Table of thermodynamic equationsCommon thermodynamic equations and quantities in thermodynamics, using mathematical notation, are as follows: List of thermodynamic propertiesThermodynamic potentialFree entropy and Defining equation (physical chemistry) Many of the definitions below are also used in the thermodynamics of chemical reactions. Heat capacity and Thermal expansion Thermal conductivity The equations in this article are classified by subject. where kB is the Boltzmann constant, and Ω denotes the volume of macrostate in the phase space or otherwise called thermodynamic probability.
Reversible process (thermodynamics)In thermodynamics, a reversible process is a process, involving a system and its surroundings, whose direction can be reversed by infinitesimal changes in some properties of the surroundings, such as pressure or temperature. Throughout an entire reversible process, the system is in thermodynamic equilibrium, both physical and chemical, and nearly in pressure and temperature equilibrium with its surroundings. This prevents unbalanced forces and acceleration of moving system boundaries, which in turn avoids friction and other dissipation.
Processus adiabatiquevignette|250px|Récipient aux parois adiabatiques : le vase de Dewar. En thermodynamique, un processus adiabatique est une transformation effectuée sans qu'aucun transfert thermique n'intervienne entre le système étudié et son environnement, c'est-à-dire sans échange de chaleur entre les deux milieux. Le mot « adiabatique » a été construit à partir du grec (« infranchissable »), dérivé de , « traverser, franchir ». Un matériau adiabatique est imperméable à la chaleur.
ThermodynamiqueLa thermodynamique est la branche de la physique qui traite de la dépendance des propriétés physiques des corps à la température, des phénomènes où interviennent des échanges thermiques, et des transformations de l'énergie entre différentes formes. La thermodynamique peut être abordée selon deux approches différentes et complémentaires : phénoménologique et statistique. La thermodynamique phénoménologique ou classique a été l'objet de nombreuses avancées dès le .
Work (thermodynamics)Thermodynamic work is one of the principal processes by which a thermodynamic system can interact with its surroundings and exchange energy. This exchange results in externally measurable macroscopic forces on the system's surroundings, which can cause mechanical work, to lift a weight, for example, or cause changes in electromagnetic, or gravitational variables. The surroundings also can perform work on a thermodynamic system, which is measured by an opposite sign convention.
Entropy (classical thermodynamics)In classical thermodynamics, entropy () is a property of a thermodynamic system that expresses the direction or outcome of spontaneous changes in the system. The term was introduced by Rudolf Clausius in the mid-19th century to explain the relationship of the internal energy that is available or unavailable for transformations in form of heat and work. Entropy predicts that certain processes are irreversible or impossible, despite not violating the conservation of energy.
Thermodynamic operationA thermodynamic operation is an externally imposed manipulation that affects a thermodynamic system. The change can be either in the connection or wall between a thermodynamic system and its surroundings, or in the value of some variable in the surroundings that is in contact with a wall of the system that allows transfer of the extensive quantity belonging that variable. It is assumed in thermodynamics that the operation is conducted in ignorance of any pertinent microscopic information.
Entropy as an arrow of timeEntropy is one of the few quantities in the physical sciences that require a particular direction for time, sometimes called an arrow of time. As one goes "forward" in time, the second law of thermodynamics says, the entropy of an isolated system can increase, but not decrease. Thus, entropy measurement is a way of distinguishing the past from the future. In thermodynamic systems that are not isolated, local entropy can decrease over time, accompanied by a compensating entropy increase in the surroundings; examples include objects undergoing cooling, living systems, and the formation of typical crystals.
DissipationEn physique, la dissipation désigne le phénomène selon lequel un système dynamique (onde, oscillation...) perd de l'énergie au cours du temps. Cette perte est principalement due aux frottements et aux turbulences, et l'énergie correspondante est alors dégradée en chaleur, une forme d'énergie qui ne pourra pas être intégralement retransformée en énergie mécanique, comme l'affirme le deuxième principe de la thermodynamique. Amortissement Dissipateur thermique Entropie Hystérésis Théorème de fluctuation-dissi
Thermodynamic databases for pure substancesThermodynamic databases contain information about thermodynamic properties for substances, the most important being enthalpy, entropy, and Gibbs free energy. Numerical values of these thermodynamic properties are collected as tables or are calculated from thermodynamic datafiles. Data is expressed as temperature-dependent values for one mole of substance at the standard pressure of 101.325 kPa (1 atm), or 100 kPa (1 bar). Both of these definitions for the standard condition for pressure are in use.