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Ciencias de la Tierra
jSEDI
[Journal of Studies of Earth’s Deep Interior]
jSEDI
Journal of Studies of Earth’s Deep Interior
Fundada en 2025, journal of Studies of Earth’s Deep Interior es una publicación multidisciplinar dedicada a la publicación de investigaciones originales en lengua inglesa sobre geociencias y, más concretamente, sobre la Tierra profunda. Editada por ENS Éditions, la revista se publica anualmente, y los artículos van apareciendo a medida que se reciben.
- Director de publicación: Emmanuel Trizac
- Redactores en jefe: John Hernlund y Stéphane Labrosse
- Tipo de soporte: electrónico
- Periodicidad: anual
- Año de creación: 2025
- Fecha de publicación en Episciences: 2025
- Disciplinas: Ciencias de la Tierra
- Idioma de publicación: inglés
- Procedimiento de evaluación: evaluación simple ciega y evaluación abierta
- Licencia CC BY 4.0
- Editor: ENS Éditions
- Dirección postal: 15 parvis René Descartes, BP 7000, 69342 Lyon cedex 07
- País: Francia
- Contacto: jsedi AT episciences.org
Últimos artículos
Using paleomagnetic observations and geodynamo simulations to assess Earth's magnetic field morphology and variability
Multiple strategies have been suggested for quantitatively comparing numerical dynamo simulations to geomagnetic field models and paleomagnetic observations. Observationally-constrained metrics are designed to infer properties of simulations that are required to produce Earth-like behaviour and enable inferences on otherwise inaccessible properties of the geomagnetic field, such as its long-term spatio-temporal behaviour at the core-mantle boundary. However, these criteria are derived from data spanning differing timescales with fundamentally different spatio-temporal resolution, are often applied in isolation, and may not be independent assessments, so that holistic syntheses of simulated and observed field variations are currently lacking. In this work, we apply 14 existing criteria measuring field morphological and variability properties on centennial to million-year timescales to a database of 207 dynamos. Individual metrics are matched over various ranges of core-mantle boundary dipolarity (𝑓𝑑 ) and its temporal variability (𝛿 𝑓𝑑 ), though no single range conforms with all proposed metrics. The greatest overlap between simulations matching disparate criteria occurs for 𝑓𝑑 = 0.50−0.64, which is lower than the modern field value of 0.65−0.71 (1900-2025). Earth-like dynamos tend to have magnetic/kinetic energy ratio >1, consistent with a MAC force balance, and require a magnetic Reynolds number 𝑅𝑚 = 750−1200 to match the secular variation timescale. Simulations in our dataset exhibit reduced temporal variability at moderate dipolarity (𝑓𝑑 ∼ 0.5) compared to inferences from global field models, which hinders their capacity to produce Earth-like polarity reversals. This is a correction of the original manuscript where the 𝑓𝑑 value in 2025.0 was incorrectly stated. We thank Julien Aubert for his careful reading and suggestion which is now incorporated.
Rogers, Hannah
June 12, 2026
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Planetary Dynamo Simulation Explorer: a filterable and visualisable web-based, community-driven catalogue
We present a new web tool, Planetary Dynamo Simulation Explorer, to survey available published simulations of rapidly rotating spherical dynamos.With numerical codes and computers being increasingly efficient, recent years have seen a surge in the number of publications presenting such computations.Our tool comes as an interactive catalogue that allows exploring existing dynamos with respect to input and output dimensionless parameters, choosing from various dynamo setups (e.g. choice of boundary conditions, couplings at play, etc.), with the possibility to test scaling laws on a filtered set of simulations.It also links each dynamo to its associated publication and possibly to online datasets. Alongside the cataloguing work, and to enhance comparability across various setups, conversion rules are explicitly derived and aggregated from previous studies and applied on a broad scale for the first time.Thought of as a collaborative and scalable initiative, the web interface allows uploading new simulation metadata.The whole interface, displayed as a website, is designed for the community to have a better overview while driving transparency, open-source initiatives, and FAIR principles (Findable, Accessible, Interoperable, Reusable).We encourage the community to explore and contribute to it at https://geodyn.univ-grenoble-alpes.fr/explorer/
Claveau, Romain
June 03, 2026
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