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Published on: September 21, 2017
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.
Abstract:
Background and Objective: To simulate infant skull trauma after low height falls when variable degrees of ossification of the sutures are present. Methods: A finite elements model of a four-week-old infant skull was developed for simulating low height impact from 30 cm and 50 cm falls. Two impacts were simulated: An occipito-parietal impact on the lambdoid suture and a lateral impact on the right parietal and six cases were considered: unossified and fully ossified sutures, and sagittal, metopic, right lambdoid and right coronal craniosynostosis. Results: 26 simulations were performed. Results showed a marked increase in strain magnitudes in skulls with unossified sutures and fontanels. Higher deformations and lower Von Mises stress in the brain were found in occipital impacts. Fully ossified skulls showed less overall deformation and lower Von Mises stress in the brain. Results suggest that neonate skull impact when falling backward has a higher probability of resulting in permanent damage. Conclusion: This work shows an initial approximation to the mechanisms underlying TBI in neonates when exposed to low height falls common in household environments, and could be used as a starting point in the design and development of cranial orthoses and protective devices for preventing or mitigating TBI.
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