Exact solutions in general relativityIn general relativity, an exact solution is a solution of the Einstein field equations whose derivation does not invoke simplifying assumptions, though the starting point for that derivation may be an idealized case like a perfectly spherical shape of matter. Mathematically, finding an exact solution means finding a Lorentzian manifold equipped with tensor fields modeling states of ordinary matter, such as a fluid, or classical non-gravitational fields such as the electromagnetic field.
Fluid solutionIn general relativity, a fluid solution is an exact solution of the Einstein field equation in which the gravitational field is produced entirely by the mass, momentum, and stress density of a fluid. In astrophysics, fluid solutions are often employed as stellar models. (It might help to think of a perfect gas as a special case of a perfect fluid.) In cosmology, fluid solutions are often used as cosmological models.
Infiltration (hydrologie)L'infiltration désigne en hydrologie et sciences de la terre, le processus par lequel l'eau pénètre le sol ou un autre substrat à partir de la surface du sol ou du substrat. Si le taux de précipitations dépasse le taux d'infiltration (et d'évaporation-évapotranspiration, l'évapotranspiration potentielle), un phénomène de ruissellement se produit habituellement, sauf s'il existe une barrière physique.
Conductivité hydrauliqueLa conductivité hydraulique, généralement notée K, est une grandeur qui exprime l'aptitude d'un milieu poreux à laisser passer un fluide sous l'effet d'un gradient de pression. Dans le Système international d'unités elle s'exprime en mètres par seconde (m/s). La conductivité hydraulique est une grandeur qui dépend à la fois des propriétés du milieu poreux où l’écoulement a lieu (granulométrie, forme des grains, répartition et forme des pores, porosité intergranulaire), des propriétés du fluide qui s'écoule (viscosité, densité) et du degré de saturation du milieu poreux.
Dust solutionIn general relativity, a dust solution is a fluid solution, a type of exact solution of the Einstein field equation, in which the gravitational field is produced entirely by the mass, momentum, and stress density of a perfect fluid that has positive mass density but vanishing pressure. Dust solutions are an important special case of fluid solutions in general relativity. A pressureless perfect fluid can be interpreted as a model of a configuration of dust particles that locally move in concert and interact with each other only gravitationally, from which the name is derived.
Teneur en eau (milieux poreux)En physique des milieux poreux, on désigne par teneur en eau la quantité d'eau liquide contenue dans un échantillon de matière, par exemple un échantillon de sol, de roche, de céramique ou de bois, la quantité étant évaluée par un rapport pondéral ou volumétrique. Cette propriété intervient dans un large éventail de disciplines scientifiques et techniques, et s'exprime comme un rapport ou quotient, dont la valeur peut varier entre 0 (échantillon complètement sec) et (pour la teneur « volumétrique ») la « porosité à saturation » du matériau.
Electrovacuum solutionIn general relativity, an electrovacuum solution (electrovacuum) is an exact solution of the Einstein field equation in which the only nongravitational mass–energy present is the field energy of an electromagnetic field, which must satisfy the (curved-spacetime) source-free Maxwell equations appropriate to the given geometry. For this reason, electrovacuums are sometimes called (source-free) Einstein–Maxwell solutions.
Kerr metricThe Kerr metric or Kerr geometry describes the geometry of empty spacetime around a rotating uncharged axially symmetric black hole with a quasispherical event horizon. The Kerr metric is an exact solution of the Einstein field equations of general relativity; these equations are highly non-linear, which makes exact solutions very difficult to find. The Kerr metric is a generalization to a rotating body of the Schwarzschild metric, discovered by Karl Schwarzschild in 1915, which described the geometry of spacetime around an uncharged, spherically symmetric, and non-rotating body.
Groundwater modelGroundwater models are computer models of groundwater flow systems, and are used by hydrologists and hydrogeologists. Groundwater models are used to simulate and predict aquifer conditions. An unambiguous definition of "groundwater model" is difficult to give, but there are many common characteristics. A groundwater model may be a scale model or an electric model of a groundwater situation or aquifer. Groundwater models are used to represent the natural groundwater flow in the environment.
Vacuum solution (general relativity)In general relativity, a vacuum solution is a Lorentzian manifold whose Einstein tensor vanishes identically. According to the Einstein field equation, this means that the stress–energy tensor also vanishes identically, so that no matter or non-gravitational fields are present. These are distinct from the electrovacuum solutions, which take into account the electromagnetic field in addition to the gravitational field.