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A study of aeroelastic flutter and acoustic-structure interactions of a flexible disk rotating in an enclosed compressible fluid.

机译:对在封闭的可压缩流体中旋转的软盘的气动弹性颤振和声学结构相互作用的研究。

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摘要

The vibrations of thin flexible disks rotating in the surrounding air pose significant challenges in the design of high-speed rotating disk systems especially in hard disk drives and optical storage media. In most such applications, the disk vibrations couple to the acoustic oscillations of the surrounding enclosed fluid.; This thesis explains theoretically and experimentally the vibrations and dynamic stability of disks rotating in enclosed compressible fluids. This system is modeled using a rotating Kirchhoff plate for the disk and using the wave equation for the surrounding compressible fluid. The model includes the effects of a radial clearance, symmetric positioning, bulk rotating fluid flow, and damping. The discretized coupled equations of the system are cast in the compact form of a gyroscopic system.; For the stationary disk in a fluid filled enclosure, in-phase and out-of-phase acoustic modes coexist. Structure-acoustic eigenvalue veering phenomena also arise. For the rotating disk system, coupled structure-acoustic traveling waves destabilize through mode coalescence leading to flutter instability. A detailed investigation of the effects of dissipation arising from acoustic and disk damping predicts previously unknown instability mechanisms for this system.; In the presence of a radial clearance, the coupled rotating disk system exhibits qualitatively the same instability mechanisms, however the mode coalescence instability occurs at slightly higher speeds. The asymmetric positioning of the rotating disk in the enclosure does not change the flutter mechanisms and modifies very slightly the flutter speed. Bulk rotating fluid flow splits the acoustic oscillations into forward and backward modes. The effects of rotating damping arising from fluid viscosity are also analyzed.; Finally, experiments are performed on a high-speed SpinStand with a specially designed enclosure. Several disk materials are tested, and both disk and acoustic oscillations in the enclosure are monitored at several locations and over a wide range of speeds. Several observed phenomena correlate well to the theoretical predictions. Some experimentally observed phenomena are not predicted in the present theoretical model and their investigation is recommended as topics for future studies.
机译:在周围空气中旋转的薄软盘的振动对高速旋转磁盘系统的设计提出了重大挑战,特别是在硬盘驱动器和光学存储介质中。在大多数这样的应用中,盘振动耦合到周围封闭流体的声振动。本文从理论和实验上解释了在可压缩流体中旋转的圆盘的振动和动态稳定性。该系统使用磁盘的旋转Kirchhoff板和周围可压缩流体的波动方程进行建模。该模型包括径向游隙,对称定位,整体旋转流体流和阻尼的影响。该系统的离散耦合方程式以陀螺仪系统的紧凑形式铸造。对于充满流体的外壳中的固定盘,同相和异相声学模式共存。结构声学特征值转向现象也出现了。对于旋转磁盘系统,耦合的结构声传播波通过模式合并而不稳定,从而导致颤动不稳定。对声和磁盘阻尼引起的耗散影响的详细研究预测了该系统以前未知的不稳定机制。在存在径向间隙的情况下,耦合旋转磁盘系统在质量上表现出相同的不稳定性机制,但是模式合并不稳定性会以更高的速度发生。旋转磁盘在外壳中的不对称定位不会改变颤振机制,只会非常轻微地改变颤振速度。大量的旋转流体流将声波振荡分为前进和后退模式。还分析了由流体粘度引起的旋转阻尼的影响。最后,在带有特殊设计外壳的高速SpinStand上进行实验。测试了几种磁盘材料,并在多个位置和多种速度下监视了外壳中的磁盘振动和声振动。一些观察到的现象与理论预测很好地相关。在当前的理论模型中并未预测一些通过实验观察到的现象,因此建议将其研究作为以后的研究主题。

著录项

  • 作者

    Kang, Namcheol.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:44:02

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