Effect of form errors on oil film characteristics of hydrodynamic journal bearings based on small displacement torsor theory

Purpose This paper aims to investigate how form error of journal affects oil film characteristics, which are composed of several parameters including the maximum film pressure, film moment, frictional coefficient and carrying-load capacity. Design/methodology/approach A new generalized equation based on the small displacement torsor theory is derived, as well as its capability of representing types of form error on the journal, using four specified parameters in a three-dimensional (3D) state. Based on the new generalized equation of form errors, the Reynolds equation is represented and solved numerically using the Swift–Stieber boundary condition. Findings The results show that the form errors of journal have significant influence on all oil film characteristics. However, the film moment remains nearly unchanged as film characteristics, especially eccentricity ratio, become large. All film characteristics investigated vary periodically as the form error. More importantly, it is found that the film pressure distribution transforms to an asymmetric shape along the axial direction of the bearing, no longer a symmetric shape in the case of two-dimensional (2D) form errors. It is necessary to substitute the 3D form error model, which takes the variations of the film characteristics in axial direction into account, for the 2D model in the designing stage of journal bearings. Originality/value First, the effect of the form error of the journal on the performance of hydrodynamic journal bearings is studied in the view of the film characteristics systematically. Secondly, the new generalized equation of form error, derived by SDT theory, is capable of representing any types of form error on the journal, not only representing one type of form error merely.

[1]  Bing Li,et al.  Effect of journal out-of-roundness on stability of a symmetric hydrodynamic journal bearing system. Part 2: Experimental investigation , 2015 .

[2]  F. Hemmati,et al.  Linear stability analysis of finite length journal bearings in laminar and turbulent regimes , 2017 .

[3]  F. Hemmati,et al.  Nonlinear Dynamics of Flexible Rotors Supported on Journal Bearings—Part I: Analytical Bearing Model , 2018 .

[4]  C. A. Papadopoulos,et al.  A study of friction in worn misaligned journal bearings under severe hydrodynamic lubrication , 2008 .

[5]  Omidreza Ebrat Detailed main bearing hydrodynamic characteristics for crankshaft -block dynamic interaction in internal combustion engines. , 2002 .

[6]  M. O. M. Osman,et al.  Stochastic Characterization of Macro- and Microerrors of Journal Bearing Roundness , 1977 .

[7]  Katsumi Iwamoto,et al.  Influence of Manufacturing Error of Roundness for Characteristics of Cylindrical Journal Bearing , 2005 .

[8]  Bing Li,et al.  Effect of journal out-of-roundness on stability of a symmetric hydrodynamic journal bearing system. Part 1: Theoretical analysis , 2015 .

[9]  Jun Sun,et al.  Hydrodynamic lubrication analysis of journal bearing considering misalignment caused by shaft deformation , 2004 .

[10]  Nuaa Nanjing Effect of Manufacturing Errors on Performance of Gas Lubricated Journal Bearing , 1994 .

[11]  Jiao Yinghou,et al.  Effects of Dimensional Tolerances on the Friction Power Loss of Hydrodynamic Journal Bearing System , 2014 .

[12]  M. Fillon,et al.  Numerical Study of the Sensitivity of Tilting-Pad Journal Bearing Performance Characteristics to Manufacturing Tolerances: Dynamic Analysis , 2008 .

[13]  S. S. Pande,et al.  Effect of manufacturing errors on the performance of aerostatic journal bearings , 1981 .