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dc.contributor.authorBowen, P
dc.contributor.authorThuburn, J
dc.date.accessioned2022-10-07T13:15:15Z
dc.date.issued2022-10-18
dc.date.updated2022-10-07T12:14:34Z
dc.description.abstractApproximations in the moist thermodynamics of atmospheric models can often be inconsistent; different parts of numerical models may handle the thermodynamics in different ways, or the approximations may disagree with the laws of thermodynamics. To address these problems all relevant thermodynamic quantities may be derived from a defined thermodynamic potential; approximations are instead made to the potential itself — this guarantees self-consistency, as well as flexibility. Previous work showed that this concept is viable for vapour and liquid water mixtures in a moist atmospheric system using the Gibbs potential. However, on extension to include the ice phase an ambiguity is encountered at the triple-point. To resolve this ambiguity, here the internal energy is used instead. Constrained maximisation methods on the entropy can then be used to solve for the system equilibrium state. Nevertheless, a further extension is necessary for realistic atmospheric systems, where many important non-equilibrium processes take place; for example, freezing of super-cooled water, and evaporation into subsaturated air. To fully capture processes such as these, the equilibrium method must be reformulated to involve finite rates of approach towards equilibrium. Here the principles of nonequilibrium thermodynamics are used, beginning with a set of phenomenological equations, to show how non-equilibrium moist processes may be coupled to a semi-implicit semi-Lagrangian dynamical core. Standard bubble test cases and simulations of idealised cloudy thermals are presented to demonstrate the viability of the approach for the equilibrium regime. Further details and results for non-equilibrium regimes are presented in Part 2.en_GB
dc.description.sponsorshipNatural Environment Research Council (NERC)en_GB
dc.identifier.citationPublished online 18 October 2022en_GB
dc.identifier.doi10.1002/qj.4385
dc.identifier.grantnumberNE/L002434/1en_GB
dc.identifier.grantnumberNE/N013123/1en_GB
dc.identifier.grantnumberNE/T003863/1en_GB
dc.identifier.urihttp://hdl.handle.net/10871/131147
dc.identifierORCID: 0000-0002-4598-546X (Thuburn, John)
dc.language.isoenen_GB
dc.publisherWiley / Royal Meteorological Societyen_GB
dc.rights.embargoreasonUnder embargo until 18 October 2023 in compliance with publisher policyen_GB
dc.rights© 2022 Wiley
dc.subjectInternal energyen_GB
dc.subjectGibbs potentialen_GB
dc.subjectthermodynamic consistencyen_GB
dc.subjectnon-equilibrium thermodynamicsen_GB
dc.subjectphysics-dynamics couplingen_GB
dc.subjectconstrained optimizationen_GB
dc.subjectsemi-impliciten_GB
dc.subjectSLICEen_GB
dc.titleConsistent and flexible thermodynamics in atmospheric models using internal energy as a thermodynamic potential. Part 1: Equilibrium regimeen_GB
dc.typeArticleen_GB
dc.date.available2022-10-07T13:15:15Z
dc.identifier.issn0035-9009
dc.descriptionThis is the author accepted manuscript. The final version is available from Wiley via the DOI in this recorden_GB
dc.identifier.eissn1477-870X
dc.identifier.journalQuarterly Journal of the Royal Meteorological Societyen_GB
dc.rights.urihttp://www.rioxx.net/licenses/all-rights-reserveden_GB
dcterms.dateAccepted2022-10-02
dcterms.dateSubmitted2022-03-07
rioxxterms.versionAMen_GB
rioxxterms.licenseref.startdate2022-10-02
rioxxterms.typeJournal Article/Reviewen_GB
refterms.dateFCD2022-10-07T12:14:36Z
refterms.versionFCDAM
refterms.dateFOA2023-10-17T23:00:00Z
refterms.panelBen_GB


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