56 / 2019-09-11 17:32:57
Mode competition in galloping of a square cylinder at low Reynolds number
VIV,Flutter,linear stability analysis,Galloping,Mode competition
终稿
Xintao Li / School of aeronautics, Northwestern Polytechnical University
Weiwei Zhang / School of aeronautics, Northwestern Polytechnical University,
Galloping is a type of fluid-elastic instability phenomenon characterized by large-amplitude low-frequency oscillations of the structure. The aim of the present study is to reveal the underlying mechanisms of galloping of a square cylinder at low Reynolds numbers (Re) via linear stability analysis (LSA) and direct numerical simulations. The LSA model is constructed by coupling a reduced-order fluid model with the structure motion equation. The relevant unstable modes are rst yielded by LSA, and then the development and evolution of these modes are investigated using direct numerical simulations. It is found that, for certain combinations of Re and mass ratio (m*), the structure mode (SM) becomes unstable beyond a critical reduced velocity Uc* due to the fluid-structure coupling effect. The galloping oscillation frequency matches exactly the eigenfrequency of SM, suggesting that the instability of SM is the primary cause of galloping phenomenon. Nevertheless, the Uc* predicted by LSA is signi cantly lower than the galloping onset Ug* obtained from numerical simulations. Further analysis indicates that the discrepancy is caused by the nonlinear competition between the leading fluid mode (FM) and the SM. In the pre-galloping region Uc* < U*< Ug*, the FM quickly reaches the nonlinear saturation state and then inhibits the development of SM, thus postponing the occurrence of galloping. When U* > Ug*, mode competition is weakened because of the large difference in mode frequencies, and thereby no mode lock-in can happen. Consequently, galloping occurs, with the responses determined by the joint action of SM and FM. The unstable SM leads to the low-frequency large-amplitude vibration of the cylinder, while the unstable FM results in the high-frequency vortex shedding in the wake. The dynamic mode decomposition (DMD) technique is successfully applied to extract the coherent flow structures corresponding to SM and FM, which we refer to as the galloping mode and the von Karman mode, respectively. In addition, we show that, due to the mode competition mechanism, the galloping-type oscillation completely disappears below a critical mass ratio. From these results, we conclude that transverse galloping of a square cylinder at low Re is essentially a kind of single-degreeof-freedom (SDOF) flutter, superimposed by a forced vibration induced by the natural vortex shedding. Mode competition between SM and FM in the nonlinear stage can put-off the onset of galloping, and can completely suppress the galloping phenomenon at relatively low Re and low m* conditions.
重要日期
  • 会议日期

    12月14日

    2019

    12月17日

    2019

  • 09月30日 2019

    初稿截稿日期

  • 10月20日 2019

    摘要录用通知日期

  • 12月17日 2019

    注册截止日期

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