An interval precise integration method for transient unbalance response analysis of rotor system with uncertainty

•An IPIM is developed to deal with interval uncertainties in transient analysis of rotor systems.•High efficiency and satisfactory accuracy can be achieved by the IPIM.•The solution procedure is of universal interest to other uncertain transient dynamic problems. A non-intrusive interval precise int...

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Veröffentlicht in:Mechanical systems and signal processing 2018-07, Vol.107, p.137-148
Hauptverfasser: Fu, Chao, Ren, Xingmin, Yang, Yongfeng, Xia, Yebao, Deng, Wangqun
Format: Artikel
Sprache:eng
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Zusammenfassung:•An IPIM is developed to deal with interval uncertainties in transient analysis of rotor systems.•High efficiency and satisfactory accuracy can be achieved by the IPIM.•The solution procedure is of universal interest to other uncertain transient dynamic problems. A non-intrusive interval precise integration method (IPIM) is proposed in this paper to analyze the transient unbalance response of uncertain rotor systems. The transfer matrix method (TMM) is used to derive the deterministic equations of motion of a hollow-shaft overhung rotor. The uncertain transient dynamic problem is solved by combing the Chebyshev approximation theory with the modified precise integration method (PIM). Transient response bounds are calculated by interval arithmetic of the expansion coefficients. Theoretical error analysis of the proposed method is provided briefly, and its accuracy is further validated by comparing with the scanning method in simulations. Numerical results show that the IPIM can keep good accuracy in vibration prediction of the start-up transient process. Furthermore, the proposed method can also provide theoretical guidance to other transient dynamic mechanical systems with uncertainties.
ISSN:0888-3270
1096-1216
DOI:10.1016/j.ymssp.2018.01.031