A thermal model for the differentiation of Asteroid 4 Vesta, based on radiogenic heating

被引:189
作者
Ghosh, A [1 ]
McSween, HY [1 ]
机构
[1] Univ Tennessee, Dept Geol Sci, Knoxville, TN 37996 USA
基金
美国国家航空航天局;
关键词
Vesta; thermal modeling; eucrites; diogenites; howardites;
D O I
10.1006/icar.1998.5956
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A finite element code has been developed to model the thermal history of Asteroid 4 Vesta. This is the first attempt to model the thermal history of a differentiated asteroid through core and crust formation and subsequent cooling until geochemical closure is attained. The results of the simulation are consistent with chronological measurements and other constraints provided by cumulate and noncumulate eucrites believed to have been derived from Vesta. The work solves two major problems with the hypothesis of heating by decay of Al-26, an extinct radionuclide, postulated to be a plausible heat source in the early Solar System. First, the model demonstrates that it is possible to keep the mantle of Vesta hot for similar to 100 Ma, thereby explaining the observed difference in ages between cumulate and noncumulate eucrites. Second, the simulation offers a possible explanation of why detectable excesses of Mg-26 (the decay product of Al-26) are not observed in noncumulate eucrites. The simulation draws a model chronology of Vesta and predicts times (relative to CAI formation) for accretion at 2.85 Myr, core formation at 4.58 Myr, crust formation at 4.58 Myr, and geochemical closure at similar to 100 Myr for a H-chondrite asteroidal bulk composition. Decay of Fe-60 is found to cause no perceptible difference in the thermal history of Vesta, even when sequestered into a central core. Although chondritic xenoliths have not been described in HED igneous lithologies, the thermal model suggests the possibility that a veneer of unmelted near-surface material should remain. (C) 1998 Academic Press.
引用
收藏
页码:187 / 206
页数:20
相关论文
共 114 条
[1]   RUBIDIUM-87/STRONTIUM-87 AGE OF JUVINAS BASALTIC ACHONDRITE AND EARLY IGNEOUS ACTIVITY IN SOLAR-SYSTEM [J].
ALLEGRE, CJ ;
BIRCK, JL ;
FOURCADE, S ;
SEMET, MP .
SCIENCE, 1975, 187 (4175) :436-438
[2]  
[Anonymous], ESO WORKSH LOW MASS
[3]  
[Anonymous], ORIGIN EARTH
[4]  
BAKER AJ, 1991, FINITE ELEMENT 1 2 3
[5]   CHEMISTRY OF PRIMITIVE SOLAR MATERIAL [J].
BARSHAY, SS ;
LEWIS, JS .
ANNUAL REVIEW OF ASTRONOMY AND ASTROPHYSICS, 1976, 14 :81-94
[6]  
Basaltic Volcanism Study Project, 1981, BAS VOLC TERR PLAN
[7]  
BELL JF, 1989, ASTEROIDS II, P921
[8]   Revised model calculations for the thermal histories of ordinary chondrite parent bodies [J].
Bennett, ME ;
McSween, HY .
METEORITICS & PLANETARY SCIENCE, 1996, 31 (06) :783-792
[9]   Geologic mapping of Vesta from 1994 Hubble Space Telescope images [J].
Binzel, RP ;
Gaffey, MJ ;
Thomas, PC ;
Zellner, BH ;
Storrs, AD ;
Wells, EN .
ICARUS, 1997, 128 (01) :95-103
[10]   CHIPS OFF OF ASTEROID-4 VESTA - EVIDENCE FOR THE PARENT BODY OF BASALTIC ACHONDRITE METEORITES [J].
BINZEL, RP ;
XU, S .
SCIENCE, 1993, 260 (5105) :186-191