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Exploiting modal interaction during run-up of a magnetically supported Jeffcott rotor

机译:在磁支持的Jeffcott转子的旋转过程中利用模态交互

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Introducing a parametric anti-resonance in a vibrating system couples two of the many vibration modes and enables an energy exchange between those two. This feature is employed during the run-up of a JEFFCOTT rotor supported by two active magnetic bearings. The vibration performance at bearing stiffness modulation is compared to the well-known performance at nominal bearing characteristics for a simple run-up at a constant acceleration. It is shown that by introducing a specific periodic change of the bearing stiffness coefficients, a mode coupling between two selected modes is activated. This coupling impacts the maximum amplitude developed during passage through resonance. At each critical speed transient vibrations of the corresponding mode are excited. Due to the modal coupling, if one mode is excited at a critical speed then energy is exchanged with the coupled mode. On one hand, the maximum amplitude at the first critical speed is decreased by modulation since some vibration energy is transferred to the highly damped second mode where it is partly dissipated. On the other hand, the maximum amplitude at the second critical speed is increased by modulation since some vibration energy is transferred to the lightly damped first mode. The concept is outlined in detail based on numerical studies.
机译:在振动系统中引入参数抗振耦合两个振动模式,并在这两个中实现能量交换。在由两个主动磁轴承支撑的Jeffcott转子的旋转期间采用该特征。轴承刚度调制时的振动性能与标称轴承特性的众所周知的性能进行了比较,以便在恒定加速下进行简单的轴承。结果表明,通过引入轴承刚度系数的特定周期性变化,激活了两个选定模式之间的模式耦合。该耦合会影响通过共振在通过过程中开发的最大幅度。在每个临界速度瞬态振动,激发相应模式。由于模态耦合,如果以临界速度激励一种模式,则用耦合模式交换能量。一方面,通过调制降低第一临界速度的最大幅度,因为一些振动能量被传递到高度阻尼的第二模式,在那里它被部分地消散。另一方面,通过调制增加第二临界速度的最大幅度,因为一些振动能量被传递到轻微阻尼的第一模式。该概念基于数值研究详细概述。

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