层压参数对考虑基座松动的复合转子-轴承系统非线性动态特性的影响

IF 1.9 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Mo Yang, Hao Xuan, Tao Qin, Yikun Wang, Yuebin Zhou, Wen Zhang
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引用次数: 0

摘要

复合轴-转子-轴承系统的非线性动力学特性受取向角层及其占层数的比例(即取向角层在层压板中的比例)的影响较大。本文考虑了非线性油膜力和支承松动的影响,对考虑支承松动的复合转子-轴承系统进行了非线性动力学分析。分析了周期运动、准周期运动和混沌运动等非线性现象。分析结果表明,复合轴管的刚度和阻尼系数受层压参数的影响较大,进而影响转子系统的失稳速度。为了提高复合转子系统的油膜失稳速度,必须最大化小取向角层或±45°层的比例。此外,增加轴管内小定向角层的比例会导致更高的转速,从而导致松动失稳。本文的研究成果对复合转子-轴承系统的设计具有重要的理论价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of laminate parameters on nonlinear dynamic characteristic of the composite rotor-bearing system with pedestal looseness
The nonlinear dynamics of the composite shaft rotor-bearing system are greatly affected by the orientation angle layer and its proportion of the ply, i.e., the ratio of the orientation angle layer in the laminate. This paper presents a nonlinear dynamic analysis of a composite rotor-bearing system with pedestal looseness that considers the nonlinear oil film force and the pedestal looseness. Nonlinear phenomena including periodic, quasi-periodic, and chaotic motions are analyzed. The analysis results indicate that the stiffness and damping coefficients of a composite shaft tube can be influenced strongly by the laminate parameters, which can in turn affect the instability speed of the rotor system. To enhance the oil film instability speed of the composite rotor system, it is essential to maximize the ratio of the small orientation angle layer or the ±45° layer. Additionally, increasing the ratio of the small orientation angle layers in the shaft tube leads to a higher rotational speed for loosening instability. The research results obtained in this paper have important theoretical value for the design of composite rotor-bearing systems.
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来源期刊
Advances in Mechanical Engineering
Advances in Mechanical Engineering 工程技术-机械工程
CiteScore
3.60
自引率
4.80%
发文量
353
审稿时长
6-12 weeks
期刊介绍: Advances in Mechanical Engineering (AIME) is a JCR Ranked, peer-reviewed, open access journal which publishes a wide range of original research and review articles. The journal Editorial Board welcomes manuscripts in both fundamental and applied research areas, and encourages submissions which contribute novel and innovative insights to the field of mechanical engineering
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