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.
Déformation élastiqueEn physique, l'élasticité est la propriété d'un matériau solide à retrouver sa forme d'origine après avoir été déformé. La déformation élastique est une déformation réversible. Un matériau solide se déforme lorsque des forces lui sont appliquées. Un matériau élastique retrouve sa forme et sa taille initiales quand ces forces ne s'exercent plus, jusqu'à une certaine limite de la valeur de ces forces. Les tissus biologiques sont également plus ou moins élastiques. Les raisons physiques du comportement élastique diffèrent d'un matériau à un autre.
Price elasticity of demandA good's price elasticity of demand (, PED) is a measure of how sensitive the quantity demanded is to its price. When the price rises, quantity demanded falls for almost any good, but it falls more for some than for others. The price elasticity gives the percentage change in quantity demanded when there is a one percent increase in price, holding everything else constant. If the elasticity is −2, that means a one percent price rise leads to a two percent decline in quantity demanded.
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.
Élasticité (économie)vignette|Elasticity-elastic En économie, l'élasticité mesure la variation d'une grandeur provoquée par la variation d'une autre grandeur. Ainsi, pour un produit donné, lorsque les volumes demandés augmentent de 15 % quand le prix de vente baisse de 10 %, l'élasticité de la demande par rapport au prix de vente est le quotient de la variation de la demande rapporté à la variation de prix de vente, soit -1,5 = (15 % / -10 %). Ici toute baisse de prix provoque une augmentation plus importante des quantités vendues.
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.
Price elasticity of supplyThe price elasticity of supply (PES or Es) is a measure used in economics to show the responsiveness, or elasticity, of the quantity supplied of a good or service to a change in its price. Price elasticity of supply, in application, is the percentage change of the quantity supplied resulting from a 1% change in price. Alternatively, PES is the percentage change in the quantity supplied divided by the percentage change in price. When PES is less than one, the supply of the good can be described as inelastic.
Flèche (résistance des matériaux)En résistance des matériaux, la flèche est usuellement la valeur maximale du déplacement d'une poutre. En l'absence d'effort normal important, la déformée d'une poutre est liée au moment fléchissant par la relation où est la dérivée seconde de la déformée, est le module d'élasticité (module de Young) du matériau, et le moment quadratique (inertie) de la section de la poutre. Pour obtenir l'équation de la déformée, on intègre deux fois en déterminant les constantes d'intégration à l'aide des conditions aux limites.
Poutre (construction)right|thumb|Poutres et solives dans une maison polonaise Une poutre est à l'origine un bois de brin, de manière préférentielle du chêne, équarri à la scie de long ou à la hache (cognée, herminette et doloire de charpentier), et qui était donc de toute la grosseur des arbres; c'est-à-dire qu'on n'avait enlevé du tronc que les dosses, laissant le duramen quasi intact. Elle peut servir à faire des clôtures. Le côté d’une poutre est selon NF B50-002 supérieur à 120 millimètres.
Structural loadA structural load or structural action is a force, deformation, or acceleration applied to structural elements. A load causes stress, deformation, and displacement in a structure. Structural analysis, a discipline in engineering, analyzes the effects of loads on structures and structural elements. Excess load may cause structural failure, so this should be considered and controlled during the design of a structure. Particular mechanical structures—such as aircraft, satellites, rockets, space stations, ships, and submarines—are subject to their own particular structural loads and actions.
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.