Punacha Shreyas, A Naveena Kumara, Shajahan T K
Department of Physics, National Institute of Technology Karnataka Surathkal, Mangalore, Karnataka, 575025, India.
Phys Rev E. 2020 Sep;102(3-1):032411. doi: 10.1103/PhysRevE.102.032411.
Spiral waves of excitation are common in many physical, chemical, and biological systems. In physiological systems like the heart, such waves can lead to cardiac arrhythmias and need to be eliminated. Spiral waves anchor to heterogeneities in the excitable medium, and to eliminate them they need to be unpinned first. Several groups focused on developing strategies to unpin such pinned waves using electric shocks, pulsed electric fields, and recently, circularly polarized electric fields (CPEF). It was shown that in many situations, CPEF is more efficient at unpinning the wave compared to other existing methods. Here, we study how the circularly polarized field acts on the pinned spiral waves and unpins it. We show that the termination always happens within the first rotation of the electric field. For a given obstacle size, there exists a threshold time period of the CPEF below which the spiral can always be terminated. Our analytical formulation accurately predicts this threshold and explains the absence of the traditional unpinning window with the CPEF. We hope our theoretical work will stimulate further experimental studies about CPEF and low energy methods to eliminate spiral waves.
激发螺旋波在许多物理、化学和生物系统中都很常见。在心脏等生理系统中,此类波会导致心律失常,需要消除。螺旋波锚定在可兴奋介质的异质性上,要消除它们首先需要将其解锚。几个研究小组致力于开发利用电击、脉冲电场以及最近的圆极化电场(CPEF)来解锚此类固定波的策略。结果表明,在许多情况下,与其他现有方法相比,CPEF在解锚波方面更有效。在此,我们研究圆极化场如何作用于固定的螺旋波并将其解锚。我们表明,终止总是发生在电场的第一次旋转内。对于给定的障碍物尺寸,存在一个CPEF的阈值时间段,低于该时间段螺旋波总能被终止。我们的解析公式准确地预测了这个阈值,并解释了CPEF不存在传统解锚窗口的原因。我们希望我们的理论工作将激发关于CPEF和消除螺旋波的低能量方法的进一步实验研究。