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Updated: May 27, 2025

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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
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Impact testing methods to simulate head impacts due to falls from standing height.
Morteza Seidi1, Vincent Caccese2, Marzieh Memar3
1Department of Mechanical, Aerospace, and Industrial Engineering, University of Texas at San Antonio, One UTSA Circle, San Antonio, TX 78249, USA.
Medical Engineering & Physics
|February 20, 2025
Summary
Falls are a major cause of traumatic brain injury (TBI). This study found that a drop tower with a Hybrid III head and neck assembly is a repeatable and realistic method for testing head protective gear against fall-related impacts.
Area of Science:
- Biomechanics
- Injury Prevention
- Protective Equipment Testing
Background:
- Falls are a leading cause of traumatic brain injury (TBI).
- Developing effective head protection requires realistic testing methods for fall-related head impacts.
- Evaluating injury attenuation of headgear necessitates validated simulation techniques.
Purpose of the Study:
- To identify and recommend a repeatable testing method for simulating head impacts from standing height falls.
- To compare the efficacy of different head impact testing methodologies.
- To establish a reliable simulation for evaluating protective headgear.
Main Methods:
- Evaluation and comparison of four head impact testing methods: whole-body anthropomorphic test device (ATD) drop, drop tower with Hybrid III head and neck, ASTM F429/F1446 standard, and linear impactor with Hybrid III head and neck.
- Assessment of repeatability and realism in simulating kinematics of head impacts during falls.
- Analysis of parameters including peak linear acceleration, Head Injury Criterion (HIC), peak angular acceleration, and peak angular velocity.
Main Results:
- The whole-body ATD drop system provided realistic simulation but lacked repeatability.
- Among repeatable methods, the drop tower with Hybrid III head and neck assembly demonstrated statistically similar results to the ATD drop system for front and rear impacts.
- This method accurately captured both translational and rotational head motions.
Conclusions:
- The drop tower with Hybrid III head and neck assembly is a repeatable and realistic testing method for simulating fall-related head impacts.
- This validated method can be used to evaluate the injury attenuation of head protective technologies.
- The findings support the development and testing of advanced headgear to prevent fall-related TBI.

