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组织激光凝固中的动态热响应与损伤

Kinetic thermal response and damage in laser coagulation of tissue.

作者信息

Zhu Dan, Luo Qingming, Zhu Guangming, Liu Wei

机构信息

The Key Laboratory of Biomedical Photonics Ministry of Education, Huazhong University of Science and Technology, Wuhan, 430074, People's Republic of China.

出版信息

Lasers Surg Med. 2002;31(5):313-21. doi: 10.1002/lsm.10108.

Abstract

BACKGROUND AND OBJECTIVES

Laser induced interstitial coagulation has become a method of treating different types of tumors. Theoretical modeling and analysis may be used to better understand the complex process involved in the laser coagulation and optimized the dosimetry of laser thermotherapy.

STUDY DESIGN/MATERIALS AND METHODS: A full dynamic theoretical model was developed to simulate the dynamic evolution of coagulation in tissue, which accounted for the dynamics of the temperature and damage dependence of optical properties, thermal properties, and blood-perfusion rate. The simulation of the temperature distribution, coagulation depth and its hysteresis during laser thermotherapy for full-dynamic model are compared with the calculations from other models.

RESULTS

Increased scattering in the near surface of applicator prevents light penetration into deeper region. Moreover, rise in temperature increases both blood flow at the periphery of coagulation region and thermal properties, which reduces the damage depth and its hysteresis. It results in a considerable overestimation of the temperature distribution and damage depth ignoring the dynamic of optical properties. The coagulation would be limited in a smaller region and there is no hysteresis if blood perfusion is regarded as a constant. In contrast, the hysteresis is overestimated if blood perfusion is ignored. Ignoring the dynamics of thermal parameters, there is also overestimation of the rise in temperature and damage depth.

CONCLUSIONS

Mathematical modeling techniques that simulate laser coagulation may not provide reliable information unless they take into account these dynamic parameters.

摘要

背景与目的

激光诱导间质凝固术已成为治疗不同类型肿瘤的一种方法。理论建模与分析可用于更好地理解激光凝固过程中涉及的复杂过程,并优化激光热疗的剂量测定。

研究设计/材料与方法:开发了一个完整的动态理论模型来模拟组织中凝固的动态演变,该模型考虑了光学特性、热特性和血液灌注率的温度和损伤依赖性动态。将全动态模型在激光热疗期间的温度分布、凝固深度及其滞后现象的模拟结果与其他模型的计算结果进行了比较。

结果

敷贴器近表面散射增加会阻止光线穿透到更深区域。此外,温度升高会增加凝固区域周边的血流量以及热特性,这会减小损伤深度及其滞后现象。忽略光学特性的动态变化会导致对温度分布和损伤深度的显著高估。如果将血液灌注视为常数,凝固将局限在较小区域且不存在滞后现象。相反,如果忽略血液灌注,则会高估滞后现象。忽略热参数的动态变化,也会高估温度升高和损伤深度。

结论

模拟激光凝固的数学建模技术可能无法提供可靠信息,除非考虑这些动态参数。

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