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Application of 3D-PTV to mass exchange in an open-channel flow past a lateral embayment

机译:3D-PTV在开放式流动中的应用在横向扶手中的开放通道流中的应用

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摘要

This work presents the design and application of a Lagrangian measurement and analysis methodology, which is employed to study the flow and passive tracer exchange between a main channel and a lateral cavity in a laboratory experiment. For this purpose, a 3D-PTV system is implemented for which a static and dynamic experimental validation show that the use of a multiplane camera calibration technique and a recent trajectory linking strategy allow one to track the neutrally buoyant particles accurately in time. The resulting 3D particle trajectories are then used to quantify the 3D flow field and study the entrainment mechanisms between the main flow and the cavity using an Eulerian and a Lagrangian methodology, respectively. Analysis of the flow velocities at the geometrical interface between the main flow and the cavity indicates that the inflow is mainly concentrated at the downstream end of the cavity opening, closer to the bottom, while the particles tend to leave the cavity in the upstream part of the interface more uniform over the water depth. A vertical profile of the mass exchange coefficient is quantified based on the transverse velocity components at the interface, which confirms that the exchange intensity varies significantly with depth. More importantly, however, a novel Lagrangian trajectory classification strategy is proposed to study the transport of particles more in detail and overcome problems related to the time-dependent and 3D shape of the hydrodynamic boundary between the main channel and the cavity. Compared to the common Eulerian approach, this enables to refine the definition of mass exchange and exclude those particles that do not add to the net exchange. Subsequently a Lagrangian definition of the (depth-averaged) mass exchange coefficient is proposed, for which the current (preliminary) results indicate its potential to reliably quantify mass exchange.
机译:这项工作介绍了拉格朗日测量和分析方法的设计和应用,该方法采用了在实验室实验中研究了主通道和横向腔之间的流动和被动示踪剂交换。为此目的,实现了3D PTV系统,用于该静态和动态的实验验证表明,使用乘法相机校准技术和最近的轨迹连接策略允许在时间准确地跟踪中性浮力颗粒。然后,使用所得到的3D粒子轨迹来量化3D流场,并使用欧拉和拉格朗日方法研究主流和腔之间的夹带机构。分析主流和腔之间的几何界面处的流速,表示流入主要集中在腔开口的下游端,靠近底部,而颗粒倾向于将腔留在上游部分中的腔界面在水深更均匀。基于界面处的横向速度分量量化横向速度分量的垂直轮廓,这证实了交换强度随深度变化显着变化。然而,更重要的是,提出了一种新的拉格朗日轨迹分类策略,以研究更详细地研究粒子的运输,并克服与主通道和空腔之间的流体动力边界的时间相关和3D形状相关的问题。与常见的欧拉方向相比,这使得能够优化大规模交换的定义,并排除不添加净交换的那些颗粒。随后提出了一种拉格朗日的定义(深度平均)配方系数,其中电流(初步)结果表明其可能可靠地量化配额交换。

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