Laboratoire M2S "Physiologie et Biomécanique", Université de Rennes 2-ENS Cachan, Avenue Charles Tillon, 35044 Rennes, France.
J Biomech. 2010 Jul 20;43(10):1884-9. doi: 10.1016/j.jbiomech.2010.03.031. Epub 2010 Apr 20.
The use of swim fins has become popular in various water sport activities. While numerous models of swim fin with various innovative shapes have been subjectively designed, the exact influence of the fin characteristics on swimming performance is still much debated, and remains difficult to quantify. To date, the most common approach for evaluating swim fin propulsion is based on the study of "swimmer-fins" as a global system, where physiological and/or biomechanical responses are considered. However, reproducible swimming technique is difficult (or even impossible) to obtain on human body and may lead to discrepancies in data acquired between trials. In this study, we present and validate a new automat called HERMES which enables an evaluation of various swim fins during an adjustable, standardized and reproducible motion. This test bench reliably and accurately reproduces human fin-swimming motions, and gives resulting dynamic measurements at the ankle joint. Seven fins with various geometrical and mechanical characteristics were tested. For each swim fin, ankle force and hydromechanical efficiency (useful mechanical power output divided by mechanical power input delivered by the motors) were calculated. Efficiencies reported in our study were high (close to 70% for some swim fins) over a narrow range of Strouhal number (St) and peaks within the interval 0.2<St<0.4, as shown in previous studies on flying or swimming animals. Therefore, an interesting prospect in this work would be to accurately study the impact of adjustable fin kinematics and material (design and mechanical properties) on the wake structure and on efficiency.
游泳脚蹼在各种水上运动中变得越来越流行。虽然已经有许多具有各种创新形状的脚蹼模型被主观设计出来,但脚蹼特性对游泳性能的具体影响仍存在很大争议,而且很难量化。迄今为止,评估脚蹼推进力最常用的方法是基于“游泳者-脚蹼”作为一个整体系统的研究,其中考虑了生理和/或生物力学的反应。然而,在人体上重现可重复的游泳技术是困难的(甚至是不可能的),这可能导致试验之间获取的数据存在差异。在这项研究中,我们提出并验证了一种新的自动装置 HERMES,它可以在可调节、标准化和可重复的运动中评估各种脚蹼。这个测试台可靠且精确地再现了人类的脚蹼游泳动作,并在踝关节处给出了动态测量结果。我们测试了具有不同几何和机械特性的七种脚蹼。对于每种脚蹼,计算了踝关节力和水动力效率(有用的机械功率输出除以电机提供的机械功率输入)。我们的研究报告的效率很高(对于某些脚蹼接近 70%),在一个狭窄的斯特劳哈尔数(St)范围内和 0.2<St<0.4 的峰值范围内,这与之前关于飞行或游泳动物的研究一致。因此,这项工作中的一个有趣的前景是准确研究可调脚蹼运动学和材料(设计和机械性能)对尾流结构和效率的影响。