首页> 外文会议>International Conference European Society for Precision Engineering and Nanotechnology >Development of the micro-texture to the CVT pulley's sheave surface for generated high friction coefficient
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Development of the micro-texture to the CVT pulley's sheave surface for generated high friction coefficient

机译:用于CVT滑轮的滑轮表面的微观纹理,用于产生高摩擦系数

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The friction coefficient (μ) between the pulley's sheave surface and the belt elements of a steel belt in continuously variable transmission (CVT) is increased by 20% from the current level. It would be increased the automobile fuel efficiency about 2% by generating boundary lubrication films with a combination of the surface micro-texture and the molecular structure of lubricant additives. In this study, the relationship between the micro-textures of various process surfaces such as hard-turning, shot-peening, grinding, Electrolytic In-process Dressing (ELID grinding), and lapping surfaces, and the friction coefficient of the pulley's sheave surface was studied. As a result, under this test, as the micro-texture by using a hard-turning and lapping process was found to be better for the generated high friction coefficient (μ) between the pulley's sheave surface and the belt elements. The significant influence of the friction coefficient (μ) of pulley's sheave surface and the belt elements equaled the arithmetic mean deviation of the profile (Ra) and the mean width of the profile (RSm). RSm is especially important. As Ra and the RSm decreased, the real contact areas and boundary lubrication films on the pulley's sheave surface and the belt elements increased. Therefore, the friction coefficients (μ) between the pulley's sheave surface and the belt elements increased.
机译:滑轮的滑轮表面和钢带的无级变速器(CVT)的带元件之间的摩擦系数(μ)被从电流水平增加了20%。这将通过产生边界润滑膜与表面微织构的组合和润滑油添加剂的分子结构可以提高汽车的燃料效率约2%。在这项研究中,各种处理的微纹理之间的关系表面如硬车削,喷丸,研磨,电解在处理修整(ELID磨削),和研磨面和带轮的槽轮面的摩擦系数进行了研究。其结果是,该试验下,当微织构通过使用硬车削和研磨过程被认为是用于滑轮的滑轮表面和带元件之间的产生的高摩擦系数(μ)更好。滑轮的槽轮面与带元件的摩擦系数(μ)的显著影响等于轮廓(Ra)和简档(RSM)的平均宽度的算术平均偏差。 RSm为特别重要的。作为Ra和RSm的下降,实际的接触区域和带轮的槽轮表面上的边界润滑膜和带元件增加。因此,滑轮的滑轮表面和带元件之间的摩擦系数(μ)增加。

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