Bifurcation and Nonlinear Dynamic Analysis of Externally Pressurized Double Air Films Bearing System
Cheng‐Chi Wang, Cheng‐Chi Wang, Chin-Chia Liu, Chi-Chang Wang, Chi-Chang Wang
Abstract
Open-access reader
Cheng‐Chi Wang, Cheng‐Chi Wang, Chin-Chia Liu, Chi-Chang Wang, Chi-Chang Wang
Abstract
Open-access reader
This paper studies the chaotic and nonlinear dynamic behaviors of a rigid rotor supported by externally pressurized double air films (EPDAF) bearing system. A hybrid numerical method combining the differential transformation method and the finite difference method is used to calculate pressure distribution of EPDAF bearing system and bifurcation phenomenon of rotor center orbits. The results obtained for the orbits of the rotor center are in good agreement with those obtained using the traditional finite difference approach. The results presented summarize the changes which take place in the dynamic behavior of the EPDAF bearing system as the rotor mass and bearing number are increased and therefore provide a useful guideline for the bearing system.
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This paper studies the chaotic and nonlinear dynamic behaviors of a rigid rotor supported by externally pressurized double air films (EPDAF) bearing system. A hybrid numerical method combining the differential transformation method and the finite difference method is used to calculate pressure distribution of EPDAF bearing system and bifurcation phenomenon of rotor center orbits. The results obtained for the orbits of the rotor center are in good agreement with those obtained using the traditional finite difference approach. The results presented summarize the changes which take place in the dynamic behavior of the EPDAF bearing system as the rotor mass and bearing number are increased and therefore provide a useful guideline for the bearing system.
Key concepts: Bearing (navigation), Bifurcation, Rotor (electric), Nonlinear system, Helicopter rotor, Differential (mechanical device), Chaotic, Mechanics