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dc.date.accessioned2024-03-07T23:32:10Z
dc.date.available2024-03-07T23:32:10Z
dc.date.created2023-10-12T08:27:44Z
dc.date.issued2023
dc.identifier.citationTimmermann, Anina Shan, Yutong Reiners, Ansgar Pack, Andreas . Revisiting equilibrium condensation and rocky planet compositions: Introducing the ECCO PLANETS code. Astronomy and Astrophysics (A & A). 2023, 676
dc.identifier.urihttp://hdl.handle.net/10852/109247
dc.description.abstractContext . The bulk composition of exoplanets cannot yet be directly observed. Equilibrium condensation simulations help us better understand the composition of the planets’ building blocks and their relation to the composition of their host star. Aims . We introduce ECCO PLANETS , an open-source Python code that simulates condensation in the protoplanetary disk. Our aim is to analyse how well a simplistic model can reproduce the main characteristics of rocky planet formation. For this purpose, we revisited condensation temperatures ( T c ) as a means to study disk chemistry, and explored their sensitivity to variations in pressure ( p ) and elemental abundance pattern. We also examined the bulk compositions of rocky planets around chemically diverse stars. Methods . Our T - p -dependent chemical equilibrium model is based on a Gibbs free energy minimisation. We derived condensation temperatures for Solar System parameters with a simulation limited to the most common chemical species. We assessed their change (∆ T c ) as a result of p -variation between 10 −6 and 0.1 bar. To analyse the influence of the abundance pattern, key element ratios were varied, and the results were validated using solar neighbourhood stars. To derive the bulk compositions of planets, we explored three different planetary feeding-zone (FZ) models and compared their output to an external n -body simulation. Results . Our model reproduces the external results well in all tests. For common planet-building elements, we derive a T c that is within ±5 K of literature values, taking a wider spectrum of components into account. The T c is sensitive to variations in p and the abundance pattern. For most elements, it rises with p and metallicity. The tested pressure range (10 −6 − 0.1 bar) corresponds to ∆ T c ≈ +350 K, and for −0.3 ≤ [M/H] ≤ 0.4 we find ∆ T c ≈ +100 K. An increase in C/O from 0.1 to 0.7 results in a decrease of ∆ T c ≈ −100 K. Other element ratios are less influential. Dynamic planetary accretion can be emulated well with any FZ model. Their width can be adapted to reproduce gradual changes in planetary composition.
dc.languageEN
dc.rightsAttribution 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.titleRevisiting equilibrium condensation and rocky planet compositions: Introducing the ECCO PLANETS code
dc.title.alternativeENEngelskEnglishRevisiting equilibrium condensation and rocky planet compositions: Introducing the ECCO PLANETS code
dc.typeJournal article
dc.creator.authorTimmermann, Anina
dc.creator.authorShan, Yutong
dc.creator.authorReiners, Ansgar
dc.creator.authorPack, Andreas
cristin.unitcode185,15,22,40
cristin.unitnameSenter for Jordens utvikling og dynamikk
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2
dc.identifier.cristin2183944
dc.identifier.bibliographiccitationinfo:ofi/fmt:kev:mtx:ctx&ctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Astronomy and Astrophysics (A & A)&rft.volume=676&rft.spage=&rft.date=2023
dc.identifier.jtitleAstronomy and Astrophysics (A & A)
dc.identifier.volume676
dc.identifier.pagecount30
dc.identifier.doihttps://doi.org/10.1051/0004-6361/202244850
dc.type.documentTidsskriftartikkel
dc.type.peerreviewedPeer reviewed
dc.source.issn0004-6361
dc.type.versionPublishedVersion
cristin.articleidA52


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Attribution 4.0 International
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