Physical propertyA physical property is any property that is measurable, involved in the state of a physical system, whose value represents the intensity on the object's state and behavior. The changes in the physical properties of a system can be used to describe its changes between momentary states. A quantifiable physical property is called physical quantity. Measurable physical quantities are often referred to as observables. Physical properties are often characterized as intensive and extensive properties.
Transformation de LegendreLa transformation de Legendre est une opération mathématique qui, schématiquement, transforme une fonction définie par sa valeur en un point en une fonction définie par sa tangente. Elle tire son nom du mathématicien Adrien-Marie Legendre. Les cas classiques d'utilisation de la transformation de Legendre se rencontrent en thermodynamique et en mécanique lagrangienne. En thermodynamique, elle permet de calculer le potentiel thermodynamique adapté à des conditions particulières.
Variables conjuguées (thermodynamique)En thermodynamique, l'énergie interne d'un système est exprimé à travers un couple de grandeurs physiques appelé variables conjuguées. Ce couple de deux variables vérifie les propriétés suivantes : l'une est intensive et l'autre extensive ; leur produit est homogène à une énergie (ou parfois une puissance). Le produit de ces deux variables donne ici une énergie, ce qui s'explicite en disant que les deux variables sont « conjuguées par rapport à l'énergie ».
Particle numberIn thermodynamics, the particle number (symbol N) of a thermodynamic system is the number of constituent particles in that system. The particle number is a fundamental thermodynamic property which is conjugate to the chemical potential. Unlike most physical quantities, the particle number is a dimensionless quantity, specifically a countable quantity. It is an extensive property, as it is directly proportional to the size of the system under consideration and thus meaningful only for closed systems.
Relations between heat capacitiesIn thermodynamics, the heat capacity at constant volume, , and the heat capacity at constant pressure, , are extensive properties that have the magnitude of energy divided by temperature. The laws of thermodynamics imply the following relations between these two heat capacities (Gaskell 2003:23): Here is the thermal expansion coefficient: is the isothermal compressibility (the inverse of the bulk modulus): and is the isentropic compressibility: A corresponding expression for the difference in specific heat capacities (intensive properties) at constant volume and constant pressure is: where ρ is the density of the substance under the applicable conditions.