The statistical properties of spiral- and scroll-wave turbulence in cardiac tissue
K.V. Rajany, Anupam Gupta, Alexander V. Panfilov, Rahul Pandit

TL;DR
This study investigates the statistical properties of spiral- and scroll-wave turbulence in cardiac tissue, revealing similarities and key differences with classical fluid turbulence through extensive direct numerical simulations.
Contribution
First comprehensive analysis applying fluid turbulence statistical methods to cardiac electrical turbulence, highlighting both parallels and unique features.
Findings
Turbulence involves a wide range of spatial scales.
Electrical spectra show approximate power laws over some ranges.
Spiral- and scroll-wave turbulence differ from classical fluid turbulence in important ways.
Abstract
Disorganized electrical activity in the heart leads to sudden cardiac death. To what extent can this electrical turbulence be viewed as classical fluid turbulence,which is an important central problem in modern physics? We investigate,for the first time,via extensive DNSs,the statistical properties of spiral-and scroll-wave turbulence in two- and three-dimensional excitable media by using approaches employed in studies of classical turbulence. We use the Panfilov and the Aliev-Panfilov mathematical models for cardiac tissue. We show that once electrical-wave turbulence has been initiated,there is a forward cascade,in which spirals or scrolls form,interact,and break to yield a turbulent state that is statistically steady and,far away from boundaries,is statistically homogeneous and isotropic. For the transmembrane potential and the slow recovery variable ,which define our…
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Taxonomy
TopicsCardiac electrophysiology and arrhythmias · Fluid Dynamics and Turbulent Flows · Combustion and flame dynamics
