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首页> 外文期刊>Chemical engineering journal >Controlling lateral nanomixing and velocity profile of dilute ferrofluid capillary flows in uniform stationary, oscillating and rotating magnetic fields
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Controlling lateral nanomixing and velocity profile of dilute ferrofluid capillary flows in uniform stationary, oscillating and rotating magnetic fields

机译:在均匀的固定,振荡和旋转磁场中控制稀铁磁流体毛细管的横向纳米混合和速度分布

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The influence of magnetic-field dependent viscosity (rotational viscosity) on molecular transport of species in dilute ferrofluids has been studied. For this purpose, a Taylor dispersion test in a capillary tube has been performed while suspended magnetic nanoparticles (MNPs) are subjected to both magnetic field and low Re shear flow field. Axial dispersion has been quantified from residence time distributions (RTDs) and tracer injection tests conducted in three distinct situations where the capillary is subjected to (a) uniform transverse rotating magnetic field (~TRMF), (b) uniform transverse oscillating magnetic field (~TOMF), and (c) uniform axial static magnetic field (~ASMF). The various types of magnetic fields have been generated in a specially designed stator energized by three phase, AC and DC currents. Results obtained from the three cases are reported in terms of axial dispersion coefficients. For ~TRMF, an increase in lateral mixing is observed whereas no significant effect is detected for ~TOMF. In ~ASMF, the lateral mixing mechanism is retarded by magnetically locked MNPs. Both effects under ~TRMF and ~ASMF reach a plateau as MNP concentration in the liquid is increased. These findings highlight the effect of rotational viscosity on diffusion of other species hosted in dilute ferrofluids and point to attractive applications to engineering fields where transport phenomena are central. Analysis of RTD breakthrough times enabled laminar velocity profile in capillary flow to be reconstructed. It suggests that (magnetic field-free) parabolic velocity profiles evolve towards flattened and protruded shapes, respectively, in ~TRMF and ~ASMF. These results confirm that magnetically-excited MNPs may be considered as a potentially appealing tool to mediate molecular transport phenomena at the nanoscale such as in nano/microfluidic systems.
机译:研究了磁场依赖性粘度(旋转粘度)对稀铁磁流体中物质分子迁移的影响。为此,在悬浮的磁性纳米颗粒(MNP)受到磁场和低Re剪切流场的同时,已在毛细管中进行了泰勒色散测试。根据停留时间分布(RTD)和示踪剂注入测试在三种不同的情况下对轴向弥散进行了量化,其中毛细管受到(a)均匀的横向旋转磁场(〜TRMF),(b)均匀的横向振荡磁场(〜 TOMF),以及(c)均匀的轴向静磁场(〜ASMF)。在专门设计的定子中产生了各种类型的磁场,这些定子由三相交流和直流电流供电。根据轴向色散系数报告了从这三种情况获得的结果。对于〜TRMF,观察到横向混合的增加,而未检测到〜TOMF的显着影响。在〜ASMF中,横向混合机制受磁锁定MNP的阻碍。随着液体中MNP浓度的增加,〜TRMF和〜ASMF两种作用均达到平稳状态。这些发现凸显了旋转粘度对稀铁磁流体中其他物种扩散的影响,并指出了在以运输现象为中心的工程领域的有吸引力的应用。 RTD穿透时间的分析使毛细流中的层流速度分布得以重建。这表明在〜TRMF和〜ASMF中,(无磁场)抛物线速度曲线分别向平坦和突出的形状发展。这些结果证实,磁激发的MNP可以被认为是介导诸如纳米/微流体系统之类的纳米级分子传输现象的潜在吸引力的工具。

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