Introduction of dynamic rate-of-force development scaling factor in progressive drop jumps.
basic_science · Level V
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- Record sourced from PubMed, PMID 32827790.
- Also identified by DOI 10.1016/j.jbiomech.2020.109980.
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Abstract
Rapid force generation across submaximal levels has been evaluated with the rate of force development scaling factor (RFD-SF) in different isometric tasks, while such measurement was still not verified in dynamic tasks. Our study was designed to evaluate the feasibility of the RFD-SF in dynamic drop jump (DJ) task (RFD-SF<sub>DJ</sub>). A total of 55 young athletes performed isometric plantarflexion at different submaximal intensities and 60 DJs (6 different drop heights). For each participant we calculated linearity (r<sup>2</sup>) and slope in isometric task (RFD-SF<sub>PF</sub>), eccentric part of DJ (RFD-SF<sub>DJ-ECC</sub>) and concentric part of DJ (RFD-SF<sub>DJ-CON</sub>), as well as average jump height (DJ<sub>H</sub>) from each drop height. Our results revealed strong linear force-RFD relationship for isometric plantarflexion (r<sup>2</sup> = 0.90 ± 0.06), eccentric (r<sup>2</sup> = 0.87 ± 0.09) and concentric phase of DJ (r<sup>2</sup> = 0.80 ± 0.18). Significant moderate positive correlations were calculated between RFD-SF<sub>PF</sub> and RFD-SF<sub>DJ-ECC</sub> (r = 0.311, p < 0.05) and small negative correlations between RFD-SF<sub>DJ-CON</sub> and RFD-SF (r = -0.276, p < 0.05)<sub>.</sub> Significant positive moderate correlations were seen only between RFD-SF<sub>DJ-ECC</sub> and DJ<sub>H</sub> from 10 cm (r = 0.459, p < 0.001) and 15 cm (r = 0.423, p < 0.01). This is the first study to introduce and confirm that RFD-SF<sub>DJ</sub> can be obtained from the multi-joint tasks (60 jumps) and still provide acceptable reliability and linear relationship. Furthermore, RFD-SF<sub>DJ</sub> may have greater practical application than RFD-SF assessed under the isometric conditions. This verification of RFD-SF<sub>DJ</sub> opens opportunities for further research regarding its practical application.
Medical subject headings
- Mechanical Phenomena
- Muscle, Skeletal