Numerical Simulation of Effects of Bioheat Transfer Characteristics of Malignant Melanoma on Thermal Conductivity Measurements.

Q3 Engineering
Takahiro Okabe, Junnosuke Okajima, Taku Fujimura, Setsuya Aiba, Shigenao Maruyama
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引用次数: 1

Abstract

In our previous study, we successfully detected a difference in the effective thermal conductivity between an invasive melanoma lesion and healthy skin, through clinical experiments conducted on melanoma patients. We found that the effective thermal conductivity of the lesions correlated with the tumor thickness, suggesting that it may be correlated with the prognostic risk of melanoma. However, the bioheat transfer mechanisms of the correlation remained unknown. The aim of this study was to numerically investigate the effects of the bioheat transfer characteristics of malignant melanoma on thermal conductivity measurements and explore the cause of the difference in the effective thermal conductivity between lesions and healthy skin. We used two different bioheat transfer models, the Pennes model and local thermal nonequilibrium model, and investigated the cause of the aforementioned differences by varying the bioheat transfer parameters associated with the thermophysical properties and blood flow of a tumor. The calculation results indicated that the contribution of the blood flow can be dominant in a measurement comprising the use of a guard-heated thermistor probe. Therefore, we found that it is necessary to take into consideration the contribution of the convective term to the effective thermal conductivity of the lesion in order to explain the clinical data of a Stage IV invasive melanoma.

恶性黑色素瘤生物传热特性对导热系数测量影响的数值模拟。
在我们之前的研究中,我们通过对黑色素瘤患者的临床实验,成功检测了侵袭性黑色素瘤病变与健康皮肤的有效导热系数差异。我们发现病灶的有效热导率与肿瘤厚度相关,提示其可能与黑色素瘤的预后风险相关。然而,这种相关性的生物传热机制尚不清楚。本研究旨在数值研究恶性黑色素瘤的生物传热特性对热导率测量的影响,并探讨病变皮肤与健康皮肤有效热导率差异的原因。采用Pennes模型和局部热不平衡模型两种不同的生物传热模型,通过改变与肿瘤热物性和血流相关的生物传热参数,探讨了上述差异的原因。计算结果表明,在包括使用保护加热热敏电阻探头的测量中,血流的贡献可以占主导地位。因此,我们发现有必要考虑对流项对病变有效热导率的贡献,以解释IV期侵袭性黑色素瘤的临床数据。
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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来源期刊
Critical Reviews in Biomedical Engineering
Critical Reviews in Biomedical Engineering Engineering-Biomedical Engineering
CiteScore
1.80
自引率
0.00%
发文量
25
期刊介绍: Biomedical engineering has been characterized as the application of concepts drawn from engineering, computing, communications, mathematics, and the physical sciences to scientific and applied problems in the field of medicine and biology. Concepts and methodologies in biomedical engineering extend throughout the medical and biological sciences. This journal attempts to critically review a wide range of research and applied activities in the field. More often than not, topics chosen for inclusion are concerned with research and practice issues of current interest. Experts writing each review bring together current knowledge and historical information that has led to the current state-of-the-art.
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