Takagi Hideki, Shimada Shohei, Miwa Takahiro, Kudo Shigetada, Sanders Ross, Matsuuchi Kazuo
Faculty of Health and Sport Sciences, University of Tsukuba, Tennodai 1-1-1, Tsukuba, Ibaraki, Japan.
Faculty of Health and Sport Sciences, University of Tsukuba, Tennodai 1-1-1, Tsukuba, Ibaraki, Japan.
Hum Mov Sci. 2014 Dec;38:133-42. doi: 10.1016/j.humov.2014.09.003. Epub 2014 Oct 10.
The goal of this research is to clarify the mechanism by which unsteady forces are generated during sculling by a skilled swimmer and thereby to contribute to improving propulsive techniques. We used particle image velocimetry (PIV) to acquire data on the kinematics of the hand during sculling, such as fluid forces and flow field. By investigating the correlations between these data, we expected to find a new propulsion mechanism. The experiment was performed in a flow-controlled water channel. The participant executed sculling motions to remain at a fixed position despite constant water flow. PIV was used to visualize the flow-field cross-section in the plane of hand motion. Moreover, the fluid forces acting on the hand were estimated from pressure distribution measurements performed on the hand and simultaneous three-dimensional motion analysis. By executing the sculling motion, a skilled swimmer produces large unsteady fluid forces when the leading-edge vortex occurs on the dorsal side of the hand and wake capture occurs on the palm side. By using a new approach, we observed interesting unsteady fluid phenomena similar to those of flying insects. The study indicates that it is essential for swimmers to fully exploit vortices. A better understanding of these phenomena might lead to an improvement in sculling techniques.
本研究的目的是阐明熟练游泳者在划水过程中产生非定常力的机制,从而有助于改进推进技术。我们使用粒子图像测速技术(PIV)来获取划水过程中手部运动学的数据,如流体力和流场。通过研究这些数据之间的相关性,我们期望找到一种新的推进机制。实验在一个流量可控的水槽中进行。参与者执行划水动作,以便在水流恒定的情况下保持在固定位置。PIV用于可视化手部运动平面内的流场横截面。此外,通过对手部进行压力分布测量和同步三维运动分析来估计作用在手上的流体力。通过执行划水动作,当手部背侧出现前缘涡旋且手掌侧出现尾流捕获时,熟练的游泳者会产生较大的非定常流体力。通过使用一种新方法,我们观察到了与飞行昆虫类似的有趣的非定常流体现象。该研究表明,游泳者充分利用涡旋至关重要。更好地理解这些现象可能会改进划水技术。