TY - GEN
T1 - 9295 | Granular Scaling Laws for Accurate Prediction of Wheel Mobility on Slopes in Low-gravity Environments
AU - Omura, Takuya
AU - Ishigami, Genya
N1 - Publisher Copyright:
© 2024 International Society for Terrain-Vehicle Systems. All rights reserved.
PY - 2024
Y1 - 2024
N2 - Analyzing the mobility of wheeled rovers on loose sand in low-gravity environments remains a significant challenge. Among several experimental techniques, such as parabolic flight and reduced-weight tests, granular scaling laws (GSL) have recently been proposed to predict wheel mobility under low-gravity conditions via earth-gravity tests. Although the GSL accurately predicts wheel mobility on flat terrain in low-gravity environments, its capability to predict wheel mobility on slopes in such environments still needs to be verified. This study developed a GSL and investigated its accuracy in predicting wheel mobility on slopes in low-gravity environments. The discrete element method (DEM) was utilized to test wheel mobility at various slope angles under Earth's gravity. Subsequently, by applying a multiple scaling function, the GSL converted the results from the Earth-gravity tests to predict wheel mobility under lunar gravity. The GSL-based predictions were compared with DEM simulations conducted under lunar gravity conditions. The results indicated that the wheel mobility under lunar gravity predicted by the GSL closely corresponded to that calculated via the DEM. These findings indicate that the GSL can accurately predict wheeled-rover mobility on slopes in low-gravity environments.
AB - Analyzing the mobility of wheeled rovers on loose sand in low-gravity environments remains a significant challenge. Among several experimental techniques, such as parabolic flight and reduced-weight tests, granular scaling laws (GSL) have recently been proposed to predict wheel mobility under low-gravity conditions via earth-gravity tests. Although the GSL accurately predicts wheel mobility on flat terrain in low-gravity environments, its capability to predict wheel mobility on slopes in such environments still needs to be verified. This study developed a GSL and investigated its accuracy in predicting wheel mobility on slopes in low-gravity environments. The discrete element method (DEM) was utilized to test wheel mobility at various slope angles under Earth's gravity. Subsequently, by applying a multiple scaling function, the GSL converted the results from the Earth-gravity tests to predict wheel mobility under lunar gravity. The GSL-based predictions were compared with DEM simulations conducted under lunar gravity conditions. The results indicated that the wheel mobility under lunar gravity predicted by the GSL closely corresponded to that calculated via the DEM. These findings indicate that the GSL can accurately predict wheeled-rover mobility on slopes in low-gravity environments.
KW - Granular scaling laws
KW - Low gravity
KW - Lunar regolith simulant
KW - Wheel mobility prediction
UR - https://www.scopus.com/pages/publications/85219538962
UR - https://www.scopus.com/pages/publications/85219538962#tab=citedBy
U2 - 10.56884/DM46X2U9
DO - 10.56884/DM46X2U9
M3 - Conference contribution
AN - SCOPUS:85219538962
T3 - Proceedings of the 21st International and 12th Asia-Pacific Regional Conference of the ISTVS
SP - 310
EP - 316
BT - Proceedings of the 21st International and 12th Asia-Pacific Regional Conference of the ISTVS
A2 - Yamakawa, Junya
A2 - Ishigami, Genya
A2 - Ozaki, Shingo
A2 - Eto, Ryosuke
A2 - Martelli, Massimo
PB - International Society for Terrain-Vehicle Systems
T2 - 21st International and 12th Asia-Pacific Regional Conference of the International Society for Terrain-Vehicle Systems, ISTVS 2024
Y2 - 28 October 2024 through 31 October 2024
ER -