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Behaviors of Lunar Regolith Simulant Under Varying Gravitational ConditionsUnderstanding the behavior of regolith in varying gravity conditions is critical for space exploration and future missions. In this work, the gravity-driven hopper flow of lunar regolith simulant in different gravitational accelerations (terrestrial, lunar) is first observed experimentally. Numerical simulations (DEM) are then developed to understand the role which cohesive inter-particle forces play in such gravity-driven flow, using the theoretical framework of granular Bond number. Qualitative comparison between a terrestrial experiment and numerical simulation validated this framework. Following that, we numerically studied the dynamic behavior under varying gravitational conditions (from terrestrial to lunar to asteroid gravitational accelerations). We find that this behavior is extremely sensitive to the interplay of the gravity conditions and the attractive/cohesive forces among particles. The numerical and experimental results show that the complex interaction of these forces can drastically change the dynamics of the material producing effects relevant for variable gravity applications.
Document ID
20260004923
Acquisition Source
Glenn Research Center
Document Type
Poster
Authors
Suman Sinha-Ray
(Universities Space Research Association Columbia, United States)
Ian Madden
(Universities Space Research Association Columbia, United States)
Sathyashri Muruganandam
(The University of Texas at Austin Austin, United States)
Amine Missaoui
(Universities Space Research Association Columbia, United States)
Jonathan Kollmer
(University of Duisburg-Essen Essen, Germany)
Oliver Gries
(University of Duisburg-Essen Essen, Germany)
Olfa D'Angelo
(Institut Superieur de l'Aeronautique et de l'Espace (ISAE-SUPAERO) Toulouse, France)
Date Acquired
June 1, 2026
Subject Category
Lunar and Planetary Science and Exploration
Astrophysics
Inorganic, Organic and Physical Chemistry
Meeting Information
Meeting: Gordon Research Conference Granular Matter
Location: Easton, MA
Country: US
Start Date: June 21, 2026
End Date: June 27, 2026
Sponsors: Gordon Research Conferences
Funding Number(s)
WBS: 766291.08.10.03.01
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Keywords
Soft Matter
Granular Matter
Micro-Gravity
Jamming
Flow
Simulation
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