Écrouissagedroite|vignette|Laminage : l'amincissement provoque un durcissement du métal. Lécrouissage d'un métal est le durcissement d'un métal ductile sous l'effet de sa déformation plastique (déformation permanente). Ce mécanisme de durcissement explique en grande partie les différences de tenues et résistance entre les pièces métalliques obtenues par corroyage (c'est-à-dire par déformation plastique : laminage, tréfilage, forgeage) et les pièces de fonderie (simplement coulées dans un moule).
Finite strain theoryIn continuum mechanics, the finite strain theory—also called large strain theory, or large deformation theory—deals with deformations in which strains and/or rotations are large enough to invalidate assumptions inherent in infinitesimal strain theory. In this case, the undeformed and deformed configurations of the continuum are significantly different, requiring a clear distinction between them. This is commonly the case with elastomers, plastically-deforming materials and other fluids and biological soft tissue.
Texture (minéralogie)thumb|Figures de pôles representant la texture cristalline d'un alliage gamma-TiAl thumb|Structure polycristalline d'un acier électrique. Chaque grain a une orientation différente, visible par les différentes réflexions de la lumière. En minéralogie, le terme texture désigne une orientation préférentielle des cristallites d'un matériau polycristallin. Un matériau polycristallin tel qu'une poudre, une céramique ou une couche mince est composé d'une multitude de petits cristaux, ou cristallites, agrégés les uns aux autres.
Diffraction de poudrevignette|320x320px|Paterne de poudre d'électron (rouge) d'un film d'aluminium avec une superposition de spirales (vert) et une ligne d'intersection (bleue) qui détermine le paramètre de réseau. La diffraction de poudre est une technique scientifique utilisant la diffraction aux rayons X, la diffraction de neutrons ou la diffraction des électrons sur des échantillons en poudre ou micro-cristallins pour la caractérisation structurale de matériaux. L'instrument dédié à l'exécution de ces mesures est appelé un diffractomètre de poudre.
Loi de Hall-PetchIn materials science, grain-boundary strengthening (or Hall–Petch strengthening) is a method of strengthening materials by changing their average crystallite (grain) size. It is based on the observation that grain boundaries are insurmountable borders for dislocations and that the number of dislocations within a grain has an effect on how stress builds up in the adjacent grain, which will eventually activate dislocation sources and thus enabling deformation in the neighbouring grain as well.
Strain-rate tensorIn continuum mechanics, the strain-rate tensor or rate-of-strain tensor is a physical quantity that describes the rate of change of the deformation of a material in the neighborhood of a certain point, at a certain moment of time. It can be defined as the derivative of the strain tensor with respect to time, or as the symmetric component of the Jacobian matrix (derivative with respect to position) of the flow velocity. In fluid mechanics it also can be described as the velocity gradient, a measure of how the velocity of a fluid changes between different points within the fluid.
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.
Module de cisaillementEn résistance des matériaux, le module de cisaillement, module de glissement, module de rigidité, module de Coulomb ou second coefficient de Lamé, est une grandeur physique intrinsèque à chaque matériau et qui intervient dans la caractérisation des déformations causées par des efforts de cisaillement. La définition du module de rigidité , parfois aussi noté μ, estoù (voir l'image ci-contre) est la contrainte de cisaillement, la force, l'aire sur laquelle la force agit, le déplacement latéral relatif et l'écart à l'angle droit, le déplacement latéral et enfin l'épaisseur.
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.
Shear strengthIn engineering, shear strength is the strength of a material or component against the type of yield or structural failure when the material or component fails in shear. A shear load is a force that tends to produce a sliding failure on a material along a plane that is parallel to the direction of the force. When a paper is cut with scissors, the paper fails in shear. In structural and mechanical engineering, the shear strength of a component is important for designing the dimensions and materials to be used for the manufacture or construction of the component (e.