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Acoustic radiation force in tissue-like solids due to modulated sound field

机译:调制声场在组织样固体中的声辐射力

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The focus of this study is the sustained body force (the so-called acoustic radiation force) in homogeneous tissue-like solids generated by an elevated-intensity, focused ultrasound field (Mach number = O(10~(-3))) in situations when the latter is modulated by a low-frequency signal. This intermediate-asymptotics problem, which bears relevance to a number of emerging biomedical applications, is characterized by a number of small (but non-vanishing) parameters including the Mach number, the ratio between the modulation and ultrasound frequency, the ratio of the shear to bulk modulus, and the dimensionless attenuation coefficient. On approximating the response of soft tissues as that of a nonlinear viscoelastic solid with heat conduction, the featured second-order problem is tackled via a scaling paradigm wherein the transverse coordinates are scaled by the width of the focal region, while the axial and temporal coordinate are each split into a "fast" and "slow" component with the twin aim of: (i) canceling the linear terms from the field equations governing the propagation of elevated-intensity ultrasound, and (ii) accounting for the effect of ultrasound modulation. In the context of the focused ultrasound analyses, the key feature of the proposed study revolves around the dual-time-scale treatment of the temporal variable, which allows one to parse out the contribution of ultrasound and its modulation in the nonlinear solution. In this way the acoustic radiation force (ARF), giving rise to the mean tissue motion, is exacted by computing the "fast" time average of the germane field equations. A comparison with the existing theory reveals a number of key features that are brought to light by the new formulation, including the contributions to the ARF of ultrasound modulation and thermal expansion, as well as the precise role of constitutive nonlinearities in generating the sustained body force in tissue-like solids by a focused ultrasound beam.
机译:这项研究的重点是由高强度聚焦超声场(马赫数= O(10〜(-3)))在均匀组织状固体中产生的持续体力(所谓的声辐射力)。后者由低频信号调制的情况。与许多新兴的生物医学应用相关的中度渐近问题的特征在于许多小的(但不消失)参数,包括马赫数,调制和超声频率之间的比率,剪切比率体积模量和无量纲的衰减系数。在将软组织的响应近似为具有热传导的非线性粘弹性固体的响应时,通过缩放范例解决了特征性的二阶问题,其中横向坐标由焦点区域的宽度缩放,而轴向坐标和时间坐标分别分为“快速”和“慢速”两个部分,其双重目的是:(i)从控制高强度超声传播的场方程中消除线性项,以及(ii)考虑超声调制的影响。在聚焦超声分析的背景下,所提出的研究的关键特征围绕时间变量的双重时间尺度处理,这使得人们可以解析出超声的贡献及其在非线性解决方案中的调制。以这种方式,通过计算锗烷场方程的“快速”时间平均值来精确化引起平均组织运动的声辐射力(ARF)。与现有理论的比较揭示了新配方所揭示的许多关键特征,包括对超声调制和热膨胀的ARF的贡献,以及本构非线性在产生持续体力中的精确作用通过聚焦超声束在组织状固体中产生

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