HR: 1340h
AN: GP43A-0883 [Abstracts]
TI: Magnetic Effects of Explosive Driven Shocks on Rocks With Various Magnetic Mineralogy
AU: * Lamali, A
EM: atmane_lamali@yahoo.fr
AF: CEREGE - CNRS/Universite Aix-Marseille3, BP80, Aix-en-Provence Cdx4, 13545
France
AU: * Lamali, A
EM: atmane_lamali@yahoo.fr
AF: Department de Geophysique, CRAAG, BP 63 Bouzareah, Alger, MA 16340
Algeria
AU: Gattacceca, J
EM: gattacceca@cerege.fr
AF: CEREGE - CNRS/Universite Aix-Marseille3, BP80, Aix-en-Provence Cdx4, 13545
France
AU: Rochette, P
EM: rochette@cerege.fr
AF: CEREGE - CNRS/Universite Aix-Marseille3, BP80, Aix-en-Provence Cdx4, 13545
France
AU: Boustie, M
EM: boustie@lcd.ensma.fr
AF: Laboratoire de Combustion et de Detonique - ENSMA, BP 40109, Futuroscope Cedex, 86961
France
AB:
The effects of shock waves on the natural remanent magnetization (NRM) and the intrinsic magnetic properties of solar system
materials remains poorly known. Still, hypervelocity impacts are phenomena are of primary importance in the evolution of many
extraterrestrial bodies. Hence, the interpretation of the paleomagnetic signal of most meteorites is blurred by the effects
of impacts. Similarly, the remagnetization patterns associated to impact basins on Mars, the Moon or asteroids cannot be
interpreted with certainty. We present new experiments in which four different terrestrial rocks (with different magnetic
mineralogy) were impacted using detonators containing 0.8 g of the high-order explosive penthrite. Maximum pressure is about
10 GPa at the detonator contact (O 6 mm). The shock wave was modeled numerically and we studied the effects on the
preexisting NRM as well as on the intrinsic magnetic properties of the shocked rocks. We show that in each case, the
intrinsic magnetic properties of the rock are permanently modified by the shock wave. Magnetite-, titanomagnetite- and
pyrrhotite-bearing rocks show a noticeable increase of their coercivity, whereas a hematite-bearing rock displays a lower
coercivity after impact. These changes are not annealed even at high temperature (580 °C). Though most of the original
NRM is not affected by the shock wave, we observe, in the low-coercivity component of the (titano)magnetite bearing rocks a
shock demagnetization and a remagnetization. The direction of this remagnetization is poorly defined but does not seem
closely related to the ambient field at the time of impact.
DE: 1533 Remagnetization
DE: 1540 Rock and mineral magnetism
SC: Geomagnetism and Paleomagnetism [GP]
MN: Fall Meeting 2005