Effect of manufacturing errors of the pad sliding surface on the performance of the hydrodynamic thrust bearing
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[1] R. A. Burton. Effects of Two-Dimensional, Sinusoidal Roughness on the Load Support Characteristics of a Lubricant Film , 1963 .
[2] Donald S. Wilson. The Effect of Geometry Variations on Hydrodynamic Bearing Performance , 1966 .
[3] C. Ettles,et al. Effect of Transverse and Longitudinal Surface Waviness on the Operation of Journal Bearings , 1972 .
[4] J. Frěne,et al. Influence of Shape Defects and Surface Roughness on the Hydrodynamics of Lubricated Systems , 1974 .
[5] B. J. Roylance. Radially Grooved Thin Plate Thrust Washers: Factors Affecting Their Performance , 1975 .
[6] S. S. Pande,et al. Effect of manufacturing errors on the performance of aerostatic journal bearings , 1981 .
[7] Michel Fillon,et al. Thermohydrodynamic analysis of a worn plain journal bearing , 2004 .
[8] Michał Wasilczuk,et al. Evaluation of water turbine hydrodynamic thrust bearing performance on the basis of thermoelastohydrodynamic calculations and operational data , 2004 .
[9] Jiang Li,et al. Evaluation on applicability of reynolds equation for squared transverse roughness compared to CFD , 2007 .
[10] Dennis V. De Pellegrin,et al. An isoviscous, isothermal model investigating the influence of hydrostatic recesses on a spring-supported tilting pad thrust bearing , 2012 .
[11] M. Fillon,et al. Performance degradation in scratched journal bearings , 2012 .
[12] Pantelis G. Nikolakopoulos,et al. Effects of manufacturing errors on tribological characteristics of 3-D textured micro- thrust bearings , 2013 .
[13] M. Fillon,et al. Study of the Influence of Heat Convection Coefficient on Predicted Performance of a Large Tilting-Pad Thrust Bearing , 2013 .
[14] Michel Fillon,et al. Large hydrodynamic thrust bearing: Comparison of the calculations and measurements , 2014 .
[15] C. Papadopoulos,et al. Computational Fluid Dynamics Thermohydrodynamic Analysis of Three-Dimensional Sector-Pad Thrust Bearings With Rectangular Dimples , 2014 .
[16] Michel Fillon,et al. Effect of presence of lifting pocket on the THD performance of a large tilting-pad thrust bearing , 2015 .
[17] Michel Fillon,et al. Performance comparison between textured, pocket, and tapered-land sector-pad thrust bearings using computational fluid dynamics thermohydrodynamic analysis , 2015 .
[18] Wojciech Litwin,et al. Influence of local bush wear on water lubricated sliding bearing load carrying capacity , 2016 .
[19] Zhike Peng,et al. Effect of surface waviness on the static performance of aerostatic journal bearings , 2016 .
[20] Wei Wang,et al. Effects of manufacturing errors on the static characteristics of aerostatic journal bearings with porous restrictor , 2017 .
[21] Zhike Peng,et al. Effects of journal rotation and surface waviness on the dynamic performance of aerostatic journal bearings , 2017 .
[22] Wei Wang,et al. Numerical analysis and experimental investigation into the effects of manufacturing errors on the running accuracy of the aerostatic porous spindle , 2018 .
[23] Q. An,et al. Lubrication performance of planar thrust bearing with consideration of roughness of the surfaces , 2018, Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology.
[24] Liqin Wang,et al. The effects of surface roughness on the transient characteristics of hydrodynamic cylindrical bearings during startup , 2018, Tribology International.
[25] Hailong Cui,et al. Numerical analysis and experimental research on the angular stiffness of aerostatic bearings , 2018 .
[26] C. Papadopoulos,et al. Numerical investigation of parallel and quasi-parallel slider bearings operating under ThermoElastoHydroDynamic (TEHD) regime , 2020 .