Voting model prediction of nonlinear behavior for double-circumferential-slot air bearing system

  • Cheng Chi Wang
  • , Ping Huan Kuo
  • , Ta Jen Peng
  • , Masahide Oshima
  • , Suzanna Cuypers
  • , Yu Tsun Chen

研究成果: Article同行評審

2 引文 斯高帕斯(Scopus)

摘要

Double-circumferential-slot air bearing (DCSAB) systems provide multidirectional supporting forces and have high stiffness, increasing the stability of instruments at high rotational speeds. However, DCSAB systems may exhibit chaotic motion because of a nonlinear pressure distribution within the gas film, supplied gas imbalances, or an inappropriate design. This study investigated the occurrence of nonperiodic motion in a DCSAB system by analyzing the dynamic response of systems with different rotor masses and bearing numbers. The dynamic trajectory, spectral response, bifurcation, Poincaré map, and maximum Lyapunov exponent were analyzed to identify chaotic behavior. Behavior was found to be highly sensitive to rotor mass and bearing number; the system exhibits chaotic behavior when the rotor mass has values in three intervals within 0.1–6.0 kg given a fixed bearing number of Λ = 3.8. To reduce the computational cost of predicting chaotic behavior, the maximum Lyapunov exponent was predicted using various machine learning models; a voting model combining random forest with XGBoost has the highest performance. The results can be used as a guideline for designing of DCASB systems for use in industrial applications.

原文English
文章編號114908
期刊Chaos, solitons and fractals
183
DOIs
出版狀態Published - 2024 6月

All Science Journal Classification (ASJC) codes

  • 統計與非線性物理學
  • 數學物理學
  • 一般物理與天文學
  • 應用數學

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