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February 5, 2026npj Space Exploration2 citationsOpen Access

Toward accurate rheological prediction of lunar regolith simulant pastes via constitutive modeling

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AIAmalia K. IoannouPSPavlos S. Stephanou

Key Points

  • The aim is to develop a rheological model that accurately predicts the behavior of lunar regolith simulant pastes.
  • Utilized a constitutive rheological model based on non-equilibrium thermodynamics.
  • Calibrated the model using experimental data across three temperatures and two water-to-binder ratio values.
  • Compared the new model's performance against traditional models like Bingham and Herschel–Bulkley.
  • The model accurately predicts the rheological response, including normal stresses.
  • It shows improved predictive capabilities over conventional models.
  • Anticipated utility in future additive manufacturing simulations for extraterrestrial habitats.

Abstract

Abstract The colonization of other worlds has been a long-standing desire of humankind. This has yet to occur due to several challenges, one of which is the difficulty of transporting building materials from Earth to the intended extraterrestrial site. Inevitably, the utilization of in situ resources, such as regolith for habitat construction, is crucial to the sustainability of extraterrestrial exploration. In this work, we employ a recently developed constitutive rheological model, using non-equilibrium thermodynamics, that can accurately predict the rheological response of lunar regolith simulant and alkaline solution pastes, which behave like cementitious-like pastes using a chemical reaction known as geopolymerization. The model has been carefully calibrated using experimental data from the literature for three temperatures and two water-to-binder ratio values. A key advantage of the current rheological model over the traditional phenomenological models commonly used to predict the response of lunar regolith simulant pastes, such as the Bingham and Herschel–Bulkley models, is its capacity to predict normal stresses. As this is the first rheological model of its kind, we expect it to be highly valuable for future additive manufacturing (3D printing) simulations, particularly as additive manufacturing gradually becomes the preferred method for constructing extraterrestrial habitats.

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Cite This Study

Ioannou et al. (2026) studied this question.

synapsesocial.com/papers/69843398f1d9ada3c1fb0d4dhttps://doi.org/10.1038/s44453-025-00023-8
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