正弦磁场对非对称通道中触变性流体和牛顿流体生物蠕动泵送过程中复杂波传播的影响

Q1 Chemical Engineering
Asha Kotnurkar , Santosh Gowda , Mahadev Channakote
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引用次数: 0

摘要

本研究对剪切稀薄触变性流体在随时间变化的正弦磁场和浮力作用下在不对称通道内的蠕动流进行了新颖的研究,填补了一项明显的研究空白。该研究结合了多孔介质中的化学反应和双重扩散效应,同时分析了复杂波浪形通道中的传热速率。对动量方程进行了修改,加入了正弦磁力,并使用长波长和极小雷诺数假设简化了控制方程。考虑了通道壁上错综复杂的波浪模式,并对数学模型进行了非尺寸化处理,采用同调扰动法进行求解。计算结果表明,随着哈特曼数的增加,通道附近的速度会降低,而达西数的影响则相反。温度随着杜富尔数和化学反应参数的增加而升高,而浓度则随着索雷特数的增加在通道左侧增加,在右侧减少。与牛顿流体相比,非牛顿流体的速度梯度更陡峭,杜富尔数越高,质量和热量传递之间的联系越紧密。正弦磁场对非牛顿流体有显著影响,导致速度、温度和浓度曲线增强。值得注意的是,非正弦磁场比正弦磁场更有优势,它对流体流动产生的阻力影响比正弦磁场大 23%,温度上升 113%,表明热能传递得到改善。这一创新的数学模型探索了触变性流体在化学过程和复杂波传播下的独特行为,重点是流体结构参数。研究结果有望应用于医疗机制,如定制药物输送,并有助于在正弦磁力作用下调节泵送系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of sinusoidal magnetic field on complex wave propagation in biomimetic peristaltic pumping of thixotropic and Newtonian fluids in an asymmetric channel
This study presents a novel investigation into the peristaltic flow of shear-thinning thixotropic fluid within an asymmetric channel under a time-dependent sinusoidal magnetic field and buoyancy force, addressing a distinct research gap. The study incorporates the effects of chemical reactions and double diffusion within a porous medium while analyzing the heat transfer rate in a complex wavy channel. The momentum equations are modified to include sinusoidal magnetic forces, and the governing equations are simplified using the assumptions of a long wavelength and a very small Reynolds number. The intricate wave pattern at the channel walls is considered and the mathematical model is non-dimensionalized and solved by using the Homotopy Perturbation approach. Computational findings reveal that velocity decreases near the channel as the Hartmann number increases, whereas the Darcy number has the opposite effect. Temperature rises with increasing Dufour number and chemical reaction parameters, while concentration increases on the left side of the channel and decreases on the right as the Soret number grows. The velocity gradient is steeper for non-Newtonian fluids compared to Newtonian fluids, and higher Dufour numbers enhance the connection between mass and heat transfer. The sinusoidal magnetic field significantly influences non-Newtonian fluids, leading to enhanced velocity, temperature, and concentration profiles. Notably, the non-sinusoidal magnetic field exhibits advantages over its sinusoidal counterpart, generating 23 % more robust drag impact on fluid flow and a 113 % rise in temperature, indicating improved thermal energy transfer. This innovative mathematical model explores the unique behavior of thixotropic fluid under chemical processes and complex wave propagation, focusing on structural fluid parameters. The findings have potential applications in medical mechanisms, such as tailored drug delivery, and may aid in regulating pumping systems under sinusoidal magnetic forces.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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