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Characterization of Cavitation Effects in Therapeutic Ultrasound: Sonophoresis Experiments and Quantitative Emission Measurements

机译:在治疗性超声中空化效应的表征:超音波实验和定量排放测量

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摘要

Fundamental to the use of ultrasound for therapeutic benefit is a comprehensive understanding and identification of the underlying mechanisms. Specifically, consequential bioeffects during therapeutic ultrasound commonly coincide with the onset of microbubble cavitation, especially for drug-delivery applications. Hence, there is a need for monitoring and characterization techniques that provide quantitative metrics for assessing cavitation activity during ultrasound exposure in order to monitor treatment progress, identify interactions of cavitation with tissue, and provide dosimetry metrics for avoiding potentially harmful exposures both for therapeutic and diagnostic purposes.;The primary goal of the work presented in this dissertation was to characterize the role of cavitation during sonophoresis using quantitative and system-independent approaches. First, this goal was accomplished using traditional passive cavitation detection techniques to monitor cavitation emissions during in vitro intermediate- (IFS, insonation frequency f 0 = 0.1--1 MHz) and high-frequency sonophoresis (HFS, f0 >1 MHz) treatments of in vitro porcine skin samples in Chapter 2. The relative intensity of subharmonic acoustic emissions from stable cavitation occurring near the skin surface was measured using a single-element PCD and was shown to correspond with reductions in skin resistivity, a surrogate measure of permeability, for all sonophoresis treatments. However, the acoustic emissions measured during sonophoresis provided incommensurable quantities between the different treatment regimes due to unaccounted frequency-dependent variations in the sensitivity of the PCD and diffraction effects in the cavitation-radiated pressure field received by the PCD.;Second, methods were developed and employed to characterize the wideband absolute receive sensitivity of single-element focused and unfocused receivers in Chapter 3. By employing these characterization techniques and by accounting for the frequency-dependent response of the receiving system, the cavitation-radiated pressure incident on a PCD can be elicited from the system-measured voltage. Guidelines for accurate calibration measurements were established via simulation and the receive sensitivity of various PCDs were measured, including that of the PCD employed for sonophoresis in Chapter 2.;Third, in Chapter 4, a method for relating PCD-measured pressures, and by extension the system-measured voltage, to the acoustic power radiated by cavitation within a defined region of interest (ROI) was developed. This approach is accomplished by compensating PCD-measured pressures with a derived factor that accounts for the diffraction-dependent spatial variations in PCD sensitivity. The accuracy of this method was investigated via simulation. Further, this approach was employed to characterize the acoustic power radiated by stable cavitation over the skin surface during IFS and HFS using the system-dependent emission measurements made in Chapter 2, the PCD characterization conducted in Chapter 3, and the compensation factor calculated in Chapter 4.;The PCD calibration and measurement compensation methods developed here are broadly applicable for different single-element receivers, cavitation-monitoring applications, and frequencies. Hence, this approach enables a system-independent technique for characterization of cavitation-radiated acoustic powers, which may serve as a standard characterization technique.
机译:使用超声波获得治疗益处的基础是对潜在机制的全面理解和鉴定。具体而言,在治疗性超声过程中产生的相应生物效应通常与微泡空化的发生相吻合,尤其是在药物输送应用中。因此,需要监测和表征技术,其提供用于评估超声暴露期间的空化活动的定量指标,以便监测治疗进度,识别空化与组织的相互作用,并提供剂量学指标,以避免用于治疗和诊断的潜在有害暴露。目的:本论文的主要目的是利用定量和独立于系统的方法来表征空化在超声治疗中的作用。首先,该目​​标是使用传统的被动气蚀检测技术来实现的,该监测技术可在体外中频(IFS,超声频率f 0 = 0.1--1 MHz)和高频超声治疗(HFS,f0> 1 MHz)治疗期间监测气蚀排放。第2章中的体外猪皮肤样品。使用单元素PCD测量了在皮肤表面附近发生的稳定空化所引起的次谐波声发射的相对强度,并表明与皮肤电阻率的降低(渗透率的替代量度)相对应。所有的超声波疗法。然而,由于未解释的频率依赖性PCD灵敏度的变化和PCD接收到的空化辐射压力场中的衍射效应,在超声治疗期间测得的声发射在不同的治疗方案之间提供了不可估量的数量。第二,开发了方法并在第3章中描述了单元素聚焦和非聚焦接收器的宽带绝对接收灵敏度。通过采用这些表征技术并考虑接收系统的频率相关响应,入射在PCD上的空化辐射压力可以由系统测得的电压得出。通过仿真建立了准确校准测量的指南,并测量了各种PCD的接收灵敏度,包括在第2章中用于超声治疗的PCD的灵敏度;在第4章中,介绍了与PCD测量压力相关的方法,并进行了扩展。开发了系统测量到的相对于定义的感兴趣区域(ROI)中空化辐射的声功率的电压。这种方法是通过补偿PCD测得的压力和衍生因子来实现的,该衍生因子说明了PCD灵敏度中与衍射有关的空间变化。通过仿真研究了该方法的准确性。此外,该方法还用于表征在IFS和HFS期间通过在皮肤表面进行稳定的气蚀而辐射出的声功率,其中使用了第2章进行的与系统有关的发射测量,第3章进行了PCD表征,以及第3章计算了补偿因子。 4 .;这里开发的PCD校准和测量补偿方法广泛适用于不同的单元素接收器,气蚀监测应用和频率。因此,该方法使表征气穴辐射声功率的系统独立技术成为可能,该技术可以用作标准表征技术。

著录项

  • 作者

    Rich, Kyle Thomas.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Biomedical engineering.;Acoustics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 258 p.
  • 总页数 258
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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