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A Test Bed to Examine Helmet Fit and Retention and Biomechanical Measures of Head and Neck Injury in Simulated Impact
Published on: September 21, 2017
Mechanical properties and anthropometry of the human infant head
Michael T Prange1, Jason F Luck, Alan Dibb
1Injury and Orthopaedic Biomechanics Laboratory, Duke University.
Insights
Pediatric skulls are more compliant than adult skulls, exhibiting viscoelastic properties. This study quantifies infant head mechanical properties for improved safety modeling.
Area of Science:
- Biomechanics
- Pediatric Traumatology
- Craniofacial Development
Background:
- Limited data exists on pediatric skull mechanical properties and anthropometry.
- Adult head impact studies are extensive, but pediatric data is scarce.
Purpose of the Study:
- To quantify the mechanical properties of the human pediatric skull.
- To compare pediatric skull properties with adult values.
- To provide data for validating computational head models and ATD performance.
Main Methods:
- Quasi-static and dynamic compression tests on three neonate cadaver heads (1-11 days old).
- Whole head compression in anterior-posterior and right-left directions.
- Head drop tests (15cm and 30cm) from five impact locations.
- Measurement of impact force-time histories and head acceleration.
Main Results:
- Pediatric skulls showed significantly more compliance (lower stiffness) than adult skulls.
- Compression stiffness increased with velocity but was similar in anterior-posterior and lateral directions.
- Impact response of the CRABI dummy was similar to infant cadavers for some impacts but stiffer laterally.
Conclusions:
- The human pediatric skull exhibits viscoelastic properties and is more compliant than the adult skull.
- Data provides a basis for validating pediatric head models and assessing ATD performance.
- Findings highlight the need for specialized safety standards for infants.
Abstract:
The adult head has been studied extensively and computationally modeled for impact, however there have been few studies that attempt to quantify the mechanical properties of the pediatric skull. Likewise, little documentation of pediatric anthropometry exists. We hypothesize that the properties of the human pediatric skull differ from the human adult skull and exhibit viscoelastic structural properties. Quasi-static and dynamic compression tests were performed using the whole head of three human neonate specimens (ages 1 to 11 days old). Whole head compression tests were performed in a MTS servo-hydraulic actuator. Testing was conducted using nondestructive quasi-static, and constant velocity protocols in the anterior-posterior and right-left directions. In addition, the pediatric head specimens were dropped from 15cm and 30cm and impact force-time histories were measured for five different locations: vertex, occiput, forehead, right and left parietal region. The compression stiffness values increased with an increase in velocity but were not significantly different between the anterior-posterior and right-left directions. Peak head acceleration during the head impact tests did not significantly vary between the five different impact locations. A three parameter model that included damping represented the pediatric head impact data more accurately than a simple mass-spring system. The compressive and impact stiffness of the pediatric heads were significantly more compliant than published adult values. Also, infant head dimensions, center of gravity and moment of inertia (Iyy) were determined. The CRABI 6-month dummy impact response was similar to the infant cadaver for impacts to the vertex, occiput, and forehead but dramatically stiffer in lateral impacts. These pediatric head anthropomorphic, compression, and impact data will provide a basis to validate whole head models and compare with ATD performance in similar exposures.
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