JOURNAL OF JAPANESE SOCIETY OF TRIBOLOGISTS
Online ISSN : 2189-9967
Print ISSN : 0915-1168
ISSN-L : 0915-1168
Volume 67, Issue 6
Special Issue on Tribology Technology Contributing to Realization of the Hydrogen Society
Displaying 1-12 of 12 articles from this issue
Announcement
Contents
Serial Messages to Tribologists
Special Issue on Tribology Technology Contributing to Realization of the Hydrogen Society
Explanation
Original Contribution on Science
  • ―Derivation of van der WAALS Type Line Density Equation and Estimation of High Pressure Density―
    Masato KANEKO
    2022 Volume 67 Issue 6 Pages 424-432
    Published: June 15, 2022
    Released on J-STAGE: June 15, 2022
    Advance online publication: March 29, 2022
    JOURNAL FREE ACCESS
    Supplementary material

    It can became possible to calculate the oil film thickness and the pressure distribution on the Hertzian contact surface of bearings,gears, traction drives, etc. by the EHL theory by Dowson et al.. For these calculations, it is important to determine the high pressure viscosity and high pressure density of lubricant. In a previous report, I constructed a theory of the relationship between viscosity, temperature and pressure. And the van der WAALS type viscosity equation was derived. Similarly, in this study, I constructed a theory of the relationship between density, temperature and pressure. As a result, it was found from the dimensional analysis that 1/3 power of density (line density) was negatively proportional to temperature. This linear equation was found to be a van der WAALS type line density equation which consists of three eigen constants: absolute zero line density ρt=01/3, line density constant 1/G and pressure constant H/G. Furthermore, the pressure constant H/G of the line density equation is equivalent to the PR of the liquid state equation and the pressure constant C/B of the van der WAALS type viscosity equation. And I report the results of estimating the high pressure density of various lubricants by the line density equation.

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  • Ayako AOYAGI, Joichi SUGIMURA
    2022 Volume 67 Issue 6 Pages 433-442
    Published: June 15, 2022
    Released on J-STAGE: June 15, 2022
    Advance online publication: March 29, 2022
    JOURNAL FREE ACCESS

    The objective of this study is to reveal the relationship between frictional behavior and the compatibility of rubber and lubricants in order to understand boundary lubrication mechanism of rubber. To achieve this, sliding experiments under boundary lubrication conditions were conducted using two acrylonitrile-butadiene rubbers (NBR) with the different polarity. In addition, the direct observation of sliding surface using a total reflection method was conducted in order to observe the process of generating a lubricant film. Even if the hydrodynamic lubrication was not enough to prevent a direct contact, lubricants played a role of lubricant film and the friction coefficient decreased during sliding. It was found that this was caused by swelling and deswelling of rubbers. It was concluded that, as swelling depended on the combination of rubber and lubricants, the compatibility between the rubber and the lubricant had the significant influence on the process of generating a lubricant film.

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