HR: 16:00h
AN: GP34A-01 [Abstracts]
TI: Direct measurement of hematite individual particle anisotropy: implications for inclination shallowing in red bed DRMs.
AU: * Bilardello, D
EM: dario@lehigh.edu
AF: Lehigh University, Earth and Environmental Sciences
31 Williams Dr., Bethlehem, PA 18015, United States
AU: Kodama, K P
EM: kpk0@lehigh.edu
AF: Lehigh University, Earth and Environmental Sciences
31 Williams Dr., Bethlehem, PA 18015, United States
AB:
Methods to correct for the observed inclination shallowing in sedimentary rocks have been proposed that are
based on either models of the geomagnetic field and the resulting directional distribution of paleomagnetic
vectors or the magnetic anisotropy of the magnetic minerals carrying the remanence. One limitation of the
anisotropy method for hematite-bearing red beds has been the isolation and determination of a rock's detrital
hematite individual particle anisotropy. Up to now, our red bed inclination shallowing corrections have been
dependent on estimates of hematite individual particle anisotropy using data fit to theoretical correction curves.
We have developed a technique for preferentially extracting the detrital hematite particles in a sample in order to
directly measure their individual particle anisotropy. The method involves crushing of the sample followed by ball
milling and sieving to ensure that the rock particles are smaller than 4Φ. The resulting slurry was then
placed in an ultrasonic cleaner for at least 24 hours and finally centrifuged at 1000 rpm for 20 minutes in order to
separate the dense, gray iron oxide particles from the red pigmentary grains. The gray, iron oxide-rich slurry was
collected by hand and circulated in a magnetic extraction apparatus. The magnetic separate was then collected
over a period of two to three weeks.
Small amounts of the magnetic separates where mixed in a slow-drying epoxy resin for 24 hours and placed in a
DC magnetic field (100 mT to 180 mT) in order to align the grains. The bulk IRM anisotropy of the epoxy samples
provides an average individual particle anisotropy for the magnetic grains. Separates were collected from
samples of the Mauch Chunk Fm. of Pennsylvania, the Maringouin and the Shepody Fms of New Brunswick/ Nova
Scotia and the Kapusaliang Fm. of northwestern China.
IRM acquisitions experiments were performed in fields of up to 1.2 T in order to identify the magnetic
mineralogies present. Remanence appears to be carried by a low coercivity phase (~$50 mT) interpreted to
be secondary magnetite and a higher coercivity phase (~$350 mT) interpreted to be primary hematite for the
Shepody and Maringouin Fms or just one high coercivity component (200- 250 mT) interpreted as primary
hematite for the Mauch Chunk and Kapusaliang Fms.
Hematite individual particle anisotropy was measured by imparting a 1.2 T IRM to the specimens in 9 different
orientations followed by AF demagnetization at 100 mT. Calculated individual particle anisotropy values ranged
between 1.28 and 1.45 with bulk anisotropies of ~$40%. Inclination corrections using the directly measured
individual particle anisotropies indicate significant inclination shallowing for the Mauch Chunk and Kapusaliang
Fms, while more moderate shallowing for the Maringouin and Shepody Fms.
Curve fitting techniques with added constraints give a good first order approximation of the individual particle
anisotropy, however direct measurement is preferable. The measured particle anisotropies for hematite are low
and suggest that there is the potential for significant amounts of shallowing for a hematite DRM. This observation
is consistent with redeposition experiments performed by Tauxe and Kent [1984] and the notion that depositional
inclination of hematite may suffer from more shallowing than magnetite because of its lower spontaneous
magnetization making it more affected by gravitational forces.
DE: 1518 Magnetic fabrics and anisotropy
DE: 1522 Paleomagnetic secular variation
DE: 1535 Reversals: process, timescale, magnetostratigraphy
DE: 1540 Rock and mineral magnetism
DE: 1594 Instruments and techniques
SC: Geomagnetism and Paleomagnetism [GP]
MN: 2007 Fall Meeting