Lagrangian‐based Simulations of Hypervelocity Impact Experiments on Mars Regolith Proxy
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S. Kedar | E. Rougier | P. Lognonné | J. Richardson | B. Euser | E. Rougier | P. Lognonné | S. Kedar | C. Larmat | M. Froment | C. Larmat | Z. Lei | B. Euser | J. E. Richardson | T. Kawamura | Z. Lei | M. Froment | T. Kawamura
[1] B. Hapke,et al. PHOTOMETRIC STUDIES OF COMPLEX SURFACES, WITH APPLICATIONS TO THE MOON , 1963 .
[2] S. Kedar,et al. The seismicity of Mars , 2020, Nature Geoscience.
[3] Richard V. Morris,et al. JSC MARS-1: A Martian Soil Simulant , 1998 .
[4] J. Richardson,et al. An Experimental Investigation of the Seismic Signal Produced by Hypervelocity Impacts , 2013 .
[5] A. Munjiza. The Combined Finite-Discrete Element Method: Munjiza/Discrete Element Method , 2004 .
[6] Jeroen Tromp,et al. Initial results from the InSight mission on Mars , 2020, Nature Geoscience.
[7] Antonio Munjiza,et al. A framework for grand scale parallelization of the combined finite discrete element method in 2d , 2014, CPM 2014.
[8] Stéphane May,et al. Impact-Seismic Investigations of the InSight Mission , 2018, Space Science Reviews.
[9] C. Russell,et al. Constraints on the shallow elastic and anelastic structure of Mars from InSight seismic data , 2020, Nature Geoscience.
[10] P. Lade,et al. Effect of Strain Rate on the Stress-Strain Behavior of Sand , 2011 .
[11] R. Komanduri,et al. Effect of Mass Density on the Compressive Behavior of Dry Sand Under Confinement at High Strain Rates , 2011 .
[12] Jerry A. Yamamuro,et al. ONE-DIMENSIONAL COMPRESSION OF SANDS AT HIGH PRESSURES. CLOSURE , 1996 .
[13] A. Munjiza,et al. Computational Mechanics of Discontinua: Munjiza/Computational Mechanics of Discontinua , 2011 .
[14] D. Leneman,et al. InSight Auxiliary Payload Sensor Suite (APSS) , 2019, Space Science Reviews.
[15] Antonio Munjiza,et al. A generalized anisotropic deformation formulation for geomaterials , 2016, 1805.06024.
[16] Antonio Munjiza,et al. HOSS: An integrated platform for discontinua simulations , 2013 .
[17] Kenneth S Edgett,et al. Present-Day Impact Cratering Rate and Contemporary Gully Activity on Mars , 2006, Science.
[18] Kai Wünnemann,et al. Quantitative analysis of impact-induced seismic signals by numerical modeling , 2017 .
[19] N. Teanby,et al. Predicted detection rates of regional-scale meteorite impacts on Mars with the InSight short-period seismometer , 2015 .
[20] A. Nakamura,et al. Planetary Impact Processes in Porous Materials , 2019, Shock Wave and High Pressure Phenomena.
[21] Alfred S. McEwen,et al. The current martian cratering rate , 2010 .
[22] Erik Asphaug,et al. Validation of numerical codes for impact and explosion cratering: Impacts on strengthless and metal targets , 2008 .
[23] Gareth S. Collins,et al. A strain-based porosity model for use in hydrocode simulations of impacts and implications for transient crater growth in porous targets , 2006 .
[24] Hari S. Viswanathan,et al. A non-locking composite tetrahedron element for the combined finite discrete element method , 2016 .
[25] Esteban Rougier,et al. From Stress Chains to Acoustic Emission. , 2019, Physical review letters.
[26] M. Golombek,et al. A Pre-Landing Assessment of Regolith Properties at the InSight Landing Site , 2018, Space Science Reviews.
[27] Huafeng Liu,et al. SEIS: Insight’s Seismic Experiment for Internal Structure of Mars , 2019, Space Science Reviews.
[28] Yukio Nakata,et al. UNDRAINED MONOTONIC AND CYCLIC SHEAR BEHAVIOUR OF SAND UNDER LOW AND HIGH CONFINING STRESSES , 2002 .