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CFD ANALYSIS OF DRUG CARRYING MAGNETIC NANOCOMPOSITE CARRIERS UNDER MAGNETIC FIELDS

机译:磁场下药物携带磁性纳米复合材料载体的CFD分析

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Recently, magnetic targeted drug delivery has been focused on the efficiency of magnetic nanoparticles (MNP) encapsulated in polymeric materials and drug molecules. The MNP can be introduced into the blood stream intravenously and be guided to the target site by the use of a magnetic field. The ability of the therapeutic agents to access the target site effectively depends on physicochemical properties of the drug loaded MNP, field strength and geometry, depth of the target tissue, rate of blood flow and vascular supply. A computational fluid dynamics (CFD) approach is utilized in this study to understand the fluid flow mechanism of MNP introduced in the blood vessel in the presence of a magnetic field. The effect of magnetic capture on the flow characteristics of the blood was investigated. CFD technique may offer insight into the mechanism of time-varying fluid flow in human arteries. This knowledge can be harnessed to improve magnetic capture and drug efficiency. The focus of this study is on how the size of the blood vessels, the strength of the magnetic field, and the velocity of the fluid within the vessels affect the delivery of the therapeutic agents. The results would be useful for the biomedical and pharmaceutical industries.
机译:近来,磁性靶向药物递送已经集中于封装在聚合物材料和药物分子中的磁性纳米颗粒(MNP)的效率。可以将MNP静脉内导入血流中,并通过使用磁场将其引导至目标部位。治疗剂有效进入靶位的能力取决于载药的MNP的理化性质,场强和几何形状,靶组织的深度,血流速率和血管供应。在这项研究中使用了一种计算流体动力学(CFD)方法,以了解在存在磁场的情况下引入血管的MNP的流体流动机理。研究了磁捕获对血液流动特性的影响。 CFD技术可以洞察人体动脉中时变流体流动的机理。可以利用这些知识来改善磁捕获和药物效率。这项研究的重点是血管的大小,磁场强度以及血管内流体的速度如何影响治疗剂的输送。该结果对于生物医学和制药工业将是有用的。

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