Dynamic behaviors of spiral waves in cardiac tissue under electromagnetic radiation
A new modified Fitzhugh–Nagumo model is proposed to study the dynamic behaviors of spiral waves in cardiac tissue under fixed or periodic electromagnetic radiation. The effects of fixed electromagnetic radiation and the amplitude and frequency of periodic electromagnetic radiation on the pattern tra...
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Veröffentlicht in: | AIP advances 2020-05, Vol.10 (5), p.055101-055101-7 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | A new modified Fitzhugh–Nagumo model is proposed to study the dynamic behaviors of spiral waves in cardiac tissue under fixed or periodic electromagnetic radiation. The effects of fixed electromagnetic radiation and the amplitude and frequency of periodic electromagnetic radiation on the pattern transitions of the spiral waves are investigated, respectively. Our numerical results show that although spiral waves can normally propagate with slight deformation under weaker fixed or periodic electromagnetic radiation, stronger fixed or periodic electromagnetic radiation can terminate the spiral waves, cause the drift of the spirals and turbulence, and magnetize the spiral waves to the homogeneous state. Extensive comparative analysis results confirm that fixed electromagnetic radiation is more helpful to modify and magnetize the spiral waves to the homogeneous state, but the spiral waves more easily change to the chaotic state under periodic electromagnetic radiation. The simulation results also show that both increasing the amplitude and decreasing the frequency can block the rotating spiral waves and cause turbulence, but our considerable numerical results find that lower frequency more easily develops spatiotemporal chaos from the media. |
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ISSN: | 2158-3226 2158-3226 |
DOI: | 10.1063/5.0003109 |