论文标题
液滴冲击到弹簧板上的板上:分析和模拟
Droplet impact onto a spring-supported plate: analysis and simulations
论文作者
论文摘要
液滴对柔性底物的高速影响是一种高度非线性的实际重要性过程,在流体结构相互作用的背景下构成了强大的建模挑战。我们提出了两种旨在研究液滴系统的规范系统,该液滴影响弹簧和仪表板支撑的刚性板:匹配的渐近扩张和直接数值模拟(DNS)。在前者中,我们得出了无粘性瓦格纳理论的概括,以近似撞击的早期阶段的流动行为。在后者中,我们执行了旨在验证分析框架的详细DNS,并提供了对拟议数学模型超出范围的以后时间的洞察力。从两种方法中汲取灵感,我们观察到板块的质量,仪表板的电阻和弹簧的刚度对固体运动的运动具有强制性阻尼振荡。此外,我们研究了板运动如何影响液滴的动力学,主要通过改变其内部流体力压力分布。我们建立在这些技术之间的相互作用的基础上,表明混合方法会导致在多个长度和时间尺度之间改善模型和计算开发以及结果解释。
The high-speed impact of a droplet onto a flexible substrate is a highly nonlinear process of practical importance which poses formidable modelling challenges in the context of fluid-structure interaction. We present two approaches aimed at investigating the canonical system of a droplet impacting onto a rigid plate supported by a spring and a dashpot: matched asymptotic expansions and direct numerical simulation (DNS). In the former, we derive a generalisation of inviscid Wagner theory to approximate the flow behaviour during the early stages of the impact. In the latter, we perform detailed DNS designed to validate the analytical framework, as well as provide insight into later times beyond the reach of the proposed mathematical model. Drawing from both methods, we observe the strong influence that the mass of the plate, resistance of the dashpot and stiffness of the spring have on the motion of the solid, which undergoes forced damped oscillations. Furthermore, we examine how the plate motion affects the dynamics of the droplet, predominantly through altering its internal hydrodynamic pressure distribution. We build on the interplay between these techniques, demonstrating that a hybrid approach leads to improved model and computational development, as well as result interpretation, across multiple length- and time-scales.