论文标题
涡流引起的振动:一种软珊瑚喂养策略?
Vortex-induced vibrations: a soft coral feeding strategy?
论文作者
论文摘要
软珊瑚,例如双杆羽状Antillogorgia bipinnata,是殖民地建造动物,它们通过捕获由电流带来的食物颗粒而饲养的动物。由于其灵活的骨骼,他们随波浪膨胀来回弯曲和摇摆。除了整个菌落的这种低频摇摆外,双杆菌的分支以高频振动,幅度较小,并且随着波流速峰值的峰值而横向至流动。在本文中,我们研究了这些无法解释的振动的起源,并考虑了它们对软珊瑚的影响。估计动力变量以及唤醒振荡器模型的有限元实现,有利于涡旋诱导的振动(VIV),这是观察到的快速动力学的最可能起源。为了评估动力学对滤波器进料的影响,我们模拟了圆形圆柱体周围流动的颗粒,并通过内部整体液结构相互作用(FSI)有限元求解器和Python代码计算了捕获率。我们观察到,振动缸比在频率锁定时捕获的颗粒最多可以多40%。因此,Vivs合理地为软珊瑚提供了更好的食物捕获。
Soft corals, such as the bipinnate sea plume Antillogorgia bipinnata, are colony building animals that feed by catching food particles brought by currents. Because of their flexible skeleton, they bend and sway back and forth with the wave swell. In addition to this low-frequency sway of the whole colony, branches of A. bipinnata vibrate at high frequency with small amplitude and transverse to the flow as the wave flow speed peaks. In this paper, we investigate the origin of these yet unexplained vibrations and consider their effect on soft corals. Estimation of dynamical variables along with finite element implementation of the wake-oscillator model favour vortex-induced vibrations (VIVs) as the most probable origin of the observed rapid dynamics. To assess the impact of the dynamics on filter feeding, we simulated particles advected by the flow around a circular cylinder and calculated the capture rate with an in-house monolithic fluid-structure interaction (FSI) finite element solver and Python code. We observe that vibrating cylinders can capture up to 40% more particles than fixed ones at frequency lock-in. Therefore, VIVs plausibly offer soft corals a better food capture.