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静脉曲张腔内激光消融的光热数学模型

Optical-thermal mathematical model for endovenous laser ablation of varicose veins.

作者信息

van Ruijven Peter W M, Poluektova Anna A, van Gemert Martin J C, Neumann H A Martino, Nijsten Tamar, van der Geld Cees W M

机构信息

Department of Mechanical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.

出版信息

Lasers Med Sci. 2014 Mar;29(2):431-9. doi: 10.1007/s10103-013-1451-x. Epub 2013 Oct 9.

DOI:10.1007/s10103-013-1451-x
PMID:24105397
Abstract

Endovenous laser ablation (EVLA) is successfully used to treat varicose veins. However, the exact working mechanism is still not fully identified and the clinical procedure is not yet standardized. Mathematical modeling of EVLA could strongly improve our understanding of the influence of the various EVLA processes. The aim of this study is to combine Mordon's optical-thermal model with the presence of a strongly absorbing carbonized blood layer on the fiber tip. The model anatomy includes a cylindrically symmetric blood vessel surrounded by an infinite homogenous perivenous tissue. The optical fiber is located in the center of the vessel and is withdrawn with a pullback velocity. The fiber tip includes a small layer of strongly absorbing material, representing the layer of carbonized blood, which absorbs 45% of the emitted laser power. Heat transfer due to boiling bubbles is taken into account by increasing the heat conduction coefficient by a factor of 200 for temperatures above 95 °C. The temperature distribution in the blood, vessel wall, and surrounding medium is calculated from a numerical solution of the bioheat equation. The simulations were performed in MATLAB™ and validated with the aid of an analytical solution. The simulations showed, first, that laser wavelength did virtually not influence the simulated temperature profiles in blood and vessel wall, and, second, that temperatures of the carbonized blood layer varied slightly, from 952 to 1,104 °C. Our improved mathematical optical-thermal EVLA model confirmed previous predictions and experimental outcomes that laser wavelength is not an important EVLA parameter and that the fiber tip reaches exceedingly high temperatures.

摘要

腔内激光消融术(EVLA)已成功用于治疗静脉曲张。然而,其确切的工作机制仍未完全明确,临床操作也尚未标准化。EVLA的数学建模可以极大地增进我们对各种EVLA过程影响的理解。本研究的目的是将莫尔东的光热模型与光纤尖端存在强吸收性碳化血层相结合。模型解剖结构包括一个被无限均匀的静脉周围组织包围的圆柱对称血管。光纤位于血管中心,并以回撤速度抽出。光纤尖端包括一小层强吸收材料,代表碳化血层,其吸收45%的发射激光功率。对于温度高于95°C的情况,通过将热传导系数提高200倍来考虑沸腾气泡引起的热传递。根据生物热方程的数值解计算血液、血管壁和周围介质中的温度分布。模拟在MATLAB™中进行,并借助解析解进行验证。模拟结果首先表明,激光波长实际上对血液和血管壁中模拟的温度分布没有影响,其次表明碳化血层的温度略有变化,从952°C到1104°C。我们改进的数学光热EVLA模型证实了先前的预测和实验结果,即激光波长不是一个重要的EVLA参数,并且光纤尖端会达到极高的温度。

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本文引用的文献

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Endovenous simulated laser experiments at 940 nm and 1470 nm suggest wavelength-independent temperature profiles.940nm 和 1470nm 静脉内模拟激光实验表明,温度分布与波长无关。
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Endovenous laser ablation: a review of mechanisms of action.腔内激光消融:作用机制综述
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[Endovenous ablation of saphenous vein varicosis].[大隐静脉曲张的静脉腔内消融术]
Wien Med Wochenschr. 2016 Jun;166(9-10):297-301. doi: 10.1007/s10354-016-0464-z. Epub 2016 Jun 13.
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Mathematical modeling of radiofrequency ablation for varicose veins.静脉曲张射频消融的数学建模
Comput Math Methods Med. 2014;2014:485353. doi: 10.1155/2014/485353. Epub 2014 Dec 18.
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Ins and outs of endovenous laser ablation: afterthoughts.静脉内激光消融的来龙去脉:反思
Lasers Med Sci. 2014 Mar;29(2):513-8. doi: 10.1007/s10103-013-1499-7. Epub 2014 Jan 8.
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Endovenous laser ablation (EVLA): a review of mechanisms, modeling outcomes, and issues for debate.静脉腔内激光消融术(EVLA):作用机制、模拟结果及争议问题综述
Lasers Med Sci. 2014 Mar;29(2):393-403. doi: 10.1007/s10103-013-1480-5. Epub 2013 Dec 24.
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Commonly used fiber tips in endovenous laser ablation (EVLA): an analysis of technical differences.腔内激光消融术(EVLA)中常用的光纤尖端:技术差异分析
Lasers Med Sci. 2014 Mar;29(2):501-7. doi: 10.1007/s10103-013-1475-2. Epub 2013 Dec 13.
10
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Lasers Med Sci. 2014 Mar;29(2):441-52. doi: 10.1007/s10103-013-1450-y. Epub 2013 Oct 9.
Ann Vasc Surg. 2012 Apr;26(3):424-33. doi: 10.1016/j.avsg.2011.05.037. Epub 2012 Feb 3.
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Lasers Med Sci. 2010 May;25(3):439-47. doi: 10.1007/s10103-009-0749-1. Epub 2010 Feb 10.
5
Heat conduction from the exceedingly hot fiber tip contributes to the endovenous laser ablation of varicose veins.来自极热光纤尖端的热传导有助于静脉曲张的静脉内激光消融。
Lasers Med Sci. 2009 Mar;24(2):247-51. doi: 10.1007/s10103-008-0639-y. Epub 2009 Feb 14.
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Endovenous laser ablation: mechanism of action.静脉腔内激光消融:作用机制
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Endovenous laser ablation: an experimental study on the mechanism of action.静脉内激光消融:作用机制的实验研究
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Endovascular optical coherence tomography ex vivo: venous wall anatomy and tissue alterations after endovenous therapy.血管内光学相干断层扫描离体研究:静脉腔内治疗后静脉壁解剖结构及组织改变
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