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Understanding the friction mechanisms between the human finger and flat contacting surfaces in moist conditions

机译:了解潮湿条件下人的手指和平坦接触表面之间的摩擦机制

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摘要

Human hands sweat in different circumstances and the presence of sweat can alter the friction between the hand and contacting surface. It is, therefore, important to understand how hand moisture varies between people, during different activities and the effect of this on friction. In this study, a survey of fingertip moisture was done. Friction tests were then carried out to investigate the effect of moisture. Moisture was added to the surface of the finger, the finger was soaked in water, and water was added to the counter-surface; the friction of the contact was then measured. It was found that the friction increased, up until a certain level of moisture and then decreased. The increase in friction has previously been explained by viscous shearing, water absorption and capillary adhesion. The results from the experiments enabled the mechanisms to be investigated analytically. This study found that water absorption is the principle mechanism responsible for the increase in friction, followed by capillary adhesion, although it was not conclusively proved that this contributes significantly. Both these mechanisms increase friction by increasing the area of contact and therefore adhesion. Viscous shearing in the liquid bridges has negligible effect. There are, however, many limitations in the modelling that need further exploration.
机译:人的手在不同情况下会出汗,汗液的存在会改变手与接触表面之间的摩擦。因此,重要的是要了解人的水分在不同活动期间如何变化,以及水分对摩擦的影响。在这项研究中,进行了指尖水分的调查。然后进行摩擦试验以研究水分的影响。将水分添加到手指的表面,将手指浸入水中,然后将水添加到反面。然后测量接触的摩擦。发现摩擦增加,直到一定水平的水分,然后降低。先前已经通过粘性剪切,吸水和毛细管粘附力解释了摩擦的增加。实验结果使该机制能够进行分析研究。这项研究发现,吸水是导致摩擦力增加,其次是毛细血管粘附的主要机理,尽管并不能最终证明这是显着的作用。这两种机制都通过增加接触面积并因此增加粘附力来增加摩擦。液桥中的粘性剪切作用可忽略不计。但是,建模存在许多限制,需要进一步探索。

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