FeCycle: Attempting an iron biogeochemical budget from a mesoscale SF<sub>6</sub> tracer experiment in unperturbed low iron waters

Philip W. Boyd(National Institute of Water and Atmospheric Research), Cliff S. Law(National Institute of Water and Atmospheric Research), David A. Hutchins(University of Delaware), Edward R. Abraham(National Institute of Water and Atmospheric Research), Peter Croot(GEOMAR Helmholtz Centre for Ocean Research Kiel), Michael J. Ellwood(National Institute of Water and Atmospheric Research), Russell Frew(University of Otago), Mark G. Hadfield(National Institute of Water and Atmospheric Research), Julie Hall(National Institute of Water and Atmospheric Research), Sara M. Handy(University of Tennessee at Knoxville), Charles T. Hare(University of Delaware), Julie L. Higgins(University of Tennessee at Knoxville), Peter Hill(National Institute of Water and Atmospheric Research), Keith A. Hunter(University of Otago), Karine Leblanc(University of Delaware), María T. Maldonado(University of British Columbia), R. Michael L. McKay(Bowling Green State University), Cécile E. Mioni(University of Tennessee at Knoxville), Megan Oliver(National Institute of Water and Atmospheric Research), S. Pickmere(National Institute of Water and Atmospheric Research), Matthew H. Pinkerton(National Institute of Water and Atmospheric Research), Karl Safi(National Institute of Water and Atmospheric Research), Sylvia G. Sander(University of Otago), Sergio A. Sañudo‐Wilhelmy(Stony Brook University), M. J. Smith(National Institute of Water and Atmospheric Research), Robert F. Strzepek(University of Otago), Antonio Tovar‐Sánchez(Consejo Superior de Investigaciones Científicas), Steven W. Wilhelm(University of Tennessee at Knoxville)
Global Biogeochemical Cycles
December 1, 2005
Cited by 323Open Access
Full Text

Abstract

An improved knowledge of iron biogeochemistry is needed to better understand key controls on the functioning of high‐nitrate low‐chlorophyll (HNLC) oceanic regions. Iron budgets for HNLC waters have been constructed using data from disparate sources ranging from laboratory algal cultures to ocean physics. In summer 2003 we conducted FeCycle, a 10‐day mesoscale tracer release in HNLC waters SE of New Zealand, and measured concurrently all sources (with the exception of aerosol deposition) to, sinks of iron from, and rates of iron recycling within, the surface mixed layer. A pelagic iron budget (timescale of days) indicated that oceanic supply terms (lateral advection and vertical diffusion) were relatively small compared to the main sink (downward particulate export). Remote sensing and terrestrial monitoring reveal 13 dust or wildfire events in Australia, prior to and during FeCycle, one of which may have deposited iron at the study location. However, iron deposition rates cannot be derived from such observations, illustrating the difficulties in closing iron budgets without quantification of episodic atmospheric supply. Despite the threefold uncertainties reported for rates of aerosol deposition (Duce et al., 1991), published atmospheric iron supply for the New Zealand region is ∼50‐fold (i.e., 7‐ to 150‐fold) greater than the oceanic iron supply measured in our budget, and thus was comparable (i.e., a third to threefold) to our estimates of downward export of particulate iron. During FeCycle, the fluxes due to short term (hours) biological iron uptake and regeneration were indicative of rapid recycling and were tenfold greater than for new iron (i.e. estimated atmospheric and measured oceanic supply), giving an “ f e” ratio (uptake of new iron/uptake of new + regenerated iron) of 0.17 (i.e., a range of 0.06 to 0.51 due to uncertainties on aerosol iron supply), and an “F e ” ratio (biogenic Fe export/uptake of new + regenerated iron) of 0.09 (i.e., 0.03 to 0.24).


Related Papers

No related papers found

Powered by citation graph analysis