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Anisotropic physical properties of myocardium characterized by ultrasonic measurements of backscatter, attenuation, and velocity.

机译:超声的反向散射,衰减和速度测量可表征心肌的各向异性物理特性。

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摘要

The goal of elucidating the physical mechanisms underlying the propagation of ultrasonic waves in anisotropic soft tissue such as myocardium has posed an interesting and largely unsolved problem in the field of physics for the past 30 years. In part because of the vast complexity of the system being studied, progress towards understanding and modeling the mechanisms that underlie observed acoustic parameters may first require the guidance of careful experiment. Knowledge of the causes of observed ultrasonic properties in soft tissue including attenuation, speed of sound, and backscatter, and how those properties are altered with specific pathophysiologies, may lead to new noninvasive approaches to the diagnosis of disease. The primary aim of this Dissertation is to contribute to an understanding of the physics that underlies the mechanisms responsible for the observed interaction of ultrasound with myocardium. To this end, through-transmission and backscatter measurements were performed by varying acoustic properties as a function of angle of insonification relative to the predominant myofiber direction and by altering the material properties of myocardium by increased protein cross-linking induced by chemical fixation as an extreme form of changes that may occur in certain pathologies such as diabetes. Techniques to estimate acoustic parameters from backscatter were broadened and challenges to implementing these techniques in vivo were addressed. Provided that specific challenges identified in this Dissertation can be overcome, techniques to estimate attenuation from ultrasonic backscatter show promise as a means to investigate the physical interaction of ultrasound with anisotropic biological media in vivo. This Dissertation represents a step towards understanding the physics of the interaction of ultrasonic waves with anisotropic biological media.
机译:阐明超声波在诸如心肌之类的各向异性软组织中传播的物理机制的目标在过去30年中已成为物理学领域一个有趣且尚未解决的问题。在某种程度上,由于正在研究的系统非常复杂,在理解和建模基础上观察到的声学参数的机制方面的进展可能首先需要仔细实验的指导。了解在软组织中观察到的超声特性的原因(包括衰减,声速和反向散射),以及如何通过特定的病理生理学改变这些特性,可能会导致新的非侵入性疾病诊断方法。本论文的主要目的是促进对物理学的理解,该物理学是造成超声与心肌相互作用的机制的基础。为此,通过改变声学特性作为相对于主要肌纤维方向的共鸣角的函数,并通过化学固定引起的蛋白交联增加来改变心肌的材料特性,从而进行透射和反向散射测量。某些疾病(例如糖尿病)中可能发生的变化形式。扩大了从反向散射估计声学参数的技术,并解决了在体内实施这些技术的挑战。假设可以克服本论文中确定的特定挑战,从超声反向散射估计衰减的技术有望作为一种手段来研究超声与体内各向异性生物介质的物理相互作用。本论文代表了理解超声波与各向异性生物介质相互作用的物理学的一步。

著录项

  • 作者

    Baldwin, Steven L.;

  • 作者单位

    Washington University in St. Louis.;

  • 授予单位 Washington University in St. Louis.;
  • 学科 Engineering Biomedical.; Biophysics Medical.; Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 312 p.
  • 总页数 312
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;生物物理学;声学;
  • 关键词

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