陀螺接触生物磁对流对磁流变混合纳米流的综合影响:表面微生物生命的应用

P. Sreenivasulu, T. Poornima, B. Souayeh
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引用次数: 0

摘要

磁流变流体与自驱动的无处不在的运动生物体受到各种物理因素的影响,如流体力学、生物体的分散和分布。这些引人入胜的特性吸引我们在本文中研究卡森混合纳米流模型,探索微生物沿海绵状可延展表面的动态行为,并将欧姆加热和化学反应考虑在内。此外,还分析了热辐射以及与空间和时间相关的能量源/汇的热传导现象。纳米流以甲醇为基础,悬浮着铁和铝氧化物的混合物。采用 Runge-Kutta-Fehlberg 技术和射击法对符合数学模型的流动进行数值求解,并进行自相似性变换。各种相关参数对流动特征量和工程量的影响结果通过图表进行了描述和展示。在考虑速度时,氧化铁甲醇纳米流体显示出优于混合纳米流体,而在考虑能量时,则观察到相反的现象。混合纳米流体使表面无摩擦。微生物浓度差的改善也有助于加强运动生物的生长。
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Gyrotactic bio-magneto-convective combined impacts on magnetorheological hybrid nanoflow: Microbial life on surfaces’ application
Magnetorheological fluid with self-driven ubiquitous motile organisms was affected by various physical factors such as hydrodynamics, dispersion, and distribution of organisms. These fascinating properties attracted us to work on this paper, a Casson hybrid nanoflow model exploring the dynamic behavior of microorganisms along spongy extensible surfaces taking Ohmic heating and chemical reaction into account. Further, the heat transfer phenomena are analyzed in the presence of thermal radiation and space and time-dependent energy sources/sinks. The nanoflow has its base methanol and a mixture of iron and aluminum oxides is suspended. Flow obeying mathematical model is solved numerically using the Runge–Kutta–Fehlberg technique along with the shooting method after imposing self-similarity transformation. Results of various pertinent parameters on the flow characteristic quantities and engineering quantities are portrayed and presented through graphs and tables. Iron oxide methanol nanofluid shows supremacy over hybrid nanoflows as speed is considered, whilst the opposite phenomenon is observed in the case of energy. Hybrid nanoflow makes the surface friction-free. Microorganism concentration difference improvement also helps in the intensification of motile organism growth.
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