Mathematics Institute, University of Warwick, Coventry CV4 7AL, United Kingdom.
Chaos. 2013 Mar;23(1):013134. doi: 10.1063/1.4793783.
Spiral waves in excitable media possess both wave-like and particle-like properties. When resonantly forced (forced at the spiral rotation frequency) spiral cores travel along straight trajectories, but may reflect from medium boundaries. Here, numerical simulations are used to study reflections from two types of boundaries. The first is a no-flux boundary which waves cannot cross, while the second is a step change in the medium excitability which waves do cross. Both small-core and large-core spirals are investigated. The predominant feature in all cases is that the reflected angle varies very little with incident angle for large ranges of incident angles. Comparisons are made to the theory of Biktashev and Holden. Large-core spirals exhibit other phenomena such as binding to boundaries. The dynamics of multiple reflections is briefly considered.
兴奋介质中的螺旋波具有波状和粒子状两种特性。当共振受迫(以螺旋旋转频率强迫)时,螺旋核心沿直线轨迹移动,但可能会从介质边界反射。在这里,数值模拟用于研究两种类型的边界反射。第一种是无通量边界,波不能穿过,而第二种是波可以穿过的介质兴奋性的阶跃变化。研究了小核和大核螺旋。在所有情况下,主要特征是对于大的入射角范围,反射角随入射角的变化非常小。与 Biktashev 和 Holden 的理论进行了比较。大核螺旋表现出其他现象,如与边界结合。简要考虑了多次反射的动力学。