The re-entrant structures are among the simple unit cell designs that have been widely used in the design of mechanical metamaterials. Changing the geometrical parameters of these unit cell structures, their overall elastic properties (i.e., elastic stiffness and Poisson’s ratio), can be simultaneously tuned. Therefore, different design strategies (e.g., functional gradient) can be implemented to design advanced engineering materials with unusual properties. Here, using the theory of elasticity and finite element modeling, we propose a fast and direct approach to effectively design the microarchitectures of mechanical metamaterials with re-entrant structures that allow predicting complex deformation shapes under uniaxial tensile loading. We...
Mechanical metamaterials are man-made structures with counterintuitive mechanical properties that or...
Mechanical metamaterials such as open- and closed-cell lattice structures, foams, composites, and so...
Shape-shifting of flat materials into the desired 3D configuration is an alternative design route fo...
The re-entrant structures are among the simple unit cell designs that have been widely used in the d...
Most materials around us have properties that are determined at extremely small scales. Often the at...
Architectured materials with rationally designed geometries could be used to create mechanical metam...
On a structural level, the properties featured by a majority of mechanical metamaterials c...
Up until recently, the rational design of mechanical metamaterials has usually involved devising geo...
The elastic properties of mechanical metamaterials are direct functions of their topological designs...
Mechanical metamaterials with variable stiffness recently gained a lot of research interest, as they...
Modern fabrication techniques, such as additive manufacturing, can be used to create materials with ...
Mechanical metamaterials are material structures that have recently garnered significant attention i...
The design of metamaterials involves the optimal distribution of material inside a volume; therefore...
Advances in manufacturing and processing techniques allow us to create objects with ever increasing ...
Mechanical metamaterials are man-made structures with counterintuitive mechanical properties that or...
Mechanical metamaterials such as open- and closed-cell lattice structures, foams, composites, and so...
Shape-shifting of flat materials into the desired 3D configuration is an alternative design route fo...
The re-entrant structures are among the simple unit cell designs that have been widely used in the d...
Most materials around us have properties that are determined at extremely small scales. Often the at...
Architectured materials with rationally designed geometries could be used to create mechanical metam...
On a structural level, the properties featured by a majority of mechanical metamaterials c...
Up until recently, the rational design of mechanical metamaterials has usually involved devising geo...
The elastic properties of mechanical metamaterials are direct functions of their topological designs...
Mechanical metamaterials with variable stiffness recently gained a lot of research interest, as they...
Modern fabrication techniques, such as additive manufacturing, can be used to create materials with ...
Mechanical metamaterials are material structures that have recently garnered significant attention i...
The design of metamaterials involves the optimal distribution of material inside a volume; therefore...
Advances in manufacturing and processing techniques allow us to create objects with ever increasing ...
Mechanical metamaterials are man-made structures with counterintuitive mechanical properties that or...
Mechanical metamaterials such as open- and closed-cell lattice structures, foams, composites, and so...
Shape-shifting of flat materials into the desired 3D configuration is an alternative design route fo...