Ingénierie des structuresL'ingénierie des structures est un domaine de l'ingénierie et plus particulièrement du génie civil, traitant de la stabilité des constructions (conception et de l'analyse des structures). Une structure est soumise à différentes actions, permanentes ou variables dans le temps, statiques ou dynamiques, de nature mécanique ou thermique, et sa conception vise à satisfaire certains critères vis-à-vis de ces actions : Sécurité : sa résistance, son équilibre et sa stabilité doivent être assurés avec une probabilité choisie ; Performance : son fonctionnement et le confort associés doivent être garantis pour une durée suffisante ; Durabilité : la dégradation de la structure dans le temps doit être limitée et maîtrisée pour satisfaire les deux premiers critères.
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.
Béton de cimentthumb|upright=1.0|Un mètre cube de béton (représentant la production mondiale annuelle de béton par habitant). Le béton de ciment, couramment appelé béton, est un mélange de ciment, de granulats, d'eau et d'adjuvants. Histoire du béton de ciment Ciment Le ciment se compose essentiellement de chaux, de silice, d'alumine et d'oxyde de fer combinés au silicate et aluminate de calcium. Les différents ciments résultent du mélange de clinker, de calcaire, de laitier et de cendres volantes (qui sont des composés à effet pouzzolanique, mais non considérés comme des pouzzolanes).
Failure mode and effects analysisFailure mode and effects analysis (FMEA; often written with "failure modes" in plural) is the process of reviewing as many components, assemblies, and subsystems as possible to identify potential failure modes in a system and their causes and effects. For each component, the failure modes and their resulting effects on the rest of the system are recorded in a specific FMEA worksheet. There are numerous variations of such worksheets.
Designvignette|Chaise de Charles Rennie Mackintosh, 1897. Le design, le stylisme ou la stylique est une activité de création souvent à vocation industrielle ou commerciale, pouvant s’orienter vers les milieux sociaux, politiques, scientifiques et environnementaux. Le but premier du design est d’inventer, d’améliorer ou de faciliter l’usage ou le processus d’un élément ayant à interagir avec un produit ou un service matériel ou virtuel.
Requirements traceabilityRequirements traceability is a sub-discipline of requirements management within software development and systems engineering. Traceability as a general term is defined by the IEEE Systems and Software Engineering Vocabulary as (1) the degree to which a relationship can be established between two or more products of the development process, especially products having a predecessor-successor or primary-subordinate relationship to one another; (2) the identification and documentation of derivation paths (upward) and allocation or flowdown paths (downward) of work products in the work product hierarchy; (3) the degree to which each element in a software development product establishes its reason for existing; and (4) discernible association among two or more logical entities, such as requirements, system elements, verifications, or tasks.
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.
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.
Direct shear testA direct shear test is a laboratory or field test used by geotechnical engineers to measure the shear strength properties of soil or rock material, or of discontinuities in soil or rock masses. The U.S. and U.K. standards defining how the test should be performed are ASTM D 3080, AASHTO T236 and BS 1377-7:1990, respectively. For rock the test is generally restricted to rock with (very) low shear strength. The test is, however, standard practice to establish the shear strength properties of discontinuities in rock.
StructureA structure is an arrangement and organization of interrelated elements in a material object or system, or the object or system so organized. Material structures include man-made objects such as buildings and machines and natural objects such as biological organisms, minerals and chemicals. Abstract structures include data structures in computer science and musical form. Types of structure include a hierarchy (a cascade of one-to-many relationships), a network featuring many-to-many links, or a lattice featuring connections between components that are neighbors in space.