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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.
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.
Abstract:
Traumatic Brain Injury (TBI) is a leading cause of mortality and morbidity for children in the United States. The unavailability of pediatric cadavers makes it difficult to study and characterize the mechanical behavior of the pediatric skull. Computer based finite element modeling could provide valuable insights, but the utility of these models depends upon the accuracy of cranial material property inputs. In this study, 47 samples from one six year-old human cranium were tested to failure via four point bending to study the effects of strain rate and the structure of skull bone on modulus of elasticity and failure properties for both cranial bone and suture. The results show that strain rate does not have a statistically meaningful effect on the mechanical properties of the six year-old skull over the range of strain rates studied (average low rate of 0.045 s(-1), average medium rate of 0.44 s(-1), and an average high rate of 2.2 s(-1)), but that these properties do depend on the growth patterns and morphology of the skull. The thickness of the bone was found to vary with structure. The bending stiffness (per unit width) for tri-layer bone (12.32±5.18 Nm(2)/m) was significantly higher than that of cortical bone and sutures (5.58±1.46 Nm(2)/m and 3.70±1.88 Nm(2)/m respectively). The modulus of elasticity was 9.87±1.24 GPa for cranial cortical bone and 1.10±0.53 GPa for sutures. The effective elastic modulus of tri-layer bone was 3.69±0.92 GPa. Accurate models of the pediatric skull should account for the differences amongst these three distinct tissues in the six year-old skull.
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