论文标题
使用测量值对聚结的概率预测:应用于扑动法方法
Probabilistic Prediction of Coalescence Flutter Using Measurements: Application to the Flutter Margin Method
论文作者
论文摘要
Zimmerman和Weissenburger的颤振缘法被广泛用于估计气体弹性聚集速度。与航空弹性衰减速率相反,颤动的边缘表现出单调衰减,相对于空速重新将其有效地推断出使用前空速度的飞行测试数据来推断颤动速度。本文报告了Khalil等人的贝叶斯公式的概括。开发用于解决测量和建模不确定性。本文通过在空速中纳入了航空弹性模态频率和衰减速率的关节来提高先前算法的预测性能,以便使用观测数据更好地估计模态参数的关节后验。模态参数先验是使用经典的两度自由度俯仰螺距弹性弹性模型构建的,该模型的系统矩阵(例如结构刚度和阻尼矩阵)随机变化。这种关节模态参数先验在模态参数的后代和跨空速的相关扑波边缘之间实施了统计依赖性。数值研究表明,从广义贝叶斯扑波边缘法获得的预测扑动速度上的不确定性大大降低。这种改进的算法可以通过减少飞行测试的数量并更好地评估针对气体弹性弹药的不确定性来降低成本。
Zimmerman and Weissenburger's flutter margin method is widely used to estimate the aeroelastic coalescence flutter speed. In contrast to aeroelastic decay rates, the flutter margin exhibits monotonic decay with respect to airspeed redering it effective in extrapolating the flutter speed using flight test data conducted at pre-flutter airspeeds. This paper reports the generalization of the Bayesian formulation of the flutter margin method by Khalil et al. developed to tackle measurement and modeling uncertainties. This paper improves the predictive performance of the previous algorithm by incorporating the joint prior of aeroelastic modal frequencies and decay rates among airspeeds in order to better estimate the joint posterior of modal parameters using observational data. The modal parameter prior is constructed using the classical two-degree-of-freedom pitch-plunge aeroelastic model whose system matrices (e.g. structural stiffness and damping matrices) vary randomly. Such joint modal parameter prior enforces statistical dependence among posteriors of modal parameters and the associated flutter margins across airspeeds. Numerical studies demonstrate a considerable reduction of uncertainties on the predicted flutter speed obtained from the generalized Bayesian flutter margin method. This improved algorithm can cut cost by reducing the number of flight tests and better assess the uncertainty against aeroelastic flutter.