Thermal history modeling of the L chondrite parent body
arXiv:1907.00805 · doi:10.1051/0004-6361/201936020
Abstract
The radius of the L chondrite parent body, its formation time, and its evolution history are determined by fitting theoretical models to empirical data of radioisotopic chronometers for L chondrites. A simplified evolution model for the L chondrite parent body is constructed considering sintering of the initially porous material, temperature dependent heat conductivity, and an insulating regolith layer. Such models are fitted to thermochronological data of five meteorites for which precise data for the Hf-W and U-Pb-Pb thermochronometers have been published. A set of parameters for the L chondrite parent body is found that yields excellent agreement (within error bounds) between a thermal evolution model and thermochonological data. Empirical cooling rate data also agree with the model results within error bounds such that there is no conflict between cooling rate data and the onion-shell model. Two models are found to be compatible with the presently available empirical data: One model with a radius of 115 km and a formation time of 1.89 Ma after CAI formation, another model with 160 km radius and formation time of 1.835 Ma. The central temperature of the smaller body remains well below the Ni,Fe-FeS eutectic melting temperature and is consistent with the apparent non-existence of primitive achondrites related to the L chondrites. For the bigger model incipient melting in the central core region is predicted which opens the possibility that primitive achondrites related to L chondrites could be found.
22 pages, 11 figures, accepted by Astronomy & Astrophysics
References in corpus (4)
- Thermal and Impact History of the H Chondrite Parent Asteroid during Metamorphism: Constraints from Metallic Fe-Ni
- Low 60Fe abundance in Semarkona and Sahara 99555
- Thermal evolution and sintering of chondritic planetesimals II. Improved treatment of the compaction process
- Thermal evolution and sintering of chondritic planetesimals IV. Temperature dependence of heat conductivity of asteroids and meteorites
Cited by in corpus (4)
- Evolution of the parent body of enstatite (EL) chondrites
- An early giant planet instability recorded in asteroidal meteorites
- Survivability of Amorphous Ice in Comets Depends on the Latent Heat of Crystallization of Impure Water Ice
- Chondrule formation by collisions of planetesimals containing volatiles triggered by Jupiter's formation