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Primary and super-harmonic resonances of Timoshenko pipes conveying high-speed fluid

机译:蒂莫长管的初级与超级谐波共振输送高速流体

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摘要

High-speed flow pipes suffer from severe vibration problems. When the fluid velocity is higher than the critical value, the straight equilibrium configuration of the pipe will lose stability. What follows is the supercritical vibration of the pipe near the non-trivial static equilibrium configuration. This paper attempts to reveal multiple resonance responses of forced vibration of pipes in the supercritical regime. Based on Timoshenko beam theory, the nonlinear coupled partial differential equations are deduced. The non-trivial static equilibrium configuration causes the parameters to vary with space variable. The approximate responses of the pipe are obtained and verified numerically. The results show that the flow velocity near the critical value is more prone to cause severe vibration. Unlike in the subcritical regime, there are third-order super-harmonic resonance and second-order super-harmonic resonance in the supercritical regime. So there are more resonance areas in the supercritical regime. High flow velocity or large external excitation can aggravate the difference between the Euler-Bernoulli model and the Timoshenko model, and the relative error of two models varies non-monotonically. Even for slender pipes, the difference between the two models is still very clear. Therefore, the Timoshenko model is more necessary to analyze the vibration of the high-speed pipe.
机译:高速流动管患有严重的振动问题。当流体速度高于临界值时,管的直线平衡配置将失去稳定性。下面的是管道附近的管道的超临界振动,靠近非普通静态平衡配置。本文试图揭示超临界制度中管道强制振动的多个共振响应。基于Timoshenko光束理论,推导出非线性耦合局部微分方程。非琐碎的静态平衡配置导致参数随空间变量而变化。在数值上获得并验证管道的近似响应。结果表明,临界值附近的流速更容易导致严重振动。与亚临界方案不同,在超临界方案中存在三阶超声谐振和二阶超声共振。因此超临界政权中有更多的共振区域。高流速或大外部励磁可以加剧Euler-Bernoulli模型与Timoshenko模型之间的差异,并且两种模型的相对误差不均匀地变化。即使对于细长的管道,两种型号之间的差异仍然很清楚。因此,更必要地分析高速管道的振动。

著录项

  • 来源
    《Ocean Engineering》 |2020年第may1期|107258.1-107258.12|共12页
  • 作者单位

    Shanghai Univ Sch Mech & Engn Sci Shanghai Inst Appl Math & Mech Shanghai Key Lab Mech Energy Engn Shanghai 200072 Peoples R China;

    Shanghai Univ Sch Mech & Engn Sci Shanghai Inst Appl Math & Mech Shanghai Key Lab Mech Energy Engn Shanghai 200072 Peoples R China;

    Univ Calif Merced Merced CA 95343 USA;

    Shanghai Univ Sch Mech & Engn Sci Shanghai Inst Appl Math & Mech Shanghai Key Lab Mech Energy Engn Shanghai 200072 Peoples R China;

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

    Fluid-conveying pipe; Timoshenko theory; Supercritical; Super-harmonic resonances; Primary resonance;

    机译:流体输送管;Timoshenko理论;超临界;超级谐振共振;初级共振;

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