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SPIRAL VIBRATION OF A TURBOGENERATOR SET. CASE HISTORY, STABILITY ANALYSIS, MEASUREMENTS AND OPERATIONAL EXPERIENCE

机译:汽轮发电机组的螺旋振动。案例历史,稳定性分析,测量和操作体验

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A hydrogen-cooled turbogenerator operating at 3600 rpm showed the phenomenon of spiral vibration with a forward rotating unbalance vector. The relative shaft vibration measured at the NDE-bearing was close to the trip level. Spiral vibration is observed at various types of rotating machinery with both rotation directions of the unbalance vector, forward and backward. Spiral vibration is caused by a vibration-induced hot spot on the shaft surface generated by friction. The turbogenerator has three bearings: two main bearings and the brush gear bearing. The carbon brushes sliding on the slip rings were identified as the hot spot location. Potential modifications were studied using hot spot stability analyses with a rotor dynamic model of the generator rotor on three journal bearings. The applied method, introduced by J. Schmied [1], allows the handling of general systems. The hot spot model is based on the theory of W. Kellenberger [2, 3] using a thermal equation between the shaft's thermal deflection and the shaft displacement at the hot spot location. Three different relations between the heat input and the shaft vibration were modeled: heat input proportional to the shaft displacement, to the shaft velocity and to the shaft acceleration. The model in which the heat input is proportional to the velocity is the most suitable variant for slip rings. This was confirmed by comparison with the measured vibration behavior. A modification of the shaft line was selected based on the calculation results and successfully implemented. This generator and other generators with the same modified brush gear unit are in operation since more than four years.
机译:在3600rpm下操作的氢气冷却涡轮机驱动器显示出螺旋振动现象,前向旋转不平衡载体。在NDE轴承处测量的相对轴振动接近跳闸水平。在各种类型的旋转机械中观察螺旋振动,其旋转向量,向前和向后旋转方向。螺旋振动是由摩擦产生的轴表面上的振动引起的热点引起的。涡轮机具有三个轴承:两个主轴承和刷子轴承。将滑动环滑动的碳刷被识别为热点位置。使用热点稳定性分析在三个轴颈轴承上使用发电机转子的转子动态模型进行了潜在的修改。由J.Schmied [1]引入的应用方法允许处理一般系统。热点模型基于W.Kellenberger [2,3]的理论,使用轴的热偏转和热点位置处的轴位移之间的热方程。加热输入与轴振动之间的三种不同关系被建模:与轴位移成比例的热输入,轴速度和轴加速度。热输入与速度成比例的模型是滑环最合适的变型。通过与测量的振动行为进行比较确认。基于计算结果选择轴线的修改并成功实施。该发电机和具有相同改进的刷子齿轮单元的其他发电机自超过四年以来正在运行。

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