Boute Pim G, Van Wassenbergh Sam, Stamhuis Eize J
Department of Ocean Ecosystems, Energy and Sustainability Research Institute Groningen, Faculty of Science and Engineering, University of Groningen, Nijenborgh 7, 9747 AG Groningen, The Netherlands.
Experimental Zoology Group, Department of Animal Sciences, Wageningen University & Research, De Elst 1, 6708 WD Wageningen, The Netherlands.
R Soc Open Sci. 2020 Apr 8;7(4):200129. doi: 10.1098/rsos.200129. eCollection 2020 Apr.
Despite that boxfishes have a rigid carapace that restricts body undulation, they are highly manoeuvrable and manage to swim with remarkably dynamic stability. Recent research has indicated that the rigid body shape of boxfishes shows an inherently unstable response in its rotations caused by course-disturbing flows. Hence, any net stabilizing effect should come from the fishes' fins. The aim of the current study was to determine the effect of the surface area and orientation of the caudal fin on the yaw torque exerted on the yellow boxfish, , a square cross-sectional shaped species of boxfish. Yaw torques quantified in a flow tank using a physical model with an attachable closed or open caudal fin at different body and tail angles and at different water flow speeds showed that the caudal fin is crucial for controlling yaw. These flow tank results were confirmed by computational fluid dynamics simulations. The caudal fin acts as both a course-stabilizer and rudder for the naturally unstable rigid body with regard to yaw. Boxfishes seem to use the interaction of the unstable body and active changes in the shape and orientation of the caudal fin to modulate manoeuvrability and stability.
尽管箱鲀有着坚硬的甲壳,限制了身体的波动,但它们具有很强的机动性,能够以显著的动态稳定性游动。最近的研究表明,箱鲀坚硬的身体形状在由航向干扰流引起的旋转中表现出固有的不稳定响应。因此,任何净稳定作用都应该来自鱼的鳍。本研究的目的是确定尾鳍的表面积和方向对施加在黄箱鲀(一种方形横截面形状的箱鲀)上的偏航扭矩的影响。在流动水槽中,使用一个带有可附着的封闭或开放尾鳍的物理模型,在不同的身体和尾部角度以及不同的水流速度下对偏航扭矩进行量化,结果表明尾鳍对于控制偏航至关重要。这些流动水槽实验结果得到了计算流体动力学模拟的证实。对于偏航而言,尾鳍对于天然不稳定的刚体既起到航向稳定器的作用,又起到方向舵的作用。箱鲀似乎利用不稳定身体与尾鳍形状和方向的主动变化之间的相互作用来调节机动性和稳定性。