Pont en arcvignette|Pont en maçonnerie sur l'Antietam, un affluent du fleuve Potomac. vignette|Ponts en arc dans le centre-ville d'Amsterdam. vignette|Le pont Maximilien-Joseph à Munich. vignette|Le pont Gebsattel à Munich. vignette|Les Satsop River Bridges dans l'État de Washington. Un pont en arc est un pont, à savoir une construction qui permet de franchir une dépression ou un obstacle (cours d'eau, voie de communication, vallée, ravin, canyon), dont la ligne de la partie inférieure (intrados), est en forme d'arc.
T-beamA T-beam (or tee beam), used in construction, is a load-bearing structure of reinforced concrete, wood or metal, with a -shaped cross section. The top of the -shaped cross section serves as a flange or compression member in resisting compressive stresses. The web (vertical section) of the beam below the compression flange serves to resist shear stress. When used for highway bridges the beam incorporates reinforcing bars in the bottom of the beam to resist the tensile stresses which occur during bending.
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.
Ultimate tensile strengthUltimate tensile strength (also called UTS, tensile strength, TS, ultimate strength or in notation) is the maximum stress that a material can withstand while being stretched or pulled before breaking. In brittle materials the ultimate tensile strength is close to the yield point, whereas in ductile materials the ultimate tensile strength can be higher. The ultimate tensile strength is usually found by performing a tensile test and recording the engineering stress versus strain.
Through arch bridgeA through arch bridge, also known as a through-type arch bridge, is a bridge that is made from materials such as steel or reinforced concrete, in which the base of an arch structure is below the deck but the top rises above it. It can either be lower bearing or mid-bearing. Thus, the deck is within the arch, and cables or beams that are in tension suspend the central part of the deck from the arch. For a specific construction method, especially for masonry arches, the proportions of the arch remain similar no matter what the size: wider arches are thus required to be taller arches.
Pont à poutresUn pont à poutres est un pont dont le tablier est porté par une ou plusieurs poutres en bois, en acier, en béton armé ou précontraint. Les ponts à poutres n’exercent qu’une réaction verticale sur leurs appuis intermédiaires ou d’extrémités et les efforts engendrés dans la structure sont principalement des efforts de flexion. Deux critères permettent de différencier les poutres : la forme ou le matériau, le croisement des deux permettant de déterminer un grand nombre de poutres.
Structural integrity and failureStructural integrity and failure is an aspect of engineering that deals with the ability of a structure to support a designed structural load (weight, force, etc.) without breaking and includes the study of past structural failures in order to prevent failures in future designs. Structural integrity is the ability of an item—either a structural component or a structure consisting of many components—to hold together under a load, including its own weight, without breaking or deforming excessively.
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.
Calcul des structures et modélisationLe calcul des structures et la modélisation concernent deux domaines distincts : d'une part les applications spécifiques au patrimoine architectural, mobilier et naturel et d'autre part les applications industrielles. Le calcul des structures et leur modélisation est utilisé dans les domaines : de la conservation et mise en valeur du patrimoine architectural, mobilier et naturel, dans le cadre de missions d’assistance à la maître d’œuvre ou au maître d’ouvrage permettant d’arrêter un programme de travaux, d’applications industrielles.
Tenseur des contraintesLe tenseur des contraintes est un tenseur d'ordre 2 utilisé en mécanique des milieux continus pour caractériser l'état de contrainte, c'est-à-dire les efforts intérieurs mis en jeu entre les portions déformées d'un milieu. Le terme a été introduit par Cauchy vers 1822. Comme les efforts intérieurs sont définis pour chaque surface coupant le milieu (on parle d'ailleurs également d'efforts surfaciques), le tenseur est défini localement, en chaque point du solide. L'état de contrainte du solide est donc représenté par un champ tensoriel.