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Applications and validation of models of heat transfer in perfused tissues.

机译:灌注组织中传热模型的应用和验证。

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摘要

To improve treatment planning of thermal therapies, a better understanding of the effects of blood flow on temperature distributions is required. This thesis describes the experiments performed to measure temperature profiles of perfused heated tissues. The results were compared to predictions of mathematical models of tissue heat transfer which were then used to estimate lesion dimensions created during high intensity focused ultrasound (HIFU) therapy.; An experimental system was built to provide accurate and reproducible high spatial resolution steady state and transient temperature profiles of heated tissues. By analyzing the temporal evolution of the temperature distribution of a fixed heated kidney as a function of flow we were able to demonstrate that predictions of the Bioheat Transfer Equation model (BHTE) were in good agreement with the experimental data but predictions of the scalar Effective Thermal Conductivity Equation model (ETCE) could not model the data.; Using a similar experimental system, we investigated steady state and transient temperature distributions of heated tissues near large vessels and how they change as a function of flow. Temperature gradients of 6°C/mm were measured close to large vessels which could produce either excess heating or cooling in the target region. We demonstrated that the temperature gradients caused by large vessels were dependent on whether the heating source was highly localized or more distributed and that convective heat transfer by large vessels can heat regions distal to the treatment area. Optimal tissue heating strategies were proposed based on these results.; It has been suggested that short duration high temperature treatments may overcome the effects of blood flow on the temperature distribution. A novel finite difference model was developed to examine how blood flow modifies tissue lesions created by HIFU. It was shown that the effects of tissue microvascular perfusion on lesion formation were significant for exposure times greater than 2 s for highly perfused tissues, but were not significant for up to 12 s in moderately perfused tissues such as muscle. Predictions of lesion size using the BHTE were in better agreement with the experimental lesion data than predictions of the ETCE.
机译:为了改善热疗法的治疗计划,需要更好地了解血流对温度分布的影响。本论文描述了为测量灌注的加热组织的温度曲线而进行的实验。将结果与组织传热数学模型的预测进行比较,然后将其用于估计在高强度聚焦超声(HIFU)治疗期间产生的病变尺寸。建立了一个实验系统,以提供准确且可重现的高空间分辨率稳态和加热组织的瞬态温度曲线。通过分析固定加热的肾脏的温度分布随流量变化的时间演变,我们能够证明生物热传递方程模型(BHTE)的预测与实验数据非常吻合,但标量有效热的预测电导率方程模型(ETCE)无法为数据建模。使用类似的实验系统,我们研究了大血管附近受热组织的稳态和瞬态温度分布,以及它们如何随流量变化。在靠近大型容器的地方测得的温度梯度为6°C / mm,这可能会在目标区域产生过多的加热或冷却。我们证明了由大血管引起的温度梯度取决于加热源是否高度局部化或分布更广,并且大血管对流传热可以加热治疗区域远端的区域。基于这些结果,提出了最佳的组织加热策略。已经提出,短期高温治疗可以克服血流对温度分布的影响。开发了一种新颖的有限差分模型,以检查血流如何改变HIFU产生的组织损伤。结果表明,对于高度灌注的组织,暴露时间大于2 s时,组织微血管灌注对病变形成的影响很明显,而对于中等灌注的组织(如肌肉),暴露时间最长不超过12 s则无明显意义。与ETCE的预测相比,使用BHTE进行的病变大小预测与实验病变数据更吻合。

著录项

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 113 p.
  • 总页数 113
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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