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Early Horizontal Deceleration Ability Across Multiple Steps and Approach Speeds in Multidirectional Team Sport Athletes

Luke Hitchens, Jasper Verheul · European Journal of Sport Science · 2026

Researchers had 19 team-sport athletes sprint and then brake as hard as possible from 100%, 85%, and 70% of top speed, measuring ground forces and body positions during the first three braking steps. Faster deceleration was linked to larger horizontal braking force and a higher horizontal-to-vertical force ratio, with step 1 depending most on force magnitude (aided by deeper hip and knee flexion) and later steps on force direction (lower centre of mass, foot planted further ahead, backward-leaning shank at touchdown).
Takeaway: Train braking in steps: sink into deeper hip and knee flexion on the first step, then lower your hips and plant the foot well ahead with the shin angled back on following steps.
Abstract (source)

Horizontal deceleration ability (HDA) is a critical component of multidirectional team sport performance. This study aimed to identify the interaction between external kinetic and kinematic determinants of HDA across multiple deceleration steps and approach speeds. Nineteen multidirectional team sport athletes completed five maximal horizontal decelerations at 100%, 85%, and 70% of maximal sprint velocity, while three-dimensional ground reaction forces (GRF) and kinematics were captured during the first three deceleration steps. HDA was quantified as the average rate of velocity reduction (i.e., deceleration) within each step and cumulatively across steps 1-3 (early HDA). Greater within-step deceleration significantly correlated with greater mean horizontal GRF (HGRF) and horizontal-to-vertical (H-V) force ratio across all steps and approach speeds (r = 0.56-0.95, p = 0.001-0.013). Mean HGRF in step 1 (β = 0.58-0.83, p = 0.01) and H-V force ratio in step 3 (β = 0.50-0.68, p = 0.01) were the strongest predictors of early HDA. Greater peak hip and knee flexion angles in step 1, and a lower centre-of-mass height, increased anterior foot placement and a more negative shank inclination at touchdown in steps 2 and 3 were associated with greater mean HGRF and H-V force ratio, with stronger associations observed at slower speeds (r = 0.49-0.90, p = 0.001-0.033). These

Findings: indicate that early HDA is underpinned by step-specific kinetic and kinematic strategies. Practitioners should target the attenuation of horizontal force magnitude in step 1 via greater peak hip and knee flexion and enhance horizontal force orientation in later steps by optimising touchdown postures, such as centre-of-mass height, anterior foot placement and shank inclination.

Primary studyOpen accessWomen's & Youth Athletics
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