HR: 0800h
AN: P21A-0208 [Abstracts]
TI: Acid fog Deposition of Crusts on Basaltic Tephra Deposits in the Sand Wash Region of Kilauea Volcano: A
Possible Mechanism for Siliceous-Sulfatic Crusts on Mars
AU: * Schiffman, P
EM: PSchiffman@UCDavis.edu
AF: Department of Geology, University of California, Davis, CA 95616
United States
AU: Zierenberg, R
EM: Zierenberg@geology.ucdavis.edu
AF: Department of Geology, University of California, Davis, CA 95616
United States
AU: Marks, N
EM: Marks@geology.ucdavis.edu
AF: Department of Geology, University of California, Davis, CA 95616
United States
AU: Bishop, J L
EM: bishop@mail.arc.nasa.gov
AF: The SETI Institute, 515 N. Whisman Rd., Mountain View, CA 94043
United States
AB:
Although the presence of sulfate minerals in martian outcrops may imply the prior existence of standing bodies of surface
water, in terrestrial volcanic settings, sulfatic alteration may also occur above the water table within the vadose zone. On
the summit of Kilauea volcano, sulfur dioxide, which is continuously emitted from Halemaumau crater and rapidly sequestered
into sulfuric acid-rich aerosol entrained in the prevailing trade winds, is subsequently precipitated as acid-fog immediately
downwind from the caldera in the Kau Desert. The characteristic pH of surface tephra deposits is $<$ 4.0 in Sand Wash, a
region of continuous, acidic aerosol fall-out immediately SW of the caldera. The upper portion of the Keanakakoi Ash tephra
in Sand Wash, deposited in the late 18th century, has a ubiquitous, 0.1-0.2 mm-thick coating of amorphous silica.
Conversely, vertical walls of unconsolidated tephra, exposed within small, dry gullies eroded into the ca. 3-4 m-thick
Keanakakoi section at Sand Wash, are coated with ca. 0.5-1.0 mm-thick, mixed amorphous silica and jarosite-bearing crusts.
Since these crusts are denuded from their outcrops during ephemeral, but probably annual flooding events in Sand Wash, we
believe that they must accumulate rapidly. These crusts are apparently formed via an evaporative mechanism whereby acidic
pore fluids, circulating in the upper few m's within the highly porous tephra, are wicked towards the walls of the gullies.
Geochemical modeling of the crust-forming process implies that the sulfate formation via evaporation occurs subsequent to
minimal interaction of acidic pore fluids with the basaltic tephra. This also suggests that the cycle from acid-fog fall-out
to precipitation of the siliceous-sulfatic crusts must occur quite rapidly. Production of siliceous-sulfatic crusts via
acid-fog alteration may also be occurring on Mars. The occurrence of evaporitic sulfate and silica at Sand Wash in Kilauea
may serve as an example of how the jarosite-bearing outcrop at Meridiani may have formed.
DE: 8450 Planetary volcanism (5480)
DE: 3672 Planetary mineralogy and petrology (5410)
DE: 1886 Weathering (1625)
DE: 1045 Low-temperature geochemistry
DE: 1060 Planetary geochemistry (5405, 5410, 5704, 5709, 6005, 6008)
SC: Planetary Sciences [P]
MN: 2004 AGU Fall Meeting