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Published in: Lasers in Medical Science 2/2014

01-03-2014 | Original Article

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

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

Published in: Lasers in Medical Science | Issue 2/2014

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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 The optical fiber is located in the center of the vessel and is withdrawn with a pullback velocity.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.
Literature
1.
go back to reference Weiss RA (2002) Comparison of endovenous radiofrequency versus 810 nm diode laser occlusion of large veins in an animal model. Dermatol Surg 28:56–61PubMedCrossRef Weiss RA (2002) Comparison of endovenous radiofrequency versus 810 nm diode laser occlusion of large veins in an animal model. Dermatol Surg 28:56–61PubMedCrossRef
2.
go back to reference Zimmet S, Min RJ (2003) Temperature changes in perivenous tissue during endovenous laser treatment in a swine model. J Vasc Interv Radiol 14:911–915PubMedCrossRef Zimmet S, Min RJ (2003) Temperature changes in perivenous tissue during endovenous laser treatment in a swine model. J Vasc Interv Radiol 14:911–915PubMedCrossRef
3.
go back to reference Fan C-M, Anderson RR (2008) Endovenous laser ablation: mechanism of action. Phlebology 23:206–213PubMedCrossRef Fan C-M, Anderson RR (2008) Endovenous laser ablation: mechanism of action. Phlebology 23:206–213PubMedCrossRef
4.
go back to reference Disselhoff BCVM, Rem AI, Verdaasdonk RM, der Kinderen DJ, Moll FL (2008) Endovenous laser ablation: an experimental study on the mechanism of action. Phlebology 23:69–76PubMedCrossRef Disselhoff BCVM, Rem AI, Verdaasdonk RM, der Kinderen DJ, Moll FL (2008) Endovenous laser ablation: an experimental study on the mechanism of action. Phlebology 23:69–76PubMedCrossRef
5.
go back to reference van den Bos R, van Ruijven PW, van der Geld CW, van Gemert MJ, Neumann HA, Nijsten T (2012) Endovenous simulated laser experiments at 940 and 1,470 nm suggest wavelength independent temperature profiles. Eur J Vasc Endovasc Surg 44:77–81PubMedCrossRef van den Bos R, van Ruijven PW, van der Geld CW, van Gemert MJ, Neumann HA, Nijsten T (2012) Endovenous simulated laser experiments at 940 and 1,470 nm suggest wavelength independent temperature profiles. Eur J Vasc Endovasc Surg 44:77–81PubMedCrossRef
6.
go back to reference Vuylsteke ME, Mordon SR (2012) Endovenous laser ablation: a review of mechanisms of action. Ann Vasc Surg 26:424–433PubMedCrossRef Vuylsteke ME, Mordon SR (2012) Endovenous laser ablation: a review of mechanisms of action. Ann Vasc Surg 26:424–433PubMedCrossRef
7.
go back to reference Van Gemert MJC, van derGeld CWM, Bruijninckx CMA, Verdaasdonk RM, Neumann HAM (2012) Comment to Vuylsteke ME and Mordon SR. Endovenous laser ablation: a review of mechanisms of action, Ann Vasc Surg 26:424–433. Ann Vasc Surg 2012; 26:881–883 Van Gemert MJC, van derGeld CWM, Bruijninckx CMA, Verdaasdonk RM, Neumann HAM (2012) Comment to Vuylsteke ME and Mordon SR. Endovenous laser ablation: a review of mechanisms of action, Ann Vasc Surg 26:424–433. Ann Vasc Surg 2012; 26:881–883
8.
go back to reference Mordon SR, Wassmer B, Zemmouri J (2007) Mathematical modeling of 980 and 1,320-nm endovenous laser treatment. Lasers Surg Med 39:256–265PubMedCrossRef Mordon SR, Wassmer B, Zemmouri J (2007) Mathematical modeling of 980 and 1,320-nm endovenous laser treatment. Lasers Surg Med 39:256–265PubMedCrossRef
9.
go back to reference Meissner OA, Schmedt C-G, Hunger K, Hetterich H, Sroka R, Rieber J, Babaryka G, Steckmeier BM, Reiser M, Siebert U, Mueller-Lisse U (2007) Endovascular optical coherence tomography ex vivo: venous wall anatomy and tissue alterations after endovenous therapy. Eur Radiol 17:2384–2393PubMedCrossRef Meissner OA, Schmedt C-G, Hunger K, Hetterich H, Sroka R, Rieber J, Babaryka G, Steckmeier BM, Reiser M, Siebert U, Mueller-Lisse U (2007) Endovascular optical coherence tomography ex vivo: venous wall anatomy and tissue alterations after endovenous therapy. Eur Radiol 17:2384–2393PubMedCrossRef
10.
go back to reference Verdaasdonk RM, Holstege FC, Jansen ED, Borst C (1991) Temperature along the surface of modified fiber tips for Nd:YAG laser angioplasty. Lasers Surg Med 11:213–222PubMedCrossRef Verdaasdonk RM, Holstege FC, Jansen ED, Borst C (1991) Temperature along the surface of modified fiber tips for Nd:YAG laser angioplasty. Lasers Surg Med 11:213–222PubMedCrossRef
11.
go back to reference van den Bos RR, Kockaert MA, Neumann HAM, Bremmer RH, Nijsten T, van Gemert MJC (2009) Heat conduction from the very hot fiber tip contributes to endovenous laser ablation of varicose veins. Lasers Med Sci 24:247–251, Erratum 2009; 24:679PubMedCrossRef van den Bos RR, Kockaert MA, Neumann HAM, Bremmer RH, Nijsten T, van Gemert MJC (2009) Heat conduction from the very hot fiber tip contributes to endovenous laser ablation of varicose veins. Lasers Med Sci 24:247–251, Erratum 2009; 24:679PubMedCrossRef
12.
go back to reference Amzayyb M, van den Bos RR, Kodach VM, de Bruin DM, Nijsten T, Neumann HAM, van Gemert MJC (2010) Carbonized blood deposited on fibers during 810, 940, and 1,470 nm endovenous laser ablation: thickness and absorption by optical coherence tomography. Lasers Med Sci 25:439–447PubMedCentralPubMedCrossRef Amzayyb M, van den Bos RR, Kodach VM, de Bruin DM, Nijsten T, Neumann HAM, van Gemert MJC (2010) Carbonized blood deposited on fibers during 810, 940, and 1,470 nm endovenous laser ablation: thickness and absorption by optical coherence tomography. Lasers Med Sci 25:439–447PubMedCentralPubMedCrossRef
13.
go back to reference Star WM (2011) Diffusion theory of light transport. In Welch AJ and van Gemert MJC (eds) Optical-thermal response of laser-irradiated tissue. 2nd edition. Springer, Dordrecht, The Netherlands, Chapter 6, Equation (6.104), page 183 Star WM (2011) Diffusion theory of light transport. In Welch AJ and van Gemert MJC (eds) Optical-thermal response of laser-irradiated tissue. 2nd edition. Springer, Dordrecht, The Netherlands, Chapter 6, Equation (6.104), page 183
14.
go back to reference Kuenstner JT, Norris KH (1994) Spectrophotometry of human hemoglobin in the near infrared region from 1,000 to 2,500 nm. J Near Infrared Spectrosc 2:59–65CrossRef Kuenstner JT, Norris KH (1994) Spectrophotometry of human hemoglobin in the near infrared region from 1,000 to 2,500 nm. J Near Infrared Spectrosc 2:59–65CrossRef
15.
go back to reference Carslaw HS, Jaeger JC (1986) Conduction of heat in solids, 2nd edition, reprint. Clarendon, Oxford Carslaw HS, Jaeger JC (1986) Conduction of heat in solids, 2nd edition, reprint. Clarendon, Oxford
16.
go back to reference Nogotov EF (1978) Applications of numerical heat transfer. McGraw-Hill, New York Nogotov EF (1978) Applications of numerical heat transfer. McGraw-Hill, New York
Metadata
Title
Optical-thermal mathematical model for endovenous laser ablation of varicose veins
Authors
Peter W. M. van Ruijven
Anna A. Poluektova
Martin J. C. van Gemert
H. A. Martino Neumann
Tamar Nijsten
Cees W. M. van der Geld
Publication date
01-03-2014
Publisher
Springer London
Published in
Lasers in Medical Science / Issue 2/2014
Print ISSN: 0268-8921
Electronic ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-013-1451-x

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