Strong ground motionIn seismology, strong ground motion is the strong earthquake shaking that occurs close to (less than about 50 km from) a causative fault. The strength of the shaking involved in strong ground motion usually overwhelms a seismometer, forcing the use of accelerographs (or strong ground motion accelerometers) for recording. The science of strong ground motion also deals with the variations of fault rupture, both in total displacement, energy released, and rupture velocity.
Prédiction sismiqueL'objectif de la prédiction sismique est d'anticiper les risques sismiques en prévoyant l'amplitude, le lieu et la date des tremblements de terre. On peut distinguer trois types de prévision sismique : la prévision à long terme (sur plusieurs années), à moyen terme (sur plusieurs mois) et à court terme (inférieur à quelques jours). La prédiction sismique reste une tâche difficile et aléatoire, voire quasi impossible malgré les efforts scientifiques. De plus prévoir les dégâts ne les empêcherait pas d'avoir lieu.
Sismographethumb|Dessin par Galitzine (1914) d'un sismographe Wiechert marquant l'introduction de l'amortissement du mouvement en sismométrie. Un sismographe est un instrument de mesure équipé d'un capteur des mouvements du sol, le sismomètre, capable de les enregistrer sur un support visuel, le sismogramme. Pour obtenir le mouvement tridimensionnel de l'onde sismique, il est nécessaire d'enregistrer trois directions différentes formant un trièdre (en général, une direction verticale, et deux directions horizontales perpendiculaires).
P waveA P wave (primary wave or pressure wave) is one of the two main types of elastic body waves, called seismic waves in seismology. P waves travel faster than other seismic waves and hence are the first signal from an earthquake to arrive at any affected location or at a seismograph. P waves may be transmitted through gases, liquids, or solids. The name P wave can stand for either pressure wave (as it is formed from alternating compressions and rarefactions) or primary wave (as it has high velocity and is therefore the first wave to be recorded by a seismograph).
Fatigue (matériau)vignette|Photomicrographie de la progression des fissures dans un matériau dues à la fatigue. Image tirée de . La fatigue est l'endommagement local d'une pièce sous l'effet d'efforts variables : forces appliquées, vibrations, rafales de vent Alors que la pièce est conçue pour résister à des efforts donnés, la variation de l'effort, même à des niveaux bien plus faibles que ceux pouvant provoquer sa rupture, peut à la longue provoquer sa rupture. Les essais de fatigue permettent de déterminer la résistance des matériaux à de telles faibles charges répétées.
Earthquake-resistant structuresEarthquake-resistant or aseismic structures are designed to protect buildings to some or greater extent from earthquakes. While no structure can be entirely impervious to earthquake damage, the goal of earthquake engineering is to erect structures that fare better during seismic activity than their conventional counterparts. According to building codes, earthquake-resistant structures are intended to withstand the largest earthquake of a certain probability that is likely to occur at their location.
Sismologiethumb|Station sismologique Basse-Terre au sommet du morne Mazeau en Guadeloupe. La sismologie ou séismologie (ce dernier est un anglicisme de seismology) est une discipline scientifique qui étudie les séismes (tremblements de terre) et la propagation des ondes élastiques (dites ondes sismiques) à l'intérieur de la Terre. La sismologie moderne utilise les concepts de la mécanique newtonienne appliqués à la connaissance de la Terre.
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.
Seismic intensity scalesSeismic intensity scales categorize the intensity or severity of ground shaking (quaking) at a given location, such as resulting from an earthquake. They are distinguished from seismic magnitude scales, which measure the magnitude or overall strength of an earthquake, which may, or perhaps may not, cause perceptible shaking. Intensity scales are based on the observed effects of the shaking, such as the degree to which people or animals were alarmed, and the extent and severity of damage to different kinds of structures or natural features.
S waveNOTOC In seismology and other areas involving elastic waves, S waves, secondary waves, or shear waves (sometimes called elastic S waves) are a type of elastic wave and are one of the two main types of elastic body waves, so named because they move through the body of an object, unlike surface waves. S waves are transverse waves, meaning that the direction of particle movement of a S wave is perpendicular to the direction of wave propagation, and the main restoring force comes from shear stress.