Characteristics analysis of non-linear torsional vibration in engine and generator shafting system

被引:0
作者
Zhang, Wei [1 ]
Zhang, Wenming [1 ]
Zhao, Xuan [1 ]
Guo, Miaomiao [2 ]
机构
[1] School of Mechanical Engineering, University of Science and Technology Beijing, Beijing
[2] Automotive Engineering Research Institute, Beiqi Foton Motor Co. Ltd., Beijing
关键词
Engine; Gengrator; Mathematical model; Non-linear; Torsional vibration;
D O I
10.12928/TELKOMNIKA.v13i1.129
中图分类号
学科分类号
摘要
The objective of this paper is to solve the non-linear torsional vibration problem of engine and generator shafting causing body structural vibration and noise in motorized wheel vehicle, where the engine and the generator connected directly. First, analysis the characteristics of the shafting system is conducted, besides the external shock excitation of engine and generator. Then, through lumped parameter model method, mathematical model of the non-linear torsional vibration was established, which could reflect the dynamic characteristics of the system. Analysis the effect of mechanical parameters and electromagnetic parameters on the shafting; and get the non-linear differential equations of the system torsional vibration, which expresses the relation between structural parameters, electromagnetic parameters and the system dynamic characteristics. And multiple scales method was used to solve the equations. Non-contact measurement method was used in the torsional vibration test. Finally, consistency of the results, indicate that the research method used is reliability and accuracy, and get the critical speed of the shafting torsional vibration.
引用
收藏
页码:41 / 54
页数:13
相关论文
共 23 条
  • [1] Bedoor B.O., Moustafa K.A., Hussain K.M., Dual dynamic absorber for the torsional vibrations of synchronous motor-driven compressors, Journal of sound and vibration, 220, 4, pp. 729-748, (1999)
  • [2] Fukuda S., Eto H., Development of fracture splitting connecting rod, JSAE Review, 23, 1, pp. 101-104, (2002)
  • [3] Charles P., Sinha J.K., Gu F., Et al., Detecting the crankshaft torsional vibration of diesel engines for combustion related diagnosis, Journal of Sound and Vibration, 321, 3, pp. 1171-1185, (2009)
  • [4] Boysal A., Rahnejat H., Torsional vibration analysis of a multi-body single cylinder internal combustion engine model, Applied Mathematical Modelling, 21, 8, pp. 481-493, (1997)
  • [5] Ostman F., Toivonen H.T., Active torsional vibration control of reciprocating engines, Control Engineering Practice, 16, 1, pp. 78-88, (2008)
  • [6] Brusa E., Delprete C., Genta G., Torsional vibration of crankshafts: effects of non-constant moments of inertia, Journal of Sound and Vibration, 205, 2, pp. 135-150, (1997)
  • [7] Li Z., Gui C.L., Sun J., Review of the researches on vibrations of crankshaft system in internal combustion engines, Transactions of Chinese Society for Internal Combustion Engines, 20, 5, pp. 469-474, (2002)
  • [8] Ma C., Zuo S.G., Tan Q.W., Et al., Non-linear torsional vibration model of a PMSM for electric driven vehicle, Journal of Vibration and Shock, 32, 12, pp. 131-134, (2013)
  • [9] Christopher S., Keeney S.S., Prediction and control of heavy duty powertrain torsional vibration
  • [10] Zhou C.Y., Xu Z.C., You G.Y., Et al., Analysis of rotor dynamics of engine-generator unit system, Journal of Vibration and Shock, 9, S1, pp. 163-167, (2010)