DYNAMIC ANALYSIS OF A REVERSE-IDLER GEAR PAIR WITH CONCURRENT CLEARANCES

被引:52
作者
ROOK, TE
SINGH, R
机构
[1] Acoustics and Dynamics Laboratory, Department of Mechanical Engineering, The Ohio State University, Columbus
关键词
D O I
10.1006/jsvi.1994.0198
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Concurrent non-linearities may be defined as multiple local non-linearities which are linked kinematically to an inertial body in a multi-degree-of-freedom mechanical system. A practical example is found in the reverse-idler gear system which may rattle or undergo vibro-impacts under very light mean loads. Since very little is known about such torsional systems with two or more clearances, an analytical investigation has been undertaken to gain a better understanding of the resulting non-linear behavior. New coupling and scaling procedures are developed to reduce computational difficulties. In an attempt to quantify the average impact behavior in the concurrent gear meshes, the concept of effective stiffness is introduced and calculated from the non-linear response in seveal ways. Response-variant natural frequencies obtained from these effective stiffnesses are then used to study the spectral interaction in a system in which two non-linearities are present simultaneously. Results of the Galerkin method (multi-term harmonic balance) match well with predictions of the numerical integration techniques. Both methods are used to study periodic responses, while the Floquet theory is used to study the stability of such solutions. Techniques for embedding the concept of effective stiffness into each method are also examined. Although the emphasis is on periodic steady state solutions, quasi-periodic responses have been briefly examined due to their prevalence in a system with concurrent nonlinearities.
引用
收藏
页码:303 / 322
页数:20
相关论文
共 41 条
[1]  
Kahraman A., Ahramansingh R., Non-linear dynamics of a geared rotor-bearing system with multiple clearances, Journal of Sound and Vibration, 144, pp. 469-506, (1991)
[2]  
Kim Y.B., Imnoah S.T., Bifurcation analysis for a modified Jeffcott rotor with bearing clearances, Nonlinear Dynamics, 1, pp. 221-241, (1990)
[3]  
Kataoka M., Ataokao S., Hnosugimoto T., A two-degree-of-freedom system including a clearance two-step hardening spring, Japan Society of Mechanical Engineers, International Journal Series II, 34, pp. 345-354, (1991)
[4]  
Kim Y.B., Imnoah S.T., Response and bifurcation of a MDOF rotor system with a strong nonlinearity, Nonlinear Dynamics, 2, pp. 215-234, (1991)
[5]  
Kujukay F., Dynamic behavior of high speed gears, Proceedings of the Third International Conference on Vibrations in Rotating Machinery, Institution of Mechanical Engineers, pp. 81-90, (1984)
[6]  
Pfeiffer F., Modelling problems of rattling in gear boxes, Japan Society of Mechanical Engineers International Conference on Motion and Power Transmissions, pp. 43-48, (1991)
[7]  
Karagiannis K., Aragiannispfeiffer F., Theoretical and experimental investigations of gear-rattling, Nonlinear Dynamics, 2, pp. 367-387, (1991)
[8]  
Hongler M.O., Onglerstreit L., On the origin of chaos in gearbox models, Physica D, 29, pp. 402-408, (1988)
[9]  
Rust A., Ustbrandl F.K., Definition, identification and elimination of obtrusive gear rattle noise, Proceedings of the XXIII FISITA Congress, (1990)
[10]  
Singh R., Inghx H., Iecomparin R.J., Analysis of an automotive neutral gear rattle, Journal of Sound and Vibration, 131, pp. 177-196, (1989)