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Modeling photocoagulation of the prostate during exposure to laser radiation.

机译:在暴露于激光辐射期间模拟前列腺的光凝。

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摘要

Laser prostatectomy is an alternative to conventional surgical resection for the treatment of benign prostatic hyperplasia. This work involves the development of a three-dimensional finite element model to predict temperature distributions, and tissue damage in laser irradiated prostate tissue. The model solves Penne's bio-heat transfer equation with the addition of a heat source term due to the absorption of light from a scanning Gaussian profile laser beam. Experiments were conducted to measure the optical and thermal properties of canine prostate tissue, and to determine the effects of thermal coagulation of the tissue on these properties. The optical absorption and anisotropy coefficients were found to decrease slightly with increasing exposure temperature up to 65{dollar}spcirc{dollar}C, then increased sharply. Scattering coefficients increased slowly from baseline temperatures to 60{dollar}spcirc,{dollar} followed by a sharp increase between 60{dollar}spcirc{dollar} and 70{dollar}spcirc{dollar}C. The thermal conductivity, density, and heat capacity of canine prostate tissue did not change significantly during tissue coagulation. Quantitative measurements of prostatic blood flow were obtained before, during, and after laser irradiation using the radiolabeled microsphere technique. An increase in total prostatic blood flow (ml{dollar}cdot{dollar}min{dollar}sp{lcub}-1{rcub}{lcub}cdot{rcub}gsp{lcub}-1{rcub}){dollar} from 0.17 {dollar}pm{dollar} 0.03 to 0.38 {dollar}pm{dollar} 0.03 occurred during laser irradiation, then returned to 0.24 {dollar}pm{dollar} 0.04 twenty minutes later. Heterogeneity of flow during laser exposure was evident in the formation of three distinct radial regions; a zero flow coagulated zone, a high flow hyperemic ring, and a normal flow undamaged region. A finite element model was then used to investigate the effects that dynamic optical properties and blood perfusion have on the resulting temperature distributions. Char formation and tissue ablation were not accounted for in the simulations. Results indicated that rapid changes in optical scattering decrease the volume of tissue coagulated by laser exposure, and that blood perfusion has little to no effect on temperature distributions in the prostate. Comparison of the theoretical model with experimental data demonstrated that depth of coagulation along the central axis of the beam could be estimated accurately. However, simulated temperature distributions were inaccurate due to the inability to simulate the beam profile of the laser fiber used in the experiments. Further development of the model may aid in the analysis of commercial laser delivery devices, as well as in the evaluation of various strategies for the treatment of BPH.
机译:激光前列腺切除术是治疗良性前列腺增生的常规外科手术的替代选择。这项工作涉及到三维有限元模型的开发,以预测温度分布以及激光照射的前列腺组织中的组织损伤。该模型解决了Penne的生物传热方程,并增加了热源项,这是由于扫描高斯轮廓激光束吸收了光。进行实验以测量犬前列腺组织的光学和热性质,并确定组织的热凝结对这些性质的影响。发现光吸收和各向异性系数随着暴露温度升高至65℃而略微降低,然后急剧增加。散射系数从基线温度缓慢升高到60摄氏度,然后在60摄氏度和70摄氏度之间急剧增加。犬前列腺组织的热导率,密度和热容量在组织凝结过程中没有显着变化。使用放射性标记微球技术在激光照射之前,期间和之后获得前列腺血流的定量测量。总前列腺血流量增加(ml {dollar} cdot {dollar} min {dollar} sp {lcub} -1 {rcub} {lcub} cdot {rcub} gsp {lcub} -1 {rcub}){dollar}在激光照射期间发生0.17 {pm}美元{dollar} 0.03至0.38 {dollar} pm {dollar} 0.03,然后在二十分钟后恢复到0.24 {dollar} pm {dollar} 0.04。激光暴露过程中流动的异质性在三个不同的径向区域的形成中很明显。零流量凝结区,高流量充血环和正常流量未损坏区域。然后使用有限元模型研究动态光学特性和血液灌注对所得温度分布的影响。在模拟中未考虑炭形成和组织消融。结果表明,光散射的快速变化减少了激光照射所凝结的组织的体积,血液灌注对前列腺中的温度分布几乎没有影响。理论模型与实验数据的比较表明,可以精确估计沿光束中心轴的凝结深度。但是,由于无法模拟实验中使用的激光光纤的光束轮廓,因此模拟的温度分布不准确。该模型的进一步开发可能有助于分析商用激光传输设备,以及评估各种治疗BPH的策略。

著录项

  • 作者

    Nau, William Henry, Jr.;

  • 作者单位

    Vanderbilt University.;

  • 授予单位 Vanderbilt University.;
  • 学科 Engineering Biomedical.; Health Sciences Medicine and Surgery.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 155 p.
  • 总页数 155
  • 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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