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Dynamic analysis of aerostatic guideway and FEA model development

机译:空气静力导轨动力分析与有限元模型开发

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摘要

A dynamically optimal design is essential for a motion system to perform high speed operation without compromising its accuracy, settling time and vibration specification. Good design practice which accounts for dynamic characteristics in the modelling of a motion system warrants higher performance precision machines and cuts down redevelopment effort to ‘patch’ inherent shortcoming of the machine dynamics. This research aimed to accurately describe the non-linear dynamics of a non-mechanical contact aerostatic guideway system in order to achieve an accurate FEA model of the design stage. The single axis aerostatic guideway is comprised of several machine in¬terfaces that impact the dynamic behaviour of the guideway. Modelling each air bear¬ing pad by a single stiffness element is not adequate to predict the guideway modal behaviour accurately. The aerostatic guideway has been broken down into several key machine interface elements. In-depth investigation of the air film and the air bearing mounting mechanism was carried out. A dedicated air film test rig was designed and built to acquire insight of the air film dynamic characteristics. It is observed that the mounting mechanism of the air bearing constitutes to a signifi-cant dynamic effect to the entire air bearing setup. Based on the findings of the mount-ing mechanism’s stiffness properties, a method was developed to estimate ‘true’ air gap heights which cannot be easily assessed and measured directly in most aerostatic guideway carriages. The estimation method enables a more rigorous FE model of the aerostatic guideway system. The comprehensive dynamic analysis methodology pro-posed in this research greatly increases the confidence and accuracy of the aerostatic guideway’s FE model.
机译:动态优化设计对于运动系统执行高速操作至关重要,而不会影响其精度,建立时间和振动指标。良好的设计实践可在运动系统建模中考虑动态特性,从而保证了更高性能的精密机器,并减少了重新开发工作,以“弥补”机器动力学的固有缺陷。这项研究旨在准确地描述非机械接触式空气静压导轨系统的非线性动力学,以便获得设计阶段的精确FEA模型。单轴空气静压导轨由影响导轨动态性能的多个机器接口组成。用单个刚度元件对每个空气支撑垫进行建模不足以准确地预测导轨的模态行为。空气静力导轨已分解为几个关键的机器接口元素。对气膜和空气轴承安装机构进行了深入研究。设计并建造了专用的气膜测试装置,以获取对气膜动态特性的了解。可以看出,空气轴承的安装机构对整个空气轴承装置具有显着的动态影响。根据安装机构刚度特性的发现,开发了一种方法来估算“真实”气隙高度,而在大多数空气静压导轨车厢中,这些高度很难直接评估和测量。估计方法使空气动力学导轨系统的FE模型更为严格。这项研究提出的综合动态分析方法极大地提高了空气静力导轨有限元模型的置信度和准确性。

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