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Wave propagation analysis of magnetic nanotubes conveying nanoflow

机译:纳米射线输送磁纳米管的波传播分析

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摘要

According to the nonlocal strain gradient theory, wave propagation in magnetic nanotubes conveying magnetic nanoflow under longitudinal magnetic field is inspected. The nonlocal strain gradient Timoshenko beam model is coupled with magnetic nanoflow considering slip boundary condition to model fluid structure interaction. By applying Hamilton's principle, the size-dependent governing equations of motion have been obtained. Calculation of the wave frequency as well as phase velocity has been carried out based on the harmonic solution. The influences of strain gradient length scale, nonlocal parameter, Knudsen number, longitudinal magnetic field and magnetic nanoflow on nanotubes' wave propagation behavior have been examined. According to analytical results, the magnetic intensity related to the longitudinal magnetic field contributes significantly to increasing nanotubes' wave frequency as well as phase velocity. Besides, the magnetic nanotubes conveying magnetic nanoflow predict the highest phase velocity and wave frequency. Also, the wave frequency decrease when the nonlocal parameter increases or the strain gradient length scale decreases. Moreover, an increase in fluid velocity reduces the wave frequency and phase velocity.
机译:根据非本体应变梯度理论,检查纵向磁场下输送磁性纳米云的磁性纳米管中的波传播。非局部应变梯度TIMOSONENKO光束模型与考虑滑动边界条件以模拟流体结构相互作用的磁纳米射线耦合。通过应用Hamilton的原理,已经获得了依赖的运动规模控制方程。基于谐波解决方案,已经进行了波频的计算以及相速度。研究了应变梯度长度,非局部参数,滚子数,纵向磁场和磁性纳米对纳米管波传播行为的影响。根据分析结果,与纵向磁场相关的磁强度有助于增加纳米管波频以及相速度。此外,输送磁纳米射线的磁性纳米管预测最高相速度和波频。而且,当非识别数参数增加或应变梯度长度尺度减小时,波浪频率降低。此外,流体速度的增加降低了波频和相速度。

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