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  • New quantitative numerical simulations of the elastohydrodynamic lubrication (EHL) film thickness using realistic pressure and shear-dependent rheology and realistic compressibility have indicated that the dependence of central film thickness upon Hertz pressure (or load) for the classic Newtonian, slightly compressible solution is merely a lower limit with magnitudes three times as great being possible. Experimental measurements of central film thickness employing Hertz pressures from 1.0 to 2.6 GPa confirm that for a neat mineral oil, the classical pressure dependence is accurate, while for two gear oils the experimental pressure dependence is much larger.
  • New quantitative numerical simulations of the elastohydrodynamic lubrication (EHL) film thickness using realistic pressure and shear-dependent rheology and realistic compressibility have indicated that the dependence of central film thickness upon Hertz pressure (or load) for the classic Newtonian, slightly compressible solution is merely a lower limit with magnitudes three times as great being possible. Experimental measurements of central film thickness employing Hertz pressures from 1.0 to 2.6 GPa confirm that for a neat mineral oil, the classical pressure dependence is accurate, while for two gear oils the experimental pressure dependence is much larger. (en)
Title
  • The Effect of Load (Pressure) for Quantitative EHL Film Thickness
  • The Effect of Load (Pressure) for Quantitative EHL Film Thickness (en)
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  • The Effect of Load (Pressure) for Quantitative EHL Film Thickness
  • The Effect of Load (Pressure) for Quantitative EHL Film Thickness (en)
skos:notation
  • RIV/00216305:26210/09:PU84572!RIV10-MSM-26210___
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  • P(ME09025)
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  • 312154
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  • RIV/00216305:26210/09:PU84572
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  • Elastohydrodynamic, Film thickness, EHL, Rheology, Compressibility (en)
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  • 34
http://linked.open...iv/tvurceVysledku
  • Hartl, Martin
  • Křupka, Ivan
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  • 1023-8883
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  • 26210
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