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Modeling free-flow speed according to different water depths-From the viewpoint of dynamic hydraulic pressure

机译:根据不同水深的自由流速度建模-从动态液压的角度

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In this paper, we propose a method of modeling free flow speed from the viewpoint of hydroplaning. First, the lift forces for different water depths were estimated using Bernoulli's equation. Compared with the result of the experimental test performed by the Japan Automobile Research Institute, the hydrodynamic pressure coefficient was determined to be 0.03 (tf s(2)/m(4)). The validation of the predicted lift force is found in another published paper. A very good match is found between the computed values by the proposed numerical model and the data in other published papers. Then, the loss of contact force is considered to evaluate the hydroplaning performance of a tire. To simulate the hydroplaning speed, a tire-sliding model was utilized to obtain the traction and friction forces between the road surface and the tire. The observation data obtained in Japan in 2009 is compared with the physically computed hydroplaning speed, yielding the conclusion that the traction force at the measured desired speed is, on average, 23.4% of the traction force at hydroplaning speed. The analytical model offers a useful tool to quantitatively show that the free flow speed changes as the water depth increase. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,我们从滑水的角度提出了一种模拟自由流动速度的方法。首先,使用伯努利方程估算了不同水深的升力。与日本汽车研究所进行的实验测试的结果相比较,流体动压系数确定为0.03(tf s(2)/ m(4))。在另一篇已发表的论文中可以找到对预测升力的验证。在提议的数值模型的计算值与其他已发表论文中的数据之间找到了很好的匹配。然后,考虑失去接触力以评估轮胎的滑水性能。为了模拟滑水速度,利用轮胎滑动模型来获得路面与轮胎之间的牵引力和摩擦力。将2009年在日本获得的观测数据与物理计算的滑水速度进行比较,得出的结论是,在测得的所需速度下的牵引力平均为滑水速度下的牵引力的23.4%。该分析模型提供了一个有用的工具,可以定量显示自由流速随水深的增加而变化。 (C)2016 Elsevier Ltd.保留所有权利。

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