Consequences of Sulfate reduction in Floodplain Wetlands
Abstract
This research project has been a laboratory based experimental
study on the cycling of sulfur in acid sulfate soils and
underlying sediments of floodplain wetlands. Of particular focus
was the effect that the reductive transformations of sulfur can
have on nitrogen and phosphorus cycling. The objectives of this
study were to quantify the rates at which sulfidic material
forms, the controls on these rates, and to analyse the nutrient
pulse from the sediments under a low redox potential.
In-vitro experiments simulating inundation were conducted on
sediments collected from three wetlands of the Lower River
Murray. Two were salt disposal basins and another was a
freshwater wetland. Experimental data collected indicates that
significant amounts of nitrogen and phosphorus will be released
from the sediments when inundated and anoxia is induced. The
pulse of nutrients from the sediments related to the geochemistry
of the sediments, as well as the hydrological regime. Partial
drying and oxidation of sulfidic material results in the
formation of poorly crystalline iron (oxyhydr)oxide minerals,
which sorb phosphorus, with reductive dissolution following
inundation liberating sorbed phosphorus. The high calcium
concentrations in the salt disposal basins can potentially
occlude the phosphorus through the formation of apatite minerals.
The result is that phosphorus is limiting primary production in
salt disposal basins and nitrogen is limiting in the freshwater
systems.
The pulse of nitrogen and phosphorus has the potential to
increase algal growth. Consequently, the increased algal growth
and subsequent availability of energy sources for microbial
metabolism could increase the rate of sulfide production. This
research will enable land and catchment managers to better manage
sediment and water quality in the Murray-Darling Basin.
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