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A new modal-based approach for modelling the bump foil structure in the simultaneous solution of foil-air bearing rotor dynamic problems

机译:一种新的基于模态的方法,用于在箔 - 空气轴承转子动态问题的同时解决方案中对凸起箔结构进行建模

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摘要

Recently-proposed techniques for the simultaneous solution of foil-air bearing (FAB) rotor dynamic problems have been limited to a simple bump foil model in which the individual bumps were modelled as independent spring-damper (ISD) subsystems. The present paper addresses this limitation by introducing a modal model of the bump foil structure into the simultaneous solution scheme. The dynamics of the corrugated bump foil structure are first studied using the finite element (FE) technique. This study is experimentally validated using a purpose-made corrugated foil structure. Based on the findings of this study, it is proposed that the dynamics of the full foil structure, including bump interaction and foil inertia, can be represented by a modal model comprising a limited number of modes. This full foil structure modal model (FFSMM) is then adapted into the rotordynamic FAB problem solution scheme, instead of the ISD model. Preliminary results using the FFSMM under static and unbalance excitation conditions are proven to be reliable by comparison against the corresponding ISD foil model results and by cross-correlating different methods for computing the deflection of the full foil structure. The rotor-bearing model is also validated against experimental and theoretical results in the literature.
机译:近期提出的同时解决箔空气轴承(FAB)转子动力学问题的技术仅限于简单的凸点箔模型,在该模型中,将单个凸点建模为独立的弹簧阻尼器(ISD)子系统。本文通过将凸点箔结构的模态模型引入同时求解方案来解决这一限制。首先使用有限元(FE)技术研究波纹状凸点箔结构的动力学。这项研究通过使用特制的波纹箔结构进行了实验验证。基于这项研究的结果,提出可以用有限数量的模态模型来表示整个箔结构的动力学,包括凸点相互作用和箔惯性。然后,将这种全箔结构模态模型(FFSMM)改用于转子动力学FAB问题解决方案,而不是ISD模型。通过与相对应的ISD箔模型结果进行比较,以及通过对计算完整箔结构挠度的不同方法进行互相关,证明了在静态和不平衡激励条件下使用FFSMM得出的初步结果是可靠的。转子轴承模型也根据文献中的实验和理论结果进行了验证。

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