HR: 0800h
AN: NS51B-03 [Abstracts]
TI: Remagnetization and Cementation of Unconsolidated Sediments in the Mallik 5L-38 Well (Canadian Arctic) by Solute Exclusion During Gas Hydrate Formation
AU: * Hamilton, T S
EM: Tark_Hamilton@yahoo.com
AF: Camosun College, 3100 Foul Bay Rd.
, Victoria, BC V8P 5J2, Canada
AU: Enkin, R J
EM: renkin@NRCan.gc.ca
AF: Geological Survey of Canada - Pacific, P.O. Box 6000, Sidney, BC V8L 4B2, Canada
AU: Esteban, L
EM: lesteban@nrcan.gc.ca
AF: Geological Survey of Canada - Pacific, P.O. Box 6000, Sidney, BC V8L 4B2, Canada
AB:
Bulk magnetic properties provide a sensitive measure of sedimentary diagenesis related to the stability and
growth of gas hydrates. The deposit at Mallik (Mackenzie Delta, Canadian Arctic) occurs in unconsolidated Tertiary
sands, but is absent in interstratified silt layers. A detailed sampling of the JAPEX/JNOC/GSC Mallik 5L-38 core
tested the use of magnetic properties for detecting diagenetic changes related to the hydrate.
Petrographic studies reveal that the sands are well sorted and clean, with quartz > chert >> muscovite and
little fines content. Excepting a few rare bands of indurated dolomite in the midst of the gas hydrate zone, there is
little or no cementation in the sands. Detrital magnetite is the dominant magnetic mineral, comprising up to a few
percent of the sand grain population.
In contrast, the muddier layers have a somewhat different detrital grain composition, richer in lithic (sedimentary
and metamorphic) grains, feldspar, and clays. They are extensively diagenetically altered (to as much as 30-
40%) and cemented with carbonates, clays, chlorite and the iron sulphide greigite (the dominant magnetic
mineral). The greigite is recognized by its isotropic creamy-white reflectance, cubic to prismatic habit, and
characteristic tarnish to faintly bluish bireflectant mackinawite. Habits range from disseminated cubes and
colliform masses to inflationary massive sulphide veins and clots. Rare detrital grains of magnetite were
observed among the silt grains, but never in a reaction relationship or overgrown. Instead the greigite has
nucleated separately, in tensional fractures and granular masses up to 4 mm across. In this particular sediment
sequence, being so quartz and chert rich, there is insufficient local source for the introduced cements (calcite,
dolomite, greigite, clays, jarosite), so ions must have been introduced by fluid flow.
Magnetic studies reveal a bi-modal character related to the lithology (sands versus silts) and their magnetic
mineralogy. Silt samples are significantly stronger than sand samples in saturation magnetization and magnetic
susceptibility. The silt samples have single-domain to pseudo-single domain coercivity ratios whereas the gas
hydrate bearing sands have a more multi-domain nature. Sands with current gas hydrate concentrations >
80% have less magnetic material and single domain characteristics.
The source of the greigite, carbonates, and other diagenetic minerals was apparently concentrated solutes
excluded from formation waters by the freezing and formation of the water dominated gas hydrate. The hydrates
served as a cementing agent for the unconsolidated sediments, allowing them to fracture. Some layers have
been so inflated by the introduction carbonate and sulfide cements that they resemble hydrothermal tufa and
skarns with floating sand grains. In the silts, the magnetic properties reflect the mixture of primary detrital
magnetite and diagenetic greigite in various grain sizes and concentrations.
At Mallik, the magnetic properties are sensitive to the diagenetic mineralogy and redox state associated with the
transport of methane and pore fluids and the creation of gas hydrates. Hypersaline brines, produced by solute
exclusion from pore waters, fractured and inflated less permeable sediments and forced rapid disequilibrium
growth of greigite without dissolving primary detrital magnetite grains.
DE: 0714 Clathrate
DE: 1051 Sedimentary geochemistry
DE: 1519 Magnetic mineralogy and petrology
DE: 3004 Gas and hydrate systems
SC: Near-Surface Geophysics [NS]
MN: 2007 Joint Assembly