We study the failure of planar random fiber networks with computer simulations. The networks are grown by adding flexible fibers one by one on a growing deposit [K. J. Niskanen and M. J. Alava, Phys. Rev. Lett. 73, 3475 (1994)], a process yielding realistic three dimensional network structures. The network thus obtained is mapped to an electrical analogue of the elastic problem, namely to a random fuse network with separate bond elements for the fiber-to-fiber contacts. The conductivity of the contacts (corresponding to the efficiency of stress transfer between fibers) is adjustable. We construct a simple effective medium theory for the current distribution and conductivity of the networks as a function of intra-fiber current transfer effic...
In this paper a computational technique is proposed to describe brittle fracture of highly porous ra...
Fiber networks are ubiquitous due to their low cost and high ratio of mechanical performance to weig...
Numerical simulations of time-dependent stochastic failure of fiber network have been performed by u...
The transition in random fiber networks from two-dimensional to asymptotically three-dimensional pla...
AbstractThe numerical analysis performed here, using a finite element network model, provides a numb...
AbstractFracture in a planar randomly ordered fiber network subjected to approximately homogenous ma...
An effective-medium model is introduced for the elasticity of two-dimensional random fiber networks....
We study a fracture on a quasistatic time scale in a three-dimensional (3D) fuse network model with ...
A micromechanics model is proposed for the elasticity of planar fiber networks (FNs). The FN is crea...
The computational analysis of fiber network fracture is an emerging field with application to paper,...
We study the failure process of fiber bundles on complex networks focusing on the effect of the degr...
A network mechanics model for analysis of materials made of dry-shaped cellulose fibres is proposed....
Fibrous networks are ubiquitous: they can be found in various engineering applications as well as in...
Fracturing two-dimensional random fiber networks of different densities (porosities) were statistica...
In this paper a computational technique is proposed to describe brittle fracture of highly porous ra...
Fiber networks are ubiquitous due to their low cost and high ratio of mechanical performance to weig...
Numerical simulations of time-dependent stochastic failure of fiber network have been performed by u...
The transition in random fiber networks from two-dimensional to asymptotically three-dimensional pla...
AbstractThe numerical analysis performed here, using a finite element network model, provides a numb...
AbstractFracture in a planar randomly ordered fiber network subjected to approximately homogenous ma...
An effective-medium model is introduced for the elasticity of two-dimensional random fiber networks....
We study a fracture on a quasistatic time scale in a three-dimensional (3D) fuse network model with ...
A micromechanics model is proposed for the elasticity of planar fiber networks (FNs). The FN is crea...
The computational analysis of fiber network fracture is an emerging field with application to paper,...
We study the failure process of fiber bundles on complex networks focusing on the effect of the degr...
A network mechanics model for analysis of materials made of dry-shaped cellulose fibres is proposed....
Fibrous networks are ubiquitous: they can be found in various engineering applications as well as in...
Fracturing two-dimensional random fiber networks of different densities (porosities) were statistica...
In this paper a computational technique is proposed to describe brittle fracture of highly porous ra...
Fiber networks are ubiquitous due to their low cost and high ratio of mechanical performance to weig...
Numerical simulations of time-dependent stochastic failure of fiber network have been performed by u...