a LAAS-CNRS, Université de Toulouse , CNRS , UPS, Toulouse , France.
J Sports Sci. 2018 Nov;36(22):2551-2557. doi: 10.1080/02640414.2018.1469226. Epub 2018 Apr 25.
Parkour landing techniques differ from performances of other sports as they are practiced in urban spaces with uncontrolled surfaces and drop heights. Due to the relatively young age of the sport, few studies have tried to understand how practitioners - called traceurs - succeed at performing these dynamic performances. In this paper, we focus on the precision landing technique, which has a fundamental role in most of the Parkour motions. We analyzed the lower limbs motion of traceurs executing the precision landings from two different heights and compared their performance with untrained participants. We found that traceurs perform a soft landing extending its duration twice than untrained participants do [Formula: see text], increasing the range of motion [Formula: see text] and generating more mechanical energy [Formula: see text] to dissipate the impact. In the Parkour technique, the knee accounted for half of the energy dissipated. The peak joint torques [Formula: see text] and power [Formula: see text] were reduced in the Parkour technique. The increase of the landing height did not modify the proportion of individual joint mechanical energy contribution for dissipation. Our results could be used to enhance Parkour performance, and to understand new ways in which sport practitioners can land in order to prevent injuries.
跑酷的着陆技术与其他运动的表演不同,因为它们是在城市空间中进行的,地面和落差高度都不受控制。由于这项运动相对较年轻,很少有研究试图了解参与者(称为跑酷者)如何成功完成这些动态表演。在本文中,我们专注于精确着陆技术,它在大多数跑酷动作中都起着重要作用。我们分析了从两个不同高度执行精确着陆的跑酷者的下肢运动,并将他们的表现与未经训练的参与者进行了比较。我们发现,跑酷者会进行软着陆,将着陆时间延长两倍[公式:见正文],增加运动幅度[公式:见正文]并产生更多的机械能[公式:见正文]来消耗冲击力。在跑酷技术中,膝盖消耗了一半的能量。跑酷技术降低了峰值关节扭矩[公式:见正文]和功率[公式:见正文]。增加着陆高度不会改变各个关节机械能消耗的比例。我们的研究结果可以用于提高跑酷的表现,以及了解运动参与者为了防止受伤而可以采用的新的着陆方式。