HR: 1340h
AN: H53B-1238 [Abstracts]
TI: Source Determination and Residence Time Indications for a Large River System
AU: * Stewart, C M
EM: cstewar1@tulane.edu
AF: Tulane University, Department of Earth and Environmental Sciences
120 Dinwiddie Hall, New Orleans, LA 70123
United States
AU: McKee, B A
EM: bmckee@tulane.edu
AF: Tulane University, Department of Earth and Environmental Sciences
120 Dinwiddie Hall, New Orleans, LA 70123
United States
AU: Duncan, D D
EM: dduncan@tulane.edu
AF: Tulane University, Department of Earth and Environmental Sciences
120 Dinwiddie Hall, New Orleans, LA 70123
United States
AU: Ferrell, R E
EM: rferrell@lsu.edu
AF: Louisiana State University, Department of Geology and Geophysics
E146 Howe-Russell Building, Baton Rouge, LA 70803
United States
AB:
Characterization of suspended particulates in large river systems is important and challenging. The world's 25 largest
rivers, in terms of sediment discharge, account for approximately 40% of the fluvial sediments that enter the ocean.
Particulates that enter the ocean from rivers are the products of integrated basin-wide processes. This study focuses on the
development of a suite of proxies that give insight to the source and system-wide residence time of particulates discharged
by rivers. To completely characterize the suspended sediments in a major river system, regular sampling over longer periods
of time is necessary. A river's suspended load is highly variable over a range of time scales, therefore high temporal
resolution sampling is required. Continuous, regular sampling incorporates not only seasonal and annual change, but it also
allows interpretation for differences on a sub-seasonal scale. Biweekly sampling of the Mississippi River was performed from
March 2002 through April 2004.
Previous studies have used short-lived radionuclides (7Be, 137Cs, and 210Pb) to determine sediment source and residence time
in small agricultural watersheds. Using the same approach in a large river system is more challenging because sources and
sinks are more numerous and complex and residence times change from smaller to larger systems. As a result of these
complexities, the use of short-lived radioisotopes alone was not completely diagnostic in the Mississippi River system.
Trends in 7Be and 137Cs activities appear to be driven by mixing of old and new sediments. Therefore, both source and
residence time effects control the observed radioisotope activities. Additional examinations of grain size, 234U/238U
isotope activity ratios, and sediment mineralogy were done to better evaluate basin sources. Three up-basin sampling trips
were also performed in February, April, and July of 2004. The upper Mississippi, Missouri, Ohio, and Arkansas rivers were
sampled each time. These end-member samples are essential to determining primary source, residence time, and are used in a
7Be mass balance analysis for the Mississippi River system. When done in conjunction with basin source indicators, the mass
balance approach sheds light on how man-made structures influence particle retention times, long term storage, and particle
alterations.
DE: 1803 Anthropogenic effects
DE: 1806 Chemistry of fresh water
DE: 1815 Erosion and sedimentation
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting