Discrete element modelling for wheel-soil interaction and the analysis of the effect of gravity
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József Kövecses | Krzysztof Skonieczny | Eric Karpman | Daniel Holz | J. Kövecses | K. Skonieczny | D. Holz | Eric Karpman
[1] Runyu Yang,et al. Discrete particle simulation of particulate systems: A review of major applications and findings , 2008 .
[2] Nildeep M Patel,et al. Soil simulant sourcing for the ExoMars rover testbed , 2011 .
[3] P. Cundall,et al. A discrete numerical model for granular assemblies , 1979 .
[4] József Kövecses,et al. Effect of gravity in wheel/terrain interaction models , 2020, J. Field Robotics.
[5] J. V. Perumpral,et al. A numerical method for predicting the stress distribution and soil deformation under a tractor wheel , 1971 .
[6] M. G. Bekker,et al. Theory of Land Locomotion: The Mechanics of Vehicle Mobility , 1962 .
[7] A. R. Reece,et al. Prediction of rigid wheel performance based on the analysis of soil-wheel stresses part I. Performance of driven rigid wheels , 1967 .
[8] A. Nassiraei,et al. Rapid automated soil preparation for testing planetary rover-soil interactions aboard reduced-gravity aircraft , 2019, Journal of Terramechanics.
[9] Matthias Müller,et al. Position based dynamics , 2007, J. Vis. Commun. Image Represent..
[10] Y. Tsuji,et al. Discrete particle simulation of two-dimensional fluidized bed , 1993 .
[11] M. Marigo,et al. Discrete element modelling (DEM) input parameters: understanding their impact on model predictions using statistical analysis , 2015, CPM 2015.
[12] M. G. Bekker,et al. Off-the-Road Locomotion: Research and Development in Terramechanics , 1960 .
[13] R. Sullivan,et al. Discrete element modeling of a Mars Exploration Rover wheel in granular material , 2012 .
[14] Gabriel Taubin,et al. Estimation of Planar Curves, Surfaces, and Nonplanar Space Curves Defined by Implicit Equations with Applications to Edge and Range Image Segmentation , 1991, IEEE Trans. Pattern Anal. Mach. Intell..
[15] J. Y. Wong,et al. Predicting the performances of rigid rover wheels on extraterrestrial surfaces based on test results obtained on earth , 2012 .
[16] Fang He,et al. Application of Terramechanics in Off-road Vehicle Performance Prediction , 2018 .
[17] M. G. Bekker. Introduction to Terrain-Vehicle Systems , 1969 .
[18] Corina Sandu,et al. Off-road tire modeling and the multi-pass effect for vehicle dynamics simulation , 2011 .
[19] Hiroshi Nakashima,et al. Parametric analysis of lugged wheel performance for a lunar microrover by means of DEM , 2007 .
[20] Robert Bauer,et al. A dynamic terramechanic model for small lightweight vehicles with rigid wheels and grousers operating in sandy soil , 2011 .
[21] David Wettergreen,et al. Visualizing and Analyzing Machine-soil Interactions using Computer Vision , 2014, J. Field Robotics.
[22] Tomoyuki Nishita,et al. Fast simulation of viscous fluids with elasticity and thermal conductivity using position-based dynamics , 2014, Comput. Graph..
[23] Huei Peng,et al. Modeling of wheel-soil interaction over rough terrain using the discrete element method , 2013 .
[24] M. P. Tulin,et al. A study of the steady flow of a rigid-plastic clay beneath a driven wheel , 1969 .
[25] Omar S. Baghabra Al-Amoudi,et al. A review on the angle of repose of granular materials , 2018 .
[26] Parna Niksirat,et al. The effects of reduced-gravity on planetary rover mobility , 2020, Int. J. Robotics Res..
[27] Kiyoshi Omine,et al. Mobility performance of a rigid wheel in low gravity environments , 2010 .