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.
Yield (engineering)In materials science and engineering, the yield point is the point on a stress-strain curve that indicates the limit of elastic behavior and the beginning of plastic behavior. Below the yield point, a material will deform elastically and will return to its original shape when the applied stress is removed. Once the yield point is passed, some fraction of the deformation will be permanent and non-reversible and is known as plastic deformation.
Matériau compositevignette|Multicouche, un exemple de matériau composite. Un matériau composite est un assemblage ou un mélange hétérogène d'au moins deux composants, non miscibles mais ayant une forte capacité d'interpénétration et d'adhésion, dont les propriétés mécaniques se complètent. Le nouveau matériau ainsi constitué possède des propriétés avantageuses que les composants seuls ne possèdent pas. Bien que le terme composite soit moderne, de tels matériaux ont été inventés et abondamment utilisés bien avant l'Antiquité, comme les torchis pour la construction de bâtiments.
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.
Spectroscopie des rayons XLa spectroscopie des rayons X rassemble plusieurs techniques de caractérisation spectroscopique de matériaux par excitation par rayons X. Trois familles de techniques sont le plus souvent utilisées. Selon les phénomènes mis en jeu, on distingue trois classes : L'analyse se fait par l'une des deux méthodes suivantes : analyse dispersive en énergie (Energy-dispersive x-ray analysis (EDXA) en anglais) ; analyse dispersive en longueur d'onde (Wavelength dispersive x-ray analysis (WDXA) en anglais).
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.
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.
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.
Aluminium alloyAn aluminium alloy (or aluminum alloy; see spelling differences) is an alloy in which aluminium (Al) is the predominant metal. The typical alloying elements are copper, magnesium, manganese, silicon, tin, nickel and zinc. There are two principal classifications, namely casting alloys and wrought alloys, both of which are further subdivided into the categories heat-treatable and non-heat-treatable. About 85% of aluminium is used for wrought products, for example rolled plate, foils and extrusions.
Microscopie électronique à balayagethumb|right|Premier microscope électronique à balayage par M von Ardenne thumb|right|Microscope électronique à balayage JEOL JSM-6340F thumb|upright=1.5|Principe de fonctionnement du Microscope Électronique à Balayage La microscopie électronique à balayage (MEB) ou scanning electron microscope (SEM) en anglais est une technique de microscopie électronique capable de produire des images en haute résolution de la surface d’un échantillon en utilisant le principe des interactions électrons-matière.