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Dissipation

In thermodynamics, dissipation is the result of an irreversible process that affects a thermodynamic system. In a dissipative process, energy (internal, bulk flow kinetic, or system potential) transforms from an initial form to a final form, where the capacity of the final form to do thermodynamic work is less than that of the initial form. For example, transfer of energy as heat is dissipative because it is a transfer of energy other than by thermodynamic work or by transfer of matter, and spreads previously concentrated energy. Following the second law of thermodynamics, in conduction and radiation from one body to another, the entropy varies with temperature (reduces the capacity of the combination of the two bodies to do work), but never decreases in an isolated system.

In mechanical engineering, dissipation is the irreversible conversion of mechanical energy into thermal energy with an associated increase in entropy.[1]

Processes with defined local temperature produce entropy at a certain rate. The entropy production rate times local temperature gives the dissipated power. Important examples of irreversible processes are: heat flow through a thermal resistance, fluid flow through a flow resistance, diffusion (mixing), chemical reactions, and electric current flow through an electrical resistance (Joule heating).

Definition edit

Dissipative thermodynamic processes are essentially irreversible because they produce entropy. Planck regarded friction as the prime example of an irreversible thermodynamic process.[2] In a process in which the temperature is locally continuously defined, the local density of rate of entropy production times local temperature gives the local density of dissipated power.[definition needed]

A particular occurrence of a dissipative process cannot be described by a single individual Hamiltonian formalism. A dissipative process requires a collection of admissible individual Hamiltonian descriptions, exactly which one describes the actual particular occurrence of the process of interest being unknown. This includes friction and hammering, and all similar forces that result in decoherency of energy—that is, conversion of coherent or directed energy flow into an indirected or more isotropic distribution of energy.

Energy edit

"The conversion of mechanical energy into heat is called energy dissipation." – François Roddier[3] The term is also applied to the loss of energy due to generation of unwanted heat in electric and electronic circuits.

Computational physics edit

In computational physics, numerical dissipation (also known as "Numerical diffusion") refers to certain side-effects that may occur as a result of a numerical solution to a differential equation. When the pure advection equation, which is free of dissipation, is solved by a numerical approximation method, the energy of the initial wave may be reduced in a way analogous to a diffusional process. Such a method is said to contain 'dissipation'. In some cases, "artificial dissipation" is intentionally added to improve the numerical stability characteristics of the solution.[4]

Mathematics edit

A formal, mathematical definition of dissipation, as commonly used in the mathematical study of measure-preserving dynamical systems, is given in the article wandering set.

Examples edit

In hydraulic engineering edit

Dissipation is the process of converting mechanical energy of downward-flowing water into thermal and acoustical energy. Various devices are designed in stream beds to reduce the kinetic energy of flowing waters to reduce their erosive potential on banks and river bottoms. Very often, these devices look like small waterfalls or cascades, where water flows vertically or over riprap to lose some of its kinetic energy.

Irreversible processes edit

Important examples of irreversible processes are:

  1. Heat flow through a thermal resistance
  2. Fluid flow through a flow resistance
  3. Diffusion (mixing)
  4. Chemical reactions[5][6]
  5. Electrical current flow through an electrical resistance (Joule heating).

Waves or oscillations edit

Waves or oscillations, lose energy over time, typically from friction or turbulence. In many cases, the "lost" energy raises the temperature of the system. For example, a wave that loses amplitude is said to dissipate. The precise nature of the effects depends on the nature of the wave: an atmospheric wave, for instance, may dissipate close to the surface due to friction with the land mass, and at higher levels due to radiative cooling.

History edit

The concept of dissipation was introduced in the field of thermodynamics by William Thomson (Lord Kelvin) in 1852.[7] Lord Kelvin deduced that a subset of the above-mentioned irreversible dissipative processes will occur unless a process is governed by a "perfect thermodynamic engine". The processes that Lord Kelvin identified were friction, diffusion, conduction of heat and the absorption of light.

See also edit

References edit

  1. ^ Escudier, Marcel; Atkins, Tony (2019). A Dictionary of Mechanical Engineering (2 ed.). Oxford University Press. doi:10.1093/acref/9780198832102.001.0001. ISBN 978-0-19-883210-2.
  2. ^ Planck, M. (1926). "Über die Begründung des zweiten Hauptsatzes der Thermodynamik", Sitzungsber. Preuss. Akad. Wiss., Phys. Math. Kl., 453—463.
  3. ^ Roddier F., Thermodynamique de l'évolution (The Thermodynamics of Evolution), parole éditions, 2012
  4. ^ Thomas, J.W. Numerical Partial Differential Equation: Finite Difference Methods. Springer-Verlag. New York. (1995)
  5. ^ Glansdorff, P., Prigogine, I. (1971). Thermodynamic Theory of Structure, Stability, and Fluctuations, Wiley-Interscience, London, 1971, ISBN 0-471-30280-5, p. 61.
  6. ^ Eu, B.C. (1998). Nonequilibrium Thermodynamics: Ensemble Method, Kluwer Academic Publications, Dordrecht, ISBN 0-7923-4980-6, p. 49,
  7. ^ W. Thomson On the universal tendency in nature to the dissipation of mechanical energy Philosophical Magazine, Ser. 4, p. 304 (1852).

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Dissipative redirects here For the mathematical term see Dissipative operator In thermodynamics dissipation is the result of an irreversible process that affects a thermodynamic system In a dissipative process energy internal bulk flow kinetic or system potential transforms from an initial form to a final form where the capacity of the final form to do thermodynamic work is less than that of the initial form For example transfer of energy as heat is dissipative because it is a transfer of energy other than by thermodynamic work or by transfer of matter and spreads previously concentrated energy Following the second law of thermodynamics in conduction and radiation from one body to another the entropy varies with temperature reduces the capacity of the combination of the two bodies to do work but never decreases in an isolated system In mechanical engineering dissipation is the irreversible conversion of mechanical energy into thermal energy with an associated increase in entropy 1 Processes with defined local temperature produce entropy at a certain rate The entropy production rate times local temperature gives the dissipated power Important examples of irreversible processes are heat flow through a thermal resistance fluid flow through a flow resistance diffusion mixing chemical reactions and electric current flow through an electrical resistance Joule heating Look up dissipation in Wiktionary the free dictionary Contents 1 Definition 1 1 Energy 1 2 Computational physics 1 3 Mathematics 2 Examples 2 1 In hydraulic engineering 2 2 Irreversible processes 2 3 Waves or oscillations 3 History 4 See also 5 ReferencesDefinition editDissipative thermodynamic processes are essentially irreversible because they produce entropy Planck regarded friction as the prime example of an irreversible thermodynamic process 2 In a process in which the temperature is locally continuously defined the local density of rate of entropy production times local temperature gives the local density of dissipated power definition needed A particular occurrence of a dissipative process cannot be described by a single individual Hamiltonian formalism A dissipative process requires a collection of admissible individual Hamiltonian descriptions exactly which one describes the actual particular occurrence of the process of interest being unknown This includes friction and hammering and all similar forces that result in decoherency of energy that is conversion of coherent or directed energy flow into an indirected or more isotropic distribution of energy Energy edit The conversion of mechanical energy into heat is called energy dissipation Francois Roddier 3 The term is also applied to the loss of energy due to generation of unwanted heat in electric and electronic circuits Computational physics edit In computational physics numerical dissipation also known as Numerical diffusion refers to certain side effects that may occur as a result of a numerical solution to a differential equation When the pure advection equation which is free of dissipation is solved by a numerical approximation method the energy of the initial wave may be reduced in a way analogous to a diffusional process Such a method is said to contain dissipation In some cases artificial dissipation is intentionally added to improve the numerical stability characteristics of the solution 4 Mathematics edit A formal mathematical definition of dissipation as commonly used in the mathematical study of measure preserving dynamical systems is given in the article wandering set Examples editIn hydraulic engineering edit Dissipation is the process of converting mechanical energy of downward flowing water into thermal and acoustical energy Various devices are designed in stream beds to reduce the kinetic energy of flowing waters to reduce their erosive potential on banks and river bottoms Very often these devices look like small waterfalls or cascades where water flows vertically or over riprap to lose some of its kinetic energy Irreversible processes edit Important examples of irreversible processes are Heat flow through a thermal resistance Fluid flow through a flow resistance Diffusion mixing Chemical reactions 5 6 Electrical current flow through an electrical resistance Joule heating Waves or oscillations edit Waves or oscillations lose energy over time typically from friction or turbulence In many cases the lost energy raises the temperature of the system For example a wave that loses amplitude is said to dissipate The precise nature of the effects depends on the nature of the wave an atmospheric wave for instance may dissipate close to the surface due to friction with the land mass and at higher levels due to radiative cooling History editSee also Timeline of thermodynamics The concept of dissipation was introduced in the field of thermodynamics by William Thomson Lord Kelvin in 1852 7 Lord Kelvin deduced that a subset of the above mentioned irreversible dissipative processes will occur unless a process is governed by a perfect thermodynamic engine The processes that Lord Kelvin identified were friction diffusion conduction of heat and the absorption of light See also editEntropy production General equation of heat transfer Flood control Principle of maximum entropy Two dimensional gasReferences edit Escudier Marcel Atkins Tony 2019 A Dictionary of Mechanical Engineering 2 ed Oxford University Press doi 10 1093 acref 9780198832102 001 0001 ISBN 978 0 19 883210 2 Planck M 1926 Uber die Begrundung des zweiten Hauptsatzes der Thermodynamik Sitzungsber Preuss Akad Wiss Phys Math Kl 453 463 Roddier F Thermodynamique de l evolution The Thermodynamics of Evolution parole editions 2012 Thomas J W Numerical Partial Differential Equation Finite Difference Methods Springer Verlag New York 1995 Glansdorff P Prigogine I 1971 Thermodynamic Theory of Structure Stability and Fluctuations Wiley Interscience London 1971 ISBN 0 471 30280 5 p 61 Eu B C 1998 Nonequilibrium Thermodynamics Ensemble Method Kluwer Academic Publications Dordrecht ISBN 0 7923 4980 6 p 49 W Thomson On the universal tendency in nature to the dissipation of mechanical energy Philosophical Magazine Ser 4 p 304 1852 Retrieved from https en wikipedia org w index php title Dissipation amp oldid 1179433497, wikipedia, wiki, book, books, library,

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