In this study we perform an experimental and computational investigation about the fracture behaviour of polymer honeycombs presenting gradients in terms of lattice density. Such lattice relative density variations are introduced with the aim of mimicking the micro-morphology encountered in some natural materials, such as several kinds of woods, which seems related to the ability of the corresponding macro-material to delay the propagation of fracture under certain conditions. Starting from the conclusions of previous computational analyses, we perform a few experimental tensile tests on ABS model honeycombs obtained by additive manufacturing, with the aim of getting insights into their fracture behaviour and assessing the effect of the den...
A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations i...
abstract: The goal of our research was to develop and validate a method for predicting the mechanica...
Selective laser sintering has been used to manufacture different structural variations of a pre-buck...
In this study we perform an experimental and computational investigation about the fracture behaviou...
Lattice materials, such as honeycombs, are remarkable in their ability to combine high stiffness, st...
In the last decades the use of cellular materials, either in the form of foams or lattices, has wide...
Additive manufacture and rapid prototyping are versatile methods for the generation of lattice mater...
In nature, structure, material and function are constantly evolving in tandem. This work employs pol...
Honeycomb structures have found numerous applications as structural and biomedical materials due to ...
Rapid prototyping is an emerging technology for the fast make of engineering components. A common te...
Lightweight metallic lattices in the form of honeycombs are long known to exhibit a good mechanical ...
The main key performance factors of honeycombs are represented by the ability to withstand through-t...
A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations i...
abstract: The goal of our research was to develop and validate a method for predicting the mechanica...
Selective laser sintering has been used to manufacture different structural variations of a pre-buck...
In this study we perform an experimental and computational investigation about the fracture behaviou...
Lattice materials, such as honeycombs, are remarkable in their ability to combine high stiffness, st...
In the last decades the use of cellular materials, either in the form of foams or lattices, has wide...
Additive manufacture and rapid prototyping are versatile methods for the generation of lattice mater...
In nature, structure, material and function are constantly evolving in tandem. This work employs pol...
Honeycomb structures have found numerous applications as structural and biomedical materials due to ...
Rapid prototyping is an emerging technology for the fast make of engineering components. A common te...
Lightweight metallic lattices in the form of honeycombs are long known to exhibit a good mechanical ...
The main key performance factors of honeycombs are represented by the ability to withstand through-t...
A computational study on the fracture behaviour of bio-inspired finite-size lattice configurations i...
abstract: The goal of our research was to develop and validate a method for predicting the mechanica...
Selective laser sintering has been used to manufacture different structural variations of a pre-buck...