. 2010 Mar;50(3):387-96. doi: 10.1016/j.ultras.2009.09.003. Epub 2009 Sep 18.

Abstract

BACKGROUND AND OBJECTIVE

Acoustic scattering properties of ultrasound contrast agents are useful in extending existing or developing new techniques for biomedical imaging applications. A useful first step in this direction is to investigate the acoustic scattering of a new class of acoustic beams, known as helicoidal high-order Bessel beams, to improve the understanding of their scattering characteristics by an ultrasound contrast agent, which at present is very limited.

METHOD

The transverse acoustic scattering of a commercially available albuminoidal ultrasound contrast agent shell filled with air or a denser gas such as perfluoropropane and placed in a helicoidal Bessel beam of any order is examined numerically. The shell is assumed to possess an outer radius a=3.5 microns and a thickness of approximately 105 nm. Moduli of the total and resonance transverse acoustic scattering form functions are numerically evaluated in the bandwidth 0<ka 3, which corresponds to a frequency bandwidth of 0-205 MHz that covers a wide range of applications for imaging with contrast agents. Particular attention is paid to the shell's material, the content of its interior hollow region and the fluid surrounding its exterior. The contrast agent shell is assumed to be immersed in an ideal compressible fluid so the viscous corrections are not considered. Analytical equations are derived and numerical calculations of the total and resonance form functions are performed with particular emphasis on the effect of varying the half-cone angle, the order of the helicoidal Bessel beam as well as the fluid that fills the interior hollow space.

RESULTS AND CONCLUSION

It is shown that shell wave resonance modes can be excited on an encapsulated micro-bubble. The forward and backscattering vanish for a helicoidal high-order Bessel beam. Additionally, the fluid filling the inner core affects the shell's response significantly. Moreover, there is no monopole contribution to the axial scattering of a helicoidal Bessel beam of order m1 so that the dynamics of contrast agents would be significantly altered. The main finding of the present theory is the suppression or enhancement for a particular resonance that may be used to advantage in imaging with ultrasound contrast agents for clinical applications.

摘要

背景与目的

超声对比剂的声学散射特性可用于扩展现有的或开发新的生物医学成像应用技术。在这方面的一个有用的初步步骤是研究一种新的类声学束的声学散射,即螺旋高阶贝塞尔光束,以提高对超声对比剂的散射特性的理解,目前对此的了解非常有限。

方法

通过数值方法研究了填充有空气或更密集气体(如全氟丙烷)的商用白蛋白超声对比剂壳在任意阶螺旋贝塞尔光束中的横向声学散射。壳的外半径 a=3.5 微米,厚度约为 105nm。在带宽 0<ka<3 内数值评估总和声共振横向散射形式函数的模,这对应于覆盖对比剂成像的广泛应用的 0-205MHz 的频率带宽。特别关注壳的材料、其内部空心区域的内容以及其外部周围的流体。假设对比剂壳沉浸在理想的可压缩流体中,因此不考虑粘性修正。推导出了分析方程,并对总和声共振形式函数进行了数值计算,特别强调了改变半锥角、螺旋贝塞尔光束的阶数以及填充内部空心空间的流体的影响。

结果与结论

结果表明,可以在封装的微泡上激发出壳波共振模式。螺旋高阶贝塞尔光束的前向和后向散射为零。此外,填充内部核心的流体对壳的响应有显著影响。此外,阶数为 m1 的螺旋贝塞尔光束的轴向散射没有偶极子贡献,因此对比剂的动力学将发生显著变化。本理论的主要发现是对特定共振的抑制或增强,这可能在超声对比剂的临床应用成像中被有利地利用。

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