TY - GEN
T1 - Critical speed analysis and resonance margin promoting for one helium turbine rotor
AU - Gao, Bin
AU - Zhang, Jingxuan
AU - Zhang, Dayi
AU - Dou, Yifei
N1 - Publisher Copyright:
© Springer Nature Singapore Pte Ltd. 2021.
PY - 2021
Y1 - 2021
N2 - The evaluation of natural vibration characteristics is vital in the design of high-speed rotating machinery. One three-dimensional solid finite element model describing the complex configuration of a helium turbine rotor is established. The effects of the nonlinear stiffness caused by the tilting pad bearings are considered under a nominal clearance 0.2%, preload rate 0.25, and 0.5, respectively. Taking into account the bearing nonlinearity, the evaluation procedure of the rotor critical speed is discussed and the error analysis is carried out. Moreover, the dynamical effects of the generator rotor are investigated which is connected to the helium turbine rotor by one flexible coupling. Three aspects are highlighted. The first is the modeling for the blades. The blades are modeled as an equivalent ring encircling the disk which have the same mass and moment of inertia, avoiding dispensable local vibration modes such as blade-disk coupling vibration. The second is the consideration of the nonlinear stiffness and damping caused by the sliding bearing during critical speed analysis. The variation of the equivalent stiffness and damping of sliding bearings with preload rate, nominal clearance, and oil pressure is equated as a function of rotating speed and applied to the calculation of eigenvalues. Finally, the article presents the analysis of the effects of the generator rotor and diaphragm coupling on the dynamic characteristics of the helium turbine rotor. The results indicate that the generator rotor and diaphragm coupling have little effect on the first five modal shapes of helium turbine rotor, but the fourth and fifth modal frequencies decrease by 20% and 14%, respectively. The decreasing ismainly influenced by the additional mass of diaphragm coupling but not the additional stiffness. The resonance margin can be broadened by increasing the mass of the diaphragm coupling.
AB - The evaluation of natural vibration characteristics is vital in the design of high-speed rotating machinery. One three-dimensional solid finite element model describing the complex configuration of a helium turbine rotor is established. The effects of the nonlinear stiffness caused by the tilting pad bearings are considered under a nominal clearance 0.2%, preload rate 0.25, and 0.5, respectively. Taking into account the bearing nonlinearity, the evaluation procedure of the rotor critical speed is discussed and the error analysis is carried out. Moreover, the dynamical effects of the generator rotor are investigated which is connected to the helium turbine rotor by one flexible coupling. Three aspects are highlighted. The first is the modeling for the blades. The blades are modeled as an equivalent ring encircling the disk which have the same mass and moment of inertia, avoiding dispensable local vibration modes such as blade-disk coupling vibration. The second is the consideration of the nonlinear stiffness and damping caused by the sliding bearing during critical speed analysis. The variation of the equivalent stiffness and damping of sliding bearings with preload rate, nominal clearance, and oil pressure is equated as a function of rotating speed and applied to the calculation of eigenvalues. Finally, the article presents the analysis of the effects of the generator rotor and diaphragm coupling on the dynamic characteristics of the helium turbine rotor. The results indicate that the generator rotor and diaphragm coupling have little effect on the first five modal shapes of helium turbine rotor, but the fourth and fifth modal frequencies decrease by 20% and 14%, respectively. The decreasing ismainly influenced by the additional mass of diaphragm coupling but not the additional stiffness. The resonance margin can be broadened by increasing the mass of the diaphragm coupling.
KW - Critical speed
KW - Helium turbine
KW - Nonlinear stiffness
KW - Finite element method
UR - https://www.scopus.com/pages/publications/85104992566
U2 - 10.1007/978-981-15-8049-9_36
DO - 10.1007/978-981-15-8049-9_36
M3 - 会议稿件
AN - SCOPUS:85104992566
SN - 9789811580482
T3 - Lecture Notes in Mechanical Engineering
SP - 575
EP - 591
BT - Proceedings of the 14th International Conference on Vibration Problems - ICOVP 2019
A2 - Sapountzakis, Evangelos J.
A2 - Biswas, Paritosh
A2 - Banerjee, Muralimohan
A2 - Inan, Esin
PB - Springer Science and Business Media Deutschland GmbH
T2 - 14th International Conference on Vibration Problems, ICOVP 2019
Y2 - 1 September 2019 through 4 September 2019
ER -