Computer and Information Division, The Institute of Physical and Chemical Research (RIKEN), 2-1 Hirosawa, Wako-shi, Saitama 351-0198, Japan.
Integr Comp Biol. 2002 Nov;42(5):1050-9. doi: 10.1093/icb/42.5.1050.
Characterized by complex geometry and complicated dynamic process, biological fluid dynamics in swimming and flying is usually of large scale vortex flows with four-dimensional nature, namely, spatial three-dimensional and one-dimensional in time. Conventional theories for understanding power and energetics in swimming and flying rely exclusively on the consistent potential flow formulation in qualitatively analyzing the physics as well as the observations and measurements in visualizing the flows so as to support the theories. In the present paper we address a new paradigm of the so-called, simulation-based biological fluid dynamics that can digitize and visualize swimming and flying by using computational mechanical modeling of the biological fluid dynamics through faithful reconstruction of morphology and realistic representation of kinematics of an individual object. We demonstrate an integrated computational system as a baseline for the simulation-based biological fluid dynamics, which involves four subsystems of the morphological modeling, the kinematic modeling, the computational fluid dynamic modeling, and the post-processing for visualization. Applications of a realistic model of insect flapping flight and an extensive study on the Micro Air Vehicle are then presented and discussed.
生物流体动力学的游泳和飞行具有复杂的几何形状和复杂的动态过程,通常是具有四维性质的大规模涡旋流动,即空间三维和时间一维。用于理解游泳和飞行中的动力和能量的传统理论完全依赖于一致的势流公式,从定性上分析物理以及观察和测量以可视化流动,从而支持这些理论。在本文中,我们提出了一种所谓的基于模拟的生物流体动力学的新范例,该范例可以通过对生物流体动力学进行计算力学建模,通过对单个物体的形态进行忠实重建和对运动学进行现实表示,来对游泳和飞行进行数字化和可视化。我们展示了一个集成的计算系统作为基于模拟的生物流体动力学的基准,该系统涉及形态建模、运动学建模、计算流体动力学建模和后处理可视化四个子系统。然后提出并讨论了昆虫扑翼飞行的现实模型的应用和对微型飞行器的广泛研究。