Coil Efficiency for Inductive Peripheral Nerve Stimulation

Magnetic stimulation of peripheral nerves is evoked by electric field gradients caused by high-intensity, pulsed magnetic fields created from a coil. Currents required for stimulation are very high, therefore devices are large, expensive, and often too complex for many applications like rehabilitati...

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Bibliographic Details
Main Authors: Philipp Braun (Author), Jonathan Rapp (Author), Werner Hemmert (Author), Bernhard Gleich (Author)
Format: Book
Published: IEEE, 2022-01-01T00:00:00Z.
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042 |a dc 
100 1 0 |a Philipp Braun  |e author 
700 1 0 |a Jonathan Rapp  |e author 
700 1 0 |a Werner Hemmert  |e author 
700 1 0 |a Bernhard Gleich  |e author 
245 0 0 |a Coil Efficiency for Inductive Peripheral Nerve Stimulation 
260 |b IEEE,   |c 2022-01-01T00:00:00Z. 
500 |a 1558-0210 
500 |a 10.1109/TNSRE.2022.3192761 
520 |a Magnetic stimulation of peripheral nerves is evoked by electric field gradients caused by high-intensity, pulsed magnetic fields created from a coil. Currents required for stimulation are very high, therefore devices are large, expensive, and often too complex for many applications like rehabilitation therapy. For repetitive stimulation, coil heating due to power loss poses a further limitation. The geometry of the magnetic coil determines field depth and focality, making it the most important factor that determines the current required for neuronal excitation. However, the comparison between different coil geometries is difficult and depends on the specific application. Especially the distance between nerve and coil plays a crucial role. In this investigation, the electric field distribution of 14 different coil geometries was calculated for a typical peripheral nerve stimulation with a 27 mm distance between axon and coil. Coil parameters like field strength and focality were determined with electromagnetic field simulations. In a second analysis, the activating function along the axon was calculated, which quantifies the efficiency of neuronal stimulation. Moreover, coil designs were evaluated concerning power efficacy based on ohmic losses. Our results indicate that power efficacy of magnetic neurostimulation can be improved significantly by up to 40% with optimized coil designs. 
546 |a EN 
690 |a Coil design 
690 |a magnetic stimulation 
690 |a field simulation 
690 |a peripheral stimulation 
690 |a Medical technology 
690 |a R855-855.5 
690 |a Therapeutics. Pharmacology 
690 |a RM1-950 
655 7 |a article  |2 local 
786 0 |n IEEE Transactions on Neural Systems and Rehabilitation Engineering, Vol 30, Pp 2137-2145 (2022) 
787 0 |n https://ieeexplore.ieee.org/document/9834319/ 
787 0 |n https://doaj.org/toc/1558-0210 
856 4 1 |u https://doaj.org/article/58e2f49de09a4004b4c5cca33c81f9f1  |z Connect to this object online.