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磁场纳米粒子分散对磁流体热疗中球形组织内温度分布的影响:格子玻尔兹曼方法的应用。

The effect of magnetic nanoparticle dispersion on temperature distribution in a spherical tissue in magnetic fluid hyperthermia using the lattice Boltzmann method.

机构信息

Mechanical Engineering Faculty, Shiraz University, Shiraz, Iran.

出版信息

Int J Hyperthermia. 2011;27(3):266-74. doi: 10.3109/02656736.2010.519370.

Abstract

In clinical applications of magnetic fluid hyperthermia (MFH) for cancer treatment it is very important to ensure maximum damage to the tumour while protecting the normal tissue. The resultant heating pattern by magnetic nanoparticles (MNPs) in the tumour is closely related to the dispersion of MNPs. In this study the effect of MNPs dispersion on temperature distribution in a tumour and surrounding healthy tissue, during MFH, has been investigated. Accordingly, the Pennes bio-heat equation (BHE) in a spherical tissue with Neumann curved boundary condition has been resolved. The effects of blood perfusion, metabolism heat generation as well as MNPs heat dissipation in an alternating magnetic field as source term, have been considered. To solve the Pennes BHE, the three dimensional lattice Boltzmann method (LBM) has been used. To show the accuracy of the model, simulations have been compared with analytical, experimental and numerical results, reported in the literature. Then, temperature distribution within tissue has been investigated in two cases, homogeneous distribution and Gaussian distribution of specific absorption rate (SAR). Results showed that for the studied cases, unlike homogeneous distribution, Gaussian distribution of SAR is able to raise the temperature of tumour cells above the treatment temperature.

摘要

在磁流体热疗(MFH)应用于癌症治疗的临床实践中,确保最大限度地破坏肿瘤而同时保护正常组织是非常重要的。肿瘤中磁性纳米粒子(MNPs)的加热模式与 MNPs 的分散密切相关。在这项研究中,研究了 MFH 过程中 MNPs 分散对肿瘤和周围健康组织温度分布的影响。为此,解决了具有 Neumann 曲线边界条件的球形组织中的 Pennes 生物传热方程(BHE)。考虑了血液灌注、代谢热生成以及交变磁场中 MNPs 的热耗散作为源项的影响。为了解决 Pennes BHE,使用了三维晶格玻尔兹曼方法(LBM)。为了证明模型的准确性,将模拟结果与文献中报道的分析、实验和数值结果进行了比较。然后,在两种情况下研究了组织内的温度分布,即均匀分布和比吸收率(SAR)的高斯分布。结果表明,对于所研究的情况,与均匀分布不同,SAR 的高斯分布能够将肿瘤细胞的温度升高到治疗温度以上。

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