Nonlinear Dynamic Analysis and Forecasting of Symmetric Aerostatic Cavities Bearing Systems

被引:1
|
作者
Peng, Ta-Jen [1 ]
Kuo, Ping-Huan [2 ]
Huang, Wei-Cheng [2 ]
Wang, Cheng-Chi [3 ]
机构
[1] Natl Chin Yi Univ Technol, Dept Intelligent Automat Engn, Taichung 41170, Taiwan
[2] Natl Chung Cheng Univ, Dept Mech Engn, Chiayi 621301, Taiwan
[3] Natl Sun Yat Sen Univ, Dept Mech & Electromech Engn, Kaohsiung 804201, Taiwan
来源
关键词
Symmetric aerostatic cavities bearing; chaotic behavior; Lyapunov exponent; machine learning method; STABILITY; ROTOR;
D O I
10.1142/S0218127424300088
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Symmetric Aerostatic Cavities Bearing (SACB) systems have attracted increasing attention in the field of high-precision machinery, particularly rotational mechanisms applied at ultra-high speeds. In an air bearing system, the air bearing serves as the main support, and the load-carrying capacity is not as high as that of oil film bearings. However, the aero-spindle can operate at considerably high rotational speeds with relatively lower heat generated from rotation compared with that of oil film bearings. In addition, the operating environment of air bearings does not easily cause the rotor to deform. Hence, through adequate design, air pressure systems exhibit a certain level of stability. In general, the pressure distribution function of air bearings exhibits strong nonlinearity when there are changes in the rotor mass or rotational speed, or when the bearing system is inadequately designed. These issues may lead to instabilities in the rotor, such as unpredictable nonperiodic movements, rotor collisions, or even chaotic movements under certain parameters. In this study, rotor oscillation was analyzed using the maximum Lyapunov exponent to identify whether chaotic behavior occurred. Machine learning methods were then used to establish models and predict the rotor behavior. Especially, random forest and extreme gradient boosting were combined to develop a new model and confirm whether this model offered higher prediction performance and more accurate results in predicting tendencies with considerable changes compared with other models. The results can be effectively used to predict the SACB system and prevent nonlinear behavior from occurring.
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页数:16
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