2022/02/23 by Petrus Gantois, Fabiano de Souza Fonseca, Fábio Yuzo Nakamura +4
Engineering · Medicine · #Lower Extremity Biomechanics and Pathologies #Sports Performance and Training #Winter Sports Injuries and Performance
paper · pdf · doi:10.5114/biolsport.2023.112966
openalex publication_date 2022/02/23 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/29
The aim of this study was to analyse the load-velocity and load-power relationships in the freeweight back-squat (BSQ) and hexagonal bar deadlift (HBD) exercises. Twenty-five (n = 25) resistance-trained men (age = 23.7 2.8 years) performed a progressive load test at maximal intended velocity to determine their BSQ and HBD one-repetition maximum (1RM). Mean propulsive velocity (MPV) during the concentric phase of the lift was recorded through a linear encoder. Load-velocity and load-power relationships were analysed by fitting linear regression and the second-order polynomial, respectively, to the data. Maximum strength (1RM), MPV (30-80% 1RM), and power output (30-90% 1RM) were higher for HBD compared to BSQ exercise (p < 0.05). A very strong relationship between MPV and relative intensity was found for both BSQ (R 2 = 0.963) and HBD (R 2 = 0.967) exercises. The load that maximizes power output (P max ) was 64.6 2.9% (BSQ) and 59.6 1.1% (HBD) 1RM. There was a range of loads at which power output was not different than P max (BSQ: 40-80% 1RM; HBD: 50-70% 1RM). In conclusion, the load-velocity and load-power relationships might assist strength and conditioning coaches to monitor and prescribe exercise intensity in the BSQ and HBD exercises using the velocitybased training approach.