A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations is performed in this work. The study draws inspiration from recent investigations aimed at increasing the fracture energy of some materials through small modifications of their microstructure. The main question here is whether it is possible, to some extent, to engineer the crack path in metallic cellular materials through such small micro-structural modifications and how to quantify the effect of alternative strategies. Nature provides several examples of strategies used to delay or arrest damage and crack propagation. One striking example is given by the micro-architecture of several kinds of wood, in which the crack propagation through a li...
Cellular materials are widespread. Some, like wood and bone, occur in nature, while others, like pol...
Lattice materials, such as honeycombs, are remarkable in their ability to combine high stiffness, st...
The behaviour of wood is hard to predict due to the complex structure of the material. Wood consists...
A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations i...
A computational preliminary study on the fracture behaviour of two kinds of finite-size bio-inspired...
Computational models based on the finite element method and linear or nonlinear fracture mechanics a...
In the last decades the use of cellular materials, either in the form of foams or lattices, has wide...
In nature, structure, material and function are constantly evolving in tandem. This work employs pol...
The failure characteristics of lattice structures are of significant importance in various lightwei...
To investigate the fracture behavior of wood, the porosity and heterogeneities of its microstructure...
In this study we perform an experimental and computational investigation about the fracture behaviou...
Dynamic fracture behavior in both fairly continuous materials and discontinuous cellular materials i...
The competition between fracture and plasticity in periodic hexagonal honeycomb structures subjected...
Lattice material is an innovative structure providing a good range of strength and fracture in relat...
Using a phase field model we explore crack propagation in bio-inspired composites in which the miner...
Cellular materials are widespread. Some, like wood and bone, occur in nature, while others, like pol...
Lattice materials, such as honeycombs, are remarkable in their ability to combine high stiffness, st...
The behaviour of wood is hard to predict due to the complex structure of the material. Wood consists...
A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations i...
A computational preliminary study on the fracture behaviour of two kinds of finite-size bio-inspired...
Computational models based on the finite element method and linear or nonlinear fracture mechanics a...
In the last decades the use of cellular materials, either in the form of foams or lattices, has wide...
In nature, structure, material and function are constantly evolving in tandem. This work employs pol...
The failure characteristics of lattice structures are of significant importance in various lightwei...
To investigate the fracture behavior of wood, the porosity and heterogeneities of its microstructure...
In this study we perform an experimental and computational investigation about the fracture behaviou...
Dynamic fracture behavior in both fairly continuous materials and discontinuous cellular materials i...
The competition between fracture and plasticity in periodic hexagonal honeycomb structures subjected...
Lattice material is an innovative structure providing a good range of strength and fracture in relat...
Using a phase field model we explore crack propagation in bio-inspired composites in which the miner...
Cellular materials are widespread. Some, like wood and bone, occur in nature, while others, like pol...
Lattice materials, such as honeycombs, are remarkable in their ability to combine high stiffness, st...
The behaviour of wood is hard to predict due to the complex structure of the material. Wood consists...