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March 16, 2026Annals of Nuclear Energy0 citationsOpen Access

J.M. Seiler’s major contributions to the understanding and modeling of corium – ceramic and concrete interactions

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NSN. SeilerRTR. Le Tellier

Key Points

  • The aim is to summarize J.M. Seiler’s contributions to modeling corium interactions with concrete and ceramics.
  • Development of the Transient Interface Model (TIM) for corium interaction.
  • Order-of-magnitude analyses to refine modeling assumptions.
  • Presentation of experimental results to validate model consistency.
  • TIM integrates thermochemical phenomena into thermal-hydraulic modeling.
  • Shows strong coupling between physico-chemistry and thermal-hydraulics is crucial for predicting accident outcomes.
  • Demonstrates consistency with experimental data from corium-concrete interactions.

Abstract

• Summary of the development of J.M. Seiler’s Transient Interface Model. • A generic model of corium interaction with concrete or ceramic. • Strong coupling between physico-chemistry and thermal-hydraulics. • Model consistent with results of corium-concrete interaction experiments. In the 80s and 90s, the inconsistencies between predictions of Molten Core-Concrete Interaction (MCCI) models and experimental observations on large-scale tests pushed J.M. Seiler to propose the foundations of a new modelling approach. This approach, formalized under the form of the Transient Interface Model (TIM), is based on strong physical grounds and simplifying assumptions obtained from order-of-magnitude analyses. This paper summarizes the development of this model. The inconsistencies of previous approaches are recalled before presenting J.M. Seiler’s main contributions with the introduction of first-order thermochemical phenomena into the classical thermohydraulic modelling. J.M. Seiler demonstrated that the strong coupling between physico-chemistry and thermal-hydraulics during the final phases of severe accidents is of paramount importance for quantitative prediction of severe accident consequences and scaling of recovery systems. The wide implications of this approach on the temperatures of the mixtures, their compositions, their physical properties (viscosity in particular) and the interaction with ceramics are highlighted. One of the important contributions of the TIM approach lies in the global physical consistency of the model and its consistency with the observed experimental evidence. Such consistency is essential for the credibility of the calculations used for safety demonstrations.

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Cite This Study

Seiler et al. (2026) studied this question.

synapsesocial.com/papers/69b79df38166e15b153ab2cahttps://doi.org/10.1016/j.anucene.2026.112258
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Calculation of corium-refractory material interaction with the TIM model2023 · 3 citations
  2. 2Calculation of ablation instabilities during MCCI with the TIM model2023 · 3 citations
  3. 3Transient interface temperature on a vertical surface in multi-component solid–liquid systems with volume heating. Application to various severe accident situations2014 · 12 citations
  4. 4TIM model application to corium concrete interaction: Ablation regimes and instabilities2019 · 5 citations
  5. 5Ex-vessel stabilization of corium: An analysis of corium-concrete interaction with top flooding for siliceous concrete2025 · 1 citations