A method is presented to model deformation and fracture behavior of 3D printed disordered lattice materials under uniaxial tensile load. A lattice model was used to predict crack pattern and load-displacement response of the printed lattice materials. To include the influence of typical layered structures of 3D printed materials in the simulation, two types of printed elements were considered: horizontally and vertically printed elements. Strengths of these elements were measured: 3 mm cubic units consist of lattice elements with two printing directions were printed and their strengths were tested in uniaxial tension. Afterwards, the measured element strengths and bulk material strength, respectively, were used as model input. Uniaxial tens...
Sandwich structures are widely used due to their light weight, high specific strength, and high spec...
Mechanical characteristics of 3D printed lattice structures primarily depend on the properties of ma...
Mechanical behavior of additively manufactured lattice materials has been mainly investigated under ...
A method is presented to model deformation and fracture behavior of 3D printed disordered lattice ma...
This paper reports an extended lattice model for printing process simulation of 3D printed cementiti...
Rising popularity of three-dimensional printing has caused an increasing interest in metal lattices ...
This paper explores buildability quantification of randomly meshed 3D printed concrete objects by co...
This paper focuses on numerical the prediction of multiaxial static strength of lattice structures. ...
This report covers the finite element study of 3D-printed lattice structure. 1D beam analysis is con...
Cellular materials, often called lattice materials, are increasingly receiving attention for their u...
This research studies the impact of localized damage and deformed printing geometry on the structura...
Learning from Nature and leveraging 3D printing, mechanical testing, and numerical modeling, this st...
In this work, the lattice model is applied to study the printing process and quantify the buildabili...
This study investigates the potential of functionally graded lattice structures (FGLs) fabricated by...
Sandwich structures are widely used due to their light weight, high specific strength, and high spec...
Mechanical characteristics of 3D printed lattice structures primarily depend on the properties of ma...
Mechanical behavior of additively manufactured lattice materials has been mainly investigated under ...
A method is presented to model deformation and fracture behavior of 3D printed disordered lattice ma...
This paper reports an extended lattice model for printing process simulation of 3D printed cementiti...
Rising popularity of three-dimensional printing has caused an increasing interest in metal lattices ...
This paper explores buildability quantification of randomly meshed 3D printed concrete objects by co...
This paper focuses on numerical the prediction of multiaxial static strength of lattice structures. ...
This report covers the finite element study of 3D-printed lattice structure. 1D beam analysis is con...
Cellular materials, often called lattice materials, are increasingly receiving attention for their u...
This research studies the impact of localized damage and deformed printing geometry on the structura...
Learning from Nature and leveraging 3D printing, mechanical testing, and numerical modeling, this st...
In this work, the lattice model is applied to study the printing process and quantify the buildabili...
This study investigates the potential of functionally graded lattice structures (FGLs) fabricated by...
Sandwich structures are widely used due to their light weight, high specific strength, and high spec...
Mechanical characteristics of 3D printed lattice structures primarily depend on the properties of ma...
Mechanical behavior of additively manufactured lattice materials has been mainly investigated under ...