The mechanical and morphological properties of 6 year-old cranial bone

Matthew T Davis1, Andre M Loyd, Han-yu Henry Shen

  • 1Department of Biomedical Engineering, Duke University, Durham, NC 27708-0281, United States.

Journal of Biomechanics
|September 4, 2012
PubMed

Insights

Pediatric skull mechanical properties are not affected by strain rate. Bone structure, specifically tri-layer bone, cortical bone, and sutures, significantly impacts the skull's stiffness and elasticity, crucial for accurate injury modeling.

Area of Science:

  • Biomechanics
  • Pediatric Traumatology
  • Craniofacial Research

Background:

  • Traumatic Brain Injury (TBI) is a major cause of death and disability in children.
  • Studying pediatric TBI is challenging due to a lack of cadaveric material.
  • Accurate finite element models require precise cranial material properties.

Purpose of the Study:

  • To investigate the mechanical properties of a pediatric skull.
  • To determine the effect of strain rate on cranial bone and suture properties.
  • To analyze how skull bone structure influences mechanical behavior.

Main Methods:

  • Tested 47 samples from a single six-year-old human cranium.
  • Utilized four-point bending tests to failure.
  • Measured modulus of elasticity and failure properties across varying strain rates.

Main Results:

  • Strain rate did not significantly affect mechanical properties within the tested range (0.045–2.2 s⁻¹).
  • Bending stiffness varied significantly: tri-layer bone (12.32±5.18 Nm²/m) > cortical bone (5.58±1.46 Nm²/m) > sutures (3.70±1.88 Nm²/m).
  • Modulus of elasticity differed: cortical bone (9.87±1.24 GPa), sutures (1.10±0.53 GPa), and tri-layer bone (3.69±0.92 GPa).

Conclusions:

  • Pediatric skull mechanical properties depend on bone structure, not strain rate.
  • Tri-layer bone exhibits higher stiffness than cortical bone and sutures.
  • Models of the pediatric skull must differentiate between these distinct tissue types for accuracy.

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