Preliminary Head-Supported Mass Performance Guidance for Dismounted Soldier Environments

Author:

Madison Adrienne M1,Holderfield M Reid12,Olszko Ardyn V12,Novotny Brian12,McGovern Shannon M13,Brozoski Frederick T1,Shivers Bethany L1,Chancey Valeta Carol1

Affiliation:

1. U.S. Army Aeromedical Research Laboratory (USAARL) , Fort Rucker, AL 36362, USA

2. Katmai Health Services, LLC , Anchorage, AK 99515, USA

3. Oak Ridge Institute for Science and Education (ORISE) , Oak Ridge, TN 37830, USA

Abstract

ABSTRACT Introduction The helmet is an ideal platform to mount technology that gives U.S. Soldiers an advantage over the enemy; the total system is recognized quantitatively as head-supported mass (HSM). The stress placed on the head and neck is magnified by adding mass and increasing the center of mass offset away from the atlanto-occipital complex, the head’s pivot point on the spine. Previous research has focused on HSM-related spinal degeneration and performance decrement in mounted environments. The increased capabilities and protection provided by helmet systems for dismounted Soldiers have made it necessary to determine the boundaries of HSM and center of mass offset unique to dismounted operations. Materials and Methods A human subject volunteer study was conducted to characterize the head and neck exposures and assess the impact of HSM on performance in a simulated field-dismounted operating environment. Data were analyzed from 21 subjects who completed the Load Effects Assessment Program-Army obstacle course at Fort Benning, GA, while wearing three different experimental HSM configurations. Four variable groups (physiologic/biomechanical, performance, kinematic, and subjective) were evaluated as performance assessments. Weight moments (WMs) corresponding to specific performance decrement levels were calculated using the quantitative relationships developed between each metric and the study HSM configurations. Data collected were used to develop the performance decrement HSM threshold criteria based on an average of 10% total performance decrement of dismounted Soldier performance responses. Results A WM of 134 N-cm about the atlanto-occipital complex was determined as the preliminary threshold criteria for an average of 10% total performance decrement. A WM of 164 N-cm was calculated for a corresponding 25% average total performance decrement. Conclusions The presented work is the first of its kind specifically for dismounted Soldiers. Research is underway to validate these limits and develop dismounted injury risk guidance.

Publisher

Oxford University Press (OUP)

Subject

Public Health, Environmental and Occupational Health,General Medicine

Reference13 articles.

1. Mass Requirements for Helicopter Aircrew Helmets;McEntire,1998

2. Effects of Head Supported Devices on Pilot Performance During Simulated Helicopter Rides;Alem,1995

3. Effects of Weight and Center of Gravity Location of Head-supported Devices on Neck Loading;Ashrafiuon,1998

4. Effects of Head-supported Devices on Female Aviators During Simulated Helicopter Rides. Part I: Biomechanical Response;Barazanji,2000

5. Mass properties comparison of dismounted and ground-mounted head-supported mass configurations to existing performance and acute injury risk guidelines;Estep;Mil Med,2019

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