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环己烷蒸汽对云母表面间粘滑摩擦的影响。

Influence of cyclohexane vapor on stick-slip friction between mica surfaces.

作者信息

Ohnishi Satomi, Kaneko Daisaku, Gong Jian Ping, Osada Yoshihito, Stewart A M, Yaminsky Vassili V

机构信息

Research School of Physical Sciences and Engineering, Australian National University, Canberra, A.C.T. 0200, Australia.

出版信息

Langmuir. 2007 Jun 19;23(13):7032-8. doi: 10.1021/la0632732. Epub 2007 May 23.

Abstract

Stick-slip friction between mica surfaces under cyclohexane vapor has been investigated with the Surface Force Apparatus. The dynamic shear stress decreased from 60 to 10 MPa with increasing relative vapor pressure (rvp) from 5% to 50%. Between a rvp of 50% and 80%, the shear stress remained at approximately 10 MPa, with a slight decrease on increasing the rvp. At a rvp greater than 80%, the values of shear stress were below 5 MPa. The stick-slip behavior was observed in the rvp range of 20% to saturation. When the rvp reached 20%, stick-slip appeared but faded out with sliding time. At a rvp greater than 50%, the stick-slip pattern was stable without fading. By taking into account the size of the meniscus formed by capillary condensation of the liquid around the contact area and the Laplace pressure, the dependence of shear stress and the stick-slip modulation on rvp suggests that the origin of the stick-slip observed in cyclohexane vapor is as follows: At a rvp greater than 50%, where stable sick-slip is observed, the stick-slip caused by the cyclohexane layering in the contact area is of essentially the same origin as that observed with mica surfaces sliding in bulk cyclohexane liquid. As with the bulk liquid experiment, decreasing the layer thickness (or the number of the layers) between the surfaces increases the shear stress at the onset of slip. In the vapor phase experiments, the stick-slip is enhanced by the increase of the negative Laplace pressure in the capillary condensed liquid, thereby forcing the surfaces toward each other more strongly with decreasing rvp. In the rvp range between 20% and 50%, where the fading stick-slip is observed, the condensate liquid seeps into the contact area under the influence of the applied tangential force and thus triggers the slip motion. Due to the small condensation volume, the liquid condensed around the contact area is exhausted in the process of repeating stick-slip. As the slip length is limited to the meniscus size, the stick-slip amplitude becomes smaller, and eventually the surfaces start sliding without stick-slip.

摘要

利用表面力仪研究了环己烷蒸汽下云母表面的粘滑摩擦。随着相对蒸汽压(rvp)从5%增加到50%,动态剪应力从60MPa降至10MPa。在rvp为50%至80%之间,剪应力保持在约10MPa,随着rvp增加略有下降。在rvp大于80%时,剪应力值低于5MPa。在20%至饱和的rvp范围内观察到粘滑行为。当rvp达到20%时,出现粘滑现象,但随着滑动时间逐渐消失。在rvp大于50%时,粘滑模式稳定不消失。考虑到接触区域周围液体毛细管凝聚形成的弯月面大小和拉普拉斯压力,剪应力和粘滑调制对rvp的依赖性表明,在环己烷蒸汽中观察到的粘滑起源如下:在rvp大于50%时,观察到稳定的粘滑,接触区域中环己烷分层引起的粘滑与在大量环己烷液体中滑动的云母表面观察到的粘滑基本起源相同。与大量液体实验一样,减小表面之间的层厚度(或层数)会增加滑动开始时的剪应力。在气相实验中,毛细管凝聚液中负拉普拉斯压力的增加会增强粘滑,从而随着rvp降低使表面相互作用更强。在20%至50%的rvp范围内,观察到逐渐消失的粘滑,凝聚液在施加的切向力影响下渗入接触区域,从而触发滑动运动。由于凝聚体积小,接触区域周围凝聚的液体在重复粘滑过程中耗尽。由于滑动长度限于弯月面大小,粘滑幅度变小,最终表面开始无粘滑滑动。

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