The Origins of Asteroidal Rock Disaggregation: Interplay of Thermal Fatigue and Microstructure
arXiv:1701.03510 · doi:10.1016/j.icarus.2017.12.035
Abstract
The distributions of size and chemical composition in the regolith on airless bodies provides clues to the evolution of the solar system. Recently, the regolith on asteroid (25143) Itokawa, visited by the JAXA Hayabusa spacecraft, was observed to contain millimeter to centimeter sized particles. Itokawa boulders commonly display well-rounded profiles and surface textures that appear inconsistent with mechanical fragmentation during meteorite impact; the rounded profiles have been hypothesized to arise from rolling and movement on the surface as a consequence of seismic shaking. We provide a possible explanation of these observations by exploring the primary crack propagation mechanisms during thermal fatigue of a chondrite. We present the in situ evolution of the full-field strains on the surface as a function of temperature and microstructure, and observe and quantify the crack growth during thermal cycling. We observe that the primary fatigue crack path preferentially follows the interfaces between monominerals, leaving them intact after fragmentation. These observations are explained through a microstructure-based finite element model that is quantitatively compared with our experimental results. These results on the interactions of thermal fatigue cracking with the microstructure may ultimately allow us to distinguish between thermally induced fragments and impact products.
23 pages, 7 figures
References in corpus (3)
- Grain-scale thermoelastic stresses and spatiotemporal temperature gradients on airless bodies, implications for rock breakdown
- (25143) Itokawa: The Power of Radiometric Techniques for the Interpretation of Remote Thermal Observations in the Light of the Hayabusa Rendezvous Results
- Asteroid Surface Geophysics
Cited by in corpus (7)
- Spin-driven evolution of asteroids' top-shapes at fast and slow spins seen from (101955) Bennu and (162173) Ryugu
- Dynamical Evolution and Thermal History of Asteroids (3200) Phaethon and (155140) 2005 UD
- Very weak carbonaceous asteroid simulants I: mechanical properties and response to hypervelocity impacts
- Thermophysical Investigation of Asteroid Surfaces II: Factors Influencing Grain Size
- Perihelion history and atmospheric survival as primary drivers of the Earth`s meteorite record
- Disruption of Saturn's ring particles by thermal stress
- Diurnal temperature variation as the source of the preferential direction of fractures on asteroids: theoretical model for the case of Bennu