Magnetic stimulation of the nervous system is a non-invasive technique with a large number of applications in neurological diagnosis, brain research, and, recently, therapy. New applications require engineering modifications in order to decrease power consumption and coil heating. This can be accomplished by optimized coils with minimized resistance. In this study the influence of some frequency-related effects (skin and proximity effect) on the coil resistance will be discussed, together with the role played by wire shape, wire section, and twisting effect. The results show that the coil resistance increases with frequency. As an example, for a 20-mm2 circular wire section, the skin effect in the typical frequency range of magnetic stimulator devices (2-4 kHz) increases the coil resistance up to about 45% with respect to its dc value. Moreover, the influence of the frequency is lower for flat wire sections and reasonably small helix twist angle of the coil.

Frequency-related effects in the optimization of coils for the magnetic stimulation of the nervous system

Ravazzani P;Tognola G;Grandori F
2002

Abstract

Magnetic stimulation of the nervous system is a non-invasive technique with a large number of applications in neurological diagnosis, brain research, and, recently, therapy. New applications require engineering modifications in order to decrease power consumption and coil heating. This can be accomplished by optimized coils with minimized resistance. In this study the influence of some frequency-related effects (skin and proximity effect) on the coil resistance will be discussed, together with the role played by wire shape, wire section, and twisting effect. The results show that the coil resistance increases with frequency. As an example, for a 20-mm2 circular wire section, the skin effect in the typical frequency range of magnetic stimulator devices (2-4 kHz) increases the coil resistance up to about 45% with respect to its dc value. Moreover, the influence of the frequency is lower for flat wire sections and reasonably small helix twist angle of the coil.
2002
Istituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni - IEIIT
INGEGNERIA BIOMEDICA
Inglese
49
5
463
471
http://www.ncbi.nlm.nih.gov/pubmed/12002178
Sì, ma tipo non specificato
coil optimization; magnetic stimulation; proximity effect; skin effect
L'’ottimizzazione dei sistemi per la stimolazione magnetica (soprattutto per quanto concerne la potenza impiegata) è da considerarsi un passo fondamentale verso la possibile apertura di tale metodica ad applicazioni innovative (si pensi alla futuribile stimolazione magnetica funzionale), altrimenti irraggiungibili con le apparecchiature convenzionali. I risultati del presente studio, che suggeriscono l’assoluta necessità di tenere in considerazione alcune fra le caratteristiche “non-ideali” delle bobine, sono quindi fondamentali nella progettazione ed ottimizzazione degli stimolatori magnetici di ultima generazione, soprattutto nell’ottica della riduzione delle potenze impiegate.
7
info:eu-repo/semantics/article
262
Ravazzani, P; Ruohonen, J; Tognola, G; Anfosso, A; Ollikainen, M; Ilmoniemi, R J; Grandori, F
01 Contributo su Rivista::01.01 Articolo in rivista
none
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/47179
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