Reduced Order Method Based on an Adaptive Formulation and its Application to Fan Blade System With Dovetail Joints

Jie-Hong Yuan, C. Schwingshackl, L. Salles, Chian Wong, S. Patsias
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引用次数: 1

Abstract

Localized nonlinearities due to the contact friction interfaces are widely present in the aero-engine structures. They can significantly reduce the vibration amplitudes and shift the resonance frequencies away from critical operating speeds, by exploiting the frictional energy dissipation at the contact interface. However, the modelling capability to predict the dynamics of such large-scale systems with these nonlinearities is often impeded by the high computational expense. Component mode synthesis (CMS) based reduced order modelling (ROM) are commonly used to overcome this problem in jointed structures. However, the computational efficiency of these classical ROMs are sometimes limited as their size is proportional to the DOFs of joint interfaces resulting in a full dense matrix. A new ROM based on an adaptive formulation is proposed in this paper to improve the CMS methods for reliable predictions of the dynamics in jointed structures. This new ROM approach is able to adaptively switch the sticking contact nodes off during the online computation leading to a significant size reduction comparing to the CMS based models. The large-scale high fidelity fan blade assembly is used as the case study. The forced response obtained from the novel ROM is compared to the state-of-the-art CMS based Craig-Bampton method. A parametric study is then carried out to assess the influence of the contact parameters on the dynamics of the fan assembly. The feasibility of using this proposed method for nonlinear modal analysis is also characterised.
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基于自适应公式的降阶方法及其在带燕尾接头风机叶片系统中的应用
由于接触摩擦界面引起的局部非线性在航空发动机结构中广泛存在。它们可以通过利用接触界面上的摩擦能量耗散来显著降低振动幅值并使共振频率远离临界运行速度。然而,预测具有这些非线性的大型系统动力学的建模能力往往受到高计算费用的阻碍。基于构件模式综合(CMS)的降阶建模(ROM)通常用于克服节理结构中的这一问题。然而,这些经典rom的计算效率有时受到限制,因为它们的尺寸与关节界面的自由度成正比,从而导致全密度矩阵。本文提出了一种新的基于自适应公式的ROM,以改进CMS方法,使其能够可靠地预测节理结构的动力学。与基于CMS的模型相比,这种新的ROM方法能够在在线计算期间自适应地关闭粘接接触节点,从而显着减小尺寸。以大型高保真风机叶片总成为例进行了研究。从新型ROM获得的强迫响应与最先进的基于CMS的克雷格-班普顿方法进行了比较。然后进行了参数化研究,以评估接触参数对风机组件动力学的影响。并对该方法用于非线性模态分析的可行性进行了验证。
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