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Investigation of thermal field in energy-based biomedical applications.

机译:基于能量的生物医学应用中的热场研究。

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摘要

Energy-based biomedical applications have achieved wide success in the past fifty years by using new technologies, such as RF, microwave, laser, and ultrasound. However, the full potential of energy-based treatment in clinical applications has not been realized due to the lack of almost real-time and accurate prediction of temperature. To meet this need, in vivo knowledge of the tissue properties feeding into an experimentally verified numerical model simulating the underlying physical phenomena in the treatment is required. In this thesis, an integrated numerical and experimental study was carried out to develop more advanced tools aimed at solving several specific problems in two typical energy based biomedical applications, hyperthermia and RF ablation.; First, an integrated numerical simulation procedure, which includes the electromagnetic and thermal simulation, was developed to accurately predict the temperature distribution of a canine tumor undergoing hyperthermia treatment. The numerical parametric study showed that the geometric shape of the tumor has a more significant effect on the temperature field compared with perfusion and other parameters. This numerical tool was used to design a novel double spiral applicator with the advantage of flexible energy delivery and the applicator performance was experimentally validated. In order to significantly reduce the computation time for temperature prediction, our in-house developed artificial neural network software was deployed to simulate the temperature field during hyperthermia treatment and its prediction accuracy was validated.; After the numerical tools were successfully developed, micro sensors were developed for tissue characterization. First, a micromachined electrical probe was developed for real-time local measurement of electrical conductivity of tissues. The probe was also used to investigate the electrical conductivity change induced by temperature elevation. The results showed that the electrical conductivity doubles from room temperature to 90°C. Following this, a novel thermal conductivity probe for local measurement of thermal properties of tissue was fabricated by micromachining. The theoretical and numerical analysis demonstrated that the calculated thermal conductivity is simply the average of the thermal conductivity of the tissue and the substrate. The probe was used to investigate the change of thermal conductivity of pig liver before and after RF ablation treatment and the relationship between effective thermal conductivity and RF ablation area. The results showed that pig liver after ablation has a slightly higher thermal conductivity than before, and the outcome area of RF ablation can be predicted from the measurement values of effective thermal conductivity.
机译:在过去的五十年中,基于能量的生物医学应用通过使用新技术(例如RF,微波,激光和超声)取得了广泛的成功。然而,由于缺乏几乎实时且准确的温度预测,因此尚未实现基于能量的治疗在临床应用中的全部潜力。为了满足该需求,需要将组织性质的体内知识馈送到模拟处理中基本物理现象的经过实验验证的数值模型中。本文对数值和实验进行了综合研究,以开发更先进的工具,旨在解决两种典型的基于能量的生物医学应用中的若干具体问题,即热疗和射频消融。首先,开发了包括电磁和热模拟在内的综合数值模拟程序,以准确预测正在接受高温治疗的犬肿瘤的温度分布。数值参数研究表明,与灌注和其他参数相比,肿瘤的几何形状对温度场的影响更大。该数值工具被用来设计一种新型的双螺旋涂药器,它具有能量输送灵活的优点,并且该涂药器的性能已通过实验验证。为了显着减少温度预测的计算时间,我们部署了内部开发的人工神经网络软件来模拟高温治疗过程中的温度场,并验证了其预测精度。在成功开发了数字工具之后,开发了用于组织表征的微传感器。首先,开发了一种微机械电探针,用于实时局部测量组织的电导率。该探针还用于研究由温度升高引起的电导率变化。结果表明,电导率从室温到90°C翻了一番。在此之后,通过微加工制造了用于局部测量组织的热特性的新型热导探针。理论和数值分析表明,计算出的热导率仅仅是组织和基底的热导率的平均值。该探针用于研究射频消融治疗前后猪肝的导热系数的变化以及有效导热系数与射频消融面积之间的关系。结果表明,消融后的猪肝的热导率比以前略高,可以通过有效导热率的测量值来预测射频消融的结果面积。

著录项

  • 作者

    Yi, Ming.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 138 p.
  • 总页数 138
  • 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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