Surrogate Models for the Prediction of Damping Ratios in Coupled Acoustoelastic Rotor-Cavity Systems

Christoph Heinrich, Tina Unglaube, B. Beirow, D. Brillert, Klaus Steff, N. Petry
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引用次数: 1

Abstract

Centrifugal compressors are versatile machines that many industries employ for a wide range of different applications, including the production of highly compressed gases. During the last decades, comprehensive research was conducted on the impact of high-pressure operating conditions on the vibrational behavior of radial compressors. In various studies, acoustic modes building up in the side cavities were found to be a potential source of high cycle fatigue. Nowadays, it is well-known that an increase in gas pressure levels leads to a more pronounced fluid-structure interaction between the side cavities and the impeller resulting in a frequency shift of the acoustic and structural modes. In a recently published paper, the authors presented a generalized model which can predict this behavior. As it is not always possible to avoid operating close to or accelerating through a resonance, it is crucial to know the damping present within the system. Currently, only a few publications concentrate on the damping of radial impellers. Therefore, the authors present measurement data acquired from a test rig at the University of Duisburg-Essen, which reveals the damping behavior of a disk under varying operating conditions. Two surrogate models are proposed to predict the identified damping behavior. The first one is based solely on a one-dimensional piston model and the second approach uses an enhanced version of the generalized method. Finally, the measurement data is used to validate both surrogate systems.
声弹转子-腔耦合系统阻尼比预测的替代模型
离心式压缩机是一种多用途的机器,许多行业都采用它来进行各种不同的应用,包括生产高度压缩的气体。近几十年来,人们对高压工况对径向压缩机振动特性的影响进行了全面的研究。在各种研究中,在侧腔中建立的声模态被发现是高周疲劳的潜在来源。目前,众所周知,气体压力水平的增加会导致侧腔与叶轮之间的流固相互作用更加明显,从而导致声模态和结构模态的频移。在最近发表的一篇论文中,作者提出了一个可以预测这种行为的广义模型。由于不可能总是避免在谐振附近运行或通过谐振加速,因此了解系统内存在的阻尼是至关重要的。目前,关于径向叶轮阻尼的研究文献很少。因此,作者提供了从杜伊斯堡-埃森大学的一个试验台获得的测量数据,该数据揭示了圆盘在不同操作条件下的阻尼行为。提出了两个替代模型来预测识别的阻尼行为。第一种方法仅基于一维活塞模型,第二种方法使用广义方法的增强版本。最后,测量数据用于验证两个代理系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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