Laser-Induced Thermal Treatment of Superficial Human Tumors: An Advanced Heating Strategy and Non-Arrhenius Law for Living Tissues

L. Dombrovsky
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引用次数: 9

Abstract

The most interesting, but insufficiently known results obtained by the author in modeling laser-induced hyperthermia of human tumors are discussed. It is important that the traditional equation for the local bio-heat transfer does not work in superficial layers of the body. It is shown also that the classical Arrhenius law is not applicable to living tissues because of the tissue regeneration due to oxygen supplied by the arterial blood. The latter is one of the main reasons of the suggested strategy of laser heating of tumors in the therapeutic window of semitransparency when the tumor asphyxiation is considered as one of important weapons against the cancer. The other advantages of this advanced strategy of a soft thermal treatment (in few of sessions), which is painless for patients, are discussed as well. Some features of modeling various heat transfer modes are also considered. The best choice between the simplest differential models for the radiative transfer calculations is dependent of the particular problem statement. The known finite-difference or finite element algorithms can be preferable in solving transient heat transfer problems. As a rule, it depends on the shape of the computational region. It is expected that this paper will help the colleagues to overcome some typical weaknesses of computational modeling of infrared photothermal treatment of superficial tumors.
激光诱导人体浅表肿瘤的热治疗:活体组织的先进加热策略和非阿伦尼乌斯定律
讨论了作者在模拟人类肿瘤的激光诱导热疗中获得的最有趣但未知的结果。重要的是,传统的局部生物传热方程在身体的表层不起作用。还表明,经典的阿伦尼斯定律不适用于活组织,因为组织再生是由动脉血液供应的氧气引起的。后者是当肿瘤窒息被认为是对抗癌症的重要武器之一时,在半透明的治疗窗口中提出激光加热肿瘤的策略的主要原因之一。还讨论了这种先进的软热治疗策略(在少数疗程中)的其他优点,这种策略对患者来说是无痛的。还考虑了各种传热模式建模的一些特点。辐射传输计算的最简单微分模型之间的最佳选择取决于特定的问题陈述。已知的有限差分或有限元算法在解决瞬态传热问题时可能是优选的。通常,它取决于计算区域的形状。预计本文将帮助同事们克服浅表肿瘤红外光热治疗计算建模的一些典型弱点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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