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.
Alloy steelAlloy steel is steel that is alloyed with a variety of elements in total amounts between 1.0% and 50% by weight to improve its mechanical properties. Alloy steels are broken down into two groups: low alloy steels and high alloy steels. The difference between the two is disputed. Smith and Hashemi define the difference at 4.0%, while Degarmo, et al., define it at 8.0%. Most commonly, the phrase "alloy steel" refers to low-alloy steels. Strictly speaking, every steel is an alloy, but not all steels are called "alloy steels".
Solid solution strengtheningIn metallurgy, solid solution strengthening is a type of alloying that can be used to improve the strength of a pure metal. The technique works by adding atoms of one element (the alloying element) to the crystalline lattice of another element (the base metal), forming a solid solution. The local nonuniformity in the lattice due to the alloying element makes plastic deformation more difficult by impeding dislocation motion through stress fields. In contrast, alloying beyond the solubility limit can form a second phase, leading to strengthening via other mechanisms (e.
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.
Durcissement structuralLe durcissement structural est comme son nom l'indique un procédé permettant de durcir un alliage de métaux. Il nécessite un alliage métastable, dont la forme stable à température ambiante est un composé intermétallique constitué de deux phases différentes. Un recuit à l'intérieur du nez du diagramme TTT entraîne la germination de précipités de différentes nouvelles phases plus ou moins stables. Ces précipités, qu'ils soient cohérents ou incohérents avec la phase principale constituent des obstacles sur le chemin des dislocations ce qui augmente la dureté ainsi que les propriétés en traction du matériau.
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.
MonocristalUn monocristal ou matériau monocristallin est un matériau solide constitué d'un unique cristal, formé à partir d’un seul germe. À l'opposé, un polycristal ou matériau polycristallin, est constitué lui d'une multitude de petits cristaux de taille et d'orientation variées. De façon exceptionnelle, on peut en trouver dans la nature, pour le béryl, le quartz, le gypse ; ainsi pour ce dernier la mine de Naica (Mexique) comporte des monocristaux de gypse atteignant treize mètres.
Science des matériauxLa science des matériaux repose sur la relation entre les propriétés, la morphologie structurale et la mise en œuvre des matériaux qui constituent les objets qui nous entourent (métaux, polymères, semi-conducteurs, céramiques, composites, etc.). Elle se focalise sur l'étude des principales caractéristiques des matériaux, ainsi que leurs propriétés mécaniques, chimiques, électriques, thermiques, optiques et magnétiques. La science des matériaux est au cœur de beaucoup des grandes révolutions techniques.
Structure cristallineLa structure cristalline (ou structure d'un cristal) donne l'arrangement des atomes dans un cristal. Ces atomes se répètent périodiquement dans l'espace sous l'action des opérations de symétrie du groupe d'espace et forment ainsi la structure cristalline. Cette structure est un concept fondamental pour de nombreux domaines de la science et de la technologie. Elle est complètement décrite par les paramètres de maille du cristal, son réseau de Bravais, son groupe d'espace et la position des atomes dans l'unité asymétrique la maille.
Specific strengthThe specific strength is a material's (or muscle's) strength (force per unit area at failure) divided by its density. It is also known as the strength-to-weight ratio or strength/weight ratio or strength-to-mass ratio. In fiber or textile applications, tenacity is the usual measure of specific strength. The SI unit for specific strength is Pa⋅m3/kg, or N⋅m/kg, which is dimensionally equivalent to m2/s2, though the latter form is rarely used.