Casson Hybrid Nanofluids Flow Over a Riga Plate for the Drug Delivery Applications with Double Diffusion

A. Alnahdi, T. Gul
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Abstract

Casson fluid-mediated hybrid nanofluids are more effective at transferring heat than traditional heat transfer fluids in terms of thermal conductivity. Heat exchangers, cooling systems, and other thermal management systems are ideal for the use of Casson fluid. Controlling medication flow and release with precision is necessary when using Casson fluids in drug delivery systems because of their unique rheological properties. Nanotechnology involves the creation of nanoparticles that are loaded with drugs and distributed in Casson fluid-based carriers for targeted delivery. To create a hybrid nanofluid in this study, both single-walled carbon nanotubes (SWCNTs) and multi-walled carbon nanotubes (MWCNTs) are dispersed in the Casson fluid with Fourier's and Fick's laws assumptions. The Casson fluid is suitable for various engineering and medical applications due to the enhancement of heat transfer and thermal conductivity by carbon nanotubes. Our objective is to understand how SWCNTs and MWCNTs impact the flow field by studying the flow behavior of the Casson hybrid nanofluid when it is stretched against a Riga plate. The DarcyForchheimer model is also used to account for the impact of the porous medium near the stretching plate. Both linear and quadratic drag terms are taken into account in this model to accurately predict the flow behavior of the nanofluid. In addition, the homotopy analysis method (HAM) is utilized to address the model problem. The outcomes are discussed and deliberated based on drug delivery applications. These findings shed valuable light on the flow characteristics of the Casson hybrid nanofluid comprised of SWCNTs and MWCNTs.It is observed that the incorporation of CNTs makes the nanofluid a promising candidate for medical applications due to its improved heat transfer properties.
卡松混合纳米流体在里加板上的流动,用于双重扩散的药物输送应用
卡松流体介导的混合纳米流体在热传导方面比传统导热流体更有效。热交换器、冷却系统和其他热管理系统都非常适合使用卡松流体。由于卡松流体具有独特的流变特性,因此在给药系统中使用卡松流体时,必须精确控制药物的流动和释放。纳米技术包括制造纳米颗粒,这些颗粒装载药物并分布在卡松流体载体中,以实现定向给药。在本研究中,为了创建混合纳米流体,单壁碳纳米管(SWCNTs)和多壁碳纳米管(MWCNTs)在傅里叶和菲克定律的假设下被分散在卡松流体中。由于碳纳米管增强了传热和导热性能,卡松流体适用于各种工程和医疗应用。我们的目的是通过研究卡松混合纳米流体对里加板拉伸时的流动行为,了解 SWCNT 和 MWCNT 如何影响流场。达西-福克海默(DarcyForchheimer)模型也用于解释拉伸板附近多孔介质的影响。该模型考虑了线性和二次阻力项,以准确预测纳米流体的流动行为。此外,还采用了同调分析方法(HAM)来解决模型问题。研究结果基于药物输送应用进行了讨论和审议。这些发现对由 SWCNTs 和 MWCNTs 组成的 Casson 混合纳米流体的流动特性提供了宝贵的启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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