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A Magnetic Stimulator Adopting a Low-Frequency Fly-Back Switching Circuit

저주파 플라이백 스위칭회로를 이용한 고성능 자기자극기

  • Yi, Jeong-Han (School of Biomedical Engineering, College of Biomedical and Health, Konkuk University) ;
  • Kim, Hyung-Sik (School of Biomedical Engineering, College of Biomedical and Health, Konkuk University) ;
  • Hur, Moon-Chang (School of Biomedical Engineering, College of Biomedical and Health, Konkuk University) ;
  • Kim, Jung-Hoe (Mcube Technology Co. Ltd.)
  • 이정한 (건국대학교 의료생명대학 의학공학부) ;
  • 김형식 (건국대학교 의료생명대학 의학공학부) ;
  • 허문창 (건국대학교 의료생명대학 의학공학부) ;
  • 김정회 ((주)엠큐브테크놀로지)
  • Published : 2006.12.12

Abstract

Medical magnetic stimulator generates strong magnetic field pulses. Clinical applications of the magnetic pulse are the stimulation of nervous system and the contraction of muscle. The unique source of the strong magnetic pulse is a capacitor-inductor resonator and this inductor generates a strong sinusoidal magnetic pulse by discharging the capacitor with high initial voltage. Continuous muscle contraction needs sequential generation of the magnetic pulses. However, to keep the magnitude of sequential pulses identical, an expensive high-voltage power supply have to support voltage drop of the capacitor between the pulses. A protection circuit between the supply and the resonator is necessary to protect the supply from reverse current caused by capacitor voltage reversal. In this paper, a new circuit structure of the magnetic stimulator adopting a low-frequency fly-back switching is proposed. The new circuit supports sequential pulse generation and allows the reverse current without damage. Performance of the new circuit is examined and a low-cost magnetic stimulator for urinary incontinence therapy is being developed using the presented method.

Keywords

References

  1. M. J. R. Polson, A. T. Barker, and S. Gardiner, 'Stimulation of nerve trunks with time-varying magnetic fields,' Med. Biol. Eng. Comput., vol. 20, pp. 243-244,1982 https://doi.org/10.1007/BF02441362
  2. Anthony T. Barker, 'An introduction of the basic principles of magnetic nerve stimulation,' J. of Clinic. Neurophysiol., vol. 8, no. 1, pp. 26-37, 1991 https://doi.org/10.1097/00004691-199101000-00005
  3. F. Grandon, P. Ravazzani, 'Magnetic stimulation of the motor cortex-theoretical considerations,' IEEE Trans. Biomed. Eng., vol. 38, pp. 180-191, 1991 https://doi.org/10.1023/B:BIEN.0000048155.54577.a0
  4. K. R. Davey, C. H. Cheng, and C. M. Epstein, 'Prediction of magnetically induced electric fields in biological tissue,' IEEE Trans. Biomed. Eng., vol. 38, pp. 418-422, 1991 https://doi.org/10.1109/10.81560
  5. R. Jalinous, 'Technical and Practical Aspects of Magnetic Nerve Stimulation,' J. of Clinic. Neurophysiol., vol. 8, no. 1, pp. 10-25,1991 https://doi.org/10.1097/00004691-199101000-00004
  6. J. Ruohonen and R. J. Ilmoniemi, 'Focusing and targeting of magnetic brain stimulation using multiple coils,' Med. Bioi. Eng. Comput., vol. 36. pp. 297-301,1998 https://doi.org/10.1007/BF02522474
  7. J. Ruohonen, P. Ravazani, F. Grandori, and R. Ilmoniemi, 'Theory of multichannel magnetic stimulation: toward functional neuromuscular rehabilitation,' IEEE Trans. Biomed. Eng., vol. 46, pp. 646-651,1999 https://doi.org/10.1109/10.764941
  8. Soo Yeol Lee, Seong Keun Lee, and Jeong Han Yi, 'The magnetic nerve stimulator using a switching mode power supply,' J. of Biomed. Eng. Res., vol. 16, no. 3, pp. 265-270, 1995
  9. B. H. Han, S. Y. Lee, J. H. Kim, and J. H. Yi, 'Some technical aspects of magnetic stimulation coil design with the ferromagnetic effect,' Med. Biol. Eng. Comput., vol. 41, pp. 516-518,2003 https://doi.org/10.1007/BF02345312
  10. N. Ishikawa, S. Suda, T. Sasaki, T. Yamanishi, H. Hosaka, K. Yasuda, and H. Ito, 'Development of a non-invasive treatment system of urinary incontinence using a functional continuous magnetic stimulator,' Med. Biol. Eng. Comput., vol. 36, pp. 704-710,1998 https://doi.org/10.1007/BF02518872
  11. Magnetic Nerve Stimulator for Exciting Peripheral Nerves, US Patent US98-27818