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◆ JOR spine2026-09-01

The Effect of Head-Forward Posture on Lower Neck Loads and Dislocation Risk in Head-First Impact: A Computational and Experimental Investigation.

Mario Mongiardini, Duane Cronin, Ryan D Quarrington

一句话结论 · In one sentence

Preimpact head-forward eccentricity can substantially increase lower-neck loading and susceptibility to CFD under the inverted-drop conditions studied.

原始摘要(英文原文)· Original abstract
BACKGROUND: Subaxial cervical facet dislocation (CFD) is a severe neck injury associated with head-first impact (HFI). However, CFD has not been reliably reproduced in experimental or numerical studies, limiting understanding of its underlying mechanics. This study quantified the influence of preimpact head-forward posture on lower-neck sagittal-plane loading associated with CFD during HFI. METHODS: A detailed finite element head-neck model was enhanced and evaluated against literature data, then used to investigate HFI response at a 2 m/s vertical drop impact velocity. A reposturing procedure achieved graded head-forward eccentricity from 0 to 50 mm in 5 mm increments, reflecting postures observed during anticipatory neck bracing. A matched cadaveric HFI experiment was subsequently performed with 30 mm eccentricity. RESULTS: Simulations demonstrated that eccentricities of 15 mm or more produced an S-shaped neck deformation during impact, as observed in prior experiments that produced CFD, accompanied by marked increases in anterior intervertebral shear and flexion bending at C7/T1. The matched cadaveric experiment produced bilateral C7/T1 dislocation, consistent with the predicted loading and deformation trends. However, complete CFD was not reproduced computationally because current intervertebral soft-tissue failure formulations did not capture the observed failure progression. CONCLUSIONS: Preimpact head-forward eccentricity can substantially increase lower-neck loading and susceptibility to CFD under the inverted-drop conditions studied.
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The Effect of Head-Forward Posture on Lower Neck Loads and Dislocation Risk in Head-First Impact: A Computational and Experimental Investigation. — 科研速览 Science Skim