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Dive into the research topics where Benedicte Ferre is active.

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Featured researches published by Benedicte Ferre.


Science | 2014

Temporal Constraints on Hydrate-Controlled Methane Seepage off Svalbard

Christian Berndt; Tomas Feseker; Tina Treude; Sebastian Krastel; Volker Liebetrau; Helge Niemann; Victoria J. Bertics; Ines Dumke; Karolin Dünnbier; Benedicte Ferre; Carolyn Graves; Felix Gross; Karen Hissmann; Veit Hühnerbach; Stefan Krause; Kathrin Lieser; Jürgen Schauer; Lea Steinle

What Does It All Mean? Strong emissions of methane have recently been observed from shallow sediments in Arctic seas. Berndt et al. (p. 284, published online 2 January) present a record of methane seepage from marine sediments off the coast of Svalbard showing that such emissions have been present for at least 3000 years, the result of normal seasonal fluctuations of bottom waters. Thus, contemporary observations of strong methane venting do not necessarily mean that the clathrates that are the source of the methane are decomposing at a faster rate than in the past. Seasonal gas hydrate destabilization has been releasing methane from marine sediments near Svalbard for at least 3000 years. Methane hydrate is an icelike substance that is stable at high pressure and low temperature in continental margin sediments. Since the discovery of a large number of gas flares at the landward termination of the gas hydrate stability zone off Svalbard, there has been concern that warming bottom waters have started to dissociate large amounts of gas hydrate and that the resulting methane release may possibly accelerate global warming. Here, we corroborate that hydrates play a role in the observed seepage of gas, but we present evidence that seepage off Svalbard has been ongoing for at least 3000 years and that seasonal fluctuations of 1° to 2°C in the bottom-water temperature cause periodic gas hydrate formation and dissociation, which focus seepage at the observed sites.


Geophysical Research Letters | 2016

Extensive release of methane from Arctic seabed west of Svalbard during summer 2014 does not influence the atmosphere

C. Lund Myhre; Benedicte Ferre; S. M. Platt; Anna Silyakova; Ove Hermansen; G. Allen; I. Pisso; Norbert Schmidbauer; Andreas Stohl; Joseph Pitt; Pär Jansson; J. Greinert; Carl J. Percival; A. M. Fjaeraa; Sebastian O'Shea; Martin Gallagher; M. Le Breton; Keith N. Bower; S. J.-B. Bauguitte; Stig B. Dalsøren; Sunil Vadakkepuliyambatta; R. E. Fisher; Euan G. Nisbet; D. Lowry; Gunnar Myhre; J. A. Pyle; M. Cain; Jürgen Mienert

We find that summer methane (CH4) release from seabed sediments west of Svalbard substantially increases CH4 concentrations in the ocean but has limited influence on the atmospheric CH4 levels. Our conclusion stems from complementary measurements at the seafloor, in the ocean, and in the atmosphere from land-based, ship and aircraft platforms during a summer campaign in 2014. We detected high concentrations of dissolved CH4 in the ocean above the seafloor with a sharp decrease above the pycnocline. Model approaches taking potential CH4 emissions from both dissolved and bubble-released CH4 from a larger region into account reveal a maximum flux compatible with the observed atmospheric CH4 mixing ratios of 2.4–3.8 nmol m−2 s−1. This is too low to have an impact on the atmospheric summer CH4 budget in the year 2014. Long-term ocean observatories may shed light on the complex variations of Arctic CH4 cycles throughout the year.


Geology | 2015

Abiotic methane from ultraslow-spreading ridges can charge Arctic gas hydrates

J. E. Johnson; Jürgen Mienert; Andreia Plaza-Faverola; Sunil Vadakkepuliyambatta; Jochen Knies; Stefan Bünz; Karin Andreassen; Benedicte Ferre

Biotic gas generation from the degradation of organic carbon in marine sediments supplies and maintains gas hydrates throughout the worlds oceans. In nascent, ultraslow-spreading ocean basins, methane generation can also be abiotic, occurring during the high-temperature (>200 °C) serpentinization of ultramafic rocks. Here, we report on the evolution of a growing Arctic gas- and gas hydrate–charged sediment drift on oceanic crust in eastern Fram Strait, a tectonically controlled, deep-water gateway between the subpolar North Atlantic and Arctic Oceans. Ultraslow-spreading ridges between northwest Svalbard and northeast Greenland permit the sustained interaction of a mid-ocean ridge transform fault and developing sediment drift, on both young ( 10 Ma) oceanic crust, since the late Miocene. Geophysical data image the gas-charged drift and crustal structure and constrain the timing of a major 30 km lateral displacement of the drift across the Molloy transform fault. We describe the buildup of a 2 m.y., long-lived gas hydrate– and free gas–charged drift system on young oceanic crust that may be fed and maintained by a dominantly abiotic methane source. Ultraslow-spreading, sedimented ridge flanks represent a previously unrecognized carbon reservoir for abiotic methane that could supply and maintain deep-water methane hydrate systems throughout the Arctic.


Archive | 2015

From ESONET multidisciplinary scientific community to EMSO novel European research infrastructure for ocean observation

Roland Person; Paolo Favali; Henry A. Ruhl; Laura Beranzoli; Jean-Francois Rolin; Christoph Waldmann; Robert Huber; Yves Auffret; M. Namık Çağatay; Mathilde Cannat; Juanjo Dañobeitia; Eric Delory; M. Diepenbroek; H.C. de Stigter; J.M.A. de Miranda; Benedicte Ferre; M. Gillooly; F. Grant; Jens Greinert; Per O. J. Hall; V. Lykousis; Jürgen Mienert; Ingrid Puillat; Imants G. Priede; Laurenz Thomsen

Environmental and climate changes are crucial challenges for sustainable living because of their significant impact on the Earth system and the important consequences for natural resources. Oceans have a primary role in these changes as they regulate heat flux, greenhouse gases and climate whilst harboring many different life forms and resources. Understanding processes in the marine environment is of paramount importance for any prediction of short-, intermediate- and long-term global change.


Geochemistry Geophysics Geosystems | 2017

Microseismicity Linked to Gas Migration and Leakage on the Western Svalbard Shelf

Peter Franek; Andreia Plaza-Faverola; Jürgen Mienert; Stefan Buenz; Benedicte Ferre; Alun Hubbard

The continental margin off Prins Karls Forland, western Svalbard, is characterized by widespread natural gas seepage into the water column at and upslope of the gas hydrate stability zone. We deployed an ocean bottom seismometer integrated into the MASOX (Monitoring Arctic Seafloor-Ocean Exchange) automated seabed observatory at the pinch-out of this zone at 389 m water depth to investigate passive seismicity over a continuous 297 day period from 13 October 2010. An automated triggering algorithm was applied to detect over 220,000 short duration events (SDEs) defined as having a duration of less than 1 s. The analysis reveals two different types of SDEs, each with a distinctive characteristic seismic signature. We infer that the first type consists of vocal signals generated by moving mammals, likely finback whales. The second type corresponds to signals with a source within a few hundred meters of the seismometer, either due east or west, that vary on short (∼tens of days) and seasonal time scales. Based on evidence of prevalent seafloor seepage and subseafloor gas accumulations, we hypothesize that the second type of SDEs is related to subseafloor fluid migration and gas seepage. Furthermore, we postulate that the observed temporal variations in microseismicity are driven by transient fluid release and due to the dynamics of thermally forced, seasonal gas hydrate decomposition. Our analysis presents a novel technique for monitoring the duration, intensity, and periodicity of fluid migration and seepage at the seabed and can help elucidate the environmental controls on gas hydrate decomposition and release.


Environmental Science & Technology | 2018

Sub-Ocean: Subsea Dissolved Methane Measurements Using an Embedded Laser Spectrometer Technology

Roberto Grilli; Jack Triest; J. Chappellaz; Michel Calzas; Thibault Desbois; Pär Jansson; Christophe Guillerm; Benedicte Ferre; Loic Lechevallier; Victor Ledoux; Daniele Romanini

We present a novel instrument, the Sub-Ocean probe, allowing in situ and continuous measurements of dissolved methane in seawater. It relies on an optical feedback cavity enhanced absorption technique designed for trace gas measurements and coupled to a patent-pending sample extraction method. The considerable advantage of the instrument compared with existing ones lies in its fast response time of the order of 30 s, that makes this probe ideal for fast and continuous 3D-mapping of dissolved methane in water. It could work up to 40 MPa of external pressure, and it provides a large dynamic range, from subnmol of CH4 per liter of seawater to mmol L-1. In this work, we present laboratory calibration of the instrument, intercomparison with standard method and field results on methane detection. The good agreement with the headspace equilibration technique followed by gas-chromatography analysis supports the utility and accuracy of the instrument. A continuous 620-m depth vertical profile in the Mediterranean Sea was obtained within only 10 min, and it indicates background dissolved CH4 values between 1 and 2 nmol L-1 below the pycnocline, similar to previous observations conducted in different ocean settings. It also reveals a methane maximum at around 6 m of depth, that may reflect local production from bacterial transformation of dissolved organic matter.


Continental Shelf Research | 2005

Trawling-induced resuspension and dispersal of muddy sediments and dissolved elements in the Gulf of Lion (NW Mediterranean)

X. Durrieu de Madron; Benedicte Ferre; G. Le Corre; Christian Grenz; Pascal Conan; Mireille Pujo-Pay; Roselyne Buscail; O. Bodiot


Continental Shelf Research | 2005

Fine-grained sediment dynamics during a strong storm event in the inner-shelf of the Gulf of Lion (NW Mediterranean)

Benedicte Ferre; Katell Guizien; X. Durrieu de Madron; A. Palanques; J. Guillén; Antoine Grémare


Continental Shelf Research | 2008

Impact of natural (waves and currents) and anthropogenic (trawl) resuspension on the export of particulate matter to the open ocean Application to the Gulf of Lion (NW Mediterranean)

Benedicte Ferre; X. Durrieu de Madron; Claude Estournel; Caroline Ulses; G. Le Corre


Nature Geoscience | 2015

Water column methanotrophy controlled by a rapid oceanographic switch

Lea L. Steinle; Carolyn Graves; Tina Treude; Benedicte Ferre; Arne Biastoch; Ingeborg Bussmann; Christian Berndt; Sebastian Krastel; Rachael H. James; Erik Behrens; Claus W. Böning; Jens Greinert; Célia Sapart; Markus Scheinert; Stefan Sommer; Moritz F. Lehmann; Helge Niemann

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Tina Treude

University of California

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Ingeborg Bussmann

Alfred Wegener Institute for Polar and Marine Research

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