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Coupled Level-Set Volume of Fluid Simulations of Water Flowing Over a Simplified Drainage Channel With and Without Air Coflow

机译:耦合水平集的流体模拟流量,流过简化的排水通道,没有空气切割

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The motivation for this paper is to predict the flow of water over exterior surfaces of road vehicles. We present simulations of liquid flows on solid surfaces under the influence of gravity with and without the addition of aerodynamic forces on the liquid. This is done using an implementation of a Coupled Level Set Volume of Fluid method (CLSVOF) multiphase approach implemented in the open source OpenFOAM CFD code. This is a high fidelity interface-resolving method that solves for the velocity field in both phases without restrictions on the flow regime. In the current paper the suitability of the approach to Exterior Water Management (EWM) is demonstrated using the representative test cases of a continuous liquid rivulet flowing along an inclined surface with a channel located downstream perpendicular to the oncoming flow. Experimental work has been carried out to record the motion of the rivulet in this case and also to measure the contact angle of the liquid with the solid surface. The measurements of the liquid/solid characteristics such as equilibrium and dynamic contact angles are described along with the analytical expression for contact angle vs. capillary number used in the CFD code. The results from the simulations are compared to experimental measurements. The simulations are carried out with air co-flows of 0, 0.5 and 10 m/s. The simulations are seen to reproduce physical phenomena such as the liquid pinning at sharp corners and the longitudinal stretching of the rivulet with higher air velocity.
机译:本文的动机是预测公路车辆外表面的水流动。我们在重力的影响下存在于固体表面上的液体流动的模拟,并且在液体上添加空气动力力。这是使用在开源OpenFoam CFD代码中实现的流体方法(CLSVOF)的流体方法(CLSVOF)的多相方法的耦合级别集的实现来完成。这是一个高保真界面 - 解析方法,用于解决两个阶段中的速度场,而不限制流动制度。在本纸张中,使用沿着倾斜表面流动的连续液体小轴的代表性测试例,对外部水管理(EWM)的适用性证明了与倾斜表面流动的倾斜表面流动的倾斜表面,其垂直于迎膜下游的倾斜表面。已经进行了实验工作以在这种情况下记录Rivulet的运动,并且还测量液体用固体表面的接触角。诸如平衡和动态接触角的液体/固体特性的测量结果与CFD码中使用的接触角与毛细管数的分析表达进行了描述。将模拟结果与实验测量进行比较。使用0,0.5和10m / s的空气流动进行模拟。看到模拟以再现物理现象,例如在尖角下的液体钉扎以及具有较高空气速度的纵向拉伸。

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