TY - JOUR
T1 - Scale-dependent measurements of meteorite strength
T2 - Implications for asteroid fragmentation
AU - Cotto-Figueroa, Desireé
AU - Asphaug, Erik
AU - Garvie, Laurence A.J.
AU - Rai, Ashwin
AU - Johnston, Joel
AU - Borkowski, Luke
AU - Datta, Siddhant
AU - Chattopadhyay, Aditi
AU - Morris, Melissa A.
N1 - Funding Information:
Effort by DCF and EA was supported by NASA Early Stage Innovations Program grant NNX14AB08G. LAJG was supported by NASA Origins of Solar Systems grant NNX11AK58G. The Adaptive Intelligent Materials and Systems Center provided experimental equipment and support of AR, JJ, LB, SD, and AC. MAM was supported by NASA Cosmochemistry grant NNX14AN58G and NASA Emerging Worlds grant NNX15AH62G. We are grateful to D. Scheeres for his ideas and support.
Publisher Copyright:
© 2016 Elsevier Inc.
PY - 2016/10/1
Y1 - 2016/10/1
N2 - Measuring the strengths of asteroidal materials is important for developing mitigation strategies for potential Earth impactors and for understanding properties of in situ materials on asteroids during human and robotic exploration. Studies of asteroid disruption and fragmentation have typically used the strengths determined from terrestrial analog materials, although questions have been raised regarding the suitability of these materials. The few published measurements of meteorite strength are typically significantly greater than those estimated from the stratospheric breakup of meter-sized meteoroids. Given the paucity of relevant strength data, the scale-varying strength properties of meteoritic and asteroidal materials are poorly constrained. Based on our uniaxial failure studies of centimeter-sized cubes of a carbonaceous and ordinary chondrite, we develop the first Weibull failure distribution analysis of meteorites. This Weibull distribution projected to meter scales, overlaps the strengths determined from asteroidal airbursts and can be used to predict properties of to the 100. m scale. In addition, our analysis shows that meter-scale boulders on asteroids are significantly weaker than small pieces of meteorites, while large meteorites surviving on Earth are selected by attrition. Further, the common use of terrestrial analog materials to predict scale-dependent strength properties significantly overestimates the strength of meter-sized asteroidal materials and therefore is unlikely well suited for the modeling of asteroid disruption and fragmentation. Given the strength scale-dependence determined for carbonaceous and ordinary chondrite meteorites, our results suggest that boulders of similar composition on asteroids will have compressive strengths significantly less than typical terrestrial rocks.
AB - Measuring the strengths of asteroidal materials is important for developing mitigation strategies for potential Earth impactors and for understanding properties of in situ materials on asteroids during human and robotic exploration. Studies of asteroid disruption and fragmentation have typically used the strengths determined from terrestrial analog materials, although questions have been raised regarding the suitability of these materials. The few published measurements of meteorite strength are typically significantly greater than those estimated from the stratospheric breakup of meter-sized meteoroids. Given the paucity of relevant strength data, the scale-varying strength properties of meteoritic and asteroidal materials are poorly constrained. Based on our uniaxial failure studies of centimeter-sized cubes of a carbonaceous and ordinary chondrite, we develop the first Weibull failure distribution analysis of meteorites. This Weibull distribution projected to meter scales, overlaps the strengths determined from asteroidal airbursts and can be used to predict properties of to the 100. m scale. In addition, our analysis shows that meter-scale boulders on asteroids are significantly weaker than small pieces of meteorites, while large meteorites surviving on Earth are selected by attrition. Further, the common use of terrestrial analog materials to predict scale-dependent strength properties significantly overestimates the strength of meter-sized asteroidal materials and therefore is unlikely well suited for the modeling of asteroid disruption and fragmentation. Given the strength scale-dependence determined for carbonaceous and ordinary chondrite meteorites, our results suggest that boulders of similar composition on asteroids will have compressive strengths significantly less than typical terrestrial rocks.
KW - Asteroids
KW - Experimental techniques
KW - Meteorites
KW - Near-Earth objects
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U2 - 10.1016/j.icarus.2016.05.003
DO - 10.1016/j.icarus.2016.05.003
M3 - Article
AN - SCOPUS:84968903134
SN - 0019-1035
VL - 277
SP - 73
EP - 77
JO - Icarus
JF - Icarus
ER -