软孔物质声流理论及其在超声增强对流输送中的应用。

Journal of therapeutic ultrasound Pub Date : 2018-08-02 eCollection Date: 2018-01-01 DOI:10.1186/s40349-018-0114-6
Raghu Raghavan
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引用次数: 17

摘要

本文发展了软孔材料体声流理论,并将其应用于生物组织。本文的主要结果是:(i)这种多孔介质的流动方程与描述纯流体流动的方程有有趣的显著差异;(ii)这些方程在各向同性无限介质中的格林函数;(iii)从常用的声波形式近似估计流方程中的源,以及由此产生的流速度和粒子轨迹。人们现在正在研究直接导入细胞组织的药物分子或其他颗粒等治疗药物的声学增强传输。将本文的理论预测与现有数据进行了比较,结果令人惊讶地好。指出了一些本文未涉及的组织超微结构的宏观效应,供今后的研究参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Theory for acoustic streaming in soft porous matter and its applications to ultrasound-enhanced convective delivery.

Theory for acoustic streaming in soft porous matter and its applications to ultrasound-enhanced convective delivery.

Theory for acoustic streaming in soft porous matter and its applications to ultrasound-enhanced convective delivery.

Theory for acoustic streaming in soft porous matter and its applications to ultrasound-enhanced convective delivery.

This paper develops theory for bulk acoustic streaming in soft porous materials, with applications to biological tissue. The principal results of this paper are: (i) streaming equations for such porous media, which show interestingly significant differences from those that describe streaming in pure fluids; (ii) the Green functions obtained for these equations in isotropic, infinite media; and (iii) approximate evaluation of the sources in the streaming equations from acoustic wave forms often used, and the streaming velocities and particle trajectories resulting therefrom. People are now investigating acoustic enhancement of delivery of therapeutics such as drug molecules or other particulates, introduced directly into cellular tissue. A comparison of the predictions of the theory in this paper to available data is made and shown to be surprisingly good. Some macroscale effects of the ultrastructure of the tissue that are not contained in the current paper are pointed out for future studies.

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