{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:145313"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:145313","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Particle Fluxes in the North-East Atlantic and Southern Ocean","abstract":"Concerns regarding the climatic implications of the increase in atmospheric CO2 concentrations<br/>throughout the anthropocene have provided the impetus to obtain a mechanistic understanding<br/>of oceanic processes and their role in regulating atmospheric pCO2. One important mechanism<br/>is the functioning of the biological pump which partitions carbon between the atmosphere and<br/>ocean reservoirs over relevant time scales. Current uncertainties revolve around the accuracy of<br/>upper ocean particle flux measurements, and the effect of iron and ballast minerals on the<br/>strength and efficiency of the biological carbon pump. This study documents the design and<br/>deployment of a neutrally buoyant sediment trap (PELAGRA). In the north-east Atlantic<br/>organic carbon fluxes were measured using this new technology and compared to indirect<br/>estimates of export based on 234Th and nutrient budgets. The vertical fluxes of 234Th into the<br/>traps were less than those estimated from the 234Th water column budget, which is interpreted to<br/>be the result of previous export events removing 234Th from the water column and the lateral<br/>advection of gradients of total 234Th/238U disequilibria confounding the Eulerian budgeting<br/>approach adopted. Successful simultaneous deployments in July 2006 at different depths<br/>provided a direct measurement of the attenuation of flux with depth, which at 1.8 is<br/>substantially greater than the canonical value of 0.856. PELAGRA deployments in the<br/>Southern Ocean were conducted as part of the CROZEX project, which examined the role of<br/>iron supply on bloom dynamics and subsequent export. Using a mass balance approach to<br/>account for the seasonal depletion of dissolved silica acid in surface waters and Si fluxes from<br/>the euphotic zone, potential surface export(100m) of organic carbon from +Fe bloom area was<br/>estimated to be in the order of 11-15 g C m-2, which is higher than previous estimates obtained<br/>from artificial fertilisation experiments. The issue of temporal decoupling between production<br/>and export processes was addressed by employing retrospective estimates of production.<br/>Particle export efficiency in the +Fe region to the north of the plateau (25-70%) was higher than<br/>similar estimates in the –Fe region (11-20%). Diatom size was well correlated with a range of<br/>calculated export ratios(100m). The main diatoms involved in the export from the surface were E.<br/>Antarctica in the +Fe region and F. kerguelensis in the –Fe region. E. Antarctica fluxes also<br/>dominated deep-water (3000m) diatom fluxes in the +Fe region, and its importance is attributed<br/>to the regions proximity to the Crozet Islands, where resting spores and dissolved iron are<br/>advected into the bloom area during the winter. Deep-water carbon fluxes measured to the<br/>south of the plateau. Deep-water carbon fluxes measured south of the plateau (0.09 g C m-2 yr-1)<br/>are consistent with previous measurements in a similar environment. In the +Fe region to the<br/>north, deep water fluxes were 0.4 g C m-2 yr-1 indicating that natural iron fertilisation can<br/>increase the strength of the biological carbon pump by a factor of 4. Comparison of fluxes with<br/>satellite-derived productivity also suggests that the efficiency of the biological pump in<br/>transferring organic carbon to the deep-ocean is increased by a factor of 3 in the presence of<br/>iron. The flux and composition of amino acids, in relation to the dominant mineral phases that<br/>comprised the particulate flux in the NE Atlantic and the Southern Ocean was also examined.<br/>The fraction of carbon that could be accounted for by the total hydrolysable amino acids varied<br/>very little (20-30%) with sample composition. Protein amino acids were used to quantify the<br/>degradation state of the settling particulate material. Specific amino acids seem to infer<br/>diatomaceous rather than calcareous as the dominant organic matter source. Multiple linear<br/>regression analysis reveals that mineral fluxes can only explain a very small amount of the<br/>variability in amino acid composition, which does not support previous hypotheses that relate<br/>mineral fluxes and organic carbon fluxes through the differential protective capacity of various<br/>mineral phases.","abstract_html":"Concerns regarding the climatic implications of the increase in atmospheric CO2 concentrations&lt;br/&gt;throughout the anthropocene have provided the impetus to obtain a mechanistic understanding&lt;br/&gt;of oceanic processes and their role in regulating atmospheric pCO2. One important mechanism&lt;br/&gt;is the functioning of the biological pump which partitions carbon between the atmosphere and&lt;br/&gt;ocean reservoirs over relevant time scales. Current uncertainties revolve around the accuracy of&lt;br/&gt;upper ocean particle flux measurements, and the effect of iron and ballast minerals on the&lt;br/&gt;strength and efficiency of the biological carbon pump. This study documents the design and&lt;br/&gt;deployment of a neutrally buoyant sediment trap (PELAGRA). In the north-east Atlantic&lt;br/&gt;organic carbon fluxes were measured using this new technology and compared to indirect&lt;br/&gt;estimates of export based on 234Th and nutrient budgets. The vertical fluxes of 234Th into the&lt;br/&gt;traps were less than those estimated from the 234Th water column budget, which is interpreted to&lt;br/&gt;be the result of previous export events removing 234Th from the water column and the lateral&lt;br/&gt;advection of gradients of total 234Th/238U disequilibria confounding the Eulerian budgeting&lt;br/&gt;approach adopted. Successful simultaneous deployments in July 2006 at different depths&lt;br/&gt;provided a direct measurement of the attenuation of flux with depth, which at 1.8 is&lt;br/&gt;substantially greater than the canonical value of 0.856. PELAGRA deployments in the&lt;br/&gt;Southern Ocean were conducted as part of the CROZEX project, which examined the role of&lt;br/&gt;iron supply on bloom dynamics and subsequent export. Using a mass balance approach to&lt;br/&gt;account for the seasonal depletion of dissolved silica acid in surface waters and Si fluxes from&lt;br/&gt;the euphotic zone, potential surface export(100m) of organic carbon from +Fe bloom area was&lt;br/&gt;estimated to be in the order of 11-15 g C m-2, which is higher than previous estimates obtained&lt;br/&gt;from artificial fertilisation experiments. The issue of temporal decoupling between production&lt;br/&gt;and export processes was addressed by employing retrospective estimates of production.&lt;br/&gt;Particle export efficiency in the +Fe region to the north of the plateau (25-70%) was higher than&lt;br/&gt;similar estimates in the –Fe region (11-20%). Diatom size was well correlated with a range of&lt;br/&gt;calculated export ratios(100m). The main diatoms involved in the export from the surface were E.&lt;br/&gt;Antarctica in the +Fe region and F. kerguelensis in the –Fe region. E. Antarctica fluxes also&lt;br/&gt;dominated deep-water (3000m) diatom fluxes in the +Fe region, and its importance is attributed&lt;br/&gt;to the regions proximity to the Crozet Islands, where resting spores and dissolved iron are&lt;br/&gt;advected into the bloom area during the winter. Deep-water carbon fluxes measured to the&lt;br/&gt;south of the plateau. Deep-water carbon fluxes measured south of the plateau (0.09 g C m-2 yr-1)&lt;br/&gt;are consistent with previous measurements in a similar environment. In the +Fe region to the&lt;br/&gt;north, deep water fluxes were 0.4 g C m-2 yr-1 indicating that natural iron fertilisation can&lt;br/&gt;increase the strength of the biological carbon pump by a factor of 4. Comparison of fluxes with&lt;br/&gt;satellite-derived productivity also suggests that the efficiency of the biological pump in&lt;br/&gt;transferring organic carbon to the deep-ocean is increased by a factor of 3 in the presence of&lt;br/&gt;iron. The flux and composition of amino acids, in relation to the dominant mineral phases that&lt;br/&gt;comprised the particulate flux in the NE Atlantic and the Southern Ocean was also examined.&lt;br/&gt;The fraction of carbon that could be accounted for by the total hydrolysable amino acids varied&lt;br/&gt;very little (20-30%) with sample composition. Protein amino acids were used to quantify the&lt;br/&gt;degradation state of the settling particulate material. Specific amino acids seem to infer&lt;br/&gt;diatomaceous rather than calcareous as the dominant organic matter source. Multiple linear&lt;br/&gt;regression analysis reveals that mineral fluxes can only explain a very small amount of the&lt;br/&gt;variability in amino acid composition, which does not support previous hypotheses that relate&lt;br/&gt;mineral fluxes and organic carbon fluxes through the differential protective capacity of various&lt;br/&gt;mineral phases.","abstract_has_math":false,"creators":["Salter, Ian"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2007,"date_issued":"2007-09","date_published":"2007-09","updated_at":"2026-07-24T04:36:14Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Salter, Ian"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2007-09"]},{"key":"dc:date.issued","label":"Date","values":["2007-09"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Ocean and Earth Science (pre 2011 reorg)","School of Ocean and Earth Science"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/145313/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/145313/1/Salter_2007_PhD.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Concerns regarding the climatic implications of the increase in atmospheric CO2 concentrations<br/>throughout the anthropocene have provided the impetus to obtain a mechanistic understanding<br/>of oceanic processes and their role in regulating atmospheric pCO2. One important mechanism<br/>is the functioning of the biological pump which partitions carbon between the atmosphere and<br/>ocean reservoirs over relevant time scales. Current uncertainties revolve around the accuracy of<br/>upper ocean particle flux measurements, and the effect of iron and ballast minerals on the<br/>strength and efficiency of the biological carbon pump. This study documents the design and<br/>deployment of a neutrally buoyant sediment trap (PELAGRA). In the north-east Atlantic<br/>organic carbon fluxes were measured using this new technology and compared to indirect<br/>estimates of export based on 234Th and nutrient budgets. The vertical fluxes of 234Th into the<br/>traps were less than those estimated from the 234Th water column budget, which is interpreted to<br/>be the result of previous export events removing 234Th from the water column and the lateral<br/>advection of gradients of total 234Th/238U disequilibria confounding the Eulerian budgeting<br/>approach adopted. Successful simultaneous deployments in July 2006 at different depths<br/>provided a direct measurement of the attenuation of flux with depth, which at 1.8 is<br/>substantially greater than the canonical value of 0.856. PELAGRA deployments in the<br/>Southern Ocean were conducted as part of the CROZEX project, which examined the role of<br/>iron supply on bloom dynamics and subsequent export. Using a mass balance approach to<br/>account for the seasonal depletion of dissolved silica acid in surface waters and Si fluxes from<br/>the euphotic zone, potential surface export(100m) of organic carbon from +Fe bloom area was<br/>estimated to be in the order of 11-15 g C m-2, which is higher than previous estimates obtained<br/>from artificial fertilisation experiments. The issue of temporal decoupling between production<br/>and export processes was addressed by employing retrospective estimates of production.<br/>Particle export efficiency in the +Fe region to the north of the plateau (25-70%) was higher than<br/>similar estimates in the –Fe region (11-20%). Diatom size was well correlated with a range of<br/>calculated export ratios(100m). The main diatoms involved in the export from the surface were E.<br/>Antarctica in the +Fe region and F. kerguelensis in the –Fe region. E. Antarctica fluxes also<br/>dominated deep-water (3000m) diatom fluxes in the +Fe region, and its importance is attributed<br/>to the regions proximity to the Crozet Islands, where resting spores and dissolved iron are<br/>advected into the bloom area during the winter. Deep-water carbon fluxes measured to the<br/>south of the plateau. Deep-water carbon fluxes measured south of the plateau (0.09 g C m-2 yr-1)<br/>are consistent with previous measurements in a similar environment. In the +Fe region to the<br/>north, deep water fluxes were 0.4 g C m-2 yr-1 indicating that natural iron fertilisation can<br/>increase the strength of the biological carbon pump by a factor of 4. Comparison of fluxes with<br/>satellite-derived productivity also suggests that the efficiency of the biological pump in<br/>transferring organic carbon to the deep-ocean is increased by a factor of 3 in the presence of<br/>iron. The flux and composition of amino acids, in relation to the dominant mineral phases that<br/>comprised the particulate flux in the NE Atlantic and the Southern Ocean was also examined.<br/>The fraction of carbon that could be accounted for by the total hydrolysable amino acids varied<br/>very little (20-30%) with sample composition. Protein amino acids were used to quantify the<br/>degradation state of the settling particulate material. Specific amino acids seem to infer<br/>diatomaceous rather than calcareous as the dominant organic matter source. Multiple linear<br/>regression analysis reveals that mineral fluxes can only explain a very small amount of the<br/>variability in amino acid composition, which does not support previous hypotheses that relate<br/>mineral fluxes and organic carbon fluxes through the differential protective capacity of various<br/>mineral phases."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Particle Fluxes in the North-East Atlantic and Southern Ocean"]}]}],"canonical_facts":{"dc:creator":["Salter, Ian"],"dc:date":["2007-09"],"dc:date.issued":["2007-09"],"dc:description.abstract":["Concerns regarding the climatic implications of the increase in atmospheric CO2 concentrations<br/>throughout the anthropocene have provided the impetus to obtain a mechanistic understanding<br/>of oceanic processes and their role in regulating atmospheric pCO2. One important mechanism<br/>is the functioning of the biological pump which partitions carbon between the atmosphere and<br/>ocean reservoirs over relevant time scales. Current uncertainties revolve around the accuracy of<br/>upper ocean particle flux measurements, and the effect of iron and ballast minerals on the<br/>strength and efficiency of the biological carbon pump. This study documents the design and<br/>deployment of a neutrally buoyant sediment trap (PELAGRA). In the north-east Atlantic<br/>organic carbon fluxes were measured using this new technology and compared to indirect<br/>estimates of export based on 234Th and nutrient budgets. The vertical fluxes of 234Th into the<br/>traps were less than those estimated from the 234Th water column budget, which is interpreted to<br/>be the result of previous export events removing 234Th from the water column and the lateral<br/>advection of gradients of total 234Th/238U disequilibria confounding the Eulerian budgeting<br/>approach adopted. Successful simultaneous deployments in July 2006 at different depths<br/>provided a direct measurement of the attenuation of flux with depth, which at 1.8 is<br/>substantially greater than the canonical value of 0.856. PELAGRA deployments in the<br/>Southern Ocean were conducted as part of the CROZEX project, which examined the role of<br/>iron supply on bloom dynamics and subsequent export. Using a mass balance approach to<br/>account for the seasonal depletion of dissolved silica acid in surface waters and Si fluxes from<br/>the euphotic zone, potential surface export(100m) of organic carbon from +Fe bloom area was<br/>estimated to be in the order of 11-15 g C m-2, which is higher than previous estimates obtained<br/>from artificial fertilisation experiments. The issue of temporal decoupling between production<br/>and export processes was addressed by employing retrospective estimates of production.<br/>Particle export efficiency in the +Fe region to the north of the plateau (25-70%) was higher than<br/>similar estimates in the –Fe region (11-20%). Diatom size was well correlated with a range of<br/>calculated export ratios(100m). The main diatoms involved in the export from the surface were E.<br/>Antarctica in the +Fe region and F. kerguelensis in the –Fe region. E. Antarctica fluxes also<br/>dominated deep-water (3000m) diatom fluxes in the +Fe region, and its importance is attributed<br/>to the regions proximity to the Crozet Islands, where resting spores and dissolved iron are<br/>advected into the bloom area during the winter. Deep-water carbon fluxes measured to the<br/>south of the plateau. Deep-water carbon fluxes measured south of the plateau (0.09 g C m-2 yr-1)<br/>are consistent with previous measurements in a similar environment. In the +Fe region to the<br/>north, deep water fluxes were 0.4 g C m-2 yr-1 indicating that natural iron fertilisation can<br/>increase the strength of the biological carbon pump by a factor of 4. Comparison of fluxes with<br/>satellite-derived productivity also suggests that the efficiency of the biological pump in<br/>transferring organic carbon to the deep-ocean is increased by a factor of 3 in the presence of<br/>iron. The flux and composition of amino acids, in relation to the dominant mineral phases that<br/>comprised the particulate flux in the NE Atlantic and the Southern Ocean was also examined.<br/>The fraction of carbon that could be accounted for by the total hydrolysable amino acids varied<br/>very little (20-30%) with sample composition. Protein amino acids were used to quantify the<br/>degradation state of the settling particulate material. Specific amino acids seem to infer<br/>diatomaceous rather than calcareous as the dominant organic matter source. Multiple linear<br/>regression analysis reveals that mineral fluxes can only explain a very small amount of the<br/>variability in amino acid composition, which does not support previous hypotheses that relate<br/>mineral fluxes and organic carbon fluxes through the differential protective capacity of various<br/>mineral phases."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/145313/1/Salter_2007_PhD.pdf"],"dc:publisher.department":["Ocean and Earth Science (pre 2011 reorg)","School of Ocean and Earth Science"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/145313/"],"dc:title":["Particle Fluxes in the North-East Atlantic and Southern Ocean"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:14Z"}