Abstract Soft materials that can demonstrate on demand reconfigurability and changing compliance are highly sought after as actuator materials in many fields such as soft robotics and biotechnology. Whilst there are numerous proof of concept materials and devices, rigorous predictive models of deformation have not been well-established or widely adopted. In this paper, we discuss programming complex three-dimensional deformations of a soft intrinsically anisotropic material by controlling the orientation of the contractile units and/or direction of the applied electric field. Programming is achieved by patterning contractile units and/or selectively activating spatial regions. A new constitutive model is derived to describe the soft intrins...
The fabrication of evermore sophisticated miniaturised soft robotic components made up of Electro-Ac...
In this letter, we investigate the geometrically tailorable elasticity in the twisting behavior of b...
The re-entrant structures are among the simple unit cell designs that have been widely used in the d...
Abstract Inspired by biology and engineered soft active material systems, we propose a new constitut...
The use of Electro-Active Polymers (EAPs) for the fabrication of evermore sophisticated miniaturised...
International audienceIn this paper, we propose to use new 3D-printed meso-structured materials to b...
Soft robotics is a recent field of robotics. It differs from classical rigid robotics by exploiting ...
This research work is on dynamics simulation of deformable objects. We focus on the simulation of an...
This study presents numerical simulations of deformations and shape changes in soft and flexible sys...
Shape-shifting of flat materials into the desired 3D configuration is an alternative design route fo...
Mathematical modeling of soft robots is complicated by the description of the continuously deformabl...
Actuation of rotational motion in machines and robotics is generally achieved through highly enginee...
Lattice structures are frequently found in nature and engineering due to their myriad attractive pro...
Helical shapes are ubiquitous in both nature and engineering. However, the development of soft actua...
The fabrication of evermore sophisticated miniaturised soft robotic components made up of Electro-Ac...
In this letter, we investigate the geometrically tailorable elasticity in the twisting behavior of b...
The re-entrant structures are among the simple unit cell designs that have been widely used in the d...
Abstract Inspired by biology and engineered soft active material systems, we propose a new constitut...
The use of Electro-Active Polymers (EAPs) for the fabrication of evermore sophisticated miniaturised...
International audienceIn this paper, we propose to use new 3D-printed meso-structured materials to b...
Soft robotics is a recent field of robotics. It differs from classical rigid robotics by exploiting ...
This research work is on dynamics simulation of deformable objects. We focus on the simulation of an...
This study presents numerical simulations of deformations and shape changes in soft and flexible sys...
Shape-shifting of flat materials into the desired 3D configuration is an alternative design route fo...
Mathematical modeling of soft robots is complicated by the description of the continuously deformabl...
Actuation of rotational motion in machines and robotics is generally achieved through highly enginee...
Lattice structures are frequently found in nature and engineering due to their myriad attractive pro...
Helical shapes are ubiquitous in both nature and engineering. However, the development of soft actua...
The fabrication of evermore sophisticated miniaturised soft robotic components made up of Electro-Ac...
In this letter, we investigate the geometrically tailorable elasticity in the twisting behavior of b...
The re-entrant structures are among the simple unit cell designs that have been widely used in the d...