首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >NONPARAMETRIC STOCHASTIC MODELING OF STRUCTURAL UNCERTAINTY IN ROTORDYNAMICS: UNBALANCE AND BALANCING ASPECTS
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NONPARAMETRIC STOCHASTIC MODELING OF STRUCTURAL UNCERTAINTY IN ROTORDYNAMICS: UNBALANCE AND BALANCING ASPECTS

机译:转子动力学结构不确定性的非参数随机建模:不平衡和平衡问题

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This paper focuses on extending an earlier investigation on the systematic and rational consideration of uncertainty in reduced order models of rotordynamics systems. The current effort concentrates on the consistent introduction of uncertainty in mass properties on the modal mass and gyroscopic matrices as well as on the unbalance force vector. The uncertainty in mass is separated into uncertainty that maintains the rotor symmetry and the one which disrupts it. Both types of uncertainties lead to variations in the system modal matrices but only the latter induces an unbalance. Accordingly, the approach permits the selection of separate levels on the uncertainty on the system properties (e.g. natural frequencies) and on the unbalance. It was first found that the unbalance response is increased by considering the uncertainty in the rotor modal mass matrices. It was next noted that the approach presented not only permits the analysis of uncertain rotors but it also provides a computational framework for the assessment of various balancing strategies. To demonstrate this unique feature, a numerical experiment was conducted in which a population of rotors were balanced at low speed and their responses were predicted at their first critical speed. These response, predictions were carried with the uncertainty in the system modal mass matrices but with or without the balancing weights effects on these matrices. It was found that the balancing at low speed may in fact lead to an increase in both the mean and 95th percentile of the response at critical speed.
机译:本文着重于对转子动力学系统降阶模型中不确定性的系统和合理考虑进行早期研究。目前的工作集中于对模态质量和陀螺矩阵以及不平衡力矢量不断引入质量特性的不确定性。质量的不确定性分为保持转子对称性的不确定性和破坏转子对称性的不确定性。两种类型的不确定性都会导致系统模态矩阵发生变化,但只有后者会引起不平衡。因此,该方法允许根据系统特性的不确定性(例如固有频率)和不平衡性来选择单独的水平。首先发现,通过考虑转子模态质量矩阵的不确定性,不平衡响应会增加。接下来要指出的是,提出的方法不仅允许分析不确定的转子,而且还提供了用于评估各种平衡策略的计算框架。为了证明这一独特功能,进行了数值实验,其中一组转子在低速下保持平衡,并在其第一临界速度下预测了它们的响应。这些响应,预测是在系统模态质量矩阵具有不确定性的情况下进行的,但是对这些矩阵有或没有平衡权重影响。已经发现,低速时的平衡实际上可能导致临界速度时响应的平均值和第95个百分位数都增加。

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