Passive-dynamic ankle-foot orthosis (PD-AFO) bending stiffness is a key functional characteristic for achieving enhanced gait function. However, current orthosis customization methods inhibit objective premanufacture tuning of the PD-AFO bending stiffness, making optimization of orthosis function challenging. We have developed a novel virtual functional prototyping (VFP) process, which harnesses the strengths of computer aided design (CAD) model parameterization and finite element analysis, to quantitatively tune and predict the functional characteristics of a PD-AFO, which is rapidly manufactured via fused deposition modeling (FDM). The purpose of this study was to assess the VFP process for PD-AFO bending stiffness. A PD-AFO CAD model was customized for a healthy subject and tuned to four bending stiffness values via VFP. Two sets of each tuned model were fabricated via FDM using medical-grade polycarbonate (PC-ISO). Dimensional accuracy of the fabricated orthoses was excellent (average 0.51 ± 0.39 mm). Manufacturing precision ranged from 0.0 to 0.74 Nm/deg (average 0.30 ± 0.36 Nm/deg). Bending stiffness prediction accuracy was within 1 Nm/deg using the manufacturer provided PC-ISO elastic modulus (average 0.48 ± 0.35 Nm/deg). Using an experimentally derived PC-ISO elastic modulus improved the optimized bending stiffness prediction accuracy (average 0.29 ± 0.57 Nm/deg). Robustness of the derived modulus was tested by carrying out the VFP process for a disparate subject, tuning the PD-AFO model to five bending stiffness values. For this disparate subject, bending stiffness prediction accuracy was strong (average 0.20 ± 0.14 Nm/deg). Overall, the VFP process had excellent dimensional accuracy, good manufacturing precision, and strong prediction accuracy with the derived modulus. Implementing VFP as part of our PD-AFO customization and manufacturing framework, which also includes fit customization, provides a novel and powerful method to predictably tune and precisely manufacture orthoses with objectively customized fit and functional characteristics.
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Applied Physiology,
University of Delaware,
Suite 300,
Newark, DE 19711
e-mail: schranke@udel.edu
U.S. Army Edgewood Chemical
Biological Center,
Biomechanics and Movement Science
Interdisciplinary Program,
Department of Kinesiology and
Applied Physiology,
Department of Biomedical Engineering,
University of Delaware,
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October 2013
Research-Article
Assessment of a Virtual Functional Prototyping Process for the Rapid Manufacture of Passive-Dynamic Ankle-Foot Orthoses
Elisa S. Schrank,
Applied Physiology,
University of Delaware,
Suite 300,
Newark, DE 19711
e-mail: schranke@udel.edu
Elisa S. Schrank
1
Department of Kinesiology and
Applied Physiology,
University of Delaware,
5 Innovation Way
,Suite 300,
Newark, DE 19711
e-mail: schranke@udel.edu
1Corresponding author.
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Richard Moore,
U.S. Army Edgewood Chemical
Biological Center,
Richard Moore
Advanced Design and Manufacturing Division
,U.S. Army Edgewood Chemical
Biological Center,
Edgewood, MD 21010
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Steven J. Stanhope
Biomechanics and Movement Science
Interdisciplinary Program,
Department of Kinesiology and
Applied Physiology,
Department of Biomedical Engineering,
University of Delaware,
Steven J. Stanhope
Department of Mechanical Engineering
,Biomechanics and Movement Science
Interdisciplinary Program,
Department of Kinesiology and
Applied Physiology,
Department of Biomedical Engineering,
University of Delaware,
Newark, DE 19711
Search for other works by this author on:
Elisa S. Schrank
Department of Kinesiology and
Applied Physiology,
University of Delaware,
5 Innovation Way
,Suite 300,
Newark, DE 19711
e-mail: schranke@udel.edu
Richard Moore
Advanced Design and Manufacturing Division
,U.S. Army Edgewood Chemical
Biological Center,
Edgewood, MD 21010
Steven J. Stanhope
Department of Mechanical Engineering
,Biomechanics and Movement Science
Interdisciplinary Program,
Department of Kinesiology and
Applied Physiology,
Department of Biomedical Engineering,
University of Delaware,
Newark, DE 19711
1Corresponding author.
Contributed by the Bioengineering Division of ASME for publication in the Journal of Biomechanical Engineering. Manuscript received January 30, 2013; final manuscript received June 6, 2013; accepted manuscript posted June 17, 2013; published online September 20, 2013. Assoc. Editor: Kenneth Fischer.
J Biomech Eng. Oct 2013, 135(10): 101011 (7 pages)
Published Online: September 20, 2013
Article history
Received:
January 30, 2013
Revision Received:
June 6, 2013
Accepted:
June 17, 2013
Citation
Schrank, E. S., Hitch, L., Wallace, K., Moore, R., and Stanhope, S. J. (September 20, 2013). "Assessment of a Virtual Functional Prototyping Process for the Rapid Manufacture of Passive-Dynamic Ankle-Foot Orthoses." ASME. J Biomech Eng. October 2013; 135(10): 101011. https://doi.org/10.1115/1.4024825
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