DocumentCode :
1073152
Title :
A Model of Selective Activation of the Femoral Nerve With a Flat Interface Nerve Electrode for a Lower Extremity Neuroprosthesis
Author :
Schiefer, Matthew A. ; Triolo, Ronald J. ; Tyler, Dustin J.
Author_Institution :
Case Western Reserve Univ., Cleveland
Volume :
16
Issue :
2
fYear :
2008
fDate :
4/1/2008 12:00:00 AM
Firstpage :
195
Lastpage :
204
Abstract :
Functional electrical stimulation (FES) can restore limb movements through electrically initiated, coordinated contractions of paralyzed muscles. The peripheral nerve is an attractive site for stimulation using cuff electrodes. Many applications will require the electrode to selectively activate many smaller populations of axons within a common nerve trunk. The purpose of this study is to computationally model the performance of a flat interface nerve electrode (FINE) on the proximal femoral nerve for standing and stepping applications. Simulations investigated multiple FINE configurations to determine the optimal number and locations of contacts for the maximum muscular selectivity. Realistic finite element method (FEM) models were developed from digitized cross sections from cadaver femoral nerve specimens. Electrical potentials were calculated and interpolated voltages were applied to a double-cable axon model. Model output was analyzed to determine selectivity and estimate joint moments with a musculoskeletal model. Simulations indicated that a 22-contact FINE will produce the greatest selectivity. Simulations predicted that an eight-contact FINE can be expected to selectively stimulate each of the six muscles innervated by the proximal femoral nerve, producing a sufficient knee extension moment for the sit-to-stand transition and contributing 60% of the hip flexion moment needed during gait. We conclude that, whereas more contacts produce greater selectivity, eight channels are sufficient for standing and stepping with an FES system using a FINE on the common femoral nerve.
Keywords :
artificial limbs; bioelectric potentials; finite element analysis; gait analysis; neuromuscular stimulation; double-cable axon model; electrical potentials; finite element method models; flat interface nerve electrode; functional electrical stimulation; gait neuroprosthesis; hip flexion moment; joint moments; knee extension moment; lower extremity neuroprosthesis; muscular selectivity; musculoskeletal model; proximal femoral nerve; selective stimulation; sit-to-stand transition; standing neuroprosthesis; stepping neuroprosthesis; Electrode; Flat Interface Nerve Electrode (FINE); electrode; femoral nerve; flat interface nerve electrode (FINE); functional electrical stimulation (FES); selective stimulation; Action Potentials; Computer Simulation; Electric Stimulation Therapy; Electrodes, Implanted; Femoral Nerve; Humans; Models, Neurological; Prostheses and Implants;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2008.918425
Filename :
4454230
Link To Document :
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