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Updated: Jan 24, 2026

A Test Bed to Examine Helmet Fit and Retention and Biomechanical Measures of Head and Neck Injury in Simulated Impact
Published on: September 21, 2017
A coupled physical-computational methodology for the investigation of short fall related infant head impact injury
Ghaidaa A Khalid1, Raj K Prabhu2, Owen Arthurs3
1Cardiff School of Engineering, Cardiff University, The Parade, Cardiff, CF24 3AA, UK; Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq.
Insights
Child head injuries are common, but understanding them is limited. A new infant head model combines physical and computational methods to better analyze injury risks from impacts.
Area of Science:
- Biomechanical Engineering
- Pediatric Traumatology
- Forensic Science
Background:
- Childhood head injuries are a leading cause of death and disability.
- Current understanding of pediatric head injury biomechanics is insufficient for forensic and safety investigations.
- Limited clinical and Post-Mortem-Human-Surrogate (PMHS) data hinders pediatric head injury research.
Purpose of the Study:
- To develop and validate a novel approach for studying infant head injury.
- To investigate regional and localized injury vulnerability in infant heads.
- To establish correlations between impact parameters and fracture risk.
Main Methods:
- A coupled methodology combining a physical infant head surrogate and a Finite-Element (FE-head) model was developed.
- The FE-head model was validated against existing PMHS and physical impact data.
- Experimental impact simulations and parametric analyses were conducted to assess injury risk.
Main Results:
- Regional head accelerations were significantly higher than global measurements.
- Maximum material strain occurred in sutures and fontanelles, not skull bones.
- The FE-head model showed good qualitative agreement with injurious PMHS impacts for fracture risk.
Conclusions:
- The developed FE-head model offers significant potential for studying infant head injury.
- This approach can improve understanding of injury mechanisms across various loading scenarios.
- The findings may motivate advancements in child safety and injury prevention.
Abstract:
Head injury in childhood is the most common cause of death or permanent disability from injury. However, insufficient understanding exists of the response of a child's head to injurious loading scenarios to establish cause and effect relationships to assist forensic and safetly investigations. Largely as a result of a lack of availability of paediatric clinical and Post-Mortem-Human-Surrogate (PMHS) experimental data, a new approach to infant head injury experimentation has been developed. A coupled-methodology, combining a physical infant head surrogate, producing "real world" global, regional and localised impact response data and a computational Finite-Element (FE-head) model was created and validated against available PMHS and physical model global impact response data. Experimental impact simulations were performed to investigate regional and localised injury vulnerability. Different regions of the head produced accelerations significantly greater than those calculated using the currently available method of measuring the global, whole head response. The majority of material strain was produced within the relatively elastic suture and fontanelle regions, rather than the skull bones. A subsequent parametric analysis was conducted to provide a correlation between fall height and areas of maximum-stress-response and fracture-risk-probability. The FE-head was further applied to investigating fracture risk, simulating injurious PMHS impacts and a good qualitative match was observed. The FE-head shows significant potential for the study of infant head injury and is anticipated to be a motivating tool for the improvement of head injury understanding across a range of potentially injurious head loading scenarios.
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