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  4. Current State, Needs, and Opportunities for Wearable Robots in Military Medical Rehabilitation and Force Protection
 
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2024
Journal Article
Title

Current State, Needs, and Opportunities for Wearable Robots in Military Medical Rehabilitation and Force Protection

Abstract
Despite advances in wearable robots across various fields, there is no consensus definition or design framework for the application of this technology in rehabilitation or musculoskeletal (MSK) injury prevention. This paper aims to define wearable robots and explore their applications and challenges for military rehabilitation and force protection for MSK injury prevention. We conducted a modified Delphi method, including a steering group and 14 panelists with 10+ years of expertise in wearable robots. Panelists presented current wearable robots currently in use or in development for rehabilitation or assistance use in the military workforce and healthcare. The steering group and panelists met to obtain a consensus on the wearable robot definition applicable for rehabilitation or primary injury prevention. Panelists unanimously agreed that wearable robots can be grouped into three main applications, as follows: (1) primary and secondary MSK injury prevention, (2) enhancement of military activities and tasks, and (3) rehabilitation and reintegration. Each application was presented within the context of its target population and state-of-the-art technology currently in use or under development. Capturing expert opinions, this study defines wearable robots for military rehabilitation and MSK injury prevention, identifies health outcomes and assessment tools, and outlines design requirements for future advancements.
Author(s)
Cooper, Rory A.
University of Pittsburgh
Smolinski, George J.
Uniformed Services University of the Health Sciences
Candiotti, Jorge L.
University of Pittsburgh
Satpute, Shantanu A.
University of Pittsburgh
Grindle, Garrett G.
University of Pittsburgh
Sparling, Tawnee L.
Uniformed Services University of the Health Sciences
Nordstrom, Michelle J.
Uniformed Services University of the Health Sciences
Yuan, Xiaoning Jenny
Uniformed Services University of the Health Sciences
Symsack, Allison
Uniformed Services University of the Health Sciences
Lee, Changdae
Indiana University-Purdue University Indianapolis
Vitiello, Nicola
Sant'Anna Scuola Universitaria Superiore Pisa
Knezevic, Steven
VA Medical Center
Sugar, Thomas G.
Arizona State University Polytechnic Campus
Schneider, Urs  
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Kopp, Verena  
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Holl, Mirjam
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Gaunaurd, Ignacio A.
University of Miami Leonard M. Miller School of Medicine
Gailey, Robert S.
University of Miami Leonard M. Miller School of Medicine
Bonato, Paolo
Harvard Medical School
Poropatich, Ronald K.
University of Pittsburgh
Adet, David J.
U.S. Army Combat Capabilities Development Command Soldier Center
Clemente, Francesco
Prensilia s.r.l.
Abbas, James J.
College of Engineering
Pasquina, Paul F.
Uniformed Services University of the Health Sciences
Journal
Actuators
Funder
U.S. Department of Veterans Affairs
Open Access
DOI
10.3390/act13070236
Additional link
Full text
Language
English
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Keyword(s)
  • delphi method

  • disability

  • exoskeleton

  • injury prevention

  • military workforce

  • musculoskeletal injuries

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