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Vertical Air Model for a Snowboard Course Design Based on the Dynamic Theory

机译:基于动力学理论的单板滑雪课程设计垂直空气模型

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The shape of the half-pipe has a certain influence on vertical air ("Vertical air" is the maximum vertical distance above the edge of the halfpipe). How to determine the shape of a snowboard course to maximize the production of "vertical air" by a skilled snowboarder is a problem for designer. In this paper, we firstly build a metric and quantify the design elements: slope angle, transition and flat-bottom. Based on the kinetic theory, we analyze the snowboarder's load conditions when he is sliding in the half-pipe, and develop a kinetic model about the geometrical characteristic and vertical air of the half-pipe. Thus, we obtain the shape distributed function with the objective of maximizing the vertical air. According to the distributed function, we figure out the design elements of the half-pipe with maximum vertical air: slope angle=18degree, flat-bottom-0.4m, transition length=l 0.25m and wall angle=60degree. After modeling, we analyze the sensitivity of the model and find that the vertical air of the half-pipe is determined mainly by the slope angel and transition, and the flat-bottom also has an influence on it, but not obvious.
机译:半管的形状对垂直空气有一定的影响(“垂直空气”是半管边缘上方的最大垂直距离)。对于设计者来说,如何确定滑雪板路线的形状以使熟练的滑雪者最大程度地产生“垂直空气”是一个问题。在本文中,我们首先建立一个度量标准并量化设计元素:斜角,过渡和平底。基于动力学理论,我们分析了单板滑雪者在半管中滑动时的载荷情况,并建立了关于半管几何特性和垂直空气的动力学模型。因此,我们获得了形状分布函数,目的是使垂直空气最大化。根据分布函数,我们计算出最大垂直空气的半管的设计元素:斜角= 18度,平底0.4 m,过渡长度= 0.25 m,壁角= 60度。在建模之后,我们分析了模型的敏感性,发现半管的垂直空气主要由坡度角度和过渡决定,而平底也对其有影响,但不明显。

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