Elasticity tensorThe elasticity tensor is a fourth-rank tensor describing the stress-strain relation in a linear elastic material. Other names are elastic modulus tensor and stiffness tensor. Common symbols include and . The defining equation can be written as where and are the components of the Cauchy stress tensor and infinitesimal strain tensor, and are the components of the elasticity tensor. Summation over repeated indices is implied. This relationship can be interpreted as a generalization of Hooke's law to a 3D continuum.
Residual stressIn materials science and solid mechanics, residual stresses are stresses that remain in a solid material after the original cause of the stresses has been removed. Residual stress may be desirable or undesirable. For example, laser peening imparts deep beneficial compressive residual stresses into metal components such as turbine engine fan blades, and it is used in toughened glass to allow for large, thin, crack- and scratch-resistant glass displays on smartphones.
Linear elasticityLinear elasticity is a mathematical model of how solid objects deform and become internally stressed due to prescribed loading conditions. It is a simplification of the more general nonlinear theory of elasticity and a branch of continuum mechanics. The fundamental "linearizing" assumptions of linear elasticity are: infinitesimal strains or "small" deformations (or strains) and linear relationships between the components of stress and strain. In addition linear elasticity is valid only for stress states that do not produce yielding.
Rubber elasticityRubber elasticity refers to a property of crosslinked rubber: it can be stretched by up to a factor of 10 from its original length and, when released, returns very nearly to its original length. This can be repeated many times with no apparent degradation to the rubber. Rubber is a member of a larger class of materials called elastomers and it is difficult to overestimate their economic and technological importance. Elastomers have played a key role in the development of new technologies in the 20th century and make a substantial contribution to the global economy.
Viscous stress tensorThe viscous stress tensor is a tensor used in continuum mechanics to model the part of the stress at a point within some material that can be attributed to the strain rate, the rate at which it is deforming around that point. The viscous stress tensor is formally similar to the elastic stress tensor (Cauchy tensor) that describes internal forces in an elastic material due to its deformation. Both tensors map the normal vector of a surface element to the density and direction of the stress acting on that surface element.
TénacitéLa ténacité est la capacité d'un matériau à résister à la propagation d'une fissure. On peut aussi définir la ténacité comme étant la quantité d'énergie qu'un matériau peut absorber avant de rompre, mais il s'agit d'une définition anglophone. En anglais, on fait la différence entre « toughness », l'énergie de déformation à rupture par unité de volume (, ce qui correspond aussi à des pascals) et « », la ténacité au sens de résistance à la propagation de fissure.
Limit state designLimit State Design (LSD), also known as Load And Resistance Factor Design (LRFD), refers to a design method used in structural engineering. A limit state is a condition of a structure beyond which it no longer fulfills the relevant design criteria. The condition may refer to a degree of loading or other actions on the structure, while the criteria refer to structural integrity, fitness for use, durability or other design requirements.
ViscositéLa viscosité (du latin viscum, gui, glu) peut être définie comme l'ensemble des phénomènes de résistance au mouvement d'un fluide pour un écoulement avec ou sans turbulence. La viscosité diminue la liberté d'écoulement du fluide et dissipe son énergie. Deux grandeurs physiques caractérisent la viscosité : la viscosité dynamique (celle utilisée le plus généralement) et la seconde viscosité ou la viscosité de volume. On utilise aussi des grandeurs dérivées : fluidité, viscosité cinématique ou viscosité élongationnelle.
Stress–strain analysisStress–strain analysis (or stress analysis) is an engineering discipline that uses many methods to determine the stresses and strains in materials and structures subjected to forces. In continuum mechanics, stress is a physical quantity that expresses the internal forces that neighboring particles of a continuous material exert on each other, while strain is the measure of the deformation of the material. In simple terms we can define stress as the force of resistance per unit area, offered by a body against deformation.
Module d'élasticité isostatiqueLe module d'élasticité isostatique () est la constante qui relie la contrainte au taux de déformation d'un matériau isotrope soumis à une compression isostatique. Généralement noté ( en anglais), le module d'élasticité isostatique permet d'exprimer la relation de proportionnalité entre le premier invariant du tenseur des contraintes et le premier invariant du tenseur des déformations : où : est la contrainte isostatique (en unité de pression) ; est le module d'élasticité isostatique (en unité de pression) ; est le taux de déformation isostatique (sans dimension).