In this paper we present the results of parallel numerical computations of the long-term dynamics of linked vortex filaments in a three-dimensional FitzHugh–Nagumo excitable medium. In particular, we study all torus links with no more than 12 crossings and identify a timescale over which the dynamics is regular in the sense that each link is well-described by a spinning rigid conformation of fixed size that propagates at constant speed along the axis of rotation. We compute the properties of these links and demonstrate that they have a simple dependence on the crossing number of the link for a fixed number of link components. Furthermore, we find that instabilities that exist over longer timescales in the bulk can be removed by boundary int...
We perform large scale three-dimensional molecu-lar dynamics simulations of unlinked and unknot-ted ...
Wave propagation in the heart has a discrete nature, because it is mediated by discrete intercellula...
In this dissertation, I study two types of networks: biopolymer filament networks (part I) and biolo...
We study the dynamics of knotted vortices in a bulk excitable medium using the FitzHugh-Nagumo model...
In this paper, we present extensive numerical simulations of an excitable medium to study the long-t...
A thring is a recent addition to the zoo of spiral wave phenomena found in excitable media and consi...
Through extensive numerical simulations we investigate the evolution of knotted and linked vortices ...
Cardiac tissue and the Belousov-Zhabotinsky reaction provide two notable examples of excitable media...
An "excitable medium", such as nerve fiber or heart tissue, can be locally provoked by a relatively ...
Vortex rings are ubiquitous in fluids, with smoke rings being a familiar example. The interaction of...
Inert, spherical heterogeneities can pin three-dimensional scroll waves in the excitable Belousov-Zh...
The idea that the knottedness (hydrodynamic Helicity) of a fluid flow is conserved has a long histor...
We use Langevin dynamics simulations to study dynamical behavior of a dense planar layer of active s...
We study catenated ring polymers confined inside channels and slits with Langevin dynamics simulatio...
We study the creation of knotted ultracold matter waves in Bose–Einstein condensates via coherent tw...
We perform large scale three-dimensional molecu-lar dynamics simulations of unlinked and unknot-ted ...
Wave propagation in the heart has a discrete nature, because it is mediated by discrete intercellula...
In this dissertation, I study two types of networks: biopolymer filament networks (part I) and biolo...
We study the dynamics of knotted vortices in a bulk excitable medium using the FitzHugh-Nagumo model...
In this paper, we present extensive numerical simulations of an excitable medium to study the long-t...
A thring is a recent addition to the zoo of spiral wave phenomena found in excitable media and consi...
Through extensive numerical simulations we investigate the evolution of knotted and linked vortices ...
Cardiac tissue and the Belousov-Zhabotinsky reaction provide two notable examples of excitable media...
An "excitable medium", such as nerve fiber or heart tissue, can be locally provoked by a relatively ...
Vortex rings are ubiquitous in fluids, with smoke rings being a familiar example. The interaction of...
Inert, spherical heterogeneities can pin three-dimensional scroll waves in the excitable Belousov-Zh...
The idea that the knottedness (hydrodynamic Helicity) of a fluid flow is conserved has a long histor...
We use Langevin dynamics simulations to study dynamical behavior of a dense planar layer of active s...
We study catenated ring polymers confined inside channels and slits with Langevin dynamics simulatio...
We study the creation of knotted ultracold matter waves in Bose–Einstein condensates via coherent tw...
We perform large scale three-dimensional molecu-lar dynamics simulations of unlinked and unknot-ted ...
Wave propagation in the heart has a discrete nature, because it is mediated by discrete intercellula...
In this dissertation, I study two types of networks: biopolymer filament networks (part I) and biolo...