用于主动磁悬浮轴承的辅助滚动轴承模型的开发和实验验证

IF 0.9 Q4 ENGINEERING, MECHANICAL
Anna Tangredi, E. Meli, A. Rindi, A. Ridolfi, P. D'Adamio, A. Frilli, D. Fioravanti, B. Defoy
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引用次数: 3

摘要

如今,在涡轮机械应用中寻求提高性能已经导致主动磁轴承(AMBs)的使用越来越多,由于其特点,它可以带来一系列优势:AMBs允许机器部件达到更高的外围速度;事实上,由于轴承表面之间的接触不存在,因此没有磨损和润滑问题。此外,可以通过软件控制AMBs的特征参数,优化机器的动力学性能。然而,主动磁轴承呈现出一些特性,因为它们比最常用的滚动和流体动力轴承具有更低的负载能力,并且它们需要能量源;由于这些原因,在AMBs过载或故障的情况下,需要一个辅助轴承系统来支持转子在这样的着陆事件。在叶轮机的设计过程中,适当选择辅助轴承的类型和特性是根本,因为这些部件必须抵抗转子的冲击;因此,基于精确和高效的辅助轴承模型的配套设计工具对于将主动磁轴承系统设计集成到机器中非常有用。本文提出了一种新颖的模型,可以准确地描述由转子和两个辅助滚动轴承组成的完整转子-动力系统的力学行为。该模型是与GE公司贝克休斯(Baker Hughes)合作开发和实验验证的(提供测试用例和实验数据),能够重现实验观察到的关键物理现象;在反复的联合着陆试验中,最关键的现象是在高摩擦条件下发生的旋翼前旋,对整个系统的性能影响很大。为了仔细研究一些特殊现象,如旋翼在着陆轴承上的滑行(这需要很长一段时间的演变,涉及许多物体和自由度)或其他特殊事件,如碰撞(在短时间内发生),结果的准确性和数值效率之间的折衷一直在追求。提出的模型的一些要素已经在以前的文献中介绍过;然而,本工作提出了一些有趣的新特征。例如,横向模型和轴向模型进行了适当的耦合,以便正确地再现实验测试中观察到的影响,并且对非常重要的系统元件——着陆轴承柔性悬架进行了适当的建模,以更准确地描述其对系统的弹性和阻尼影响。此外,该模型还可用于表征转子前向旋转运动的相关频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and Experimental Validation of Auxiliary Rolling Bearing Models for Active Magnetic Bearings (AMBs) Applications
Nowadays, the search for increasing performances in turbomachinery applications has led to a growing utilization of active magnetic bearings (AMBs), which can bring a series of advantages thanks to their features: AMBs allow the machine components to reach higher peripheral speeds; in fact there are no wear and lubrication problems as the contact between bearing surfaces is absent. Furthermore, AMBs characteristic parameters can be controlled via software, optimizing machine dynamics performances. However, active magnetic bearings present some peculiarities, as they have lower load capacity than the most commonly used rolling and hydrodynamic bearings, and they need an energy source; for these reasons, in case of AMBs overload or breakdown, an auxiliary bearing system is required to support the rotor during such landing events. During the turbomachine design process, it is fundamental to appropriately choose the auxiliary bearing type and characteristics, because such components have to resist to the rotor impact; so, a supporting design tool based on accurate and efficient models of auxiliary bearings is very useful for the design integration of the Active Magnetic Bearing System into the machine. This paper presents an innovative model to accurately describe the mechanical behavior of a complete rotor-dynamic system composed of a rotor equipped with two auxiliary rolling bearings. The model, developed and experimentally validated in collaboration with Baker Hughes a GE company (providing the test case and the experimental data), is able to reproduce the key physical phenomena experimentally observed; in particular, the most critical phenomenon noted during repeated experimental combined landing tests is the rotor forward whirl, which occurs in case of high friction conditions and greatly influences the whole system behavior. In order to carefully study some special phenomena like rotor coast down on landing bearings (which requires long period of time to evolve and involves many bodies and degrees of freedom) or other particular events like impacts (which occur in a short period of time), a compromise between accuracy of the results and numerical efficiency has been pursued. Some of the elements of the proposed model have been previously introduced in literature; however the present work proposes some new features of interest. For example, the lateral and the axial models have been properly coupled in order to correctly reproduce the effects observed during the experimental tests and a very important system element, the landing bearing compliant suspension, has been properly modelled to more accurately describe its elastic and damping effects on the system. Furthermore, the model is also useful to characterize the frequencies related to the rotor forward whirl motion.
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来源期刊
CiteScore
2.40
自引率
0.00%
发文量
10
审稿时长
25 weeks
期刊介绍: This comprehensive journal provides the latest information on rotating machines and machine elements. This technology has become essential to many industrial processes, including gas-, steam-, water-, or wind-driven turbines at power generation systems, and in food processing, automobile and airplane engines, heating, refrigeration, air conditioning, and chemical or petroleum refining. In spite of the importance of rotating machinery and the huge financial resources involved in the industry, only a few publications distribute research and development information on the prime movers. This journal is the first source to combine the technology, as it applies to all of these specialties, previously scattered throughout literature.
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