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Physical mechanism and modeling of heat generation and transfer in magnetic fluid hyperthermia through Néelian and Brownian relaxation: a review

机译:Néelian和Brownian弛豫在磁流体高温中生热和传热的物理机理和模型:综述

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摘要

Current clinically accepted technologies for cancer treatment still have limitations which lead to the exploration of new therapeutic methods. Since the past few decades, the hyperthermia treatment has attracted the attention of investigators owing to its strong biological rationales in applying hyperthermia as a cancer treatment modality. Advancement of nanotechnology offers a potential new heating method for hyperthermia by using nanoparticles which is termed as magnetic fluid hyperthermia (MFH). In MFH, superparamagnetic nanoparticles dissipate heat through Néelian and Brownian relaxation in the presence of an alternating magnetic field. The heating power of these particles is dependent on particle properties and treatment settings. A number of pre-clinical and clinical trials were performed to test the feasibility of this novel treatment modality. There are still issues yet to be solved for the successful transition of this technology from bench to bedside. These issues include the planning, execution, monitoring and optimization of treatment. The modeling and simulation play crucial roles in solving some of these issues. Thus, this review paper provides a basic understanding of the fundamental and rationales of hyperthermia and recent development in the modeling and simulation applied to depict the heat generation and transfer phenomena in the MFH.
机译:当前临床上公认的用于癌症治疗的技术仍然具有局限性,这导致了对新治疗方法的探索。自过去的几十年以来,由于热疗在将热疗作为癌症治疗手段中应用的强大生物学原理,引起了研究者的关注。纳米技术的进步通过使用被称为磁性流体高温(MFH)的纳米粒子,为高温提供了一种潜在的新加热方法。在MFH中,超顺磁性纳米粒子在交变磁场存在下通过Néelian和Brownian弛豫消散热量。这些颗粒的加热能力取决于颗粒的性质和处理设置。进行了许多临床前和临床试验,以测试这种新型治疗方法的可行性。成功地将该技术从工作台过渡到床头,仍然有待解决的问题。这些问题包括治疗的计划,执行,监控和优化。建模和仿真在解决这些问题中起着至关重要的作用。因此,这篇综述文章对热疗的基本原理和基本原理以及用于描述MFH中的热量产生和传递现象的建模和仿真的最新进展提供了基本的了解。

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