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The Effect of Impact Angle and Fall Height on Skull Fracture Patterns in Infants
Jiawei Yan1, Junyan He1, Ashely Spear1
1Department of Mechanical Engineering, University of Utah, Salt Lake City, UT 84112.
Insights
Infant skull fracture patterns are influenced by impact angle and fall height. Understanding these mechanics is crucial for analyzing head trauma in children.
Area of Science:
- Biomechanics
- Pediatric Traumatology
- Computational Modeling
Background:
- Skull fractures in infants are common in head trauma, offering clues to injury mechanisms.
- Current understanding of pediatric skull fracture mechanics, particularly from accidental falls, is limited.
Purpose of the Study:
- To investigate the impact of fall height and impact angle on infant skull fracture patterns.
- To utilize a novel finite element model for simulating pediatric skull fractures.
Main Methods:
- Simulated impacts on a linear elastic fracture mechanics finite element model of an infant skull.
- Analyzed nine impact angles from three different heights on the right parietal bone.
- Quantified fracture initiation site, orientation, and length.
Main Results:
- Impact angle significantly altered fracture initiation site and orientation (p < 0.0001).
- A 15-degree change in impact angle shifted the initiation site by up to 47 mm.
- Increased fall height significantly affected fracture length (p = 0.0356), with a 0.3m increase adding ~21mm to fracture length.
Conclusions:
- Impact angle and fall height are critical factors in determining infant skull fracture patterns.
- Environmental variables, such as fall height, must be considered when assessing low-height fall injuries in infants.
Abstract:
Skull fracture is a common finding for both accidental and abusive head trauma in infants and young children, and may provide important clues as to the energy and directionality of the event leading to the skull fracture. However, little is understood regarding the mechanics of skull fracture in the pediatric skull, and how accidental fall parameters contribute to skull fracture patterns. The objectives of this research were to utilize a newly developed linear elastic fracture mechanics finite element model of infant skull fracture to investigate the effect of impact angle and fall height on the predictions of skull fracture patterns in infants. Nine impact angles of right parietal bone impacts were simulated from three different heights onto a rigid plate. The average ± standard deviation of the distance between the impact location and fracture initiation site was 8.0 ± 5.9 mm. Impact angle significantly affected the fracture initiation site (p < 0.0001) and orientation (p < 0.0001). A 15 deg variation in impact angle changed the initiation site up to 47 mm. The orientation of the fracture pattern was dependent on the impact location and ran either horizontal or vertical toward the ossification center of the bone. Fall height significantly affected the fracture length (p = 0.0356). Specifically, at the same impact angle, a 0.3 m increase in fall height increased the skull fracture length by 21.39 ± 34.26 mm. These data indicate that environmental variability needs to be carefully considered when evaluating infant skull fracture patterns from low-height falls.
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