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Recent developments on bridge flutter stability estimation accounting for errors in the aeroelastic loading

机译:桥梁颤动稳定性估计的最新进程核算机气弹性载荷误差

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State-space stochastic modeling (Ito-type) is employed in this study to numerically investigate the relevance of modeling errors in the aeroelastic loading on the flutter stability of a long-span bridge. The main features of the numerical model are: (i) linear time-domain representation of aeroelastic load based on indicial-function formulation, perturbed by a suitable "parametric error"; (ii) turbulence-induced buffeting load still retained in the dynamic equations; (iii) linear bridge response restricted to fundamental bending and torsional mode of the moving deck and cables. The flutter velocity is determined by using the definition of second- and third-moment stability of the random dynamic vector. A simplified bridge model is employed to investigate the feasibility of the proposed approach. Two numerical algorithms for the solution of stochastic stability are implemented. The comparison of the results is based on statistical properties of the random state vector at incipient flutter (initial time), which includes the "parametric error" variable.
机译:本研究采用状态空间随机造型(ITO型),以数值上研究了气弹性负荷模型误差对长跨度桥梁的颤动稳定性的相关性。数值模型的主要特征是:(i)基于标记功能配方的空气弹性载荷的线性时域表示,受到合适的“参数误差”的扰动; (ii)湍流引起的诱导载荷仍然保留在动态方程中; (iii)线性桥梁响应限于移动甲板和电缆的基本弯曲和扭转模式。通过使用随机动态向量的第二矩稳定性的定义来确定颤振速度。使用简化的桥梁模型来研究所提出的方法的可行性。实施了用于随机稳定性解决方案的两种数值算法。结果的比较基于初始颤动(初始时间)的随机状态向量的统计特性,包括“参数误差”变量。

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