首页> 外文期刊>Proceedings of the National Academy of Sciences, India, Section A. Physical Sciences >Rheological Effects Due to Oscillating Field on Time Dependent Boundary Layer Flow of Magnetic Nanofluid Over a Rotating Disk
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Rheological Effects Due to Oscillating Field on Time Dependent Boundary Layer Flow of Magnetic Nanofluid Over a Rotating Disk

机译:由于振荡场流变效应与时间有关的磁边界层流动Nanofluid旋转磁盘

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abstract_textpThis study presents the rheological effects on unsteady flow of an incompressible, electrically non-conducting magnetic nanofluid due to an oscillating magnetic field. Shliomis theory has been employed to formulate the governing equations for nanofluid flow due to a disk rotation. The governing nonlinear coupled partial differential equations with the boundary conditions are transformed into a set of ordinary differential equations which are then solved by Newton's method in MATLAB. The influences of low oscillating field with different values of effective magnetization parameter and nanoparticle-size volume fraction on the velocity profiles are computed. It has been observed that the effective magnetization parameter creates an additional resistance on the axial velocity provided the applied magnetic field and vorticity of the flow are not collinear. This additional resistance becomes maximal when the applied magnetic field is perpendicular to the vorticity of the flow. Further, the axial velocity depends on the distance from the plate and not on the distance from the axis. The results are very useful in understanding the effects of viscosity variation due to the applied magnetic field and volume fraction on magnetic nanofluid based electronic devices such as damping systems, and needs further practical investigations./p/abstract_text
机译:& abstract_text & p本研究礼物对非定常流的流变的影响不可压缩,电不导电的由于振荡磁场磁nanofluid字段。制定nanofluid的控制方程由于磁盘旋转流动。非线性耦合的偏微分方程边界条件转化为一组常微分方程然后通过牛顿法在MATLAB解决。低振荡场的影响不同价值观的有效磁化参数和nanoparticle-size体积分数速度资料计算。被观察到的有效磁化在参数创建一个额外的阻力轴向速度提供了应用磁场和涡量流的不是共线。应用磁场时最大垂直于流的涡度。此外,轴向速度取决于板的距离,而不是距离从轴。理解粘度变化的影响由于应用磁场和体积分数基于磁nanofluid电子设备(如阻尼系统,和需求进一步的实践调查。;/ p & / abstract_text

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