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首页> 外文期刊>European Physical Journal Plus >Wave propagation in viscous-fluid-conveying piezoelectric nanotubes considering surface stress effects and Knudsen number based on nonlocal strain gradient theory
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Wave propagation in viscous-fluid-conveying piezoelectric nanotubes considering surface stress effects and Knudsen number based on nonlocal strain gradient theory

机译:考虑基于非局部应变梯度理论的表面应力效应和Knudsen数,在粘性流体输送压电纳米管中的波传播

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摘要

In this paper, size-dependent wave dispersion behavior of smart piezoelectric nanotubes conveying viscous fluid is analyzed considering surface stress effects and slip boundary conditions. The size effects of the nanotube are taken into account by making use of the nonlocal strain gradient theory (NSGT). To take the slip boundary conditions into consideration, the average velocity correction factor is utilized. The Newtonian method, in conjunction with the Rayleigh beam theory, is incorporated within the constitutive stress-strain relations of the surface and bulk of a piezoelectric material to derive the governing equations. The obtained equations involve size-dependent parameters, surface effects, slip boundary conditions, fluid viscosity and piezoelectric voltage. As a consequence, an analytical solution is applied to extract the wave dispersion relation of the nanotube. In addition, the influences of different factors, including nonlocal parameter, length scale parameter, surface effects, piezoelectric voltage, surface elastic modulus and surface residual stress on the wave dispersion characteristics of the piezoelectric nanotube, are examined. The effects of the piezoelectric voltage on the damping ratio of the nanotube are also studied. The obtained results in this paper are expected to be useful for more accurate prediction of the mechanical behaviors as well as of the wave propagation characteristics of viscous-fluid-conveying piezoelectric smart nanotubes. Meanwhile, the results will be helpful for efficient applications of piezoelectric nanotubes designing smart mechanical systems on a nanotechnology basis.
机译:在本文中,考虑表面应力效应和滑动边界条件,分析了传送粘性粘性流体的智能压电纳米管的尺寸依赖性波色散行为。通过使用非本体应变梯度论(NSGT)来考虑纳米管的尺寸效果。要考虑滑动边界条件,使用平均速度校正因子。结合瑞利光束理论的牛顿方法结合在压电材料的基部和大部分的组成型应力 - 应变关系中,以导出控制方程。所获得的方程涉及依赖依赖性参数,表面效应,滑动边界条件,流体粘度和压电电压。结果,应用分析解决方案来提取纳米管的波形分散关系。此外,研究了不同因素的影响,包括非本体参数,长度参数,表面效应,压电电压,表面弹性模量和压电纳米管波色散特性的表面残余应力。研究了压电电压对纳米管的阻尼比的影响。本文中获得的结果预计可用于更准确地预测机械行为以及粘性流体输送压电纤维型纳米管的波传播特性。同时,结果将有助于利用压电纳米管在纳米技术基础上设计智能机械系统的高效应用。

著录项

  • 来源
    《European Physical Journal Plus》 |2018年第7期|共17页
  • 作者单位

    Iran Univ Sci &

    Technol Sch Mech Engn Noise &

    Vibrat Control Res Lab Tehran Iran;

    Iran Univ Sci &

    Technol Sch Mech Engn Noise &

    Vibrat Control Res Lab Tehran Iran;

    Huazhong Univ Sci &

    Technol Sch Mech Sci &

    Technol State Key Lab Digital Mfg Equipment &

    Technol Wuhan 430074 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;
  • 关键词

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