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.

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