Sport Sciences-Biomedical Department, Faculty of Physical Education and Sport, Charles University, Prague, Czech Republic -
Sport Sciences-Biomedical Department, Faculty of Physical Education and Sport, Charles University, Prague, Czech Republic.
J Sports Med Phys Fitness. 2024 Aug;64(8):766-774. doi: 10.23736/S0022-4707.24.15734-9. Epub 2024 Jun 6.
High-velocity concentric actions can be negatively impacted by cumulative fatigue during plyometric training. Reducing vertical ground reaction forces (GRF) upon landing could decrease eccentric demands, potentially minimizing fatigue, maintaining concentric performance, and benefiting concentric training adaptations. Therefore, this study examined the effect of intentionally higher and lower landing vertical GRF on the ability to sustain concentric jumping performance.
Twenty men (25.2±3.5 years) performed 30 maximal effort jumps over a 50 cm hurdle (high-landing GRF) and onto a 50 cm box (low-landing GRF), on two separate occasions in a counter-balanced order. Jumps were measured using two force platforms (one for takeoff and one for landing) and a linear position transducer. The 30 jumps were divided into 5 groups of 6 repetitions, and the mean value for each group was analyzed.
There was no significant condition × repetition group interaction for any parameters, indicating that the greater landing GRF during hurdle jumps did not negatively affect concentric jump performance throughout the 30 jumps. Concentric velocities and jump height were significantly greater during box jumps compared to hurdle jumps.
Thirty maximal-effort jumps did not cause fatigue-related decrease of performance, independent of jump type (i.e., the magnitude of landing GRF). Although, reduced vertical GRF upon landing appears to have a neutral-to-positive effect on concentric jumping performance. Therefore, reducing landing GRF, such as by using BJs, could acutely augment jumping performance and help to reduce cumulative training load.
在增强式训练过程中,累积疲劳会对高速向心动作产生负面影响。降低落地时的垂直地面反作用力(GRF)可减少离心需求,潜在地最小化疲劳,维持向心性能,并有益于向心训练适应。因此,本研究探讨了故意增加和降低落地垂直 GRF 对维持向心跳跃性能能力的影响。
20 名男性(25.2±3.5 岁)在两次平衡的实验中,分别以高(越过 50cm 栏的落地 GRF)和低(落在 50cm 箱子上的落地 GRF)两种方式,各完成 30 次最大努力跳跃。跳跃使用两个力平台(一个用于起跳,一个用于落地)和一个线性位置传感器进行测量。30 次跳跃被分为 5 组,每组 6 次重复,每组的平均值进行分析。
在任何参数中,条件×重复组交互作用均无统计学意义,这表明在高栏跳跃中更大的落地 GRF 并没有在 30 次跳跃中对向心跳跃性能产生负面影响。与高栏跳跃相比,箱式跳跃的向心速度和跳跃高度明显更大。
30 次最大努力跳跃没有导致与疲劳相关的性能下降,而与跳跃类型无关(即落地 GRF 的大小)。尽管,落地时垂直 GRF 的降低似乎对向心跳跃性能有中性至积极的影响。因此,降低落地 GRF,例如使用 BJs,可以急性增强跳跃性能,并有助于减少累积训练负荷。