Load-Carrying Capacity of the Lubricating Film in the Gap Between Surfaces Textured by Hemispherical Pores

L. Burstein
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Abstract

The load support of a lubricating film that separates the surfaces textured by identical equidistant spaced hemispherical pores was investigated. Two-dimensional time-dependent Reynolds equation is solved numerically for different pore-radius-to-gap and cell-dimension-to-pore-radius ratios and for different relative pore positions of opposite surfaces. The results are compared with the data obtained for the case when only one of the opposite surfaces is covered with pores. The obtained data show a maximum in the carrying capacity of the lubricating film when the cell-to-pore-radii ratio is approximately equal to two, in the case of two opposite surfaces with pores. At small pore radii and with increasing cell dimensions, the load support of two surfaces with pores is much greater than in the case of one surface with pores. This behavior reverses with increasing pore diameter. The presented analysis and the provided MATLAB programs are applicable for mechanisms having rubbing mechanical parts with surfaces covered with pores.
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半球形孔织构表面间隙中润滑膜的承载能力
研究了由等距半球形孔隙织构而成的润滑膜的载荷支撑。数值求解了不同孔半径与间隙比、孔孔半径与孔孔尺寸比以及相对表面不同相对孔位置的二维时变雷诺方程。将所得结果与只在一个相对表面上覆盖孔隙的情况进行了比较。所得数据表明,当孔与孔半径之比近似等于2时,在两个具有孔的相对表面的情况下,润滑膜的承载能力最大。当孔半径较小且孔尺寸增大时,两个孔表面的负载支撑比一个孔表面的负载支撑大得多。这种行为随着孔径的增大而逆转。本文的分析和MATLAB程序适用于表面有孔洞的摩擦机械零件的机构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.60
自引率
0.00%
发文量
22
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