首页> 外文会议>ASME/JSME/KSME Joint Fluids Engineering Conference;AJK2011 >SWIMMING HYDRODYNAMICS AND MANEUVERABILITY IN C-START OF ZEBRAFISH LARVAE: AN INTEGRATED COMPUTATIONAL STUDY
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SWIMMING HYDRODYNAMICS AND MANEUVERABILITY IN C-START OF ZEBRAFISH LARVAE: AN INTEGRATED COMPUTATIONAL STUDY

机译:斑马鱼幼虫C-启动中的游泳水动力学和可操纵性:综合计算研究

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Fishes often exhibit stable body undulating in body and caudal fin (BCF) mode during cyclic swimming, but can perform remarkable maneuverability with significantly different swimming modes in case of C-start. Aiming at unveiling the mechanisms of swimming hydrodynamics and maneuverability of C-start, we have developed an integrated computational framework to model a free-swimming larval zebrafish {Danio rerio) by coupling the equations of 3DoF (Degrees of Freedom) motion and Navier-Stokes (NS) equations. Unsteady hydrodynamics is resolved by integrating models of realistic fin-body morphology and body-undulatory kinematics with an in-house NS solver. The instantaneous forces and moments on the body provided by the NS-solutions serve as input for 3DoF equations of motion. In this study, with a specific focus on a C- start as well as a subsequent transient phase till the cyclic swimming phase, we construct a larval zebrafish model, which can mimics realistic body motions and deformations based on measurements. Validation of the simulation is discussed by comparing model predictions with experimental measurements, which indicates that the present integrated model is capable to accurately predict free-swimming dynamics and hydrodynamics. The model successfully simulated a swimming bout of C-start and cyclic swimming: a wake topology of double row vortex ring structures is observed behind the fish; and a strong jet is visible at the center of the vortex ring, pushing water backward as the fish accelerates.
机译:在循环游泳过程中,鱼类通常在身体和尾鳍(BCF)模式下表现出稳定的身体起伏,但是在C-start的情况下,在明显不同的游泳模式下,它们可以表现出出色的机动性。为了揭示C-start的游泳水动力和可操纵性的机理,我们开发了一个集成的计算框架,通过耦合3DoF(自由度)运动和Navier-Stokes的方程来模拟自由游泳的幼体斑马鱼(Danio rerio)。 (NS)方程。通过将逼真的鳍形体形态和体态波动运动学模型与内部的NS解算器集成,可以解决非稳态流体动力学问题。 NS解决方案在人体上提供的瞬时力和力矩用作3DoF运动方程的输入。在这项研究中,我们特别关注C起始以及随后的过渡阶段直到循环游泳阶段,我们构建了一个幼虫斑马鱼模型,该模型可以根据测量结果模拟现实的身体运动和变形。通过将模型预测与实验测量值进行比较来讨论仿真的有效性,这表明本集成模型能够准确地预测自由游泳动力学和流体动力学。该模型成功地模拟了C-start和循环游泳的泳动:在鱼后观察到双排涡流环结构的尾流拓扑;在旋涡环的中心可以看到强劲的喷射流,随着鱼的加速向后推水。

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