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Friction reduction using self-waxing alpine skis

机译:使用自动打蜡的高山滑雪板减少摩擦

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摘要

A continuously waxed ski has been developed that releases a thin film of lubricant under the base of a ski. This replicates the melt water layer observed in snow skis which is caused by frictional and solar heating. The system is particularly effective on artificial (dry) slopes where skiers slide on plastic bristles rather than snow. Speeds comparable to those achieved on snow are achieved using this system and this improves the experience for the skier. Speed enhancements on plastic slopes of up to 50 % have been achieved using solutions of polyethylene glycol in water. There is speed enhancement of approximately 9 % on artificial snow and 2 % on fresh alpine snow. The latter value is highly significant as it can be the difference between winning a medal in ski competitions and finishing outside the top ten. In addition to the quantitative data, qualitative athlete perceptions were also recorded and show that a feel like snow can be achieved on artificial surfaces. Because the lubrication system is attached to the ski, it allows personal performance enhancement irrespective of a water misting system being in operation or not. The design complies with the equipment regulations of the skiing’s international governing body so it can be used in competition.
机译:已经开发出一种连续打蜡的雪橇,该雪橇在雪橇的底部释放出一层润滑剂薄膜。这复制了在滑雪板上观察到的由摩擦和太阳能加热引起的融化水层。该系统在人工(干燥)斜坡上特别有效,在该斜坡上,滑雪者使用塑料刷毛而不是雪滑动。使用该系统可以达到与在雪地上可比的速度,从而改善了滑雪者的体验。使用聚乙二醇在水中的溶液,可将塑料坡度的速度提高多达50%。人造雪的速度提高了大约9%,新鲜高山雪的速度提高了2%。后者的价值非常重要,因为这可能是在滑雪比赛中赢得奖牌和在前十名之外获得冠军之间的区别。除了定量数据外,还记录了定性的运动员知觉,并表明可以在人造表面上获得像雪一样的感觉。由于润滑系统安装在雪橇上,因此无论水雾系统是否运行,都可以提高个人性能。该设计符合滑雪国际理事机构的设备规定,因此可以在比赛中使用。

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  • 来源
    《Sports Engineering》 |2012年第3期|117-127|共11页
  • 作者单位

    Department of Chemical and Biological Engineering Sir Robert Hadfield Building The University of Sheffield Sheffield S1 3JD UK;

    Department of Chemical Engineering and Biotechnology and BP Institute for Multiphase Flow The University of Cambridge Pembroke Street Cambridge CB2 3RA UK;

    Department of Chemical and Biological Engineering Sir Robert Hadfield Building The University of Sheffield Sheffield S1 3JD UK;

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