In
thermodynamics
Thermodynamics is a branch of physics that deals with heat, Work (thermodynamics), work, and temperature, and their relation to energy, entropy, and the physical properties of matter and radiation. The behavior of these quantities is governed b ...
, adiabatic accessibility determines if one
equilibrium state
Thermodynamic equilibrium is a notion of thermodynamics with axiomatic status referring to an internal state of a single thermodynamic system, or a relation between several thermodynamic systems connected by more or less permeable or impermeable ...
of a
system
A system is a group of interacting or interrelated elements that act according to a set of rules to form a unified whole. A system, surrounded and influenced by its open system (systems theory), environment, is described by its boundaries, str ...
can transition to another solely through an
adiabatic process
An adiabatic process (''adiabatic'' ) is a type of thermodynamic process that occurs without transferring heat between the thermodynamic system and its Environment (systems), environment. Unlike an isothermal process, an adiabatic process transf ...
, meaning no heat is exchanged with the environment.
The concept was coined by
Constantin Carathéodory
Constantin Carathéodory (; 13 September 1873 – 2 February 1950) was a Greeks, Greek mathematician who spent most of his professional career in Germany. He made significant contributions to real and complex analysis, the calculus of variations, ...
in 1909 ("adiabatische Erreichbarkeit") and taken up 90 years later by
Elliott Lieb and
J. Yngvason in their axiomatic approach to the foundations of thermodynamics.
It was also used by R. Giles in his 1964 monograph.
[Robin Giles: "Mathematical Foundations of Thermodynamics", Pergamon, Oxford 1964]
Adiabatic accessibility plays a crucial role in defining fundamental concepts such as
entropy
Entropy is a scientific concept, most commonly associated with states of disorder, randomness, or uncertainty. The term and the concept are used in diverse fields, from classical thermodynamics, where it was first recognized, to the micros ...
and understanding the limitations on state transformations in thermodynamic systems.
Description
A system in a state ''Y'' is said to be adiabatically accessible from a state ''X'' if ''X'' can be transformed into ''Y'' without the system suffering transfer of energy as heat or transfer of matter. ''X'' may, however, be transformed to ''Y'' by doing work on ''X''. For example, a system consisting of one kilogram of warm water is adiabatically accessible from a system consisting of one kilogram of cool water, since the cool water may be mechanically stirred to warm it. However, the cool water is not adiabatically accessible from the warm water, since no amount or type of work may be done to cool it.
Carathéodory
The original definition of Carathéodory was limited to reversible,
quasistatic process
In thermodynamics, a quasi-static process, also known as a quasi-equilibrium process (from Latin ''quasi'', meaning ‘as if’), is a thermodynamic process that happens slowly enough for the system to remain in internal physical (but not necess ...
, described by a curve in the manifold of equilibrium states of the system under consideration. He called such a state change adiabatic if the infinitesimal 'heat' differential form
vanishes along the curve. In other words, at no time in the process does heat enter or leave the system. Carathéodory's formulation of the
second law of thermodynamics
The second law of thermodynamics is a physical law based on Universal (metaphysics), universal empirical observation concerning heat and Energy transformation, energy interconversions. A simple statement of the law is that heat always flows spont ...
then takes the form: "In the neighbourhood of any initial state, there are states which cannot be approached arbitrarily close through adiabatic changes of state." From this principle he derived the existence of
entropy
Entropy is a scientific concept, most commonly associated with states of disorder, randomness, or uncertainty. The term and the concept are used in diverse fields, from classical thermodynamics, where it was first recognized, to the micros ...
as a state function
whose differential
is proportional to the heat differential form
, so it remains constant under adiabatic state changes (in Carathéodory's sense). The increase of entropy during irreversible
processes is not obvious in this formulation, without further assumptions.
Lieb and Yngvason
The definition employed by Lieb and Yngvason is rather different since the state changes considered can be the result of arbitrarily complicated, possibly violent, irreversible processes and there is no mention of 'heat' or differential forms. In the example of the water given above, if the stirring is done slowly, the transition from cool water to warm water will be quasistatic. However, a system containing an exploded firecracker is adiabatically accessible from a system containing an unexploded firecracker (but not vice versa), and this transition is far from quasistatic. Lieb and Yngvason's definition of adiabatic accessibility is: A state
is adiabatically accessible from a state
, in symbols
(pronounced X 'precedes' Y), if it is possible to transform
into
in such a way that the only net effect of the process on the surroundings is that a weight has been raised or lowered (or a spring is stretched/compressed, or a flywheel is set in motion).
Thermodynamic entropy
A definition of thermodynamic entropy can be based entirely on certain properties of the relation
of adiabatic accessibility that are taken as axioms in the Lieb-Yngvason approach. In the following list of properties of the
operator, a system is represented by a capital letter, e.g. ''X'', ''Y'' or ''Z''. A system ''X'' whose extensive parameters are multiplied by
is written
. (e.g. for a simple gas, this would mean twice the amount of gas in twice the volume, at the same pressure.) A system consisting of two subsystems ''X'' and ''Y'' is written (X,Y). If
and
are both true, then each system can access the other and the transformation taking one into the other is reversible. This is an equivalence relationship written
. Otherwise, it is irreversible. Adiabatic accessibility has the following properties:
*Reflexivity:
*Transitivity: If
and
then
*Consistency: if
and
then
*Scaling Invariance: if
and
then
*Splitting and Recombination:
for all
*Stability: if