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Updated: Oct 8, 2025

In Vivo Protocol of Controlled Subconcussive Head Impacts for the Validation of Field Study Data
Published on: April 18, 2019
Ballistic trauma caused by military rifles: experimental study based on synthetic skull proxies
Seth C Taylor1, Benjamin Ondruschka2, David C Kieser3
1Department of Orthopaedics and Musculoskeletal Medicine, University of Otago, Christchurch, New Zealand. 22sethtaylor@gmail.com.
Abstract:
Rifles are often involved in violent deaths such as homicide and suicide. Consequently, expert knowledge and experimental forensic investigations are important to clarify the nature of ballistic trauma when applied to the human head and neurocranium. This study investigated differences in entrance wound morphology with Synbone® spheres which are described as being comparable to human flat bones. A series of ballistic experiments were conducted using two different rifle calibers (5.56 × 45 mm and 7.62 × 39 mm Full Metal Jacket (FMJ)). Synbone® spheres were used for close-range 0.3 m simulated executions as well as at 25 m and 35 m to simulate urban and military engagements. Results were compared with previously published experimental studies using similar military ammunition. In our study, entry wound morphology closely resembles real forensic cases compared to exit wound and overall shape morphology independently of the distance and the caliber. Circumferential delamination was clearly visible with full metal jacket (FMJ) rounds, yielding similar damage pattern morphology to the human crania. This study documented the presence of hydraulic burst or shock in all ten rounds from all three distances. Krönlein shots were also observed in some cases. Synbone® spheres constitute an acceptable synthetic surrogate for ballistic experiments. The present study offers new initial data on the behavior of Synbone® proxies in ballistic testing of military ammunitions; FMJ gunshot injuries to the human head, for distances that have not previously been published, suggesting that efficient tests can take place under these conditions. Further research on experimental ballistics with a larger number of controlled factors and multiple repetitions is recommended to verify the results of this pilot study before applied in forensic simulations.
Insights
This study explored rifle ballistic trauma on Synbone® spheres, simulating human head impacts. Results show Synbone® spheres accurately replicate entry wound characteristics in forensic cases, validating their use in ballistic testing.
Area of Science:
- Forensic Science
- Ballistics
- Trauma Analysis
Background:
- Rifle ballistics are critical in understanding violent deaths like homicide and suicide.
- Accurate experimental data on ballistic trauma to the human head is essential for forensic investigations.
Purpose of the Study:
- To investigate entrance wound morphology differences using Synbone® spheres against two rifle calibers.
- To assess Synbone® spheres as a surrogate for human cranial bone in ballistic experiments at various ranges.
Main Methods:
- Ballistic experiments using 5.56 × 45 mm and 7.62 × 39 mm Full Metal Jacket (FMJ) rifle rounds.
- Testing conducted at close range (0.3 m) and longer distances (25 m, 35 m) using Synbone® spheres.
- Comparison of wound morphology with published forensic case studies.
Main Results:
- Entry wound morphology closely resembled real forensic cases, irrespective of range and caliber.
- Circumferential delamination and hydraulic burst/shock phenomena were observed, similar to human cranial injuries.
- Synbone® spheres proved to be an acceptable surrogate for ballistic testing of military ammunition.
Conclusions:
- Synbone® spheres effectively simulate FMJ ballistic injuries to the human head, particularly entry wound characteristics.
- The study provides initial data on Synbone® sphere performance at previously unpublished distances.
- Further research with controlled factors and repetitions is recommended to validate these findings for forensic applications.
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