Robotique molleLa robotique molle () est un domaine de la robotique. Ce domaine traite des « robots mous » incluant certains types de drones, et construits en matériaux ou structures souples, élastiques ou déformables tels que le silicone, le plastique, le caoutchouc et autres polymères, les tissus, etc., ou des pièces mécaniques déformables utilisées en robotique, par exemple les ressorts, les élastiques ou les absorbeurs de chocs ou de vibrations.
Deformation (engineering)In engineering, deformation refers to the change in size or shape of an object. Displacements are the absolute change in position of a point on the object. Deflection is the relative change in external displacements on an object. Strain is the relative internal change in shape of an infinitesimally small cube of material and can be expressed as a non-dimensional change in length or angle of distortion of the cube. Strains are related to the forces acting on the cube, which are known as stress, by a stress-strain curve.
ActionneurDans une machine, un actionneur est un objet qui transforme l’énergie qui lui est fournie en un phénomène physique qui fournit un travail, modifie le comportement ou l’état d'un système. Dans les définitions de l’automatisme, l’actionneur appartient à la partie opérative d'un système automatisé. On peut classer les actionneurs suivant différents critères : énergie utilisée ; phénomène physique utilisable ; principe mis en œuvre. vignette|Deux actionneurs pneumatiques à crémaillère (Automax, à gauche et en haut), contrôlant chacun une vanne.
Bio-inspired roboticsBio-inspired robotic locomotion is a fairly new subcategory of bio-inspired design. It is about learning concepts from nature and applying them to the design of real-world engineered systems. More specifically, this field is about making robots that are inspired by biological systems, including Biomimicry. Biomimicry is copying from nature while bio-inspired design is learning from nature and making a mechanism that is simpler and more effective than the system observed in nature.
Polymère électroactifvignette|Figure 1 : The black strips are the working electroactif polymers. They are powered with the same squared voltage. 300px|vignette|Figure 2 : illustration d'une pince en EAP. (a) Une tension est appliquée, les deux doigts en EAP se déforment de sorte à contourner la balle. (b) Lorsque la tension électrique est coupée, les doigts en EAP reprennent leur forme d'origine et attrapent la balle. (c). Les polymères électroactifs (PEA) ( (EAP)), sont des polymères dont la forme ou la taille changent lorsqu'ils sont stimulés par un champ électrique.
Robotiquethumb|upright=1.5|Nao, un robot humanoïde. thumb|upright=1.5|Des robots industriels au travail dans une usine. La robotique est l'ensemble des techniques permettant la conception et la réalisation de machines automatiques ou de robots. L'ATILF donne la définition suivante du robot : « il effectue, grâce à un système de commande automatique à base de microprocesseur, une tâche précise pour laquelle il a été conçu dans le domaine industriel, scientifique, militaire ou domestique ».
Self-reconfiguring modular robotModular self-reconfiguring robotic systems or self-reconfigurable modular robots are autonomous kinematic machines with variable morphology. Beyond conventional actuation, sensing and control typically found in fixed-morphology robots, self-reconfiguring robots are also able to deliberately change their own shape by rearranging the connectivity of their parts, in order to adapt to new circumstances, perform new tasks, or recover from damage.
Infinitesimal strain theoryIn continuum mechanics, the infinitesimal strain theory is a mathematical approach to the description of the deformation of a solid body in which the displacements of the material particles are assumed to be much smaller (indeed, infinitesimally smaller) than any relevant dimension of the body; so that its geometry and the constitutive properties of the material (such as density and stiffness) at each point of space can be assumed to be unchanged by the deformation.
Capacitive sensingIn electrical engineering, capacitive sensing (sometimes capacitance sensing) is a technology, based on capacitive coupling, that can detect and measure anything that is conductive or has a dielectric constant different from air. Many types of sensors use capacitive sensing, including sensors to detect and measure proximity, pressure, position and displacement, force, humidity, fluid level, and acceleration. Human interface devices based on capacitive sensing, such as touchpads, can replace the computer mouse.
Stress–strain curveIn engineering and materials science, a stress–strain curve for a material gives the relationship between stress and strain. It is obtained by gradually applying load to a test coupon and measuring the deformation, from which the stress and strain can be determined (see tensile testing). These curves reveal many of the properties of a material, such as the Young's modulus, the yield strength and the ultimate tensile strength. Generally speaking, curves representing the relationship between stress and strain in any form of deformation can be regarded as stress–strain curves.