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首页> 外文期刊>Heat transfer >Thermal radiation and variable electrical conductivity effects on MHD peristaltic motion of Carreau nanofluids: Radiotherapy and thermotherapy of oncology treatment
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Thermal radiation and variable electrical conductivity effects on MHD peristaltic motion of Carreau nanofluids: Radiotherapy and thermotherapy of oncology treatment

机译:热辐射和可变电导率对Carreau纳米流体MHD蠕动的影响:放射治疗和肿瘤治疗的热疗

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摘要

This study intends to investigate the influences of thermal radiation and variable electrical conductivity on the MHD peristaltic flow of Carreau nanofluids as the radiotherapy and thermotherapy are required for cancer treatment. Formulation of temperature-dependent electrical conductivity is introduced for the first time in the peristaltic literature. The related equations of momentum, mass, and concentration are reformulated using lubrication approximations (ie, tiny or zero Reynolds number and long wavelength). These simplified equations are solved numerically with the aid of Parameteric-NDSolve. Results for velocity, temperature, and concentration distributions are obtained in three-dimensional analytical forms. The streamline graphs are offered in the terminus, which elucidate the trapping bolus phenomenon. A "special case" of our results offered to get the solutions over certain contours for the behaviors of velocity, temperature, and nanoparticle concentration. It is found that the magnetic nanoparticles acquire more energy at high temperature, enabling them to destroy and damage tumors tissues (thermotherapy of oncology). Radiation is the reason for spreading the energy, that is, the energy of all the fluid nanoparticles does not continue with the same value. Therefore, in cancer treatment, doctors use high doses of radiation to cure cancer cells and prevent it from returning (radiotherapy of oncology).
机译:这项研究旨在研究热辐射和可变电导率对Carreau纳米流体MHD蠕动的影响,因为癌症需要放射疗法和热疗法。在蠕动文献中首次引入了随温度变化的电导率的公式。动量,质量和浓度的相关方程式使用润滑近似公式(即,雷诺数很小或为零,而长波长则为)来重新公式化。这些简化的方程借助Parameter-NDSolve进行数值求解。速度,温度和浓度分布的结果以三维分析形式获得。在总站提供了流线图,阐明了陷药现象。我们的结果的“特殊情况”提供了关于速度,温度和纳米粒子浓度行为的某些轮廓的解决方案。发现磁性纳米颗粒在高温下获得更多的能量,从而使它们能够破坏和破坏肿瘤组织(肿瘤学的热疗法)。辐射是散布能量的原因,也就是说,所有流体纳米粒子的能量不会以相同的值连续。因此,在癌症治疗中,医生使用高剂量的放射线来治愈癌细胞并防止其复发(肿瘤放射疗法)。

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