情态动词
有限元法
振动
控制理论(社会学)
转子(电动)
偏心率(行为)
模态分析
直升机旋翼
结构工程
多项式的
模态试验
工程类
计算机科学
数学
数学分析
物理
声学
机械工程
材料科学
高分子化学
控制(管理)
人工智能
法学
政治学
作者
M.B. Deepthikumar,A. S. Sekhar,M.R. Srikanthan
标识
DOI:10.1016/j.jsv.2013.04.043
摘要
Unbalance and bow are found to be one of the most common causes of synchronous machinery vibrations in rotating systems. Concentrated lumped mass models are adopted in most of the finite element approach for modeling unbalances and subsequent balancing in rotating systems. But this assumption may not be appropriate for long slender rotors with unbalances distributed along the length of the rotor. A polynomial curve for eccentricity distribution with finite element modeling is used to identify the distributed unbalance. The unbalance eccentricity distributions are estimated using the measured vibration responses at a speed below the balancing speed. Modal correction mass required to balance a rotor at its first bending critical speed, having both distributed unbalance and bow is computed knowing the amplification factor at critical speed. The rotor is balanced at its first bending critical speed using modal balancing method in a single trial run and using a single balancing plane. The method thus avoids multiple trial runs required for modal balancing of flexible rotors. This method is verified on an experimental rotor having both bow and unbalance. The concept of quantifying the distributed unbalance using ‘Norm’ of eccentricity polynomial function is also introduced for the first time.
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