已收录 273088 条政策
 政策提纲
  • 暂无提纲
Hydro-dynamic damping theory in flowing water
[摘要] Fluid-structure interaction (FSI) has a major impact on the dynamic response of the structural components of hydroelectric turbines. On mid-head to high-head Francis runners, the rotor-stator interaction (RSI) phenomenon always has to be considered carefully during the design phase to avoid operational issues later on. The RSI dynamic response amplitudes are driven by three main factors: (1) pressure forcing amplitudes, (2) excitation frequencies in relation to natural frequencies and (3) damping. The prediction of the two first factors has been largely documented in the literature. However, the prediction of fluid damping has received less attention in spite of being critical when the runner is close to resonance. Experimental damping measurements in flowing water on hydrofoils were presented previously. Those results showed that the hydro-dynamic damping increased linearly with the flow. This paper presents development and validation of a mathematical model, based on momentum exchange, to predict damping due to fluid structure interaction in flowing water. The model is implemented as an analytical procedure for simple structures, such as cantilever beams, but is also implemented in more general ways using three different approaches for more complex structures such as runner blades: a finite element procedure, a CFD modal work based approach and a CFD 1DOF approach. The mathematical model and all three implementation approaches are shown to agree well with experimental results.
[发布日期]  [发布机构] Andritz Hydro Ltd., 6100 Trans Canada Hwy., Pointe-Claire; QC; H9R 1B9, Canada^1;GE Global Research Center, Niskayuna; NY, United States^2
[效力级别]  [学科分类] 
[关键词] Analytical procedure;Damping measurements;Dynamic response amplitudes;Excitation frequency;Finite element procedure;Implementation approach;Rotor-stator interactions;Structural component [时效性] 
   浏览次数:18      统一登录查看全文      激活码登录查看全文