Stress and strain propagation on infant skull from impact loads during falls: a finite element analysis

F J Burgos-Flórez1,2,3, Diego Alexander Garzón-Alvarado1,2

  • 1Biomimetics Laboratory, Instituto De Biotecnología, Universidad Nacional De Colombia , Bogotá, Colombia.

Insights

Infant skull trauma from low falls is more severe with unossified sutures. Backward falls pose a higher risk of permanent brain damage in neonates.

Area of Science:

  • Biomechanics
  • Pediatric Traumatology
  • Computational Modeling

Background:

  • Infant falls are a common cause of head injuries.
  • Skull suture ossification varies significantly in neonates.
  • Understanding these factors is crucial for preventing traumatic brain injury (TBI).

Purpose of the Study:

  • To simulate infant skull trauma from low-height falls.
  • To investigate the impact of varying suture ossification on skull biomechanics.
  • To analyze injury mechanisms in neonates.

Main Methods:

  • Developed a finite element model of a four-week-old infant skull.
  • Simulated impacts from 30 cm and 50 cm heights.
  • Modeled occipito-parietal and lateral impacts, considering different suture ossification states and craniosynostosis.

Main Results:

  • Unossified sutures and fontanelles showed significantly increased strain magnitudes.
  • Occipital impacts resulted in higher brain deformation and lower Von Mises stress.
  • Fully ossified skulls exhibited less deformation and lower brain stress.

Conclusions:

  • This study provides insights into neonatal TBI mechanisms from household falls.
  • Skull biomechanics, particularly suture ossification, influences injury severity.
  • Findings can inform the design of protective cranial devices for infants.

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