首页> 外文期刊>International journal of hyperthermia: The official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group >The effect of magnetic nanoparticle dispersion on temperature distribution in a spherical tissue in magnetic fluid hyperthermia using the lattice Boltzmann method
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The effect of magnetic nanoparticle dispersion on temperature distribution in a spherical tissue in magnetic fluid hyperthermia using the lattice Boltzmann method

机译:晶格玻尔兹曼法研究磁性纳米粒子分散对磁流体热疗中球形组织温度分布的影响

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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.
机译:在磁流体热疗(MFH)用于癌症治疗的临床应用中,确保最大程度地破坏肿瘤并保护正常组织非常重要。肿瘤中磁性纳米颗粒(MNP)产生的加热模式与MNP的分散密切相关。在这项研究中,已经研究了在MFH期间MNP分散对肿瘤和周围健康组织中温度分布的影响。因此,已经解决了具有Neumann弯曲边界条件的球形组织中的Pennes生物热方程(BHE)。已经考虑了在交变磁场中将血液灌注,代谢热产生以及MNP散热作为源项的影响。为了解决Pennes BHE,已经使用了三维格子Boltzmann方法(LBM)。为了显示模型的准确性,已将仿真与文献报道的分析,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,即比吸收率(SAR)的均匀分布和高斯分布。结果表明,对于所研究的病例,与均质分布不同,SAR的高斯分布能够将肿瘤细胞的温度升高至治疗温度以上。

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